US20210219989A1 - Tibial Guides, Tools and Techniques for Resecting the Tibial Plateau - Google Patents

Tibial Guides, Tools and Techniques for Resecting the Tibial Plateau Download PDF

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US20210219989A1
US20210219989A1 US17/222,530 US202117222530A US2021219989A1 US 20210219989 A1 US20210219989 A1 US 20210219989A1 US 202117222530 A US202117222530 A US 202117222530A US 2021219989 A1 US2021219989 A1 US 2021219989A1
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tibial
tibia
patient
guide
guide housing
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US17/222,530
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Nam T. Chao
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Conformis Inc
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Conformis Inc
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Priority to US17/222,530 priority Critical patent/US20210219989A1/en
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Publication of US20210219989A1 publication Critical patent/US20210219989A1/en
Assigned to MIDCAP FINANCIAL TRUST, AS AGENT reassignment MIDCAP FINANCIAL TRUST, AS AGENT SECURITY INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CONFORMIS, INC., IMATX, INC.
Priority to US18/347,047 priority patent/US20230346391A1/en
Assigned to IMATX, INC., CONFORMIS, INC. reassignment IMATX, INC. RELEASE BY SECURED PARTY (SEE DOCUMENT FOR DETAILS). Assignors: MIDCAP FINANCIAL TRUST, AS AGENT FOR LENDERS
Assigned to TRINITY CAPITAL INC., AS ADMINISTRATIVE AGENT reassignment TRINITY CAPITAL INC., AS ADMINISTRATIVE AGENT SECURITY INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: CONFORMIS, INC., IMATX, INC., RESTOR3D, INC.
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B17/00Surgical instruments, devices or methods, e.g. tourniquets
    • A61B17/14Surgical saws ; Accessories therefor
    • A61B17/15Guides therefor
    • A61B17/154Guides therefor for preparing bone for knee prosthesis
    • A61B17/157Cutting tibia

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  • This disclosure relates to improved and/or patient-adapted (e.g., patient-specific and/or patient-engineered) surgical guides, tools and techniques to assist with the resection of the tibial plateau or similar bones. More specifically, the present disclosure provides a set of alignment and cutting guides and methods for use that are easier and more reliable for use by experienced and inexperienced knee surgeons.
  • patient-adapted e.g., patient-specific and/or patient-engineered
  • Knee replacement surgery is a well-tolerated and highly successful procedure that can help relieve pain and restore function in injured and/or severely diseased knee joints.
  • the surgeon will begin by making an incision through the various skin, fascia, and muscle layers to expose the knee joint and laterally dislocate the patella.
  • the anterior cruciate ligament may be excised and/or the surgeon may choose to leave the posterior cruciate ligament intact—such soft tissue removal often depends on the surgeon's preference and condition(s) of the ACL/PCL.
  • Various surgical techniques are used to remove the arthritic joint surfaces, and the tibia and femur are prepared and/or resected to accept the component artificial implants.
  • Preparing the surface of the tibia often requires that the surgeon resect the articular surface of the bone to receive an implant over the resected surface.
  • the resection can include specific depths of cut(s), posterior slope(s), varus/valgus angle(s), and/or axial alignment(s) that can be unique to every patient.
  • the specific dimensions and/or measurements desirably ensure proper positioning of the artificial joint component assembly, and accurate guiding and cutting of the tibial plateau is important to achieve the most accurate and best fit of the artificial implant components.
  • a surgeon has two options to help them prepare the tibia.
  • the surgeon may select the traditional “freehand” method, or he/she may choose a set of surgical instruments that will assist with positioning, resection and alignment.
  • the “freehand” method usually involves standard surgical tools available in the operating room (OR) during surgery, such as osteotomy drills and calipers for measuring.
  • the procedure, preparation, alignment and/or resection may be more or less accurate, depending on the level of the skill and/or ability of the surgeon.
  • surgical guide tools are chosen, the surgeon may employ a standard sized saw guide block or other resection guides, which desirably assist with the critical cuts required in the tibial plateau.
  • a saw guide block or resection guide can first be attached to the patient in various ways, and then an alignment device can be used to provide a desired alignment. Once the resection guide is aligned, it can be temporarily fixed in place on the anterior side of the tibia, and the alignment device removed to allow the cutting or resection operation. While the use of such standard sized guide blocks or resection guides can improve the surgical procedure, they may not provide sufficient fine adjustments for cutting depth and/or slope, may be bulky, and may not be easy to use. The misuse or non-use of such devices can result in improper depth of cut, improper posterior slope, malalignment of varus/valgus angle(s), and poor axial alignment that may contribute to poor artificial implant positioning, instability of the joint, and poor surgical outcomes.
  • Some disclosed embodiments include a tibial guide housing for use in treatment of a tibia.
  • the tibial guide housing can include a first reference arm with a patient-specific contact surface configured to conform to a first portion of the superior surface of the tibia.
  • the tibial guide housing can also include a second reference arm having a patient-specific contact surface configured to conform to a second portion of the superior surface of the tibia.
  • the tibial guide housing can include at least one pin hole configured to accommodate insertion of a pin through the tibial guide housing and into the tibia.
  • the tibial guide housing can also include a patient-specific contact surface configured to conform to a portion of an anterior surface of the tibia.
  • Some embodiments can include a system for preparing a tibial plateau.
  • the system can include a tibial guide housing and one or more tibial cutting guide boxes, each of the one or more tibial cutting guide boxes.
  • the tibial cutting guide boxes can include a patient-specific contact surface configured to conform to a portion of the anterior surface of the tibia.
  • the tibial cutting guide boxes can also include a guide aperture configured to accommodate a surgical cutting tool and guide the cutting tool along a cutting plane having a predetermined cut depth and angle. Additionally, the tibial cutting guide boxes can include at least one pin hole configured to accommodate a pin passing into the tibia.
  • FIG. 1 depicts a top plan view of one embodiment of a tibial guide housing and/or body
  • FIG. 2 depicts a bottom plan view of the tibial guide housing of FIG. 1 ;
  • FIG. 3 depicts a front view of the tibial guide housing of FIG. 1 ;
  • FIG. 4 depicts a back view of the tibial guide housing of FIG. 1 ;
  • FIG. 5 depicts a right-side view of the tibial guide housing of FIG. 1 ;
  • FIG. 6 depicts a left-side view of the tibial guide housing of FIG. 1 ;
  • FIG. 7 depicts an isometric perspective view of the tibial guide housing of FIG. 1 ;
  • FIGS. 8A-8C depict isometric perspective views of different embodiments of tibial guide boxes having various cut depths constructed in accordance with the teaching of the present invention
  • FIG. 9 depicts a bottom plan view of a tibial guide box
  • FIG. 10 depicts a top plan view of a tibial guide box
  • FIG. 11 depicts a front view of a “minus two cut depth” tibial guide box
  • FIGS. 12A-12C depicts various views of a knee joint at neutral, varus and valgus angles, depicting possible posterior slopes of the knee;
  • FIGS. 13A and 13B generally depict various examples varus and valgus guide cut slots that can be designed as standard and/or adjustable features, for adjusting varus/valgus angles;
  • FIG. 14 depicts a back view of a “zero cut depth” guide box
  • FIG. 15 depicts a side view of the guide box of FIG. 14 ;
  • FIGS. 16A-16C depict isometric perspective, front plan, and back views of one embodiment of an assembled tibial guide assembly
  • FIGS. 17A & 17B depict a top plan view and an anterior view of a patient's tibia remodeled by a computer system
  • FIG. 18 depicts an anterior view of a tibial guide housing positioned on a medial side of a tibia
  • FIG. 19 depicts an anterior view of the tibial guide assembly and tibia of FIG. 18 , with a “zero” tibial guide box inserted into the tibial guide housing;
  • FIG. 20 depicts a top plan view of a tibial guide assembly, with exemplary medial and lateral cut planes;
  • FIG. 21 depicts a posterior view of a tibial guide assembly positioned on a medial side of a tibia
  • FIG. 22 depicts a side view of a tibial guide assembly, with both medial and lateral sides of a tibia resected;
  • FIG. 23 depicts a posterior view of the tibial guide assembly with an optional cut plane
  • FIG. 24 depicts an exemplary knee joint with tibial cuts planned to differing levels and depths
  • FIG. 25 depicts the knee joint of FIG. 24 in which a medial tibial section has been resected using a substantially horizontal cut and a lateral tibial section has been resected at a relatively steep angle;
  • FIG. 26 depicts the tibia of FIG. 25 , wherein a substantially thicker lateral insert than medial insert has been employed to create a desired resulting angulation;
  • FIG. 27 illustrates a coronal plane of the knee with exemplary resection cuts that can be used to correct lower limb alignment in a knee replacement
  • FIG. 28 depicts a coronal plane of a knee shown with femoral implant medial and lateral condyles having different thicknesses to help to correct limb alignment;
  • FIG. 29 illustrates a virtual model of a patient's limb that is misaligned in the sagittal plane, and a virtually corrected limb.
  • the present disclosure provides an improved patient-specific or patient-engineered tibial resection guide alignment apparatus (hereinafter “resection guide”) and associated methods that desirably overcome and/or address various disadvantages of existing systems, as well as provide for controlled depth and/or slope cuts on the tibia.
  • resection guide tibial resection guide alignment apparatus
  • Various embodiments of the present disclosure may be used to facilitate total knee surgery, bicompartmental knee surgery or unicompartmental knee surgery.
  • the various embodiments can be used for cruciate retaining surgeries or non-cruciate retaining surgeries.
  • Various embodiments of the present disclosure may be patient-specific or patient engineered for each surgical patient, with each tibial resection guide alignment apparatus tailored to an individual patient's joint morphology.
  • the system may be designed as an assembly that comprises a patient specific tibial resection housing and/or body and several patient specific sized cutting blocks that can be inserted into the housing/body and used for resecting the tibial plateau.
  • each piece of the tibial resection guide assembly can be uniquely tailored to an individual patient's anatomy, which may require images taken from the subject.
  • the manufacturer can then design the patient-specific resection guide using the joint image from a patient or subject, wherein the image may include both normal cartilage and diseased cartilage; reconstructing dimensions of the diseased cartilage surface to correspond to normal cartilage (using, for example, a computer system) and/or bones; and designing the tibial resection guide to exactly or substantially match the dimensions of the diseased cartilage surface, the normal cartilage surface, a healthy cartilage surface, a subchondral bone surface, and/or various combinations thereof (including height, width, length, and/or reference points of the resection guide).
  • the guide may substantially match an area slightly greater than the diseased cartilage surface or bone surface (or any other known size that may be applied to any patient).
  • the image can be, for example, an intraoperative image including a surface and/or feature detection method using any techniques known in the art, e.g., mechanical, optical, ultrasound, and known devices such as MM, CT, ultrasound, and other image techniques known in the art.
  • reconstruction is performed by obtaining a surface that follows the contour of the normal cartilage or the natural anatomy of the bone.
  • the surface can be parametric and include control points that extend the contour of the normal cartilage to the diseased cartilage and/or a B-spline surface to determine the shape of at least one contact surface of the tibial resection guide to fill the areas of diseased cartilage.
  • the images can be 2D or 3D or combination thereof to specifically design the tibial resection guide assembly.
  • tibial resection guide assemblies constructed in accordance with various teachings described herein may be designed as extramedullary or intramedullary.
  • Exemplary extramedullary guides or tools can be connected outside the patient's tibia, and may be designed to include an attachment for alignment rods or any other alignment mechanisms.
  • Exemplary intramedullary alignment guides or tools can include an intramedullary rod that positioned into the central canal of the tibia with the alignment mechanism suspended from the rod.
  • Various embodiments can include a patient specific housing and/or body designed to include various reference points that correspond to a patient specific articular contact surface and/or subchondral bone surface (or other surface, as desired). These reference points may be perpendicular extensions or “fingers” that extend from the body to provide tibial surface anchoring. These reference points may include at least one extension, finger or arm that incorporates at least one patient specific contact surface on the articular or other surface of the tibia. The reference points may be designed to have varied lengths onto the surface of the tibia, or may be shortened to the minimum anchoring required. The reference points may be designed centrally located or can be offset to varying degrees to provide an optimal natural conforming location on the articular or other surface of the tibia to allow for stable resection.
  • the tibial resection guide assembly can further include one or more guide boxes that may be removably attached to the surface.
  • the boxes may be designed to include various patient specific contact surfaces to easily mate with the anterior surface of the bone.
  • the boxes may have at least one guide aperture for guiding a surgical cutting instrument for controlled resection of the tibia plateau.
  • the guide boxes may also be designed to make cuts that are parallel, non-parallel, perpendicular, or non-perpendicular to other cuts.
  • the tibial guide boxes can be designed as removable or permanent. If the tibial guide boxes are removable, they may have a sliding mechanism that allows for easy insertion into the tibial guide resection housing and/or body. They may include other connection arrangements, including rail systems, quick connects, or other similar mechanisms for insertion into and/or connection to the guide resection housing and/or body.
  • Described herein are various embodiments of surgical tools and methods for accurately preparing the medial and lateral tibial plateau such that the plane of each cut across the bone ends will be appropriate to receive the portions of a knee prosthesis selected to reflect the spacing distance and size of the respective bone ends, so that one or more artificial knee joint components will properly and optimally replace the mechanical functioning of a normal knee.
  • the tibial plateau preparation assembly can include: a tibial guide housing, one or more tibial cutting guide boxes with a cutting platform with a tibial depth resection guide, and optional attachment of an alignment rod.
  • a surgeon after opening and/or accessing the damaged knee area, may use the tibial guide assembly to prepare medial and lateral ends of a patient's tibia to receive appropriate knee components, such as a tibial tray and insert.
  • FIG. 1 depicts a top view of a tibial guide housing and/or body 25 .
  • the tibial housing is equipped with a variety of features that will assist the surgeon in his preparation of the tibial plateau; it is designed with a viewing window 20 , an alignment indicator 10 , an angled low profile body 30 and 40 and ergonomic features 50 and 60 .
  • the tibial guide housing contains a viewing window 20 to assist the surgeon in placement on the anterior surface of the tibia. This window will allow the surgeon to view the peripheral edge of the anterior surface of the tibia.
  • the window as depicted in FIG.
  • this window is designed substantially similar to the width of the tibial guide housing because it maximizes viewing capacity, but may be designed to have a smaller width or a larger height to accommodate the surgeon's need.
  • the dimensions of this window may be designed as standard sizes or shapes or may be patient-specific to accommodate the tibial anatomy.
  • the window may be a variety of shapes such as “Z,” or curved shaped, or “L” shaped.
  • a second feature is the alignment indicator 10 .
  • This indicator provides the surgeon with visual assistance that the housing is firmly planted on the anterior surface of the tibia.
  • the present tibial guide housing has the alignment indicator 10 designed as a small channel. However, the manufacturer may choose to design this indicator on the surface of the housing with additional visual indicators such as an arrow.
  • the alignment indicator may be any size, shape or dimension.
  • the alignment indicator may also be designed as patient specific to match or substantially match the perimeter of the tibia.
  • the tibial guide housing may be designed to have a low profile for surgery.
  • a design that is low profile has many advantages because there is often minimal space available above and/or adjacent to the tibia during cruciate ligament retaining procedures.
  • the angled front 30 of the tibial guide housing achieves this purpose.
  • the width 40 of the housing is also smaller than other available cutting guides. The width of the housing 40 minimizes the profile of the cutting guide and may be designed as patient specific.
  • the tibial guide housing may be designed to have ergonomic features, such as the extension tab 50 and radiused edges 60 .
  • the extension tab 50 allows the surgeon to grasp and handle the tibial guide housing by its edge.
  • the edges within the extension tab are radiused 60 to provide for easy finger transition and no sharp edges.
  • the width of this extension may be designed with varying heights or shapes. The manufacturer may design this with a “U” shape or other variety of shapes to accommodate holding of the housing.
  • FIG. 2 depicts a bottom view of the tibial guide housing, showing the reference arms 90 , and the patient-specific contact surfaces 70 and 120 .
  • the tibial guide housing may be designed with specific reference extensions/arms 90 to help the surgeon find the natural, conforming position for more accurate resection. If the surgeon is resecting the medial side of the tibial plateau, the surgeon will place the reference arms 90 on the articular surface of the tibia and move it around until the reference arms finds their own natural, conforming position(s).
  • the reference arms may be designed with at least one reference arm, but in various preferred embodiments can include three reference arms.
  • the reference arms may respectively be titled as the “medial reference arm,” which may align with the center of the medial tibial plateau, the “center reference arm,” which can align between the tibial spines, and the “left reference arm,” which can align with the center of the tibia.
  • Each reference arm can be made patient specific or be made with standard available sizes retrieved from a database.
  • the reference arms spacing 80 may vary with every patient, or a set spacing may be designed or incorporated between each reference arm.
  • the medial reference arm and the center reference arm may also have patient-specific angles 100 designed into the housing, or angles 100 may be set standard angles derived from a database.
  • the length 110 of each reference arm may also vary between each patient (i.e., be a patient-specific length).
  • the tibial guide housing surfaces 120 and 70 that contact the anterior portions of the tibia will be patient specific to provide a secure and conforming fit.
  • FIG. 3 depicts a front view of the tibial guide housing.
  • the front view highlights specific features such as the dovetail rail 130 , the alignment rod attachment 170 , the low profile width 160 and height 150 for tibial guide box insertion, and the tibial guide box positive stops 140 .
  • the dovetail rail 130 is designed within the tibial guide housing to allow and/or facilitate easy insertion and securement of the tibial guide boxes (see FIG. 8A-8C ). This also allows locking of the tray into the housing and prevents any unnecessary motion or movement during cutting.
  • the tibial guide boxes may be secured into the tibial guide housing using any mechanism that is known in the art.
  • the tibial guide boxes may be secured by inserting the boxes into the housing and securing by set screws, by press fit, by snap tabs, or other equivalent mechanisms.
  • the bottom may be designed with a recessed tray that seats the tibial guide box.
  • the tibial guide housing height 150 and width 160 may be designed specifically to fit one or more of the tibial guide cutting boxes.
  • the dimensions may be minimized to provide a low profile for the assembly, or they may have different shapes to facilitate insertion of the guide boxes.
  • the dimensions may also be patient-specific.
  • the height 150 and/or width 160 may vary depending on the morphology or other features of the damaged or diseased tibia and articular surfaces.
  • the tibial guide housing may also provide positive stop walls 140 to prevent the tibial guide boxes from sliding forward or other directions as well as to potentially prevent the surgeon from over-exerting pressure during insertion. The surgeon can insert the guide box into the guide housing until it reaches a detent or stop to provide accurate alignment.
  • the tibial guide housing may also include an alignment leg 170 to allow attachment of the tibial alignment rod to the body.
  • FIG. 4 depicts a back view of the tibial guide housing and highlights the patient contact surfaces 190 and the curved exterior wall 180 .
  • the contact surfaces 190 may be patient specific.
  • the image data evaluated to manufacture the housing can be used to design the surface that contacts or mates with the articular surface of the tibial plateau, thus having or approximating a patient specific shape(s). Such features can allow stability and more secure attachment when resecting or cutting is taking place.
  • the exterior wall can be radiused 180 , as desired, to eliminate, reduce or minimize soft tissue irritation.
  • FIG. 5 depicts a right-side view of the tibial guide housing and/or body.
  • various detent receiver holes 230 are shown. These detent receiver holes 230 can receive a tibial guide insert box, and in various embodiments the successful insertion can be accompanied by an audible sound or other indication to the surgeon when the box is secured in place.
  • the detent receiver holes 230 can be designed as a receiver for tabs, levers, etc., or they may have different shapes.
  • the alignment leg angle 200 and the alignment leg 220 are also shown in this view. The angle and the length of the alignment leg may be designed as patient specific for increased accuracy in the alignment of the housing to the center axis of the tibia.
  • the alignment leg angle 200 and the height 220 may also be designed as standard dimensions that can be determined from evaluations from a database of various patients.
  • the alignment leg may also be designed to include various connection types, including press fit insertion.
  • the alignment leg may include a quick release/connection mechanism for the surgeon's use that can prevent excessive upward force on the tibial guide housing.
  • This side view also highlights an example of the patient specific nature of the contact surfaces 190 of the tibial guide housing.
  • FIG. 6 depicts a left-side view of the tibial guide housing and/or body. This view highlights the relative thickness/height 240 of a reference arm, as well as an exemplary pin hole 250 .
