EP4072457A1 - Thermal accelerant compositions and methods of use - Google Patents
Thermal accelerant compositions and methods of useInfo
- Publication number
- EP4072457A1 EP4072457A1 EP20899590.2A EP20899590A EP4072457A1 EP 4072457 A1 EP4072457 A1 EP 4072457A1 EP 20899590 A EP20899590 A EP 20899590A EP 4072457 A1 EP4072457 A1 EP 4072457A1
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- European Patent Office
- Prior art keywords
- ablation
- thermal accelerant
- thermal
- accelerant
- tissue
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B18/00—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B18/04—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
- A61B18/06—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating caused by chemical reaction, e.g. moxaburners
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B18/00—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B18/04—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating
- A61B18/12—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by heating by passing a current through the tissue to be heated, e.g. high-frequency current
- A61B18/14—Probes or electrodes therefor
- A61B18/1477—Needle-like probes
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B18/00—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B18/18—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves
- A61B18/1815—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body by applying electromagnetic radiation, e.g. microwaves using microwaves
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B90/00—Instruments, implements or accessories specially adapted for surgery or diagnosis and not covered by any of the groups A61B1/00 - A61B50/00, e.g. for luxation treatment or for protecting wound edges
- A61B90/36—Image-producing devices or illumination devices not otherwise provided for
- A61B90/37—Surgical systems with images on a monitor during operation
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K41/00—Medicinal preparations obtained by treating materials with wave energy or particle radiation ; Therapies using these preparations
- A61K41/0052—Thermotherapy; Hyperthermia; Magnetic induction; Induction heating therapy
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K49/00—Preparations for testing in vivo
- A61K49/04—X-ray contrast preparations
- A61K49/0409—Physical forms of mixtures of two different X-ray contrast-enhancing agents, containing at least one X-ray contrast-enhancing agent which is not a halogenated organic compound
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K49/00—Preparations for testing in vivo
- A61K49/06—Nuclear magnetic resonance [NMR] contrast preparations; Magnetic resonance imaging [MRI] contrast preparations
- A61K49/18—Nuclear magnetic resonance [NMR] contrast preparations; Magnetic resonance imaging [MRI] contrast preparations characterised by a special physical form, e.g. emulsions, microcapsules, liposomes
- A61K49/1803—Semi-solid preparations, e.g. ointments, gels, hydrogels
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K49/00—Preparations for testing in vivo
- A61K49/22—Echographic preparations; Ultrasonic imaging preparations
- A61K49/222—Echographic preparations; Ultrasonic imaging preparations characterised by a special physical form, e.g. emulsions, liposomes
- A61K49/226—Solutes, emulsions, suspensions, dispersions, semi-solid forms, e.g. hydrogels
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N7/00—Ultrasound therapy
- A61N7/02—Localised ultrasound hyperthermia
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- A61B2018/00315—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body for treatment of particular body parts
- A61B2018/00529—Liver
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- A61B2018/00571—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body for achieving a particular surgical effect
- A61B2018/00577—Ablation
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- A61B2018/00571—Surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body for achieving a particular surgical effect
- A61B2018/00613—Irreversible electroporation
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- A61B90/36—Image-producing devices or illumination devices not otherwise provided for
- A61B90/37—Surgical systems with images on a monitor during operation
- A61B2090/374—NMR or MRI
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- A61B90/36—Image-producing devices or illumination devices not otherwise provided for
- A61B90/37—Surgical systems with images on a monitor during operation
- A61B2090/376—Surgical systems with images on a monitor during operation using X-rays, e.g. fluoroscopy
- A61B2090/3762—Surgical systems with images on a monitor during operation using X-rays, e.g. fluoroscopy using computed tomography systems [CT]
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- A61B90/36—Image-producing devices or illumination devices not otherwise provided for
- A61B90/37—Surgical systems with images on a monitor during operation
- A61B2090/378—Surgical systems with images on a monitor during operation using ultrasound
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- A—HUMAN NECESSITIES
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- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B2218/00—Details of surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body
- A61B2218/001—Details of surgical instruments, devices or methods for transferring non-mechanical forms of energy to or from the body having means for irrigation and/or aspiration of substances to and/or from the surgical site
- A61B2218/002—Irrigation
Definitions
- the present invention relates to methods, materials and equipment for hyperthermal tissue ablation, that is, to the application of energy to heat and destroy tissue such as a tumor located in an internal organ, vessel, bone or other site, without surgery.
- tissue ablation a tumor located in an internal organ, vessel, bone or other site
- the instruments used for such ablation are monopolar (MP) radiofrequency antennae; bipolar (BP) radiofrequency electrodes; and microwave antennae. These may be inserted transdermally, or via a catheter sheath to access a treatment site, and each has its characteristic action and actuation parameters.