  • the reference arm thickness/height 240 may be designed as patient specific. Each reference arm may have different thicknesses/heights to accommodate the diseased patient's surface. The thickness/height of each arm may also be designed to have standard dimensions as derived from a database of similar patients.
  • the tibial guide housing may have one or more pin holes 250 to help secure the housing to the tibia. The pin holes may be designed large enough to accommodate a drill and to insert pins for visual guidance or location on the tibia.
  • FIGS. 8A-8C depict isometric perspective views of various embodiments of different tibial guide boxes that can be used with various features disclosed herein, with various available cut depths included in one preferred embodiment.
  • FIG. 8A shows the “+2” tibial guide box that can be employed by the surgeon to make a primary cut to the tibia. This box, along with other system features, desirably facilitates the surgeon's ability to adjust the resection or cut of the tibial plateau after a primary cut has been completed.
  • the primary cut can be defined as the “0” tibial guide box.
  • the “0” guide box will be inserted and utilized by the surgeon to make the primary cut and may be, in various embodiments, a patient-specific selected or derived depth.
  • FIG. 8C shows a “ ⁇ 2” guide box which can also allow the surgeon to adjust the cut after the primary cut has been made. Many other cut depths can be created to allow the surgeon to make additional controlled depth cuts on the tibial plateau.
  • FIGS. 9 and 10 depict the bottom and top plan views, respectively, of a tibial guide box.
  • the bottom view of the guide box shows a dovetail rail 260 , and the positive stop tabs 270 .
  • the dovetail rail 260 may have varying widths or lengths for quick and guided insertion of the tibial guide boxes.
  • the positive stop tabs 270 are designed to extend to contact the positive stop walls 140 .
  • FIG. 10 shows that the cut guide cover 300 need not necessarily extend the full depth of the tibial guide box. However, the cut guide cover may be designed to reach the entire length/depth of the tibial guide box.
  • the cut guide cover may be manufactured out of variety of materials that would withstand an oscillating or reciprocating saw. It can be manufactured out of biocompatible metals and/or plastics.
  • FIG. 11 depicts a front view of a minus two cut depth guide box.
  • This specific guide cut box need not necessarily have a cut guide cover 300 because it can use the roof of the tibial guide housing as a portion of the cut guide cover.
  • FIGS. 8A and 8B depict guide cut covers 300 that are designed in portions of the boxes.
  • FIG. 11 further depicts two pin holes 320 that may be incorporated into the design of each tibial guide cut box.
  • the tibial guide box may have pin holes 320 to help secure the box to the tibia.
  • the pin holes may be designed large enough to accommodate a drill and to insert pins for visual guidance or location on the tibia. Also, additional pin holes may be designed into the guide box or guide housing.
  • the “ ⁇ 2” guide box still can guide 310 the reciprocating saw or the oscillating saw by using the roof the tibial guide housing as a guide boundary.
  • This guided slot 310 may be manufactured to specific dimensions to accommodate standard oscillating or reciprocating bone saws.
  • the guided slot 310 may also incorporate various angles, shaped and/or configurations, including different features to accommodate different varus/valgus (see FIG. 13 ) and/or anterior/posterior angles (see FIG. 12C ) designed within the box.
  • FIGS. 12A and 12B depict a human knee with exemplary varus, neutral and valgus orientations, and various exemplary angles that a cut guided slot 30 or other tool may incorporate to accommodate and/or correct such orientations.
  • this line passes medial to the knee and a moment arm is created, which increases force across the medial compartment of the knee.
  • the load-bearing axis (LBA) passes lateral to the knee, and the resulting moment arm increases force across the lateral compartment of the knee.
  • FIG. 13A depicts various cut guide slot angulations that, when used in conjunction with a tibial guide box as described herein, can generally be employed to alter the resulting varus or valgus angles of one or more tibial cut planes.
  • FIG. 13B depicts one alternative embodiment of a guide tool that incorporates an adjustment mechanism 322 that can be employed and adjusted to alter the cut angle.
  • the adjustment mechanism could include a screw thread or other mechanism that allows a wide variation in the cut plane angle, which could include larger wedges to accommodate more severe varus/valgus angles.
  • the guide tool with the adjustable mechanism could be sized and configured to fit into the standard guided slots 1301 - 1304 as shown in FIG. 13A .
  • various features of guide tools and surgical methods described herein can be used in conjunction with a wide variety of tibial trays, wedges and/or tibial inserts to accommodate the correction and/or reduction of extremely high varus and/or valgus angles in a given patient's anatomy.
  • a surgeon may choose to resect the medial and lateral portions of the tibia to differing levels and/or depths, as shown in FIG.
  • a medial tibial section has been resected using a substantially horizontal cut 2401
  • a lateral tibial section has been resected at a relatively steep angle, desirably removing a minimal amount of bone from the lateral side (see FIG. 25 ).
  • tibial trays e.g., separate medial and lateral trays
  • inserts e.g., dual inserts
  • a substantially thicker lateral insert 2601 (as compared to the thickness of the medial insert 2602 ) has been employed to create a desired resulting angulation for the knee implant.
  • a single tibial tray may be used with a single or multiple tibial cuts, with a one or two piece insert having differing thickness on each of the medial/lateral portions in a similar manner.
  • valgus deformities may lead to patients with deformed or hypoplastic lateral condyles.
  • hypoplastic lateral condyles may be present in 20% of patients that require knee replacement.
  • An implant or tibial guide assemblies or other tools may be engineered from patient-specific data to address this deformity, by correcting or optimizing the lateral condyle, can include one or more expanded curvatures in one or more locations on the lateral condyle, relative to the patient's corresponding uncut medial or lateral condyle.
  • an implant may be engineered to include additional material on the outer, joint-facing surface of the implant component's lateral condyle.
  • the expanded curvature(s) and/or material on the outside of the condyle can be used to design a material savings on the inside of the corresponding section of the implant component, for example, by maintaining a minimum material/implant thickness from the outside (joint-facing surface) to the inside (bone-facing surface) of the implant component.
  • a minimum material/implant thickness from the outside (joint-facing surface) to the inside (bone-facing surface) of the implant component.
  • bone preservation can be maximized.
  • the resection cuts are made closer to the surface of the bone.
  • this approach uses the patient-adapted design of the implant component to both correct a condyle shape abnormality, such as a lateral condyle abnormality, such as hypoplasia, and to maximize bone preservation.
  • a condyle shape abnormality such as a lateral condyle abnormality, such as hypoplasia
  • the deformity may be corrected by tailoring the tibial resection guide assemblies to have a unique medial and lateral assembly that will correct the angles.
  • the lateral condyle tibial resection guide may require smaller/lesser resection depth cut, different varus/valgus angle, or posterior/anterior angle than the medial tibial resection guide.
  • Other tools and methods may be similarly designed to correct the deformity.
  • the tibial guide assembly, the joint implants, and other tools may be preoperatively designed and/or selected to correct the misalignment and/or obtain a proper mechanical alignment of a patient's limb.
  • a knee implant and implant procedure can be designed and/or selected preoperatively to include implant and/or resection dimensions that substantially realign the patient's limb to correct or improve a patient's alignment deformity.
  • the process can include selecting and/or designing one or more surgical tools (e.g., guide tools or cutting jigs) to direct the clinician in resectioning the patient's bone in accordance with the preoperatively designed and/or selected resection dimensions.
  • surgical tools e.g., guide tools or cutting jigs
  • the degree of deformity correction that is necessary to establish a desired limb alignment is calculated based on information from the alignment of a virtual model of a patient's limb.
  • the virtual model can be generated from patient-specific data, such 2D and/or 3D imaging data of the patient's limb.
  • the deformity correction can correct varus or valgus alignment or antecurvatum or recurvatum alignment.
  • the desired deformity correction returns the leg to normal alignment, for example, a zero degree biomechanical axis in the coronal plane and absence of genu antecurvatum and recurvatum in the sagittal plane.
  • the preoperatively designed and/or selected implant or implant component, resection dimension(s), and/or cutting guides, templates or cutting jig(s) can be employed to correct a patient's alignment deformity in a single plane, for example, in the coronal plane or in the sagittal plane, in multiple planes, for example, in the coronal and sagittal planes, and/or in three dimensions.
  • a deformity correction can be achieved by designing and/or selecting one or more of a resection dimension, an implant component thickness, and an implant component surface curvature that adjusts the mechanical axis or axes into alignment in one or more planes.
  • a lower limb misalignment can be corrected in a knee replacement by designing or selecting one or more of a femoral resection dimension, a femoral implant component thickness, a femoral implant component surface curvature, a tibial resection dimension, a tibial implant component thickness, a tibial implant component insert thickness, and a tibial implant component surface curvature (or various combinations thereof) to adjust the femoral mechanical axis and tibial mechanical axis into alignment in the coronal plane.
  • FIG. 27 illustrates a coronal plane of the knee with exemplary resection cuts that can be used to correct lower limb alignment in a knee replacement.
  • the selected and/or designed resection cuts can include different cuts on different portions of a patient's biological structure.
  • resection cut facets on medial and lateral femoral condyles can be non-coplanar and parallel 1602 , 1602 ′, angled 1604 , 1604 ′, or non-coplanar and non-parallel, for example, cuts 1602 and 1604 ′ or cuts 1602 ′and 1604 .
  • resection cut facets on medial and lateral portions of the tibia can be non-coplanar and parallel 1606 , 1606 ′, angled and parallel 1608 , 1608 ′, or non-coplanar and non-parallel, for example, cuts 1606 and 1608 ′ or cuts 1606 ′ and 1608 .
  • Non-coplanar facets of resection cuts can include a step-cut 1610 to connect the non-coplanar resection facet surfaces.
  • Selected and/or designed resection dimensions can be achieved using one or more selected and/or designed guide tools (e.g., cutting jigs) that guide resectioning (e.g., guide cutting tools) of the patient's biological structure to yield the predetermined resection surface dimensions (e.g., resection surface(s), angles, and/or orientation(s)).
  • the bone-facing surfaces of the implant components can be designed to include one or more features (e.g., bone cut surface areas, perimeters, angles, and/or orientations) that substantially match one or more of the resection cut or cut facets that were predetermined to enhance the patient's alignment.
  • certain combinations of resection cuts can aid in bringing the femoral mechanical axis 1612 and tibial mechanical axis 1614 into alignment 1616 .
  • FIG. 28 depicts a coronal plane of the knee shown with femoral implant medial and lateral condyles 1702 , 1702 ′ having different thicknesses to help to correct limb alignment.
  • These features can be used in combination with any of the resection cut 1704 , 1704 ′ described above and/or in combination with different thicknesses on the corresponding portions of the tibial component.
  • independent tibial implant components and/or independent tibial inserts on medial and lateral sides of the tibial implant component can be used enhance alignment at a patient's knee joint.
  • An implant component can include constant yet different thicknesses in two or more portions of the implant (e.g., a constant medial condyle thickness different from a constant lateral condyle thickness), a gradually increasing thickness across the implant or a portion of the implant, or a combination of constant and gradually increasing thicknesses.
  • FIG. 29 illustrates a virtual model of a patient's limb that is misaligned in the sagittal plane, for example, a genu antecurvatum deformity, and the virtually corrected limb. More particularly, FIG. 29 shows the misaligned limb in the sagittal plane 3001 and the coronal plane 3002 , and the corrected limb in sagittal plane 3003 and coronal plane 3004 .
  • the deformity correction can be achieved using a similar design approach as described above for a coronal plane deformity.
  • the selection and/or design of one or more femoral resection dimensions, femoral implant component thicknesses, femoral implant component surface curvatures, tibial resection dimensions, tibial implant component thicknesses, tibial implant component insert thicknesses, and/or tibial implant component surface curvatures can be used to adjust the femoral mechanical axis and tibial mechanical axis into alignment in the sagittal plane (e.g., by altering corresponding features across the sagittal plane, for example, by altering anterior features relative to corresponding posterior features).
  • Alignment deformities in both the coronal and sagittal planes, or in multiple planes about the mechanical axes, can be addressed by designing and/or selecting one or more resection dimensions, one or more implant component thicknesses, and/or one or more implant component surface curvatures.
  • an implant component that is preoperatively designed and/or selected to correct a patient's alignment also can be designed or selected to include additional patient-specific or patient-engineered features.
  • the bone-facing surface of an implant or implant component can be designed and/or selected to substantially negatively-match the resected bone surface. If resection dimensions are angled, for example, in the coronal plane and/or in the sagittal plane, various features of the implant component, for example, the component bone-facing surface, can be designed and/or selected based on an angled orientation into the joint rather than on a perpendicular orientation.
  • the perimeter of the tibial implant or implant component that substantially positively-matches the perimeter of the patient's cut tibial bone has a different shape depending on the angle of the cut.
  • the depth or angle of the distal condyle resection on the medial and/or lateral condyle can be designed and/or selected to correct a patient alignment deformity.
  • one or more of the implant or implant component condyle width, length, curvature, and angle of impact against the tibia can be altered.
  • one or more implant or implant component features such as implant perimeter, condyle length, condyle width, curvature, and angle is designed and/or selected relative to a sloping and/or non-coplanar resection cut.
  • FIG. 14 depicts a back view of a tibial guide box.
  • the back view shows a width 340 of the slot and a height 330 of the slot.
  • the width of the guided slot 340 may also be specifically designed to control the width of the cut as required by the surgeon—it may be wider, it may be shorter or a specific cut shape.
  • the width of the preferred embodiment could substantially match the width of the specific implant components that will be placed on the tibia.
  • the height 330 of the guided slot will desirably determine the cut depth of the tibial plateau, with the angulation of the slot similarly controlling and/or influencing the angulation of the cut plane (in both medial/lateral angulation as well as anterior/posterior angulation).
  • the cut plane height and/or angulation(s) may be patient specific as determined by each patient's anatomy, or some or all cut plane features could be “dialed in” using an adjustable mechanism as seen in FIG. 13B .
  • FIG. 15 depicts a side view of a tibial guide box.
  • the side view highlights the detent 350 which can used in various embodiments to lock into the detent receiver holes 230 (see FIG. 5 ).
  • One or more of these detents can be placed on opposing sides of the box to ensure that an audible sound is heard (or other indication is provided) when locking the tibial guide box into the tibial guide housing.
  • FIGS. 16A-16C depict an isometric view, a front view, and a back view of the tibial guide assembly, respectively. These shaded views show how an exemplary tibial guide box can fit within a corresponding tibial guide housing.
  • One preferred embodiment of the various teachings herein includes providing an apparatus and method for preparing the tibia for a tibial implant that significantly reduces the number of parts and component tools required to resect and prepare a tibial plateau, and desirably reduces the number of steps typically required in such a procedure.
  • One of the many advantages of various embodiments described herein is that the assembly and associated components are modular, which allows the tibial housing to remain attached on the tibia, while multiple tibial guide boxes with varying cut depth dimensions, varus/valgus angles, and posterior/anterior cut angles can be utilized by the surgeon to make additional cuts and/or increase or modify the depth of cuts.
  • FIG. 17A depicts a top view of an uncut patient tibia 400 that has been modeled using a computer system.
  • there are three potential planes that the surgeon will be considering which are the medial 370 , the center 380 and the lateral 390 planes.
  • Each of these planes has varying bone morphology that is shown by the articular ridges 360 , and each plane may require a tibial guide assembly that attaches to the bone using the natural conforming bone anatomy adjacent thereto.
  • the natural placement and positioning of an implant using the natural conforming bone anatomy will desirably provide the surgeon with a more secure tool to prepare and cut the tibial plateau.
  • FIG. 17B shows an anterior view of a patient's uncut tibia and the medial and lateral intercondylar tubercle 410 .
  • This figure highlights the complex anatomy of a tibia and the varying exemplary cut planes 420 that a surgeon may desire in creating one or more desired cut planes to accept a tibial implant.
  • the varying cut planes 420 show that the surgeon has already predetermined the cut depth, the varus/valgus angle, and the posterior/anterior angles that he or she wishes to make to prepare the tibia.
  • the surgeon has the flexibility to adjust the predetermined cuts by using varying modular guide cut boxes with different cut depths and/or angles. For example, in one embodiment, if the surgeon wishes to cut less bone than originally predetermined, then the surgeon may choose the “Minus 2” tibial guide box instead of the “zero” guide box. This will allow the surgeon to cut less bone than what was originally predetermined.
  • FIG. 18 depicts an anterior view of a tibial guide housing 25 positioned on the medial side of the tibia 400 and showing the reference arms with a patient specific contact surface 90 conforming to the natural anatomy of the bone; the resection guide is aligned primarily to match natural landmarks of the articular surface or other features of the tibial plateau.
  • the surgeon may score the articular surface to reach the subchondral bone to ensure proper positioning and placement, if desired.
  • the surgeon may choose to determine the patient's mechanical axis with reference to their anatomical axis with an alignment rod or equivalent systems.
  • an alignment rod may be attached to a tibia guide housing 170 as shown in FIG.
  • the alignment rod system may be designed to be telescoped between its two connection points, which assists with the alignment of the patient's mechanical axis and provides preferred positioning that may be adjustable.
  • the use of the alignment rod may, in various embodiments, provide the surgeon with an additional confirmation that the housing 170 is aligned with the correct patient-specific anatomy.
  • the tibial guide housing may be attached to the tibia using known methods and tools available in the OR, or provided in an instrument kit; and such attachment may include securement using a pin arrangement, e.g., by fitting one or more pins through appropriate openings in the tibial guide box (see FIG. 6 ) and/or the tibial guide housing.
  • a predetermined or adjusted tibial guide box may be inserted into the tibial guide housing.
  • a reciprocating saw or similar cutting device can be fitted through a cutting guide slot in the tibial guide box and reciprocated or otherwise manipulated or employed to cut across the medial side 450 (see FIG.
  • FIG. 20 depicts the top view of the tibial guide assembly and exemplary medial 450 and lateral 460 cut planes.
  • FIG. 22 depicts a side view of a tibial guide assembly after both medial 450 and lateral 460 sides of the tibia have been resected; this figure highlights the uniformity of the entire cut tibial surface 460 when using the tibial guide assembly and captured/guided cut boxes.
  • the medial and lateral cut planes may not be parallel, offset, and/or coplanar. At this time, the surgeon can remove the tibial guide assembly leaving the positioning pins for both the medial and lateral cuts in place to conduct a trialing and fixation of the knee prosthesis.
  • the trialing may involve fitting the prosthesis components to the prepared surfaces and checking the patient's range of motion, alignment, and the ligament stability that will approximate the range of motion of a natural knee.
  • the proximal tibial end can preferably be first fitted with a variety of templates and measuring tools and be followed by fitting the femur portion of the prosthesis to the prepared distal femur end.
  • additional cuts on the tibia may be made. For example, if the knee is tight in extension and flexion, the tibia may be further resected as necessary using the tibial guide assembly and adjusting the tibial guide boxes 480 (in FIG. 23 ) to preferred cut depth and angles. If the knee is tight in extension and balanced in flexion, the distal femur may be cut. Lastly, if the knee is tight in flexion and balanced in extension, it is possible that the surgeon may choose a tibial guide cut box to add posterior/anterior slope to the already cut tibial surface. However, many other combinations may be found to optimally adjust the cut depth 470 of the tibia resected surface using the guide boxes and combinations of guide boxes with varying dimensions or angles.
  • the surgeon may secure the actual knee joint components and patella prosthesis to the patella.
  • the result can be tested and thereafter the incision into the knee can be appropriately closed and dressed.

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Abstract

Various patient-specific tibial guide housings, patient-specific tibial guide boxes, and methods of resecting the tibial plateau are disclosed herein.

Description

    RELATED APPLICATIONS
  • This application is a continuation of U.S. application Ser. No. 16/671,571, entitled “Tibial Guides, Tools, and Techniques for Resecting the Tibial Plateau’ and filed Nov. 1, 2019, which in turn is a continuation of U.S. application Ser. No. 15/330,828, entitled “Tibial Guides, Tools, and Techniques for Resecting the Tibial Plateau’ and filed Nov. 7, 2016, which in turn is a continuation of U.S. application Ser. No. 13/865,958, entitled “Tibial Guides, Tools, and Techniques for Resecting the Tibial Plateau’ and filed Apr. 18, 2013, which in turn claims the benefit of U.S. Provisional Application Ser. No. 61/635,270, entitled “Tibial Guides, Tools, and Techniques for Resecting the Tibial Plateau” and filed Apr. 18, 2012, the disclosure of each which is incorporated herein by reference in its entirety.
  • TECHNICAL FIELD
  • This disclosure relates to improved and/or patient-adapted (e.g., patient-specific and/or patient-engineered) surgical guides, tools and techniques to assist with the resection of the tibial plateau or similar bones. More specifically, the present disclosure provides a set of alignment and cutting guides and methods for use that are easier and more reliable for use by experienced and inexperienced knee surgeons.
  • BACKGROUND
  • When a patient's knee is severely damaged, such as by osteoarthritis, rheumatoid arthritis, or post-traumatic arthritis, it may be desirous to repair and/or replace portions or the entirety of the knee with a total or partial knee replacement implant. Knee replacement surgery is a well-tolerated and highly successful procedure that can help relieve pain and restore function in injured and/or severely diseased knee joints.
  • In a typical knee surgery, the surgeon will begin by making an incision through the various skin, fascia, and muscle layers to expose the knee joint and laterally dislocate the patella. The anterior cruciate ligament may be excised and/or the surgeon may choose to leave the posterior cruciate ligament intact—such soft tissue removal often depends on the surgeon's preference and condition(s) of the ACL/PCL. Various surgical techniques are used to remove the arthritic joint surfaces, and the tibia and femur are prepared and/or resected to accept the component artificial implants.
  • Preparing the surface of the tibia often requires that the surgeon resect the articular surface of the bone to receive an implant over the resected surface. The resection can include specific depths of cut(s), posterior slope(s), varus/valgus angle(s), and/or axial alignment(s) that can be unique to every patient. The specific dimensions and/or measurements desirably ensure proper positioning of the artificial joint component assembly, and accurate guiding and cutting of the tibial plateau is important to achieve the most accurate and best fit of the artificial implant components.
  • Traditionally, a surgeon has two options to help them prepare the tibia. The surgeon may select the traditional “freehand” method, or he/she may choose a set of surgical instruments that will assist with positioning, resection and alignment. The “freehand” method usually involves standard surgical tools available in the operating room (OR) during surgery, such as osteotomy drills and calipers for measuring. The procedure, preparation, alignment and/or resection may be more or less accurate, depending on the level of the skill and/or ability of the surgeon. Where surgical guide tools are chosen, the surgeon may employ a standard sized saw guide block or other resection guides, which desirably assist with the critical cuts required in the tibial plateau. A saw guide block or resection guide can first be attached to the patient in various ways, and then an alignment device can be used to provide a desired alignment. Once the resection guide is aligned, it can be temporarily fixed in place on the anterior side of the tibia, and the alignment device removed to allow the cutting or resection operation. While the use of such standard sized guide blocks or resection guides can improve the surgical procedure, they may not provide sufficient fine adjustments for cutting depth and/or slope, may be bulky, and may not be easy to use. The misuse or non-use of such devices can result in improper depth of cut, improper posterior slope, malalignment of varus/valgus angle(s), and poor axial alignment that may contribute to poor artificial implant positioning, instability of the joint, and poor surgical outcomes.
  • As a result, it has been recognized that it would be desirable to provide a more effective system of guides, tools, instruments and methods to facilitate a high degree of success in the preparation of the tibial plateau to receive an artificial joint.
  • SUMMARY
  • Some disclosed embodiments include a tibial guide housing for use in treatment of a tibia. The tibial guide housing can include a first reference arm with a patient-specific contact surface configured to conform to a first portion of the superior surface of the tibia. The tibial guide housing can also include a second reference arm having a patient-specific contact surface configured to conform to a second portion of the superior surface of the tibia. Additionally, the tibial guide housing can include at least one pin hole configured to accommodate insertion of a pin through the tibial guide housing and into the tibia. The tibial guide housing can also include a patient-specific contact surface configured to conform to a portion of an anterior surface of the tibia.
  • Some embodiments can include a system for preparing a tibial plateau. The system can include a tibial guide housing and one or more tibial cutting guide boxes, each of the one or more tibial cutting guide boxes. The tibial cutting guide boxes can include a patient-specific contact surface configured to conform to a portion of the anterior surface of the tibia. The tibial cutting guide boxes can also include a guide aperture configured to accommodate a surgical cutting tool and guide the cutting tool along a cutting plane having a predetermined cut depth and angle. Additionally, the tibial cutting guide boxes can include at least one pin hole configured to accommodate a pin passing into the tibia.
  • These and other objects, advantages, and features of the disclosure will be apparent from the following description, considered along with the accompanying drawings.
  • BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
  • FIG. 1 depicts a top plan view of one embodiment of a tibial guide housing and/or body;
  • FIG. 2 depicts a bottom plan view of the tibial guide housing of FIG. 1;
  • FIG. 3 depicts a front view of the tibial guide housing of FIG. 1;
  • FIG. 4 depicts a back view of the tibial guide housing of FIG. 1;
  • FIG. 5 depicts a right-side view of the tibial guide housing of FIG. 1;
  • FIG. 6 depicts a left-side view of the tibial guide housing of FIG. 1;
  • FIG. 7 depicts an isometric perspective view of the tibial guide housing of FIG. 1;
  • FIGS. 8A-8C depict isometric perspective views of different embodiments of tibial guide boxes having various cut depths constructed in accordance with the teaching of the present invention;
  • FIG. 9 depicts a bottom plan view of a tibial guide box;
  • FIG. 10 depicts a top plan view of a tibial guide box;
  • FIG. 11 depicts a front view of a “minus two cut depth” tibial guide box;
  • FIGS. 12A-12C depicts various views of a knee joint at neutral, varus and valgus angles, depicting possible posterior slopes of the knee;
  • FIGS. 13A and 13B generally depict various examples varus and valgus guide cut slots that can be designed as standard and/or adjustable features, for adjusting varus/valgus angles;
  • FIG. 14 depicts a back view of a “zero cut depth” guide box;
  • FIG. 15 depicts a side view of the guide box of FIG. 14;
  • FIGS. 16A-16C depict isometric perspective, front plan, and back views of one embodiment of an assembled tibial guide assembly;
  • FIGS. 17A & 17B depict a top plan view and an anterior view of a patient's tibia remodeled by a computer system;
  • FIG. 18 depicts an anterior view of a tibial guide housing positioned on a medial side of a tibia;
  • FIG. 19 depicts an anterior view of the tibial guide assembly and tibia of FIG. 18, with a “zero” tibial guide box inserted into the tibial guide housing;
  • FIG. 20 depicts a top plan view of a tibial guide assembly, with exemplary medial and lateral cut planes;
  • FIG. 21 depicts a posterior view of a tibial guide assembly positioned on a medial side of a tibia;
  • FIG. 22 depicts a side view of a tibial guide assembly, with both medial and lateral sides of a tibia resected;
  • FIG. 23 depicts a posterior view of the tibial guide assembly with an optional cut plane;
  • FIG. 24 depicts an exemplary knee joint with tibial cuts planned to differing levels and depths;
  • FIG. 25 depicts the knee joint of FIG. 24 in which a medial tibial section has been resected using a substantially horizontal cut and a lateral tibial section has been resected at a relatively steep angle;
  • FIG. 26 depicts the tibia of FIG. 25, wherein a substantially thicker lateral insert than medial insert has been employed to create a desired resulting angulation;
  • FIG. 27 illustrates a coronal plane of the knee with exemplary resection cuts that can be used to correct lower limb alignment in a knee replacement;
  • FIG. 28 depicts a coronal plane of a knee shown with femoral implant medial and lateral condyles having different thicknesses to help to correct limb alignment; and
  • FIG. 29 illustrates a virtual model of a patient's limb that is misaligned in the sagittal plane, and a virtually corrected limb.
  • DETAILED DESCRIPTION
  • The present disclosure provides an improved patient-specific or patient-engineered tibial resection guide alignment apparatus (hereinafter “resection guide”) and associated methods that desirably overcome and/or address various disadvantages of existing systems, as well as provide for controlled depth and/or slope cuts on the tibia. Various embodiments of the present disclosure may be used to facilitate total knee surgery, bicompartmental knee surgery or unicompartmental knee surgery. In addition, the various embodiments can be used for cruciate retaining surgeries or non-cruciate retaining surgeries.
  • Various embodiments of the present disclosure may be patient-specific or patient engineered for each surgical patient, with each tibial resection guide alignment apparatus tailored to an individual patient's joint morphology. In at least one preferred embodiment, the system may be designed as an assembly that comprises a patient specific tibial resection housing and/or body and several patient specific sized cutting blocks that can be inserted into the housing/body and used for resecting the tibial plateau.
  • In various embodiments, each piece of the tibial resection guide assembly can be uniquely tailored to an individual patient's anatomy, which may require images taken from the subject. The manufacturer can then design the patient-specific resection guide using the joint image from a patient or subject, wherein the image may include both normal cartilage and diseased cartilage; reconstructing dimensions of the diseased cartilage surface to correspond to normal cartilage (using, for example, a computer system) and/or bones; and designing the tibial resection guide to exactly or substantially match the dimensions of the diseased cartilage surface, the normal cartilage surface, a healthy cartilage surface, a subchondral bone surface, and/or various combinations thereof (including height, width, length, and/or reference points of the resection guide). In various alternative embodiments, the guide may substantially match an area slightly greater than the diseased cartilage surface or bone surface (or any other known size that may be applied to any patient).
  • The image can be, for example, an intraoperative image including a surface and/or feature detection method using any techniques known in the art, e.g., mechanical, optical, ultrasound, and known devices such as MM, CT, ultrasound, and other image techniques known in the art. In certain embodiments, reconstruction is performed by obtaining a surface that follows the contour of the normal cartilage or the natural anatomy of the bone. The surface can be parametric and include control points that extend the contour of the normal cartilage to the diseased cartilage and/or a B-spline surface to determine the shape of at least one contact surface of the tibial resection guide to fill the areas of diseased cartilage. The images can be 2D or 3D or combination thereof to specifically design the tibial resection guide assembly.
  • In various embodiments, tibial resection guide assemblies constructed in accordance with various teachings described herein may be designed as extramedullary or intramedullary. Exemplary extramedullary guides or tools can be connected outside the patient's tibia, and may be designed to include an attachment for alignment rods or any other alignment mechanisms. Exemplary intramedullary alignment guides or tools can include an intramedullary rod that positioned into the central canal of the tibia with the alignment mechanism suspended from the rod.
  • Various embodiments can include a patient specific housing and/or body designed to include various reference points that correspond to a patient specific articular contact surface and/or subchondral bone surface (or other surface, as desired). These reference points may be perpendicular extensions or “fingers” that extend from the body to provide tibial surface anchoring. These reference points may include at least one extension, finger or arm that incorporates at least one patient specific contact surface on the articular or other surface of the tibia. The reference points may be designed to have varied lengths onto the surface of the tibia, or may be shortened to the minimum anchoring required. The reference points may be designed centrally located or can be offset to varying degrees to provide an optimal natural conforming location on the articular or other surface of the tibia to allow for stable resection.
  • The tibial resection guide assembly can further include one or more guide boxes that may be removably attached to the surface. The boxes may be designed to include various patient specific contact surfaces to easily mate with the anterior surface of the bone. The boxes may have at least one guide aperture for guiding a surgical cutting instrument for controlled resection of the tibia plateau. The guide boxes may also be designed to make cuts that are parallel, non-parallel, perpendicular, or non-perpendicular to other cuts.
  • The tibial guide boxes can be designed as removable or permanent. If the tibial guide boxes are removable, they may have a sliding mechanism that allows for easy insertion into the tibial guide resection housing and/or body. They may include other connection arrangements, including rail systems, quick connects, or other similar mechanisms for insertion into and/or connection to the guide resection housing and/or body.
  • Various aspects of the disclosed embodiments may be used and/or applied to a variety of other joints, such as the shoulder, hip, and wrist.
  • Tibial Guide Assembly Apparatus
  • Described herein are various embodiments of surgical tools and methods for accurately preparing the medial and lateral tibial plateau such that the plane of each cut across the bone ends will be appropriate to receive the portions of a knee prosthesis selected to reflect the spacing distance and size of the respective bone ends, so that one or more artificial knee joint components will properly and optimally replace the mechanical functioning of a normal knee.
  • In various embodiments, the tibial plateau preparation assembly can include: a tibial guide housing, one or more tibial cutting guide boxes with a cutting platform with a tibial depth resection guide, and optional attachment of an alignment rod. In practice, a surgeon, after opening and/or accessing the damaged knee area, may use the tibial guide assembly to prepare medial and lateral ends of a patient's tibia to receive appropriate knee components, such as a tibial tray and insert.
  • FIG. 1 depicts a top view of a tibial guide housing and/or body 25. The tibial housing is equipped with a variety of features that will assist the surgeon in his preparation of the tibial plateau; it is designed with a viewing window 20, an alignment indicator 10, an angled low profile body 30 and 40 and ergonomic features 50 and 60. First, the tibial guide housing contains a viewing window 20 to assist the surgeon in placement on the anterior surface of the tibia. This window will allow the surgeon to view the peripheral edge of the anterior surface of the tibia. The window, as depicted in FIG. 1, is designed substantially similar to the width of the tibial guide housing because it maximizes viewing capacity, but may be designed to have a smaller width or a larger height to accommodate the surgeon's need. The dimensions of this window may be designed as standard sizes or shapes or may be patient-specific to accommodate the tibial anatomy. The window may be a variety of shapes such as “Z,” or curved shaped, or “L” shaped.
  • A second feature is the alignment indicator 10. This indicator provides the surgeon with visual assistance that the housing is firmly planted on the anterior surface of the tibia. The present tibial guide housing has the alignment indicator 10 designed as a small channel. However, the manufacturer may choose to design this indicator on the surface of the housing with additional visual indicators such as an arrow. The alignment indicator may be any size, shape or dimension. The alignment indicator may also be designed as patient specific to match or substantially match the perimeter of the tibia.
  • The tibial guide housing may be designed to have a low profile for surgery. A design that is low profile has many advantages because there is often minimal space available above and/or adjacent to the tibia during cruciate ligament retaining procedures. The angled front 30 of the tibial guide housing achieves this purpose. Also, the width 40 of the housing is also smaller than other available cutting guides. The width of the housing 40 minimizes the profile of the cutting guide and may be designed as patient specific.
  • The tibial guide housing may be designed to have ergonomic features, such as the extension tab 50 and radiused edges 60. The extension tab 50 allows the surgeon to grasp and handle the tibial guide housing by its edge. The edges within the extension tab are radiused 60 to provide for easy finger transition and no sharp edges. The width of this extension may be designed with varying heights or shapes. The manufacturer may design this with a “U” shape or other variety of shapes to accommodate holding of the housing.
  • FIG. 2 depicts a bottom view of the tibial guide housing, showing the reference arms 90, and the patient- specific contact surfaces 70 and 120. The tibial guide housing may be designed with specific reference extensions/arms 90 to help the surgeon find the natural, conforming position for more accurate resection. If the surgeon is resecting the medial side of the tibial plateau, the surgeon will place the reference arms 90 on the articular surface of the tibia and move it around until the reference arms finds their own natural, conforming position(s). The reference arms may be designed with at least one reference arm, but in various preferred embodiments can include three reference arms. The reference arms may respectively be titled as the “medial reference arm,” which may align with the center of the medial tibial plateau, the “center reference arm,” which can align between the tibial spines, and the “left reference arm,” which can align with the center of the tibia. Each reference arm can be made patient specific or be made with standard available sizes retrieved from a database. The reference arms spacing 80 may vary with every patient, or a set spacing may be designed or incorporated between each reference arm. In addition, the medial reference arm and the center reference arm may also have patient-specific angles 100 designed into the housing, or angles 100 may be set standard angles derived from a database. The length 110 of each reference arm may also vary between each patient (i.e., be a patient-specific length). In various embodiments, the tibial guide housing surfaces 120 and 70 that contact the anterior portions of the tibia will be patient specific to provide a secure and conforming fit.
  • FIG. 3 depicts a front view of the tibial guide housing. The front view highlights specific features such as the dovetail rail 130, the alignment rod attachment 170, the low profile width 160 and height 150 for tibial guide box insertion, and the tibial guide box positive stops 140. The dovetail rail 130 is designed within the tibial guide housing to allow and/or facilitate easy insertion and securement of the tibial guide boxes (see FIG. 8A-8C). This also allows locking of the tray into the housing and prevents any unnecessary motion or movement during cutting. The tibial guide boxes may be secured into the tibial guide housing using any mechanism that is known in the art. If desired, the tibial guide boxes may be secured by inserting the boxes into the housing and securing by set screws, by press fit, by snap tabs, or other equivalent mechanisms. Alternatively, the bottom may be designed with a recessed tray that seats the tibial guide box.
  • The tibial guide housing height 150 and width 160 may be designed specifically to fit one or more of the tibial guide cutting boxes. The dimensions may be minimized to provide a low profile for the assembly, or they may have different shapes to facilitate insertion of the guide boxes. The dimensions may also be patient-specific. The height 150 and/or width 160 may vary depending on the morphology or other features of the damaged or diseased tibia and articular surfaces. The tibial guide housing may also provide positive stop walls 140 to prevent the tibial guide boxes from sliding forward or other directions as well as to potentially prevent the surgeon from over-exerting pressure during insertion. The surgeon can insert the guide box into the guide housing until it reaches a detent or stop to provide accurate alignment. The tibial guide housing may also include an alignment leg 170 to allow attachment of the tibial alignment rod to the body.
  • FIG. 4 depicts a back view of the tibial guide housing and highlights the patient contact surfaces 190 and the curved exterior wall 180. The contact surfaces 190 may be patient specific. The image data evaluated to manufacture the housing can be used to design the surface that contacts or mates with the articular surface of the tibial plateau, thus having or approximating a patient specific shape(s). Such features can allow stability and more secure attachment when resecting or cutting is taking place. The exterior wall can be radiused 180, as desired, to eliminate, reduce or minimize soft tissue irritation.
  • FIG. 5 depicts a right-side view of the tibial guide housing and/or body. In this view, various detent receiver holes 230 are shown. These detent receiver holes 230 can receive a tibial guide insert box, and in various embodiments the successful insertion can be accompanied by an audible sound or other indication to the surgeon when the box is secured in place. The detent receiver holes 230 can be designed as a receiver for tabs, levers, etc., or they may have different shapes. The alignment leg angle 200 and the alignment leg 220 are also shown in this view. The angle and the length of the alignment leg may be designed as patient specific for increased accuracy in the alignment of the housing to the center axis of the tibia. The alignment leg angle 200 and the height 220 may also be designed as standard dimensions that can be determined from evaluations from a database of various patients. The alignment leg may also be designed to include various connection types, including press fit insertion. For easy removal, the alignment leg may include a quick release/connection mechanism for the surgeon's use that can prevent excessive upward force on the tibial guide housing. This side view also highlights an example of the patient specific nature of the contact surfaces 190 of the tibial guide housing.
  • FIG. 6 depicts a left-side view of the tibial guide housing and/or body. This view highlights the relative thickness/height 240 of a reference arm, as well as an exemplary pin hole 250. The reference arm thickness/height 240 may be designed as patient specific. Each reference arm may have different thicknesses/heights to accommodate the diseased patient's surface. The thickness/height of each arm may also be designed to have standard dimensions as derived from a database of similar patients. The tibial guide housing may have one or more pin holes 250 to help secure the housing to the tibia. The pin holes may be designed large enough to accommodate a drill and to insert pins for visual guidance or location on the tibia.
  • FIGS. 8A-8C depict isometric perspective views of various embodiments of different tibial guide boxes that can be used with various features disclosed herein, with various available cut depths included in one preferred embodiment. FIG. 8A shows the “+2” tibial guide box that can be employed by the surgeon to make a primary cut to the tibia. This box, along with other system features, desirably facilitates the surgeon's ability to adjust the resection or cut of the tibial plateau after a primary cut has been completed. In the embodiment shown in FIG. 8B, the primary cut can be defined as the “0” tibial guide box. In various procedures, the “0” guide box will be inserted and utilized by the surgeon to make the primary cut and may be, in various embodiments, a patient-specific selected or derived depth. FIG. 8C shows a “−2” guide box which can also allow the surgeon to adjust the cut after the primary cut has been made. Many other cut depths can be created to allow the surgeon to make additional controlled depth cuts on the tibial plateau.
  • FIGS. 9 and 10 depict the bottom and top plan views, respectively, of a tibial guide box. In these embodiments, the bottom view of the guide box shows a dovetail rail 260, and the positive stop tabs 270. The dovetail rail 260 may have varying widths or lengths for quick and guided insertion of the tibial guide boxes. The positive stop tabs 270 are designed to extend to contact the positive stop walls 140. FIG. 10 shows that the cut guide cover 300 need not necessarily extend the full depth of the tibial guide box. However, the cut guide cover may be designed to reach the entire length/depth of the tibial guide box. In addition, the cut guide cover may be manufactured out of variety of materials that would withstand an oscillating or reciprocating saw. It can be manufactured out of biocompatible metals and/or plastics.