- microwave ablation may be applied to internal tissue sites using a needle-like antenna carried in a probe or hand piece, and the active antenna may be imaged, for example by CT imaging, to guide placement precisely in relation to a target tissue site.
- the target itself may be, or have been, identified by diagnostic imaging, by the same or another medical imaging modality.
- Such image-guided microwave tumor ablation has been recognized as a safe, minimally invasive and cost-effective cancer treatment for discrete tumors, and may sometimes be a treatment of choice when other factors render surgery dangerous or otherwise inadvisable.
- the microwave antenna may be made anywhere in the body using a simple surgical ablation needle hand piece or commonly available trocar and catheter for placement of the antenna and cable, as appropriate for the intended target site, the effective heating range of a microwave ablation antenna results in an oval- or oblong-shaped ablation region that extends only a relatively small distance around the ablation antenna. Its heating effects may vary, to some extent, depending on the local tissue conditions.
- microwave ablation drops off rapidly in only a few centimeters, and the ablation may be irregular due to either the rate of microwave heat generation at the site, or heat conduction away from the site into adjacent tissue, or variations in tissue conductivity and dielectric constant (which may be different for each patient).
- rate of microwave heat generation at the site or heat conduction away from the site into adjacent tissue, or variations in tissue conductivity and dielectric constant (which may be different for each patient).
- tissue conductivity and dielectric constant which may be different for each patient.
- the incomplete ablation and consequent tumor cell survival and tumor recurrence may occur because some undetected tumor cells lie outside of the effective ablation zone; because local variations of the tissue characteristics result in intrinsically lower heat generation; because surviving tumor cells are in the vicinity of a blood vessel that acted as a 'heat sink' limiting the temperature rise in a portion of the targeted region during the ablation procedure by increasing thermal conduction away from the intended ablation site; or because the drop-off or shadowing in the far field resulted in great variations of effective temperature around the nominal target temperature.
- the effective ablation zone for a microwave needle/antenna is typically an almond- shaped region extending only 2-4 cm from the microwave antenna, as shown in FIG. 1 A, which illustrates a microwave needle/antenna A inserted into a tumor T in a patient's liver L such that actuation heats an ablation zone AZ that covers the center, but not the fringes, of the tumor.
- FIG. IB shows an actual image of a real-life liver tumor that had metastasized from and presented with a left-side colon cancer. Following resection of the colon primary, the patient was treated with 8 cycles of leucovorin, fluorouracil, and oxaliplatin, as well as bevacizumab (Avastin).
- the liver tumor was deemed unresectable owing to concerns about functional liver reserve, so it was treated by microwave ablation of tumors in several segments, of which one is indicated by the thick arrow in FIG. IB.
- the tumor measured 2.7 cm and abutted the left hepatic vein (thin arrow).
- a follow-up Positron-emission tomographic scan image was taken.
- FIG. 1C increased fluorodeoxy glucose activity (thick arrow) was observed in a small region, at a location consistent with the presence of residual tumor adjacent to the left hepatic vein (FIG. 1C, thin arrow). Heat sink was implicated as a possible contributing cause of the residual disease.
- the patient was alive 3 years after initial diagnosis.
- compositions that mitigate or overcome tissue- dependent temperature variations to enable uniform and effective ablation of diverse tissues and organs.
- the methods and systems may introduce a first applicator to a target site in a patient; position a first thermal accelerant to define a nominal ablation zone for the target site, the thermal accelerant comprising a chaotrope; and activate the first applicator to excite particles of the first thermal accelerant for heating the first thermal accelerant to a specific temperature to ablate the target site.
- the method can further apply the first thermal accelerant to a surface of a tissue at a target site to cauterize the target site.
- positioning the first thermal accelerant can further include positioning the accelerant at an outer-boundary of the target site.
- the method can further introduce a second applicator or a second thermal accelerant to the target site, the second applicator and the second thermal accelerant being positioned in a substantially rhombal shape with the first applicator and the first thermal accelerant.
- the first applicator or the second applicator can include an electrode having one or more energy emitting devices thereon.
- the method can further include passing one or more of the first applicator and the first thermal accelerant through the target site under image guidance.
- the first thermal accelerant may coagulate to become integral with the ablated tissue.
- the specific temperature can be between approximately 60 degrees Celsius to approximately 170 degrees Celsius.
- the first thermal accelerant may include material having a high dipole moment that is configured to convert radiofrequency to thermal energy.
- the first thermal accelerant may be positioned to enhance heating by applying electric energy in a far field, peripheral drop-off, or tissue variation region to thereby extend ablation effects to said regions.
- the dipole moment may have a value that ranges from about 7 Debye to about 1,000 Debye.