  • FIG. 11 depicts a front view of a minus two cut depth guide box. This specific guide cut box need not necessarily have a cut guide cover 300 because it can use the roof of the tibial guide housing as a portion of the cut guide cover. In contrast, FIGS. 8A and 8B depict guide cut covers 300 that are designed in portions of the boxes. FIG. 11 further depicts two pin holes 320 that may be incorporated into the design of each tibial guide cut box. The tibial guide box may have pin holes 320 to help secure the box to the tibia. The pin holes may be designed large enough to accommodate a drill and to insert pins for visual guidance or location on the tibia. Also, additional pin holes may be designed into the guide box or guide housing. As previously noted, the “−2” guide box still can guide 310 the reciprocating saw or the oscillating saw by using the roof the tibial guide housing as a guide boundary. This guided slot 310 may be manufactured to specific dimensions to accommodate standard oscillating or reciprocating bone saws. In another embodiment, the guided slot 310 may also incorporate various angles, shaped and/or configurations, including different features to accommodate different varus/valgus (see FIG. 13) and/or anterior/posterior angles (see FIG. 12C) designed within the box.
  • FIGS. 12A and 12B depict a human knee with exemplary varus, neutral and valgus orientations, and various exemplary angles that a cut guided slot 30 or other tool may incorporate to accommodate and/or correct such orientations. In a varus knee, this line passes medial to the knee and a moment arm is created, which increases force across the medial compartment of the knee. In a valgus knee, the load-bearing axis (LBA) passes lateral to the knee, and the resulting moment arm increases force across the lateral compartment of the knee. In various embodiments, specifically designed tibial guide boxes that incorporate patient specific varus/valgus angles could be employed to reduce and/or correct such deformities, desirably reducing abnormal forces in the artificial knee joint, and returning the LBA to a normal functioning knee at its neutral position. FIG. 13A depicts various cut guide slot angulations that, when used in conjunction with a tibial guide box as described herein, can generally be employed to alter the resulting varus or valgus angles of one or more tibial cut planes. FIG. 13B depicts one alternative embodiment of a guide tool that incorporates an adjustment mechanism 322 that can be employed and adjusted to alter the cut angle. The adjustment mechanism could include a screw thread or other mechanism that allows a wide variation in the cut plane angle, which could include larger wedges to accommodate more severe varus/valgus angles. In various embodiment, the guide tool with the adjustable mechanism could be sized and configured to fit into the standard guided slots 1301-1304 as shown in FIG. 13A.
  • In at least one alternative embodiment, various features of guide tools and surgical methods described herein can be used in conjunction with a wide variety of tibial trays, wedges and/or tibial inserts to accommodate the correction and/or reduction of extremely high varus and/or valgus angles in a given patient's anatomy. In such embodiments, a surgeon may choose to resect the medial and lateral portions of the tibia to differing levels and/or depths, as shown in FIG. 24, in which a medial tibial section has been resected using a substantially horizontal cut 2401, and a lateral tibial section has been resected at a relatively steep angle, desirably removing a minimal amount of bone from the lateral side (see FIG. 25). After resection and creation of the respective tibial cut planes, the surgeon can choose to employ various combinations of tibial trays (e.g., separate medial and lateral trays) and/or inserts (e.g., dual inserts) to desirably create and/or replicate medial and lateral tibial condylar surfaces that improve and/or correct the varus and/or valgus angles of one or both of the patient's knee joints. In the embodiment shown in FIG. 26, a substantially thicker lateral insert 2601 (as compared to the thickness of the medial insert 2602) has been employed to create a desired resulting angulation for the knee implant. In one alternative embodiment, a single tibial tray may be used with a single or multiple tibial cuts, with a one or two piece insert having differing thickness on each of the medial/lateral portions in a similar manner.
  • In addition, valgus deformities may lead to patients with deformed or hypoplastic lateral condyles. In fact, hypoplastic lateral condyles may be present in 20% of patients that require knee replacement. An implant or tibial guide assemblies or other tools may be engineered from patient-specific data to address this deformity, by correcting or optimizing the lateral condyle, can include one or more expanded curvatures in one or more locations on the lateral condyle, relative to the patient's corresponding uncut medial or lateral condyle. For example, an implant may be engineered to include additional material on the outer, joint-facing surface of the implant component's lateral condyle. The expanded curvature(s) and/or material on the outside of the condyle can be used to design a material savings on the inside of the corresponding section of the implant component, for example, by maintaining a minimum material/implant thickness from the outside (joint-facing surface) to the inside (bone-facing surface) of the implant component. In this way, by adding material to the external contour of the implant component and maintaining a minimum material thickness of the implant component, bone preservation can be maximized. Specifically, with more material on the joint-facing surface of the implant and less material on the inner, bone-facing surface of the implant, the resection cuts are made closer to the surface of the bone. Accordingly, this approach uses the patient-adapted design of the implant component to both correct a condyle shape abnormality, such as a lateral condyle abnormality, such as hypoplasia, and to maximize bone preservation. In another embodiment, the deformity may be corrected by tailoring the tibial resection guide assemblies to have a unique medial and lateral assembly that will correct the angles. For example, the lateral condyle tibial resection guide may require smaller/lesser resection depth cut, different varus/valgus angle, or posterior/anterior angle than the medial tibial resection guide. Other tools and methods may be similarly designed to correct the deformity.
  • In an alternative embodiment, the tibial guide assembly, the joint implants, and other tools may be preoperatively designed and/or selected to correct the misalignment and/or obtain a proper mechanical alignment of a patient's limb. For example, based on the difference between the patient's misalignment and the proper mechanical axis, a knee implant and implant procedure can be designed and/or selected preoperatively to include implant and/or resection dimensions that substantially realign the patient's limb to correct or improve a patient's alignment deformity. In addition, the process can include selecting and/or designing one or more surgical tools (e.g., guide tools or cutting jigs) to direct the clinician in resectioning the patient's bone in accordance with the preoperatively designed and/or selected resection dimensions.
  • In certain embodiments, the degree of deformity correction that is necessary to establish a desired limb alignment is calculated based on information from the alignment of a virtual model of a patient's limb. The virtual model can be generated from patient-specific data, such 2D and/or 3D imaging data of the patient's limb. The deformity correction can correct varus or valgus alignment or antecurvatum or recurvatum alignment. In a preferred embodiment, the desired deformity correction returns the leg to normal alignment, for example, a zero degree biomechanical axis in the coronal plane and absence of genu antecurvatum and recurvatum in the sagittal plane.
  • The preoperatively designed and/or selected implant or implant component, resection dimension(s), and/or cutting guides, templates or cutting jig(s) can be employed to correct a patient's alignment deformity in a single plane, for example, in the coronal plane or in the sagittal plane, in multiple planes, for example, in the coronal and sagittal planes, and/or in three dimensions. For example, where a virtual model of a patient's misaligned lower limb is used to virtually correct the limb, a deformity correction can be achieved by designing and/or selecting one or more of a resection dimension, an implant component thickness, and an implant component surface curvature that adjusts the mechanical axis or axes into alignment in one or more planes. In various embodiments, a lower limb misalignment can be corrected in a knee replacement by designing or selecting one or more of a femoral resection dimension, a femoral implant component thickness, a femoral implant component surface curvature, a tibial resection dimension, a tibial implant component thickness, a tibial implant component insert thickness, and a tibial implant component surface curvature (or various combinations thereof) to adjust the femoral mechanical axis and tibial mechanical axis into alignment in the coronal plane.
  • FIG. 27 illustrates a coronal plane of the knee with exemplary resection cuts that can be used to correct lower limb alignment in a knee replacement. As shown in the figure, the selected and/or designed resection cuts can include different cuts on different portions of a patient's biological structure. For example, resection cut facets on medial and lateral femoral condyles can be non-coplanar and parallel 1602, 1602′, angled 1604, 1604′, or non-coplanar and non-parallel, for example, cuts 1602 and 1604′ or cuts 1602′and 1604. Similar, resection cut facets on medial and lateral portions of the tibia can be non-coplanar and parallel 1606, 1606′, angled and parallel 1608, 1608′, or non-coplanar and non-parallel, for example, cuts 1606 and 1608′ or cuts 1606′ and 1608. Non-coplanar facets of resection cuts can include a step-cut 1610 to connect the non-coplanar resection facet surfaces. Selected and/or designed resection dimensions can be achieved using one or more selected and/or designed guide tools (e.g., cutting jigs) that guide resectioning (e.g., guide cutting tools) of the patient's biological structure to yield the predetermined resection surface dimensions (e.g., resection surface(s), angles, and/or orientation(s)). In certain embodiments, the bone-facing surfaces of the implant components can be designed to include one or more features (e.g., bone cut surface areas, perimeters, angles, and/or orientations) that substantially match one or more of the resection cut or cut facets that were predetermined to enhance the patient's alignment. As shown in FIG. 27, certain combinations of resection cuts can aid in bringing the femoral mechanical axis 1612 and tibial mechanical axis 1614 into alignment 1616.
  • Alternatively, or in addition, certain implant features, such as different implant thicknesses and/or surface curvatures across two different sides of the plane in which the mechanical axes 1612, 1614 are misaligned also can aid correcting limb alignment. For example, FIG. 28 depicts a coronal plane of the knee shown with femoral implant medial and lateral condyles 1702, 1702′ having different thicknesses to help to correct limb alignment. These features can be used in combination with any of the resection cut 1704, 1704′ described above and/or in combination with different thicknesses on the corresponding portions of the tibial component. As described more fully below, independent tibial implant components and/or independent tibial inserts on medial and lateral sides of the tibial implant component can be used enhance alignment at a patient's knee joint. An implant component can include constant yet different thicknesses in two or more portions of the implant (e.g., a constant medial condyle thickness different from a constant lateral condyle thickness), a gradually increasing thickness across the implant or a portion of the implant, or a combination of constant and gradually increasing thicknesses.
  • FIG. 29 illustrates a virtual model of a patient's limb that is misaligned in the sagittal plane, for example, a genu antecurvatum deformity, and the virtually corrected limb. More particularly, FIG. 29 shows the misaligned limb in the sagittal plane 3001 and the coronal plane 3002, and the corrected limb in sagittal plane 3003 and coronal plane 3004. The deformity correction can be achieved using a similar design approach as described above for a coronal plane deformity. However, the selection and/or design of one or more femoral resection dimensions, femoral implant component thicknesses, femoral implant component surface curvatures, tibial resection dimensions, tibial implant component thicknesses, tibial implant component insert thicknesses, and/or tibial implant component surface curvatures can be used to adjust the femoral mechanical axis and tibial mechanical axis into alignment in the sagittal plane (e.g., by altering corresponding features across the sagittal plane, for example, by altering anterior features relative to corresponding posterior features). Alignment deformities in both the coronal and sagittal planes, or in multiple planes about the mechanical axes, can be addressed by designing and/or selecting one or more resection dimensions, one or more implant component thicknesses, and/or one or more implant component surface curvatures.
  • In certain embodiments, an implant component that is preoperatively designed and/or selected to correct a patient's alignment also can be designed or selected to include additional patient-specific or patient-engineered features. For example, the bone-facing surface of an implant or implant component can be designed and/or selected to substantially negatively-match the resected bone surface. If resection dimensions are angled, for example, in the coronal plane and/or in the sagittal plane, various features of the implant component, for example, the component bone-facing surface, can be designed and/or selected based on an angled orientation into the joint rather than on a perpendicular orientation. For example, the perimeter of the tibial implant or implant component that substantially positively-matches the perimeter of the patient's cut tibial bone has a different shape depending on the angle of the cut. Similarly, with a femoral implant component, the depth or angle of the distal condyle resection on the medial and/or lateral condyle can be designed and/or selected to correct a patient alignment deformity. However, in so doing, one or more of the implant or implant component condyle width, length, curvature, and angle of impact against the tibia can be altered. Accordingly in certain embodiments, one or more implant or implant component features, such as implant perimeter, condyle length, condyle width, curvature, and angle is designed and/or selected relative to a sloping and/or non-coplanar resection cut.
  • FIG. 14 depicts a back view of a tibial guide box. The back view shows a width 340 of the slot and a height 330 of the slot. The width of the guided slot 340 may also be specifically designed to control the width of the cut as required by the surgeon—it may be wider, it may be shorter or a specific cut shape. In various embodiments, the width of the preferred embodiment could substantially match the width of the specific implant components that will be placed on the tibia. The height 330 of the guided slot will desirably determine the cut depth of the tibial plateau, with the angulation of the slot similarly controlling and/or influencing the angulation of the cut plane (in both medial/lateral angulation as well as anterior/posterior angulation). In various embodiments, the cut plane height and/or angulation(s) may be patient specific as determined by each patient's anatomy, or some or all cut plane features could be “dialed in” using an adjustable mechanism as seen in FIG. 13B.
  • FIG. 15 depicts a side view of a tibial guide box. The side view highlights the detent 350 which can used in various embodiments to lock into the detent receiver holes 230 (see FIG. 5). One or more of these detents can be placed on opposing sides of the box to ensure that an audible sound is heard (or other indication is provided) when locking the tibial guide box into the tibial guide housing.
  • FIGS. 16A-16C depict an isometric view, a front view, and a back view of the tibial guide assembly, respectively. These shaded views show how an exemplary tibial guide box can fit within a corresponding tibial guide housing.
  • Improved Methods of Using a Tibial Guide Assembly
  • One preferred embodiment of the various teachings herein includes providing an apparatus and method for preparing the tibia for a tibial implant that significantly reduces the number of parts and component tools required to resect and prepare a tibial plateau, and desirably reduces the number of steps typically required in such a procedure. One of the many advantages of various embodiments described herein is that the assembly and associated components are modular, which allows the tibial housing to remain attached on the tibia, while multiple tibial guide boxes with varying cut depth dimensions, varus/valgus angles, and posterior/anterior cut angles can be utilized by the surgeon to make additional cuts and/or increase or modify the depth of cuts.
  • FIG. 17A depicts a top view of an uncut patient tibia 400 that has been modeled using a computer system. In this embodiment, there are three potential planes that the surgeon will be considering, which are the medial 370, the center 380 and the lateral 390 planes. Each of these planes has varying bone morphology that is shown by the articular ridges 360, and each plane may require a tibial guide assembly that attaches to the bone using the natural conforming bone anatomy adjacent thereto. The natural placement and positioning of an implant using the natural conforming bone anatomy will desirably provide the surgeon with a more secure tool to prepare and cut the tibial plateau.
  • FIG. 17B shows an anterior view of a patient's uncut tibia and the medial and lateral intercondylar tubercle 410. This figure highlights the complex anatomy of a tibia and the varying exemplary cut planes 420 that a surgeon may desire in creating one or more desired cut planes to accept a tibial implant. The varying cut planes 420 show that the surgeon has already predetermined the cut depth, the varus/valgus angle, and the posterior/anterior angles that he or she wishes to make to prepare the tibia. However, once the surgeon has made one or more surgical access incisions and is able to directly visualize and/or observe the knee anatomy and the preparation required to cut the knee, the surgeon has the flexibility to adjust the predetermined cuts by using varying modular guide cut boxes with different cut depths and/or angles. For example, in one embodiment, if the surgeon wishes to cut less bone than originally predetermined, then the surgeon may choose the “Minus 2” tibial guide box instead of the “zero” guide box. This will allow the surgeon to cut less bone than what was originally predetermined.
  • FIG. 18 depicts an anterior view of a tibial guide housing 25 positioned on the medial side of the tibia 400 and showing the reference arms with a patient specific contact surface 90 conforming to the natural anatomy of the bone; the resection guide is aligned primarily to match natural landmarks of the articular surface or other features of the tibial plateau. Once a desired natural conforming position is found, the surgeon may score the articular surface to reach the subchondral bone to ensure proper positioning and placement, if desired. After the position has been determined, the surgeon may choose to determine the patient's mechanical axis with reference to their anatomical axis with an alignment rod or equivalent systems. For example, an alignment rod may be attached to a tibia guide housing 170 as shown in FIG. 19 and can extend to the patient's ankle to be parallel to the tibia's mechanical axis. The alignment rod system may be designed to be telescoped between its two connection points, which assists with the alignment of the patient's mechanical axis and provides preferred positioning that may be adjustable. The use of the alignment rod may, in various embodiments, provide the surgeon with an additional confirmation that the housing 170 is aligned with the correct patient-specific anatomy.
  • Once the alignment system is positioned, the tibial guide housing may be attached to the tibia using known methods and tools available in the OR, or provided in an instrument kit; and such attachment may include securement using a pin arrangement, e.g., by fitting one or more pins through appropriate openings in the tibial guide box (see FIG. 6) and/or the tibial guide housing. In various embodiments, after attaching the tibial guide housing to the anterior surface of the bone, a predetermined or adjusted tibial guide box may be inserted into the tibial guide housing. A reciprocating saw or similar cutting device can be fitted through a cutting guide slot in the tibial guide box and reciprocated or otherwise manipulated or employed to cut across the medial side 450 (see FIG. 20) tibial plateau with a predetermined or adjusted cutting plane 430. If the surgeon is satisfied with the cut, the entire tibial guide assembly may be removed and, if desired, the guide pins may be left in place and the steps may be repeated for the lateral side of the tibia using another lateral side tibial guide assembly. FIG. 20 depicts the top view of the tibial guide assembly and exemplary medial 450 and lateral 460 cut planes.
  • FIG. 22 depicts a side view of a tibial guide assembly after both medial 450 and lateral 460 sides of the tibia have been resected; this figure highlights the uniformity of the entire cut tibial surface 460 when using the tibial guide assembly and captured/guided cut boxes. In various alternative embodiments, the medial and lateral cut planes may not be parallel, offset, and/or coplanar. At this time, the surgeon can remove the tibial guide assembly leaving the positioning pins for both the medial and lateral cuts in place to conduct a trialing and fixation of the knee prosthesis. The trialing may involve fitting the prosthesis components to the prepared surfaces and checking the patient's range of motion, alignment, and the ligament stability that will approximate the range of motion of a natural knee. In at least one exemplary embodiment, the proximal tibial end can preferably be first fitted with a variety of templates and measuring tools and be followed by fitting the femur portion of the prosthesis to the prepared distal femur end.
  • If various trialing steps do not optimally fit the trial implant prosthesis, additional cuts on the tibia may be made. For example, if the knee is tight in extension and flexion, the tibia may be further resected as necessary using the tibial guide assembly and adjusting the tibial guide boxes 480 (in FIG. 23) to preferred cut depth and angles. If the knee is tight in extension and balanced in flexion, the distal femur may be cut. Lastly, if the knee is tight in flexion and balanced in extension, it is possible that the surgeon may choose a tibial guide cut box to add posterior/anterior slope to the already cut tibial surface. However, many other combinations may be found to optimally adjust the cut depth 470 of the tibia resected surface using the guide boxes and combinations of guide boxes with varying dimensions or angles.
  • Once the proper alignment and balancing of the trial implants have been performed, the surgeon may secure the actual knee joint components and patella prosthesis to the patella. The result can be tested and thereafter the incision into the knee can be appropriately closed and dressed.

Claims (16)

What is claimed is:
1. A system for preparing a tibial plateau of a tibia of a patient, the system comprising:
a tibial guide housing, the tibial guide housing comprising:
a top side generally opposite a bottom side a front side generally opposite a back side, and a medial side generally opposite a lateral side;
a first reference arm having a patient-specific contact surface configured to conform to a first tibial surface, the first tibial surface being a first portion of a superior surface of the tibia;
a second reference arm having a patient-specific contact surface configured to conform to a second tibial surface, the second tibial surface being a second portion of the superior surface of the tibia,
wherein the back side includes a patient-specific contact surface configured to conform to a third tibial surface, the third tibial surface being a portion of an anterior surface of the tibia,
wherein the patient-specific contact surface of the back side has a medial-most edge and a lateral-most edge;
wherein the tibial guide housing defines a void in at least a portion of the top side, the void sized and positioned such that when the tibial guide housing is positioned on the tibia and the patient-specific contact surfaces of each of the first reference arm, the second reference arm, and the back side are in conforming engagement with the first, second, and third tibial surfaces, respectively, a surgeon is able to view a portion of a peripheral edge of the anterior surface of the tibia, the portion of the peripheral edge of the anterior surface of the tibia having a medial-lateral position disposed between the medial-most edge and the lateral-most edge of the patient-specific surface of the back side; and
one or more tibial cutting guide boxes, each of the one or more tibial cutting guide boxes comprising:
a guide aperture configured to guide a surgical cutting tool; and
wherein at least one of the one or more tibial cutting guide boxes is configured for releasable securement within the tibial guide housing.
2. The system of claim 1, wherein the void comprises a viewing window configured to permit viewing of the portion of the peripheral edge of the anterior surface of the tibia from the top side of the tibial guide housing during positioning of the tibial guide housing on the tibia.
3. The system of claim 1, including at least two tibial cutting guide boxes, wherein each of the at least two tibial cutting guide boxes has a different predetermined cut depth.
4. The system of claim 3, wherein each of the at least two tibial cutting guide boxes are configured for releasable securement within the tibial guide housing.
5. The system of claim 1, wherein the patient-specific contact surface of at least one reference arm is configured to engage an articular surface of the tibial.
6. The system of claim 1, wherein the patient-specific contact surface of at least one reference arm is configured to engage subchondral bone surface.
7. The system of claim 1, wherein the top side includes a patient-specific alignment indicator configured to provide visual assistance for alignment of the tibial guide housing with respect to the tibia.
8. The system of claim 7, wherein the alignment indicator comprises one or more channels formed in the top surface of the tibial guide housing.
9. The system of claim 7, wherein the alignment indicator is positioned and shaped based, at least in part, on patient-specific information to substantially match a portion of a perimeter of the tibia when the tibial guide housing is positioned on the tibia in a predetermined alignment.
10. The system of claim 1, further comprising an alignment leg, the alignment leg configured for attachment to a tibial alignment rod.
11. The system of claim 1, wherein the tibial guide housing further comprises a third reference arm having a patient-specific contact surface configured to conform to a fourth tibial surface.
12. A method of preparing a tibial plateau of a tibia of a knee joint of a patient for implantation of at least one prosthesis, the method comprising:
providing a tibial guide housing, the tibial guide housing including:
a top side generally opposite a bottom side a front side generally opposite a back side, and a medial side generally opposite a lateral side;
a first reference arm having a patient-specific contact surface configured to conform to a first tibial surface, the first tibial surface being a first portion of a superior surface of the tibia;
a second reference arm having a patient-specific contact surface configured to conform to a second tibial surface, the second tibial surface being a second portion of the superior surface of the tibia,
wherein the back side includes a patient-specific contact surface configured to conform to a third tibial surface, the third tibial surface being a portion of an anterior surface of the tibia,
wherein the patient-specific contact surface of the back side has a medial-most edge and a lateral-most edge;
wherein the tibial guide housing defines a void in at least a portion of the top side, the void sized and positioned such that when the tibial guide housing is positioned on the tibia and the patient-specific contact surfaces of each of the first reference arm, the second reference arm, and the back side are in conforming engagement with the first, second, and third tibial surfaces, respectively, a surgeon is able to view a portion of a peripheral edge of the anterior surface of the tibia, the portion of the peripheral edge of the anterior surface of the tibia having a medial-lateral position disposed between the medial-most edge and the lateral-most edge of the patient-specific surface of the back side;
providing a first tibial cutting guide box, the first tibial cutting guide box including a guide aperture configured to guide a surgical cutting tool;
releasably securing the first tibial cutting guide box within an opening of the tibial guide housing;
positioning the tibial guide housing on the tibia such that each of the patient-specific contact surfaces of the tibial guide housing achieves a conforming fit with the tibia; and
inserting a cutting device through the guide aperture and cutting a portion of the tibia along the cutting plane.
13. The method of claim 12, further comprising removing the first tibial cutting guide box from the tibial guide housing.
14. The method of claim 12, further comprising selecting the first tibial cutting guide box from a plurality of tibial cutting guide boxes, each including a guide aperture having a different predetermined cut depth.
15. The method of claim 12, further comprising:
positioning a trial prosthesis component on a cut surface of the tibia; and
checking a state of the knee joint, wherein the state of the knee joint is selected from the group consisting of ligament stability of the knee joint, range of motion of the knee joint, alignment of the knee joint, and combinations thereof.
16. The method of claim 15, further comprising:
selecting a second tibial cutting guide box from a plurality of tibial cutting guide boxes, each including a guide aperture having a different predetermined cut depth, based, at least in part, on the checking a state of the knee joint; and
releasably securing the second tibial cutting guide box within the opening of the tibial guide housing.
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US201261635270P 2012-04-18 2012-04-18
US13/865,958 US9486226B2 (en) 2012-04-18 2013-04-18 Tibial guides, tools, and techniques for resecting the tibial plateau
US15/330,828 US20170056024A1 (en) 2012-04-18 2016-11-07 Tibial Guides, Tools, and Techniques for Resecting the Tibial Plateau
US16/671,571 US10966732B2 (en) 2012-04-18 2019-11-01 Tibial guides, tools and techniques for resecting the tibial plateau
US17/222,530 US20210219989A1 (en) 2012-04-18 2021-04-05 Tibial Guides, Tools and Techniques for Resecting the Tibial Plateau

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Families Citing this family (64)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7534263B2 (en) 2001-05-25 2009-05-19 Conformis, Inc. Surgical tools facilitating increased accuracy, speed and simplicity in performing joint arthroplasty
US8083745B2 (en) 2001-05-25 2011-12-27 Conformis, Inc. Surgical tools for arthroplasty
US7468075B2 (en) 2001-05-25 2008-12-23 Conformis, Inc. Methods and compositions for articular repair
CA2447694A1 (en) 2001-05-25 2002-12-05 Imaging Therapeutics, Inc. Methods and compositions for articular resurfacing
US8439926B2 (en) 2001-05-25 2013-05-14 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools
TWI584796B (en) 2006-02-06 2017-06-01 康福美斯公司 Patient selectable joint arthroplasty devices and surgical tools
US8623026B2 (en) 2006-02-06 2014-01-07 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools incorporating anatomical relief
WO2008157412A2 (en) 2007-06-13 2008-12-24 Conformis, Inc. Surgical cutting guide
CA2945266C (en) 2007-08-17 2021-11-02 Zimmer, Inc. Implant design analysis suite
FR2932674B1 (en) 2008-06-20 2011-11-18 Tornier Sa METHOD FOR MODELING A GLENOIDAL SURFACE OF AN OMOPLATE, DEVICE FOR IMPLANTING A GLENOIDAL COMPONENT OF A SHOULDER PROSTHESIS, AND METHOD FOR MANUFACTURING SUCH COMPOUND
US9078755B2 (en) 2009-02-25 2015-07-14 Zimmer, Inc. Ethnic-specific orthopaedic implants and custom cutting jigs
CA2753485C (en) 2009-02-25 2014-01-14 Mohamed Rashwan Mahfouz Customized orthopaedic implants and related methods
SG10201401326SA (en) 2009-04-16 2014-10-30 Conformis Inc Patient-specific joint arthroplasty devices for ligament repair
EP2493396B1 (en) 2009-10-29 2016-11-23 Zimmer, Inc. Patient-specific mill guide
EP2632383B1 (en) 2010-10-29 2022-02-23 The Cleveland Clinic Foundation System for assisting with arrangement of a stock instrument with respect to a patient tissue
US9615840B2 (en) 2010-10-29 2017-04-11 The Cleveland Clinic Foundation System and method for association of a guiding aid with a patient tissue
WO2012058355A1 (en) 2010-10-29 2012-05-03 The Cleveland Clinic Foundation System of preoperative planning and provision of patient-specific surgical aids
CA2815654C (en) 2010-10-29 2019-02-19 The Cleveland Clinic Foundation System and method for assisting with attachment of a stock implant to a patient tissue
US8956364B2 (en) * 2011-04-29 2015-02-17 Biomet Manufacturing, Llc Patient-specific partial knee guides and other instruments
US10130378B2 (en) 2011-05-11 2018-11-20 The Cleveland Clinic Foundation Generating patient specific instruments for use as surgical aids
EP3141196B1 (en) 2011-05-19 2020-04-08 The Cleveland Clinic Foundation Apparatus for providing a reference indication to a patient tissue
US10325065B2 (en) 2012-01-24 2019-06-18 Zimmer, Inc. Method and system for creating patient-specific instrumentation for chondral graft transfer
CA3072704C (en) 2012-03-28 2022-03-22 Orthosoft Ulc Glenoid implant surgery using patient specific instrumentation
US9486226B2 (en) 2012-04-18 2016-11-08 Conformis, Inc. Tibial guides, tools, and techniques for resecting the tibial plateau
US10327786B2 (en) 2012-05-24 2019-06-25 Zimmer, Inc. Patient-specific instrumentation and method for articular joint repair
US9675471B2 (en) 2012-06-11 2017-06-13 Conformis, Inc. Devices, techniques and methods for assessing joint spacing, balancing soft tissues and obtaining desired kinematics for joint implant components
WO2014015432A1 (en) 2012-07-23 2014-01-30 Orthosoft Inc. Patient-specific instrumentation for implant revision surgery
WO2014015433A1 (en) 2012-07-24 2014-01-30 Orthosoft Inc. Patient specific instrumentation with mems in surgery
WO2014197989A1 (en) 2013-06-11 2014-12-18 Orthosoft Inc. Computer assisted subchondral injection
JP6635515B2 (en) 2013-06-11 2020-01-29 オーソソフト アンリミティド ライアビリティ コーポレイション Acetabular cup prosthesis positioning instrument and method
EP3035872B1 (en) 2013-08-21 2018-03-07 Laboratoires Bodycad Inc. Bone resection guide and method of manufacture
WO2015024122A1 (en) 2013-08-21 2015-02-26 Laboratoires Bodycad Inc. Anatomically adapted orthopedic implant and method of manufacturing same
US9993256B2 (en) * 2013-09-20 2018-06-12 Hospital For Special Surgery Customized unicompartmental tibial cutting guide
CN105705117B (en) 2013-09-25 2018-07-24 捷迈有限公司 Patient's particular instrument for orthomorphia(PSI)And the system and method for using X-ray making it
EP3417816B1 (en) 2013-11-13 2024-05-29 Tornier Patient specific glenoid guide for attachment to a scapula of a patient
KR101553311B1 (en) * 2013-12-24 2015-09-15 주식회사 코렌텍 Patient specific surgical instrument for tibia
EP3096693A4 (en) * 2014-01-23 2017-10-25 ConforMIS, Inc. Spring-fit surgical guides
WO2015168415A1 (en) 2014-04-30 2015-11-05 Zimmer, Inc. Acetabular cup impacting using patient-specific instrumentation
CN106456192B (en) * 2014-06-03 2019-08-20 捷迈有限公司 The special cutting cube of patient and its manufacturing method
JP6662862B2 (en) 2014-09-24 2020-03-11 デピュイ・アイルランド・アンリミテッド・カンパニーDepuy Ireland Unlimited Company Surgical planning and methods
CA2974837A1 (en) 2015-02-02 2016-08-11 Orthosoft Inc. Acetabulum rim digitizer device and method
CA2979424C (en) 2015-03-25 2023-11-07 Orthosoft Inc. Method and system for assisting implant placement in thin bones such as scapula
WO2016191725A1 (en) 2015-05-28 2016-12-01 Zimmer, Inc. Patient-specific bone grafting system and method
WO2017008032A1 (en) 2015-07-08 2017-01-12 Zimmer, Inc. Patient-specific instrumentation for implant revision surgery
CA2999178A1 (en) 2015-09-30 2017-04-06 Zimmer, Inc. Patient-specific instrumentation for patellar resurfacing surgery and method
US10624764B2 (en) 2015-11-26 2020-04-21 Orthosoft Ulc System and method for the registration of an anatomical feature
WO2017105815A1 (en) 2015-12-16 2017-06-22 Tornier, Inc. Patient specific instruments and methods for joint prosthesis
ITUA20161716A1 (en) 2016-03-16 2017-09-16 Medacta Int Sa BONE RESECTION INSTRUMENT
USD808524S1 (en) 2016-11-29 2018-01-23 Laboratoires Bodycad Inc. Femoral implant
US10874404B2 (en) 2016-12-30 2020-12-29 DePuy Synthes Products, Inc. Customized patient-specific surgical instruments and method
US10251654B2 (en) * 2016-12-30 2019-04-09 DePuy Synthes Products, Inc. Customized patient-specific surgical instrument with metallic insert
US11399851B2 (en) 2017-07-11 2022-08-02 Howmedica Osteonics Corp. Guides and instruments for improving accuracy of glenoid implant placement
US10959742B2 (en) 2017-07-11 2021-03-30 Tornier, Inc. Patient specific humeral cutting guides
EP3498197A3 (en) 2017-12-12 2019-10-16 Orthosoft, Inc. Patient-specific instrumentation for implant revision surgery
US10631878B2 (en) 2018-01-24 2020-04-28 DePuy Synthes Products, Inc. Customized patient-specific anterior-posterior chamfer block and method
US10537343B2 (en) 2018-01-24 2020-01-21 DePuy Synthes Products, Inc. Low-profile metallic customized patient-specific orthopaedic surgical instruments
US10716581B2 (en) 2018-01-24 2020-07-21 DePuy Synthes Products, Inc. Method of designing and manufacturing low-profile customized patient-specific orthopaedic surgical instruments
US20210369292A1 (en) * 2018-10-01 2021-12-02 Smith & Nephew, Inc. Auxiliary marking plate for rapid-manufactured parts
USD920515S1 (en) 2020-01-08 2021-05-25 Restor3D, Inc. Spinal implant
USD920517S1 (en) 2020-01-08 2021-05-25 Restor3D, Inc. Osteotomy wedge
US11324525B1 (en) 2021-06-30 2022-05-10 Kinos Medical Inc. Surgical alignment guide assembly for total ankle replacement and method of using the same
ES2956517A1 (en) * 2022-05-17 2023-12-22 Rivas Ignacio Durall Precision procedure for guided cutting of the tibia with a cannulated saw, curved or circular cannulated saw blade or bur and other accessories (Machine-translation by Google Translate, not legally binding)
US11806028B1 (en) 2022-10-04 2023-11-07 Restor3D, Inc. Surgical guides and processes for producing and using the same
US11960266B1 (en) 2023-08-23 2024-04-16 Restor3D, Inc. Patient-specific medical devices and additive manufacturing processes for producing the same

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060122618A1 (en) * 2004-03-08 2006-06-08 Zimmer Technology, Inc. Navigated cut guide locator
US20090131942A1 (en) * 2007-09-30 2009-05-21 Chris Aker Femoral Tibial Customized Patient-Specific Orthopaedic Surgical Instrumentation
US8608748B2 (en) * 2006-02-27 2013-12-17 Biomet Manufacturing, Llc Patient specific guides
US8979855B2 (en) * 2007-09-30 2015-03-17 DePuy Synthes Products, Inc. Customized patient-specific bone cutting blocks
US9138247B2 (en) * 2012-05-04 2015-09-22 DePuy Synthes Products, Inc. Customized patient-specific orthopaedic pin guides

Family Cites Families (480)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3314420A (en) 1961-10-23 1967-04-18 Haeger Potteries Inc Prosthetic parts and methods of making the same
US3605123A (en) 1969-04-29 1971-09-20 Melpar Inc Bone implant
CA962806A (en) 1970-06-04 1975-02-18 Ontario Research Foundation Surgical prosthetic device
US3938198A (en) 1970-08-04 1976-02-17 Cutter Laboratories, Inc. Hip joint prosthesis
US3798679A (en) 1971-07-09 1974-03-26 Ewald Frederick Joint prostheses
US3808606A (en) 1972-02-22 1974-05-07 R Tronzo Bone implant with porous exterior surface
US3789832A (en) 1972-03-17 1974-02-05 R Damadian Apparatus and method for detecting cancer in tissue
US4058486A (en) 1972-12-29 1977-11-15 Battelle Memorial Institute Producing X-rays
DE2306552B2 (en) 1973-02-10 1975-07-03 Friedrichsfeld Gmbh Steinzeug- Und Kunststoffwerke, 6800 Mannheim Joint endoprosthesis
US3869731A (en) 1973-02-14 1975-03-11 Univ California Articulated two-part prosthesis replacing the knee joint
US3843975A (en) 1973-04-09 1974-10-29 R Tronzo Prosthesis for femoral shaft
US4085466A (en) 1974-11-18 1978-04-25 National Research Development Corporation Prosthetic joint device
US4055862A (en) 1976-01-23 1977-11-01 Zimmer Usa, Inc. Human body implant of graphitic carbon fiber reinforced ultra-high molecular weight polyethylene
US4052753A (en) 1976-08-02 1977-10-11 Dedo Richard G Knee spacer and method of reforming sliding body surfaces
US4098626A (en) 1976-11-15 1978-07-04 Thiokol Corporation Hydroxy terminated polybutadiene based polyurethane bound propellant grains
US4203444A (en) 1977-11-07 1980-05-20 Dyonics, Inc. Surgical instrument suitable for closed surgery such as of the knee
US4213816A (en) 1978-06-12 1980-07-22 Glasrock Products, Inc. Method for bonding porous coating to rigid structural member
US4340978A (en) 1979-07-02 1982-07-27 Biomedical Engineering Corp. New Jersey meniscal bearing knee replacement
US4368040A (en) 1981-06-01 1983-01-11 Ipco Corporation Dental impression tray for forming a dental prosthesis in situ
US4502161A (en) 1981-09-21 1985-03-05 Wall W H Prosthetic meniscus for the repair of joints
US4646729A (en) 1982-02-18 1987-03-03 Howmedica, Inc. Prosthetic knee implantation
US4436684A (en) 1982-06-03 1984-03-13 Contour Med Partners, Ltd. Method of forming implantable prostheses for reconstructive surgery
US4501266A (en) 1983-03-04 1985-02-26 Biomet, Inc. Knee distraction device
US4502483A (en) 1983-03-09 1985-03-05 Dow Corning Corporation Method and apparatus for shaping a distal femoral surface
US4474177A (en) 1983-03-09 1984-10-02 Wright Manufacturing Company Method and apparatus for shaping a distal femoral surface
US4601290A (en) 1983-10-11 1986-07-22 Cabot Medical Corporation Surgical instrument for cutting body tissue from a body area having a restricted space
DE8406730U1 (en) 1984-03-05 1984-04-26 Waldemar Link (Gmbh & Co), 2000 Hamburg Surgical chisel
US4609551A (en) 1984-03-20 1986-09-02 Arnold Caplan Process of and material for stimulating growth of cartilage and bony tissue at anatomical sites
US4594380A (en) 1985-05-01 1986-06-10 At&T Bell Laboratories Elastomeric controlled release formulation and article comprising same
DE3516743A1 (en) 1985-05-09 1986-11-13 orthoplant Endoprothetik GmbH, 2800 Bremen Endoprosthesis for a femoral head
US4627853A (en) 1985-05-29 1986-12-09 American Hospital Supply Corporation Method of producing prostheses for replacement of articular cartilage and prostheses so produced
US4715860A (en) 1985-08-23 1987-12-29 The Regents Of The University Of California Porous acetabular hip resurfacing
DE3535112A1 (en) 1985-10-02 1987-04-16 Witzel Ulrich TIBI PLATE PART OF A KNEE-KNEE ENDOPROTHESIS
FR2589720A1 (en) 1985-11-14 1987-05-15 Aubaniac Jean KNEE JOINT PROSTHETIC ASSEMBLY
US4721104A (en) 1985-12-02 1988-01-26 Dow Corning Wright Corporation Femoral surface shaping apparatus for posterior-stabilized knee implants
US4936862A (en) 1986-05-30 1990-06-26 Walker Peter S Method of designing and manufacturing a human joint prosthesis
US4759350A (en) 1986-10-17 1988-07-26 Dunn Harold K Instruments for shaping distal femoral and proximal tibial surfaces
US4769040A (en) 1986-11-18 1988-09-06 Queen's University At Kingston Tibial prosthesis
US5041138A (en) 1986-11-20 1991-08-20 Massachusetts Institute Of Technology Neomorphogenesis of cartilage in vivo from cell culture
US5250050A (en) 1987-02-07 1993-10-05 Pfizer Hospital Products Group, Inc. Apparatus for knee prosthesis
US5002547A (en) 1987-02-07 1991-03-26 Pfizer Hospital Products Group, Inc. Apparatus for knee prosthesis
US4841975A (en) 1987-04-15 1989-06-27 Cemax, Inc. Preoperative planning of bone cuts and joint replacement using radiant energy scan imaging
US4846835A (en) 1987-06-15 1989-07-11 Grande Daniel A Technique for healing lesions in cartilage
US5681353A (en) 1987-07-20 1997-10-28 Regen Biologics, Inc. Meniscal augmentation device
US5007934A (en) 1987-07-20 1991-04-16 Regen Corporation Prosthetic meniscus
US4880429A (en) 1987-07-20 1989-11-14 Stone Kevin R Prosthetic meniscus
US5306311A (en) 1987-07-20 1994-04-26 Regen Corporation Prosthetic articular cartilage
US5303148A (en) 1987-11-27 1994-04-12 Picker International, Inc. Voice actuated volume image controller and display controller
GB8802671D0 (en) 1988-02-05 1988-03-02 Goodfellow J W Orthopaedic joint components tools & methods
US5007936A (en) 1988-02-18 1991-04-16 Cemax, Inc. Surgical method for hip joint replacement
JP2784766B2 (en) 1988-03-30 1998-08-06 京セラ株式会社 Artificial knee joint
FR2629339B1 (en) 1988-04-01 1997-09-12 Broc Christian LAYING MATERIAL FOR PARTICULARLY A TIBIAL AND / OR FEMORAL ELEMENT OF A BI-COMPARTMENTAL KNEE JOINT PROSTHESIS
US4979949A (en) 1988-04-26 1990-12-25 The Board Of Regents Of The University Of Washington Robot-aided system for surgery
US4886258A (en) 1988-08-24 1989-12-12 Scott James W Well leg operative support
US5162430A (en) 1988-11-21 1992-11-10 Collagen Corporation Collagen-polymer conjugates
CA2006152C (en) 1988-12-27 1999-03-23 John Edward Slamin Modular knee prosthesis
US5107824A (en) 1989-09-14 1992-04-28 Anodyne, Inc. Anatomically correct knee brace hinge
US5053039A (en) 1989-09-14 1991-10-01 Intermedics Orthopedics Upper tibial osteotomy system
US5122144A (en) 1989-09-26 1992-06-16 Kirschner Medical Corporation Method and instrumentation for unicompartmental total knee arthroplasty
US5234433A (en) 1989-09-26 1993-08-10 Kirschner Medical Corporation Method and instrumentation for unicompartmental total knee arthroplasty
US5059216A (en) 1989-09-29 1991-10-22 Winters Thomas F Knee joint replacement apparatus
US5067964A (en) 1989-12-13 1991-11-26 Stryker Corporation Articular surface repair
EP0528080A1 (en) 1989-12-13 1993-02-24 Stryker Corporation Articular cartilage repair piece
US5171244A (en) 1990-01-08 1992-12-15 Caspari Richard B Methods and apparatus for arthroscopic prosthetic knee replacement
US5129908A (en) 1990-01-23 1992-07-14 Petersen Thomas D Method and instruments for resection of the patella
US5098383A (en) 1990-02-08 1992-03-24 Artifax Ltd. Device for orienting appliances, prostheses, and instrumentation in medical procedures and methods of making same
US5171322A (en) 1990-02-13 1992-12-15 Kenny Charles H Stabilized meniscus prosthesis
US5246530A (en) 1990-04-20 1993-09-21 Dynamet Incorporated Method of producing porous metal surface
US5523843A (en) 1990-07-09 1996-06-04 Canon Kabushiki Kaisha Position detecting system
US5226914A (en) 1990-11-16 1993-07-13 Caplan Arnold I Method for treating connective tissue disorders
US5197985A (en) 1990-11-16 1993-03-30 Caplan Arnold I Method for enhancing the implantation and differentiation of marrow-derived mesenchymal cells
US5206023A (en) 1991-01-31 1993-04-27 Robert F. Shaw Method and compositions for the treatment and repair of defects or lesions in cartilage
US5853746A (en) 1991-01-31 1998-12-29 Robert Francis Shaw Methods and compositions for the treatment and repair of defects or lesions in cartilage or bone using functional barrier
GB9102348D0 (en) 1991-02-04 1991-03-20 Inst Of Orthopaedics The Prosthesis for knee replacement
CA2041532C (en) 1991-04-30 2002-01-01 Hamdy Khalil Urethane sealant having improved sag properties
US5133759A (en) 1991-05-24 1992-07-28 Turner Richard H Asymmetrical femoral condye total knee arthroplasty prosthesis
US5270300A (en) 1991-09-06 1993-12-14 Robert Francis Shaw Methods and compositions for the treatment and repair of defects or lesions in cartilage or bone
GB2261672A (en) 1991-11-18 1993-05-26 Michael Braden The use of biomaterials for tissue repair
US5344459A (en) 1991-12-03 1994-09-06 Swartz Stephen J Arthroscopically implantable prosthesis
US5383939A (en) 1991-12-05 1995-01-24 James; Kelvin B. System for controlling artificial knee joint action in an above knee prosthesis
DE4202717C1 (en) 1991-12-11 1993-06-17 Dietmar Prof. Dr. 3350 Kreiensen De Kubein-Meesenburg
GB9201231D0 (en) 1992-01-21 1992-03-11 Howmedica Tibial element for a replacement knee prosthesis
US5344423A (en) 1992-02-06 1994-09-06 Zimmer, Inc. Apparatus and method for milling bone
US5520695A (en) 1992-02-14 1996-05-28 Johnson & Johnson Professional, Inc. Instruments for use in knee replacement surgery
US5258032A (en) 1992-04-03 1993-11-02 Bertin Kim C Knee prosthesis provisional apparatus and resection guide and method of use in knee replacement surgery
US5503162A (en) 1992-04-21 1996-04-02 Board Of Regents, University Of Texas System Arthroscopic cartilage evaluator and method for using the same
DE4213599A1 (en) 1992-04-24 1993-10-28 Klaus Draenert Prosthetic component and process for its manufacture
US5365996A (en) 1992-06-10 1994-11-22 Amei Technologies Inc. Method and apparatus for making customized fixation devices
DE4219939C2 (en) 1992-06-18 1995-10-19 Klaus Dipl Ing Radermacher Device for aligning, positioning and guiding machining tools, machining or measuring devices for machining a bony structure and method for producing this device
GB9213766D0 (en) 1992-06-29 1992-08-12 Minnesota Mining & Mfg Artificial knee joints
US5370692A (en) 1992-08-14 1994-12-06 Guild Associates, Inc. Rapid, customized bone prosthesis
US5478739A (en) 1992-10-23 1995-12-26 Advanced Tissue Sciences, Inc. Three-dimensional stromal cell and tissue culture system
AU5606194A (en) 1992-11-16 1994-06-08 Wright Medical Technology, Inc. System and method for profiling a patella
US5320102A (en) 1992-11-18 1994-06-14 Ciba-Geigy Corporation Method for diagnosing proteoglycan deficiency in cartilage based on magnetic resonance image (MRI)
EP0598964B1 (en) 1992-11-20 1999-07-07 Sulzer Orthopädie AG Bone cement dispenser body for implant fixation
US5360446A (en) 1992-12-18 1994-11-01 Zimmer, Inc. Interactive prosthesis design system for implantable prosthesis
US5728162A (en) 1993-01-28 1998-03-17 Board Of Regents Of University Of Colorado Asymmetric condylar and trochlear femoral knee component
US5387216A (en) 1993-02-18 1995-02-07 Thornhill; Thomas S. Intramedullary based instrument systems for total knee revision
US6001895A (en) 1993-03-22 1999-12-14 Johnson & Johnson Medical, Inc. Composite surgical material
US5724970A (en) 1993-04-06 1998-03-10 Fonar Corporation Multipositional MRI for kinematic studies of movable joints
CA2126627C (en) 1993-07-06 2005-01-25 Kim C. Bertin Femoral milling instrumentation for use in total knee arthroplasty with optional cutting guide attachment
US5474559A (en) 1993-07-06 1995-12-12 Zimmer, Inc. Femoral milling instrumentation for use in total knee arthroplasty with optional cutting guide attachment
CA2180556C (en) 1994-01-26 2007-08-07 Mark A. Reiley Improved inflatable device for use in surgical protocol relating to fixation of bone
US5437676A (en) 1994-01-27 1995-08-01 Developpement D'implants Orthopediques Et Medicaux Kneecap cutting device for the fitting of a total knee replacement
US5885298A (en) 1994-02-23 1999-03-23 Biomet, Inc. Patellar clamp and reamer with adjustable stop
GB9407153D0 (en) 1994-04-11 1994-06-01 Corin Medical Ltd Unicompartmental knee prosthesis
BE1008372A3 (en) 1994-04-19 1996-04-02 Materialise Nv METHOD FOR MANUFACTURING A perfected MEDICAL MODEL BASED ON DIGITAL IMAGE INFORMATION OF A BODY.
FR2719466B1 (en) 1994-05-04 1997-06-06 Ysebaert Sa Knee prosthesis with movable meniscus.
US5723331A (en) 1994-05-05 1998-03-03 Genzyme Corporation Methods and compositions for the repair of articular cartilage defects in mammals
US5888220A (en) 1994-05-06 1999-03-30 Advanced Bio Surfaces, Inc. Articulating joint repair
US5556429A (en) 1994-05-06 1996-09-17 Advanced Bio Surfaces, Inc. Joint resurfacing system
US5616146A (en) 1994-05-16 1997-04-01 Murray; William M. Method and apparatus for machining bone to fit an orthopedic surgical implant
GB9413607D0 (en) 1994-07-06 1994-08-24 Goodfellow John W Endoprosthetic knee joint device
FR2722392A1 (en) 1994-07-12 1996-01-19 Biomicron APPARATUS FOR RESECTING KNEE CONDYLES FOR PLACING A PROSTHESIS AND METHOD FOR PLACING SUCH AN APPARATUS
US5769899A (en) 1994-08-12 1998-06-23 Matrix Biotechnologies, Inc. Cartilage repair unit
US5632745A (en) 1995-02-07 1997-05-27 R&D Biologicals, Inc. Surgical implantation of cartilage repair unit
US6695848B2 (en) 1994-09-02 2004-02-24 Hudson Surgical Design, Inc. Methods for femoral and tibial resection
US5810827A (en) 1994-09-02 1998-09-22 Hudson Surgical Design, Inc. Method and apparatus for bony material removal
US5597379A (en) 1994-09-02 1997-01-28 Hudson Surgical Design, Inc. Method and apparatus for femoral resection alignment
DE4434539C2 (en) 1994-09-27 1998-06-04 Luis Dr Med Schuster Process for the production of an endoprosthesis as a joint replacement for knee joints
CA2160198C (en) 1994-10-27 2003-12-30 Michael J. Pappas Prosthesis fixturing device
EP0843529B1 (en) 1994-10-28 2002-06-05 LaserSight Technologies, Inc. Multi-camera corneal analysis system
US5578037A (en) 1994-11-14 1996-11-26 Johnson & Johnson Professional, Inc. Surgical guide for femoral resection
US5569260A (en) 1994-12-01 1996-10-29 Petersen; Thomas D. Distal femoral resector guide
US5630820A (en) 1994-12-05 1997-05-20 Sulzer Orthopedics Inc. Surgical bicompartmental tensiometer for revision knee surgery
JP3490520B2 (en) 1994-12-12 2004-01-26 株式会社ニデック Ophthalmic equipment
JP3419931B2 (en) 1994-12-26 2003-06-23 京セラ株式会社 Artificial knee joint
US5540696A (en) 1995-01-06 1996-07-30 Zimmer, Inc. Instrumentation for use in orthopaedic surgery
US6102955A (en) 1995-01-19 2000-08-15 Mendes; David Surgical method, surgical tool and artificial implants for repairing knee joints
US5749874A (en) 1995-02-07 1998-05-12 Matrix Biotechnologies, Inc. Cartilage repair unit and method of assembling same
US5575793A (en) 1995-02-15 1996-11-19 Smith & Nephew Richards Inc. Patella clamp apparatus
US5683397A (en) * 1995-02-15 1997-11-04 Smith & Nephew, Inc. Distal femoral cutting guide apparatus for use in knee joint replacement surgery
US5593450A (en) 1995-02-27 1997-01-14 Johnson & Johnson Professional, Inc. Oval domed shaped patella prosthesis
US5609643A (en) 1995-03-13 1997-03-11 Johnson & Johnson Professional, Inc. Knee joint prosthesis
US5683468A (en) 1995-03-13 1997-11-04 Pappas; Michael J. Mobile bearing total joint replacement
US5906934A (en) 1995-03-14 1999-05-25 Morphogen Pharmaceuticals, Inc. Mesenchymal stem cells for cartilage repair
US5900245A (en) 1996-03-22 1999-05-04 Focal, Inc. Compliant tissue sealants
US5542947A (en) 1995-05-12 1996-08-06 Huwmedica Inc. Slotted patella resection guide and stylus
US6132463A (en) 1995-05-19 2000-10-17 Etex Corporation Cell seeding of ceramic compositions
US6077270A (en) 1995-05-31 2000-06-20 Katz; Lawrence Method and apparatus for locating bone cuts at the distal condylar femur region to receive a femoral prothesis and to coordinate tibial and patellar resection and replacement with femoral resection and replacement
US5776137A (en) 1995-05-31 1998-07-07 Katz; Lawrence Method and apparatus for locating bone cuts at the distal condylar femur region to receive a knee prosthesis
US6046379A (en) 1995-06-07 2000-04-04 Stone; Kevin R. Meniscal xenografts
US5865849A (en) 1995-06-07 1999-02-02 Crosscart, Inc. Meniscal heterografts
DK0836380T3 (en) 1995-06-12 2002-04-22 Yeda Res & Dev FGF9 as a specific ligand for FGFR3
US5613970A (en) 1995-07-06 1997-03-25 Zimmer, Inc. Orthopaedic instrumentation assembly having an offset bushing
US5649929A (en) 1995-07-10 1997-07-22 Callaway; George Hadley Knee joint flexion-gap distraction device
US5968051A (en) 1995-07-27 1999-10-19 Johnson & Johnson Professional, Inc. Patella clamping device
US5671741A (en) 1995-08-04 1997-09-30 The Regents Of The University Of California Magnetic resonance imaging technique for tissue characterization
FR2737967B1 (en) 1995-08-24 1997-11-28 Benoist Girard & Cie KNEE PROSTHESIS CORRECTION APPARATUS
US5601563A (en) 1995-08-25 1997-02-11 Zimmer, Inc. Orthopaedic milling template with attachable cutting guide
US20020143402A1 (en) 1995-09-04 2002-10-03 Limber Ltd. Hip joint prostheses
US5658291A (en) 1995-09-29 1997-08-19 Johnson & Johnson Medical, Inc. Median ridge referencing patella cutting system
US5871546A (en) 1995-09-29 1999-02-16 Johnson & Johnson Professional, Inc. Femoral component condyle design for knee prosthesis
GB2306653B (en) 1995-10-23 1999-12-15 Finsbury Surgical tool
US5716361A (en) 1995-11-02 1998-02-10 Masini; Michael A. Bone cutting guides for use in the implantation of prosthetic joint components
US5682886A (en) 1995-12-26 1997-11-04 Musculographics Inc Computer-assisted surgical system
US6200606B1 (en) 1996-01-16 2001-03-13 Depuy Orthopaedics, Inc. Isolation of precursor cells from hematopoietic and nonhematopoietic tissues and their use in vivo bone and cartilage regeneration
CA2168283A1 (en) 1996-01-29 1997-07-30 John Michael Lee Preparation of biological material for implants
JP2965137B2 (en) 1996-02-02 1999-10-18 瑞穂医科工業株式会社 Artificial knee joint
US5842477A (en) 1996-02-21 1998-12-01 Advanced Tissue Sciences, Inc. Method for repairing cartilage
US6352558B1 (en) 1996-02-22 2002-03-05 Ed. Geistlich Soehne Ag Fuer Chemische Industrie Method for promoting regeneration of surface cartilage in a damage joint
WO1997030648A1 (en) * 1996-02-23 1997-08-28 Midwest Orthopedic Research Foundation Device and method for distal femur cutting and prothesis measuring
HU219444B (en) 1996-02-26 2001-04-28 Gábor Krakovits Sliding surface for knee-joint prothesis
US5683466A (en) 1996-03-26 1997-11-04 Vitale; Glenn C. Joint surface replacement system
CA2201057C (en) 1996-03-29 2002-01-01 Kenji Morimoto A method of processing a sectional image of a sample bone including a cortical bone portion and a cancellous bone portion
US6299905B1 (en) 1996-04-16 2001-10-09 Depuy Orthopaedics, Inc. Bioerodable polymeric adhesives for tissue repair
GB9611059D0 (en) 1996-05-28 1996-07-31 Howmedica Tibial element for a replacement knee prosthesis
EP0907721A1 (en) 1996-05-28 1999-04-14 Brown University Research Foundation Hyaluronan based biodegradable scaffolds for tissue repair
GB9611074D0 (en) 1996-05-28 1996-07-31 Howmedica Surgical apparatus
US5779710A (en) 1996-06-21 1998-07-14 Matsen, Iii; Frederick A. Joint replacement method and apparatus
US6126690A (en) 1996-07-03 2000-10-03 The Trustees Of Columbia University In The City Of New York Anatomically correct prosthesis and method and apparatus for manufacturing prosthesis
US5964808A (en) 1996-07-11 1999-10-12 Wright Medical Technology, Inc. Knee prosthesis
US5681316A (en) 1996-08-22 1997-10-28 Johnson & Johnson Professional, Inc. Tibial resection guide
US5989269A (en) 1996-08-30 1999-11-23 Vts Holdings L.L.C. Method, instruments and kit for autologous transplantation
US6569172B2 (en) 1996-08-30 2003-05-27 Verigen Transplantation Service International (Vtsi) Method, instruments, and kit for autologous transplantation
SE9603540D0 (en) 1996-09-27 1996-09-27 Ingvar Eriksson Orthopedic device
US5830216A (en) 1996-10-30 1998-11-03 Bristol-Myers Squibb Company Apparatus and method for knee implantation
DE19646891A1 (en) 1996-11-13 1998-05-14 Kubein Meesenburg Dietmar Artificial joint, especially an endoprosthesis to replace natural joints
EP0873145A2 (en) 1996-11-15 1998-10-28 Advanced Bio Surfaces, Inc. Biomaterial system for in situ tissue repair
WO1998025550A1 (en) 1996-12-09 1998-06-18 Groupe Contrôle Dedienne Gcd S.A. Complete knee joint prosthesis
US6989115B2 (en) 1996-12-20 2006-01-24 Z Corporation Method and apparatus for prototyping a three-dimensional object
US7534263B2 (en) 2001-05-25 2009-05-19 Conformis, Inc. Surgical tools facilitating increased accuracy, speed and simplicity in performing joint arthroplasty
US9603711B2 (en) 2001-05-25 2017-03-28 Conformis, Inc. Patient-adapted and improved articular implants, designs and related guide tools
US7468075B2 (en) 2001-05-25 2008-12-23 Conformis, Inc. Methods and compositions for articular repair
US8882847B2 (en) 2001-05-25 2014-11-11 Conformis, Inc. Patient selectable knee joint arthroplasty devices
US7618451B2 (en) 2001-05-25 2009-11-17 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools facilitating increased accuracy, speed and simplicity in performing total and partial joint arthroplasty
US8617242B2 (en) 2001-05-25 2013-12-31 Conformis, Inc. Implant device and method for manufacture
US8083745B2 (en) 2001-05-25 2011-12-27 Conformis, Inc. Surgical tools for arthroplasty
US8545569B2 (en) 2001-05-25 2013-10-01 Conformis, Inc. Patient selectable knee arthroplasty devices
GB9700508D0 (en) 1997-01-11 1997-02-26 Smith & Nephew Hydrogels
US5866165A (en) 1997-01-15 1999-02-02 Orquest, Inc. Collagen-polysaccharide matrix for bone and cartilage repair
WO1998032384A1 (en) 1997-01-28 1998-07-30 New York Society For The Relief Of The Ruptured And Crippled Maintaining The Hospital For Special Surgery Method and apparatus for femoral resection
US6281195B1 (en) 1997-02-07 2001-08-28 Stryker Corporation Matrix-free osteogenic devices, implants and methods of use thereof
US6146385A (en) 1997-02-11 2000-11-14 Smith & Nephew, Inc. Repairing cartilage
US5880976A (en) 1997-02-21 1999-03-09 Carnegie Mellon University Apparatus and method for facilitating the implantation of artificial components in joints
US6205411B1 (en) 1997-02-21 2001-03-20 Carnegie Mellon University Computer-assisted surgery planner and intra-operative guidance system
US6110209A (en) 1997-08-07 2000-08-29 Stone; Kevin R. Method and paste for articular cartilage transplantation
DE69714035T2 (en) 1997-08-14 2003-03-06 Sulzer Innotec Ag, Winterthur Composition and device for repairing cartilage tissue in vivo consisting of nanocapsules with osteoinductive and / or chondroinductive factors
US6039764A (en) 1997-08-18 2000-03-21 Arch Development Corporation Prosthetic knee with adjusted center of internal/external rotation
CA2300817A1 (en) 1997-08-19 1999-02-25 John D. Mendlein Ultrasonic transmission films and devices, particularly for hygienic transducer surfaces
JPH11178837A (en) 1997-10-06 1999-07-06 General Electric Co <Ge> Reference structure constitution system and reference structure assembly
FR2769826B1 (en) 1997-10-21 1999-12-03 Aesculap Sa KNEE PROSTHESIS COMPRISING A TIBIAL THICKNESS
US6161080A (en) 1997-11-17 2000-12-12 The Trustees Of Columbia University In The City Of New York Three dimensional multibody modeling of anatomical joints
US6344043B1 (en) 1997-11-18 2002-02-05 Michael J. Pappas Anterior-posterior femoral resection guide with set of detachable collets
US6082364A (en) 1997-12-15 2000-07-04 Musculoskeletal Development Enterprises, Llc Pluripotential bone marrow cell line and methods of using the same
EP1043960B1 (en) 1997-12-18 2003-09-03 Technique d'Usage Sinlab Inc. Method of manufacturing a dental implant superstructure
US5916220A (en) 1998-02-02 1999-06-29 Medidea, Llc Bone cutting guide and method to accommodate different-sized implants
EP0943297B1 (en) 1998-02-11 2000-03-08 PLUS Endoprothetik AG Femoral part for a hip joint prosthesis
WO1999040864A1 (en) 1998-02-12 1999-08-19 Midwest Orthopaedic Research Foundation Tibial resection guide
DE19807603A1 (en) 1998-02-17 1999-08-19 Krehl Inlet for knee joint endoprosthesis adjusts flexible to radius of femur
US6057927A (en) 1998-02-25 2000-05-02 American Iron And Steel Institute Laser-ultrasound spectroscopy apparatus and method with detection of shear resonances for measuring anisotropy, thickness, and other properties
AU3097999A (en) 1998-03-18 1999-10-11 University Of Pittsburgh Chitosan-based composite materials containing glycosaminoglycan for cartilage repair
US6219571B1 (en) 1998-04-06 2001-04-17 Board Of Trustees Of The Leland Stanford Junior University Magnetic resonance imaging using driven equilibrium fourier transform
US5882929A (en) 1998-04-07 1999-03-16 Tissue Engineering, Inc. Methods and apparatus for the conditioning of cartilage replacement tissue
US5997582A (en) 1998-05-01 1999-12-07 Weiss; James M. Hip replacement methods and apparatus
US6090144A (en) 1998-05-12 2000-07-18 Letot; Patrick Synthetic knee system
US6023495A (en) 1998-05-15 2000-02-08 International Business Machines Corporation System and method for acquiring three-dimensional data subject to practical constraints by integrating CT slice data and CT scout images
US6007537A (en) 1998-06-15 1999-12-28 Sulzer Orthopedics Inc. Nested cutting block
US6010509A (en) 1998-07-01 2000-01-04 The Dana Center For Orthopaedic Implants Patella resection drill and prosthesis implantation device
US6056756A (en) 1998-08-11 2000-05-02 Johnson & Johnson Professional, Inc. Femoral tensing and sizing device
CN1323228A (en) 1998-08-14 2001-11-21 维里根国际移植服务(Vtsi)股份公司 Methods instruments and materials for chondrocyte cell transplantation
US6132468A (en) 1998-09-10 2000-10-17 Mansmann; Kevin A. Arthroscopic replacement of cartilage using flexible inflatable envelopes
US6530956B1 (en) 1998-09-10 2003-03-11 Kevin A. Mansmann Resorbable scaffolds to promote cartilage regeneration
US9289153B2 (en) 1998-09-14 2016-03-22 The Board Of Trustees Of The Leland Stanford Junior University Joint and cartilage diagnosis, assessment and modeling
US7239908B1 (en) 1998-09-14 2007-07-03 The Board Of Trustees Of The Leland Stanford Junior University Assessing the condition of a joint and devising treatment
ATE439806T1 (en) 1998-09-14 2009-09-15 Univ Leland Stanford Junior DETERMINING THE CONDITION OF A JOINT AND PREVENTING DAMAGE
US6443991B1 (en) 1998-09-21 2002-09-03 Depuy Orthopaedics, Inc. Posterior stabilized mobile bearing knee
DE69940641D1 (en) 1998-10-02 2009-05-07 Synthes Gmbh Ffe
US6063091A (en) 1998-10-13 2000-05-16 Stryker Technologies Corporation Methods and tools for tibial intermedullary revision surgery and associated tibial components
US6328765B1 (en) 1998-12-03 2001-12-11 Gore Enterprise Holdings, Inc. Methods and articles for regenerating living tissue
US6096043A (en) 1998-12-18 2000-08-01 Depuy Orthopaedics, Inc. Epicondylar axis alignment-femoral positioning drill guide
US6106529A (en) 1998-12-18 2000-08-22 Johnson & Johnson Professional, Inc. Epicondylar axis referencing drill guide
US6214052B1 (en) 1999-01-19 2001-04-10 Sulzer Orthopedics Inc. Tibial component with a reversible, adjustable stem
US6156069A (en) 1999-02-04 2000-12-05 Amstutz; Harlan C. Precision hip joint replacement method
US6285902B1 (en) 1999-02-10 2001-09-04 Surgical Insights, Inc. Computer assisted targeting device for use in orthopaedic surgery
EP1161201A4 (en) 1999-02-16 2006-07-19 Zimmer Orthobiologics Inc Device and method for regeneration and repair of cartilage lesions
US6120541A (en) 1999-03-23 2000-09-19 Johnson; Lanny L. Apparatus for use in grafting articular cartilage
EP1867348B1 (en) 1999-03-25 2012-05-16 Metabolix, Inc. Medical devices and applications of polyhydroxyalkanoate polymers
US6558421B1 (en) 2000-09-19 2003-05-06 Barry M. Fell Surgically implantable knee prosthesis
AU771892B2 (en) 1999-04-02 2004-04-08 Barry M. Fell Surgically implantable knee prosthesis
US6206927B1 (en) 1999-04-02 2001-03-27 Barry M. Fell Surgically implantable knee prothesis
US6866684B2 (en) 1999-05-10 2005-03-15 Barry M. Fell Surgically implantable knee prosthesis having different tibial and femoral surface profiles
US6911044B2 (en) 1999-05-10 2005-06-28 Barry M. Fell Surgically implantable knee prosthesis having medially shifted tibial surface
US6855165B2 (en) 1999-05-10 2005-02-15 Barry M. Fell Surgically implantable knee prosthesis having enlarged femoral surface
US6893463B2 (en) 1999-05-10 2005-05-17 Barry M. Fell Surgically implantable knee prosthesis having two-piece keyed components
US6966928B2 (en) 1999-05-10 2005-11-22 Fell Barry M Surgically implantable knee prosthesis having keels
US6923831B2 (en) 1999-05-10 2005-08-02 Barry M. Fell Surgically implantable knee prosthesis having attachment apertures
DE19922279A1 (en) 1999-05-11 2000-11-16 Friedrich Schiller Uni Jena Bu Procedure for generating patient-specific implants
US6251143B1 (en) 1999-06-04 2001-06-26 Depuy Orthopaedics, Inc. Cartilage repair unit
US6203546B1 (en) 1999-07-27 2001-03-20 Macmahon Edward B Method and apparatus for medial tibial osteotomy
DE19936682C1 (en) 1999-08-04 2001-05-10 Luis Schuster Process for the production of an endoprosthesis as a joint replacement for knee joints
GB9918884D0 (en) 1999-08-10 1999-10-13 Novarticulate Bv Method and apparatus for delivering cement to bones
US6322588B1 (en) 1999-08-17 2001-11-27 St. Jude Medical, Inc. Medical devices with metal/polymer composites
US6429013B1 (en) 1999-08-19 2002-08-06 Artecel Science, Inc. Use of adipose tissue-derived stromal cells for chondrocyte differentiation and cartilage repair
FR2798671A1 (en) 1999-09-16 2001-03-23 Univ Paris Curie CHONDROCYTE COMPOSITIONS, PREPARATION AND USES
US6322563B1 (en) 1999-09-17 2001-11-27 Genzyme Corporation Small tissue and membrane fixation apparatus and methods for use thereof
US6673116B2 (en) 1999-10-22 2004-01-06 Mark A. Reiley Intramedullary guidance systems and methods for installing ankle replacement prostheses
WO2001032079A2 (en) 1999-11-01 2001-05-10 Arthrovision, Inc. Evaluating disease progression using magnetic resonance imaging
US20030173695A1 (en) 1999-11-12 2003-09-18 Therics, Inc. Rapid prototyping and manufacturing process
WO2001035968A1 (en) 1999-11-19 2001-05-25 Children's Medical Center Corporation Methods for inducing chondrogenesis and producing de novo cartilage in vitro
US6623963B1 (en) 1999-12-20 2003-09-23 Verigen Ag Cellular matrix
US6702821B2 (en) 2000-01-14 2004-03-09 The Bonutti 2003 Trust A Instrumentation for minimally invasive joint replacement and methods for using same
US7104996B2 (en) 2000-01-14 2006-09-12 Marctec. Llc Method of performing surgery
US6770078B2 (en) 2000-01-14 2004-08-03 Peter M. Bonutti Movable knee implant and methods therefor
US7635390B1 (en) 2000-01-14 2009-12-22 Marctec, Llc Joint replacement component having a modular articulating surface
US6508821B1 (en) 2000-01-28 2003-01-21 Depuy Orthopaedics, Inc. Soft tissue repair material fixation apparatus and method
US6382028B1 (en) 2000-02-23 2002-05-07 Massachusetts Institute Of Technology Ultrasonic defect detection system
US6371958B1 (en) 2000-03-02 2002-04-16 Ethicon, Inc. Scaffold fixation device for use in articular cartilage repair
US6332894B1 (en) 2000-03-07 2001-12-25 Zimmer, Inc. Polymer filled spinal fusion cage
EP3000416A3 (en) 2000-03-10 2016-08-17 Smith & Nephew, Inc. Apparatus for use in arthroplasty on a knee joint
WO2001068800A1 (en) 2000-03-11 2001-09-20 The Trustees Of Columbia University In The City Of New York Bioreactor for generating functional cartilaginous tissue
US6626945B2 (en) 2000-03-14 2003-09-30 Chondrosite, Llc Cartilage repair plug
US6712856B1 (en) 2000-03-17 2004-03-30 Kinamed, Inc. Custom replacement device for resurfacing a femur and method of making the same
GB0007392D0 (en) 2000-03-27 2000-05-17 Benoist Girard & Cie Prosthetic femoral component
US6772026B2 (en) 2000-04-05 2004-08-03 Therics, Inc. System and method for rapidly customizing design, manufacture and/or selection of biomedical devices
US20020007294A1 (en) 2000-04-05 2002-01-17 Bradbury Thomas J. System and method for rapidly customizing a design and remotely manufacturing biomedical devices using a computer system
US6375658B1 (en) 2000-04-28 2002-04-23 Smith & Nephew, Inc. Cartilage grafting
EP2062541B1 (en) 2000-05-01 2018-07-11 ArthroSurface, Inc. System for joint resurface repair
US6679917B2 (en) 2000-05-01 2004-01-20 Arthrosurface, Incorporated System and method for joint resurface repair
US6520964B2 (en) 2000-05-01 2003-02-18 Std Manufacturing, Inc. System and method for joint resurface repair
US6373250B1 (en) 2000-05-19 2002-04-16 Ramot University Authority For Applied Research And Industrial Development Ltd. Method of magnetic resonance imaging
GB0015430D0 (en) 2000-06-24 2000-08-16 Victrex Mfg Ltd Bio-compatible polymeric materials
GB0015424D0 (en) 2000-06-24 2000-08-16 Victrex Mfg Ltd Bio-compatible polymeric materials
GB0015433D0 (en) 2000-06-24 2000-08-16 Victrex Mfg Ltd Bio-compatible polymeric materials
US6296646B1 (en) 2000-06-29 2001-10-02 Richard V. Williamson Instruments and methods for use in performing knee surgery
US6478799B1 (en) 2000-06-29 2002-11-12 Richard V. Williamson Instruments and methods for use in performing knee surgery
US6479996B1 (en) 2000-07-10 2002-11-12 Koninklijke Philips Electronics Magnetic resonance imaging of several volumes
DK177997B1 (en) 2000-07-19 2015-02-23 Ed Geistlich Söhne Ag Für Chemische Ind Bone material and collagen combination for healing of damaged joints
CA2420898A1 (en) 2000-08-28 2002-03-07 Advanced Bio Surfaces, Inc. Method for mammalian joint resurfacing
US7467892B2 (en) 2000-08-29 2008-12-23 Imaging Therapeutics, Inc. Calibration devices and methods of use thereof
US7050534B2 (en) 2000-08-29 2006-05-23 Imaging Therapeutics, Inc. Methods and devices for quantitative analysis of x-ray images
US6904123B2 (en) 2000-08-29 2005-06-07 Imaging Therapeutics, Inc. Methods and devices for quantitative analysis of x-ray images
CN1310622C (en) 2000-08-31 2007-04-18 内用假肢股份公司 Method and device for determining a load axis of an extremity
AU2001296873A1 (en) 2000-09-14 2002-03-26 Leland Stanford Junior University Technique for manipulating medical images
DE60136474D1 (en) 2000-09-14 2008-12-18 Univ R ASSESSMENT OF THE CONDITION OF A JOINT AND LOSS OF CARTEL TISSUE
ATE426357T1 (en) 2000-09-14 2009-04-15 Univ Leland Stanford Junior ASSESSING THE CONDITION OF A JOINT AND PLANNING TREATMENT
JP2002102236A (en) 2000-10-02 2002-04-09 Koseki Ika Kk Drill guide for patella
CA2426784A1 (en) 2000-10-25 2002-05-02 Sdgi Holdings, Inc. Self-forming orthopedic implants
NZ525435A (en) 2000-10-31 2004-06-25 Depuy Acromed Inc Mineralized collagen-polysaccharide matrix for bone and cartilage repair
US6510334B1 (en) 2000-11-14 2003-01-21 Luis Schuster Method of producing an endoprosthesis as a joint substitute for a knee joint
US6786930B2 (en) 2000-12-04 2004-09-07 Spineco, Inc. Molded surgical implant and method
US6494914B2 (en) 2000-12-05 2002-12-17 Biomet, Inc. Unicondylar femoral prosthesis and instruments
US20020072821A1 (en) 2000-12-11 2002-06-13 Baker Gregg S. Parametric input to a design and production system
US6503280B2 (en) 2000-12-26 2003-01-07 John A. Repicci Prosthetic knee and method of inserting
US6589281B2 (en) 2001-01-16 2003-07-08 Edward R. Hyde, Jr. Transosseous core approach and instrumentation for joint replacement and repair
FR2819714B1 (en) 2001-01-19 2004-02-06 Frederic Fortin INTERVERTEBRAL DISC PROSTHESIS AND ITS IMPLEMENTATION METHOD
WO2002062249A1 (en) 2001-02-07 2002-08-15 Synthes Ag Chur Method for establishing a three-dimensional representation of bone x-ray images
US6575986B2 (en) 2001-02-26 2003-06-10 Ethicon, Inc. Scaffold fixation device for use in articular cartilage repair
US6743232B2 (en) 2001-02-26 2004-06-01 David W. Overaker Tissue scaffold anchor for cartilage repair
US6632235B2 (en) 2001-04-19 2003-10-14 Synthes (U.S.A.) Inflatable device and method for reducing fractures in bone and in treating the spine
EP1252870A1 (en) 2001-04-25 2002-10-30 Waldemar Link (GmbH &amp; Co.) Knee prosthesis with a bending hinge
US6444222B1 (en) 2001-05-08 2002-09-03 Verigen Transplantation Services International Ag Reinforced matrices
US20080140212A1 (en) 2001-05-15 2008-06-12 Robert Metzger Elongated femoral component
US8439926B2 (en) 2001-05-25 2013-05-14 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools
US20130211531A1 (en) 2001-05-25 2013-08-15 Conformis, Inc. Patient-adapted and improved articular implants, designs and related guide tools
US20190038298A1 (en) 2001-05-25 2019-02-07 Conformis, Inc. Patient Selectable Joint Arthroplasty Devices and Surgical Tools
CA2447694A1 (en) 2001-05-25 2002-12-05 Imaging Therapeutics, Inc. Methods and compositions for articular resurfacing
US6554838B2 (en) 2001-05-31 2003-04-29 Howmedica Osteonics Corp. Method and apparatus for implanting a prosthetic device
US6482209B1 (en) 2001-06-14 2002-11-19 Gerard A. Engh Apparatus and method for sculpting the surface of a joint
US6632225B2 (en) 2001-06-20 2003-10-14 Zimmer, Inc. Method and apparatus for resecting a distal femur and a proximal tibia in preparation for implanting a partial knee prosthesis
JP4302515B2 (en) 2001-07-16 2009-07-29 デピュイ・プロダクツ・インコーポレイテッド Stand-alone surgical apparatus and method
DE10297396T5 (en) 2001-11-02 2005-02-10 International Patent Owners (Cayman )Ltd. Apparatus and method for bone surgery
US7141053B2 (en) 2001-11-28 2006-11-28 Wright Medical Technology, Inc. Methods of minimally invasive unicompartmental knee replacement
US7060074B2 (en) 2001-11-28 2006-06-13 Wright Medical Technology, Inc. Instrumentation for minimally invasive unicompartmental knee replacement
AU2002365379A1 (en) 2001-11-28 2003-06-10 Wright Medical Technology, Inc. Knee joint prostheses
AU2002353484A1 (en) 2001-12-04 2003-06-17 Discure Ltd. Cushion bearing implants for load bearing applications
ATE337760T1 (en) 2001-12-21 2006-09-15 Smith & Nephew Inc ROTATING JOINT SYSTEM
CN2519658Y (en) 2001-12-29 2002-11-06 上海复升医疗器械有限公司 Apparatus for installing femur neck protector
US20020106625A1 (en) 2002-02-07 2002-08-08 Hung Clark T. Bioreactor for generating functional cartilaginous tissue
NO20020647A (en) 2002-02-08 2003-07-28 Scandinavian Customized Prosthesis Asa System and procedure for preparation and transfer of specifications for patient-adapted prostheses
US6689139B2 (en) 2002-02-15 2004-02-10 Paul C. Horn Long oblique ulna shortening osteotomy jig
EP2359775B1 (en) 2002-02-20 2012-12-26 Zimmer, Inc. Knee arthroplasty prosthesis
JP2005518240A (en) 2002-02-26 2005-06-23 ネムコムド リミテッド Patellar resection guide
ATE533420T1 (en) 2002-04-30 2011-12-15 Orthosoft Inc CALCULATION OF FEMUR RESECTION DURING KNEE OPERATIONS
US6946001B2 (en) 2003-02-03 2005-09-20 Zimmer Technology, Inc. Mobile bearing unicompartmental knee
US8801720B2 (en) 2002-05-15 2014-08-12 Otismed Corporation Total joint arthroplasty system
US7615081B2 (en) 2002-05-24 2009-11-10 Zimmer, Inc. Femoral components for knee arthroplasty
US7922772B2 (en) 2002-05-24 2011-04-12 Zimmer, Inc. Implants and related methods and apparatus for securing an implant on an articulating surface of an orthopedic joint
US8211113B2 (en) 2002-06-21 2012-07-03 Depuy Products, Inc. Prosthesis cutting guide, cutting tool and method
US6978188B1 (en) 2002-09-30 2005-12-20 Medical Modeling, Llc Method for contouring bone reconstruction plates
EP1555962B1 (en) 2002-10-07 2011-02-09 Conformis, Inc. Minimally invasive joint implant with 3-dimensional geometry matching the articular surfaces
CA2505371A1 (en) 2002-11-07 2004-05-27 Conformis, Inc. Methods for determining meniscal size and shape and for devising treatment
US20040102852A1 (en) 2002-11-22 2004-05-27 Johnson Erin M. Modular knee prosthesis
CN1729484A (en) 2002-12-04 2006-02-01 康复米斯公司 Fusion of multiple imaging planes for isotropic imaging in MRI and quantitative image analysis using isotropic or near-isotropic imaging
US6869447B2 (en) 2002-12-20 2005-03-22 Depuy Products, Inc. Prosthetic knee implant with modular augment
US7542791B2 (en) 2003-01-30 2009-06-02 Medtronic Navigation, Inc. Method and apparatus for preplanning a surgical procedure
US7008430B2 (en) 2003-01-31 2006-03-07 Howmedica Osteonics Corp. Adjustable reamer with tip tracker linkage
US7033397B2 (en) 2003-02-03 2006-04-25 Zimmer Technology, Inc. Mobile bearing unicondylar tibial knee prosthesis
US7309339B2 (en) 2003-02-04 2007-12-18 Howmedica Osteonics Corp. Apparatus for aligning an instrument during a surgical procedure
US6916324B2 (en) 2003-02-04 2005-07-12 Zimmer Technology, Inc. Provisional orthopedic prosthesis for partially resected bone
US20040162561A1 (en) 2003-02-13 2004-08-19 Howmedica Osteonics Corp. Modular patella instrument
US6916341B2 (en) 2003-02-20 2005-07-12 Lindsey R. Rolston Device and method for bicompartmental arthroplasty
DE20303498U1 (en) 2003-02-26 2003-07-03 Aesculap AG & Co. KG, 78532 Tuttlingen Surgical adjusting and holding device for tool guiding arrangement, in particular for performance of operation at femur or tibia
ES2246438T3 (en) 2003-04-25 2006-02-16 Zimmer Gmbh DEVICE FOR THE PREPARATION OF A FEMORAL CONDILO.
WO2004110309A2 (en) 2003-06-11 2004-12-23 Case Western Reserve University Computer-aided-design of skeletal implants
US7104997B2 (en) 2003-06-19 2006-09-12 Lionberger Jr David R Cutting guide apparatus and surgical method for use in knee arthroplasty
AU2003904379A0 (en) 2003-08-18 2003-08-28 David John Wood Two thirds prosthetic arthroplasty
US7905924B2 (en) 2003-09-03 2011-03-15 Ralph Richard White Extracapsular surgical procedure
US8290564B2 (en) 2003-09-19 2012-10-16 Imatx, Inc. Method for bone structure prognosis and simulated bone remodeling
US7799085B2 (en) 2003-11-18 2010-09-21 Depuy Products, Inc. Modular implant system with fully porous coated sleeve
US7282054B2 (en) 2003-12-26 2007-10-16 Zimmer Technology, Inc. Adjustable cut block
US8175683B2 (en) 2003-12-30 2012-05-08 Depuy Products, Inc. System and method of designing and manufacturing customized instrumentation for accurate implantation of prosthesis by utilizing computed tomography data
US7867236B2 (en) 2003-12-30 2011-01-11 Zimmer, Inc. Instruments and methods for preparing a joint articulation surface for an implant
US20050171545A1 (en) 2004-01-30 2005-08-04 Howmedica Osteonics Corp. Knee computer-aided navigation instruments
US7442196B2 (en) 2004-02-06 2008-10-28 Synvasive Technology, Inc. Dynamic knee balancer
US20050192588A1 (en) 2004-02-27 2005-09-01 Garcia Daniel X. Instrumentation and method for prosthetic knee
US7383164B2 (en) 2004-03-05 2008-06-03 Depuy Products, Inc. System and method for designing a physiometric implant system
US8167888B2 (en) 2004-08-06 2012-05-01 Zimmer Technology, Inc. Tibial spacer blocks and femoral cutting guide
US20060069318A1 (en) 2004-09-30 2006-03-30 The Regents Of The University Of California Method for assessment of the structure-function characteristics of structures in a human or animal body
DE102004063977A1 (en) 2004-10-19 2006-06-22 Mathys Ag Bettlach Ligament Tension Device, Cutting Guide and Osteotomy Technique
US20060111722A1 (en) 2004-11-19 2006-05-25 Hacene Bouadi Surgical cutting tool
US7458975B2 (en) 2004-12-21 2008-12-02 Johnson & Johnson Method of replacing an anterior cruciate ligament in the knee
US20060200162A1 (en) 2005-02-21 2006-09-07 Zimmer Technology, Inc. Total knee arthroplasty instruments
US7695477B2 (en) 2005-05-26 2010-04-13 Zimmer, Inc. Milling system and methods for resecting a joint articulation surface
US7983777B2 (en) 2005-08-19 2011-07-19 Mark Melton System for biomedical implant creation and procurement
WO2007041375A2 (en) 2005-09-30 2007-04-12 Conformis, Inc. Joint arthroplasty devices
CA2572095C (en) 2005-12-30 2009-12-08 Howmedica Osteonics Corp. Laser-produced implants
US10034674B2 (en) 2006-02-02 2018-07-31 Steven C Chudik Universal anterior cruciate ligament repair and reconstruction system
US8623026B2 (en) 2006-02-06 2014-01-07 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools incorporating anatomical relief
TWI584796B (en) 2006-02-06 2017-06-01 康福美斯公司 Patient selectable joint arthroplasty devices and surgical tools
US9808262B2 (en) 2006-02-15 2017-11-07 Howmedica Osteonics Corporation Arthroplasty devices and related methods
EP2007291A2 (en) 2006-02-15 2008-12-31 Otismed Corp. Arthroplasty jigs and related methods
US20070233156A1 (en) 2006-02-16 2007-10-04 Robert Metzger Surgical instrument
US8282646B2 (en) * 2006-02-27 2012-10-09 Biomet Manufacturing Corp. Patient specific knee alignment guide and associated method
US9345548B2 (en) 2006-02-27 2016-05-24 Biomet Manufacturing, Llc Patient-specific pre-operative planning
US8377066B2 (en) 2006-02-27 2013-02-19 Biomet Manufacturing Corp. Patient-specific elbow guides and associated methods
US8070752B2 (en) 2006-02-27 2011-12-06 Biomet Manufacturing Corp. Patient specific alignment guide and inter-operative adjustment
US8407067B2 (en) 2007-04-17 2013-03-26 Biomet Manufacturing Corp. Method and apparatus for manufacturing an implant
US20110046735A1 (en) 2006-02-27 2011-02-24 Biomet Manufacturing Corp. Patient-Specific Implants
US8858561B2 (en) 2006-06-09 2014-10-14 Blomet Manufacturing, LLC Patient-specific alignment guide
US8133234B2 (en) 2006-02-27 2012-03-13 Biomet Manufacturing Corp. Patient specific acetabular guide and method
US8241293B2 (en) 2006-02-27 2012-08-14 Biomet Manufacturing Corp. Patient specific high tibia osteotomy
US9907659B2 (en) 2007-04-17 2018-03-06 Biomet Manufacturing, Llc Method and apparatus for manufacturing an implant
US9173661B2 (en) 2006-02-27 2015-11-03 Biomet Manufacturing, Llc Patient specific alignment guide with cutting surface and laser indicator
US20080257363A1 (en) 2007-04-17 2008-10-23 Biomet Manufacturing Corp. Method And Apparatus For Manufacturing An Implant
US9289253B2 (en) 2006-02-27 2016-03-22 Biomet Manufacturing, Llc Patient-specific shoulder guide
US7967868B2 (en) 2007-04-17 2011-06-28 Biomet Manufacturing Corp. Patient-modified implant and associated method
US8591516B2 (en) 2006-02-27 2013-11-26 Biomet Manufacturing, Llc Patient-specific orthopedic instruments
US8864769B2 (en) 2006-02-27 2014-10-21 Biomet Manufacturing, Llc Alignment guides with patient-specific anchoring elements
US8473305B2 (en) 2007-04-17 2013-06-25 Biomet Manufacturing Corp. Method and apparatus for manufacturing an implant
US8298237B2 (en) 2006-06-09 2012-10-30 Biomet Manufacturing Corp. Patient-specific alignment guide for multiple incisions
US20110190899A1 (en) 2006-02-27 2011-08-04 Biomet Manufacturing Corp. Patient-specific augments
US8092465B2 (en) 2006-06-09 2012-01-10 Biomet Manufacturing Corp. Patient specific knee alignment guide and associated method
AU2007227678A1 (en) 2006-03-13 2007-09-27 Mako Surgical Corp. Prosthetic device and system and method for implanting prosthetic device
US7842093B2 (en) 2006-07-18 2010-11-30 Biomet Manufacturing Corp. Method and apparatus for a knee implant
TW200821888A (en) 2006-08-18 2008-05-16 Smith & Amp Nephew Inc Systems and methods for designing, analyzing and using orthopaedic devices
WO2008034101A2 (en) 2006-09-15 2008-03-20 Imaging Therapeutics, Inc. Method and system for providing fracture/no fracture classification
US8460302B2 (en) 2006-12-18 2013-06-11 Otismed Corporation Arthroplasty devices and related methods
US20080194997A1 (en) 2007-02-08 2008-08-14 Rehabilitation Institute Of Chicago System and method for diagnosing and treating patellar maltracking and malalignment
US8014984B2 (en) 2007-03-06 2011-09-06 The Cleveland Clinic Foundation Method and apparatus for preparing for a surgical procedure
WO2008112996A1 (en) 2007-03-14 2008-09-18 Conformis, Inc. Surgical tools for arthroplasty
GB2447702A (en) 2007-03-23 2008-09-24 Univ Leeds Surgical bone cutting template
WO2008157412A2 (en) 2007-06-13 2008-12-24 Conformis, Inc. Surgical cutting guide
GB0712290D0 (en) 2007-06-25 2007-08-01 Depuy Orthopaedie Gmbh Surgical instrument
FR2918554B1 (en) 2007-07-09 2010-06-18 Amplitude VIEWPER OR DRILLING GUIDE FOR LIGAMENTOPLASTY.
CN106214215A (en) 2007-07-11 2016-12-14 史密夫和内修有限公司 For determining the method and apparatus that nail is placed in hip surgery
WO2009012458A1 (en) 2007-07-19 2009-01-22 Trustees Of Boston University Knee brace with expandable members and method of using the same
WO2011106400A1 (en) 2010-02-25 2011-09-01 Depuy Products, Inc. Customized patient-specific tibial cutting blocks
US8357111B2 (en) 2007-09-30 2013-01-22 Depuy Products, Inc. Method and system for designing patient-specific orthopaedic surgical instruments
US8460303B2 (en) 2007-10-25 2013-06-11 Otismed Corporation Arthroplasty systems and devices, and related methods
US10582934B2 (en) 2007-11-27 2020-03-10 Howmedica Osteonics Corporation Generating MRI images usable for the creation of 3D bone models employed to make customized arthroplasty jigs
US8545509B2 (en) 2007-12-18 2013-10-01 Otismed Corporation Arthroplasty system and related methods
US8480679B2 (en) 2008-04-29 2013-07-09 Otismed Corporation Generation of a computerized bone model representative of a pre-degenerated state and useable in the design and manufacture of arthroplasty devices
US8715291B2 (en) 2007-12-18 2014-05-06 Otismed Corporation Arthroplasty system and related methods
US8160345B2 (en) 2008-04-30 2012-04-17 Otismed Corporation System and method for image segmentation in generating computer models of a joint to undergo arthroplasty
US8737700B2 (en) 2007-12-18 2014-05-27 Otismed Corporation Preoperatively planning an arthroplasty procedure and generating a corresponding patient specific arthroplasty resection guide
US8221430B2 (en) 2007-12-18 2012-07-17 Otismed Corporation System and method for manufacturing arthroplasty jigs
GB0803514D0 (en) 2008-02-27 2008-04-02 Depuy Int Ltd Customised surgical apparatus
WO2009111639A1 (en) 2008-03-05 2009-09-11 Conformis, Inc. Patient selectable joint arthroplasty devices and surgical tools
US8377073B2 (en) 2008-04-21 2013-02-19 Ray Wasielewski Method of designing orthopedic implants using in vivo data
US8226658B2 (en) * 2008-05-09 2012-07-24 Depuy Products, Inc. Instrument for guiding resection of a greater tubercle
CN100581490C (en) 2008-06-20 2010-01-20 周一新 Knee-joint prosthesis implantation process, osteotomy module thereof and device thereof
US8617175B2 (en) 2008-12-16 2013-12-31 Otismed Corporation Unicompartmental customized arthroplasty cutting jigs and methods of making the same
US8992538B2 (en) 2008-09-30 2015-03-31 DePuy Synthes Products, Inc. Customized patient-specific acetabular orthopaedic surgical instrument and method of use and fabrication
EP2405865B1 (en) 2009-02-24 2019-04-17 ConforMIS, Inc. Automated systems for manufacturing patient-specific orthopedic implants and instrumentation
WO2010099353A1 (en) 2009-02-25 2010-09-02 Conformis, Inc. Patient-adapted and improved orthopedic implants, designs and related tools
US9078755B2 (en) 2009-02-25 2015-07-14 Zimmer, Inc. Ethnic-specific orthopaedic implants and custom cutting jigs
US8337503B2 (en) 2009-04-13 2012-12-25 George John Lian Custom radiographically designed cutting guides and instruments for use in total ankle replacement surgery
US8475463B2 (en) 2009-04-13 2013-07-02 George J. Lian Systems and instrumentalities for use in total ankle replacement surgery
US8457930B2 (en) 2009-04-15 2013-06-04 James Schroeder Personalized fit and functional designed medical prostheses and surgical instruments and methods for making
SG10201401326SA (en) 2009-04-16 2014-10-30 Conformis Inc Patient-specific joint arthroplasty devices for ligament repair
US8906105B2 (en) 2009-08-11 2014-12-09 Michael D. Ries Systems and methods for mobile bearing prosthetic knee
TWI397397B (en) 2009-10-21 2013-06-01 Univ Chang Gung Method of manufacturing guide device
EP2493396B1 (en) 2009-10-29 2016-11-23 Zimmer, Inc. Patient-specific mill guide
GB201002855D0 (en) 2010-02-19 2010-04-07 Materialise Dental Nv Method and system for achiving subject-specific, three-dimensional information about the geometry of part of the body
WO2011106407A1 (en) 2010-02-25 2011-09-01 Depuy Products, Inc. Method of fabricating customized patient-specific bone cutting blocks
US9066727B2 (en) 2010-03-04 2015-06-30 Materialise Nv Patient-specific computed tomography guides
GB201003921D0 (en) 2010-03-10 2010-04-21 Depuy Orthopaedie Gmbh Orthopaedic instrument
WO2011156755A2 (en) 2010-06-11 2011-12-15 Smith & Nephew, Inc. Patient-matched instruments
WO2012021241A2 (en) 2010-08-12 2012-02-16 Smith & Nephew, Inc. Methods and devices for installing standard and reverse shoulder implants
WO2012021846A2 (en) 2010-08-13 2012-02-16 Smith & Nephew, Inc. Patient-matched acetabular guide
JP2013539379A (en) 2010-08-13 2013-10-24 スミス アンド ネフュー インコーポレーテッド System and method for optimizing parameters of orthopedic procedures
US20120089146A1 (en) 2010-10-06 2012-04-12 Howmedica Osteonics Corp. System and method of bone preparation
US9492183B2 (en) 2010-10-14 2016-11-15 Smith & Nephew, Inc. Patient-matched instrumentation and methods
WO2012058355A1 (en) 2010-10-29 2012-05-03 The Cleveland Clinic Foundation System of preoperative planning and provision of patient-specific surgical aids
WO2012112698A2 (en) 2011-02-15 2012-08-23 Conformis, Inc. Patient-adapted and improved articular implants, procedures and tools to address, assess, correct, modify and/or accommodate anatomical variation and/or asymmetry
US9186154B2 (en) 2011-03-17 2015-11-17 Zimmer, Inc. Patient-specific instruments for total ankle arthroplasty
US8956364B2 (en) 2011-04-29 2015-02-17 Biomet Manufacturing, Llc Patient-specific partial knee guides and other instruments
US8532807B2 (en) 2011-06-06 2013-09-10 Biomet Manufacturing, Llc Pre-operative planning and manufacturing method for orthopedic procedure
EP2717792A2 (en) 2011-06-08 2014-04-16 Howmedica Osteonics Corp. Patient-specific cutting guide for the shoulder
EP2701615B1 (en) 2011-06-13 2015-03-04 Materialise N.V. Patient-specifc partial knee guides
US9084618B2 (en) 2011-06-13 2015-07-21 Biomet Manufacturing, Llc Drill guides for confirming alignment of patient-specific alignment guides
US8641721B2 (en) 2011-06-30 2014-02-04 DePuy Synthes Products, LLC Customized patient-specific orthopaedic pin guides
US8764760B2 (en) 2011-07-01 2014-07-01 Biomet Manufacturing, Llc Patient-specific bone-cutting guidance instruments and methods
US10092419B2 (en) 2011-07-12 2018-10-09 Materialise, Nv Surgical instrument for the positioning of an alignment element
US8597365B2 (en) 2011-08-04 2013-12-03 Biomet Manufacturing, Llc Patient-specific pelvic implants for acetabular reconstruction
US9295497B2 (en) 2011-08-31 2016-03-29 Biomet Manufacturing, Llc Patient-specific sacroiliac and pedicle guides
US20130119579A1 (en) 2011-09-20 2013-05-16 The Cleveland Clinic Foundation Method and system for producing at least one patient-specific surgical aid
US9554910B2 (en) 2011-10-27 2017-01-31 Biomet Manufacturing, Llc Patient-specific glenoid guide and implants
KR20130046337A (en) 2011-10-27 2013-05-07 삼성전자주식회사 Multi-view device and contol method thereof, display apparatus and contol method thereof, and display system
US9451973B2 (en) 2011-10-27 2016-09-27 Biomet Manufacturing, Llc Patient specific glenoid guide
US10960454B2 (en) 2012-02-07 2021-03-30 Biomet Manufacturing, Llc Acetabular prosthesis
US20140188240A1 (en) 2012-02-07 2014-07-03 Conformis, Inc. Methods and devices related to patient-adapted hip joint implants
EP3187151B1 (en) 2012-04-13 2018-12-05 ConforMIS, Inc. Patient adapted joint arthroplasty devices and surgical tools
US9486226B2 (en) 2012-04-18 2016-11-08 Conformis, Inc. Tibial guides, tools, and techniques for resecting the tibial plateau
US10327786B2 (en) 2012-05-24 2019-06-25 Zimmer, Inc. Patient-specific instrumentation and method for articular joint repair
US20140018813A1 (en) 2012-07-15 2014-01-16 Smith & Nephew, Inc. Patient match instrument
WO2014015432A1 (en) 2012-07-23 2014-01-30 Orthosoft Inc. Patient-specific instrumentation for implant revision surgery
US20160045317A1 (en) 2013-03-15 2016-02-18 Conformis, Inc. Kinematic and Parameterized Modeling for Patient-Adapted Implants, Tools, and Surgical Procedures
WO2015112570A1 (en) 2014-01-23 2015-07-30 Conformis, Inc. Skin-referencing surgical guides

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060122618A1 (en) * 2004-03-08 2006-06-08 Zimmer Technology, Inc. Navigated cut guide locator
US8608748B2 (en) * 2006-02-27 2013-12-17 Biomet Manufacturing, Llc Patient specific guides
US20090131942A1 (en) * 2007-09-30 2009-05-21 Chris Aker Femoral Tibial Customized Patient-Specific Orthopaedic Surgical Instrumentation
US8323288B2 (en) * 2007-09-30 2012-12-04 Depuy Products, Inc. Customized patient-specific bone cutting blocks
US8377068B2 (en) * 2007-09-30 2013-02-19 DePuy Synthes Products, LLC. Customized patient-specific instrumentation for use in orthopaedic surgical procedures
US8398645B2 (en) * 2007-09-30 2013-03-19 DePuy Synthes Products, LLC Femoral tibial customized patient-specific orthopaedic surgical instrumentation
US8425523B2 (en) * 2007-09-30 2013-04-23 DePuy Synthes Products, LLC Customized patient-specific instrumentation for use in orthopaedic surgical procedures
US8979855B2 (en) * 2007-09-30 2015-03-17 DePuy Synthes Products, Inc. Customized patient-specific bone cutting blocks
US9138247B2 (en) * 2012-05-04 2015-09-22 DePuy Synthes Products, Inc. Customized patient-specific orthopaedic pin guides

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