- the first applicator can emit one or more of microwave energy, radiofrequency energy, and a pulse of energy of electroporation.
- the target site can include one or more of a tumor and a tissue target in a patient.
- the first thermal accelerant may remain substantially stationary within the target site after deposition.
- the first thermal accelerant may be positioned between the first applicator and healthy tissue to prevent healthy tissue from overheating.
- the method can further include positioning the first thermal accelerant between an ablation site and a heat sink to modulate conduction of heat away from the ablation site.
- the method can include delivering the thermal accelerant from the first applicator.
- compositions of thermal accelerant can be used for ablation.
- the composition can include a thermal accelerant having a polymer configured to become gelatinous or solidify at body temperature or above to become relatively immobilized after positioned within the target site, a chaotrope configured to adjust charge distribution within the polymer, and an imaging component configured to allow image-guided verification of the thermal accelerant within a body of a patient.
- the thermal accelerant when exposed to an amount of ablative energy, has values of electrical conductivity and loss factor that are up to 5 times or greater than values of electrical conductivity and loss factor in living tissue when exposed to an equal amount of ablative energy without thermal accelerant
- the viscosity of the thermal accelerant can range from approximately 50 centiPoise to approximately 25,000 centiPoise.
- the chaotrope can be selected from the group consisting of: calcium chloride, cesium chloride, lithium chloride, potassium chloride, rubidium chloride, sodium chloride, sodium citrate, and a combination thereof.
- the cesium chloride may tumble synchronously to the alternating electric field fueled by its intrinsic dipole moment to generate heat.
- the polymer can include one or more of albumin, DNA, RNA, glycoproteins or glycopolymers such as IgA, IgG, or other immunoglobulins.
- FIG. 1 A schematically shows non-overlapping ablation and tumor regions of a prior art microwave hepatic tumor ablation treatment
- FIG. IB shows a metastatic tumor in the liver of a patient and abutting the hepatic vein
- FIG. 1C is a PET scan of that site showing residual tumor growth suggesting that heat sink effect was a contributing cause of the residual disease
- FIG. 2A shows effective rates of temperature increase by microwave heating for different fluids
- FIG. 2B shows effective rates of temperature rise for untreated tissue and for different heat substrate formulations
- FIG. 2C shows small vials of distilled water and three different concentrations of a HS, confirming discemable contrast and detectability under CT imaging;
- FIG. 2D shows a polymer/salt agent undergo liquid-gel -precipitate changes with temperature rise
- FIG. 3 A schematically shows a tumor and placement of antenna and thermal accelerant
- FIG. 3B shows extension of ablation with the placement of FIG. 3 A;
- FIG. 4 shows a liver section and placement of thermal accelerant between a tumor and a blood vessel;
- FIG. 5 shows placement of two antennas and two sites of thermal accelerant for creating an enlarged ablation zone
- FIG. 6A shows an experimental setup used to evaluate heat augmentation of a thermal accelerant
- FIG. 6B is a Time/Temperature chart of heating for different amounts of the accelerant
- FIG. 7 is a chart of an investigational in vivo animal protocol designed to identify effective ablation materials, parameters and operating procedures;
- FIGS. 8 A and 8B illustrate the surface potential of HSA and of BSA, respectively, with areas of positive and negative charge shaded or colored differently;
- FIG. 9 shows the viscosity of BSA as a function of its concentration in mg/mL
- FIG. 10A shows temperature increase over time of a control and of albumin thermal accelerant (TA) having different amounts of NaCl positioned 1.5 cm from a microwave antenna;
- TA albumin thermal accelerant
- FIG. 10B shows the end-temperature increase at 120 seconds as a function of the NaCl concentration
- FIG. 11 shows increased ablation volumes achieved in different tissues using different concentrations of a Cesium Chloride component
- FIG. 12 schematically illustrates an arrangement of an electrode and TA being inserted into an organ of a patient
- FIG. 13 illustrates temperature profiles of radiofrequency ablation using TA and control setups
- FIG. 14 illustrates temperature profiles of TA samples having varying concentrations over time
- FIG. 15 illustrates a flowchart of an exemplary method using the compositions and systems disclosed herein.
- the invention includes application of a strong energy absorber, a 'heat substrate' (HS) or 'thermal accelerant' (TA) to a tissue site to locally modulate the rate, extent or endpoint of temperature increase to achieve effective hyperthermal ablation of the tissue with a microwave or radio frequency (RF) antenna, such as an image-guided transdermal microwave antenna, and overcome the limitations or problems raise by the limited range, high variance in temperature distribution and tissue-caused artifacts such as shadowing and heat sink.
- a reverse phase polymer is used as a carrier and is injected as a fluid to desired locations in or around a relevant tissue site.
- the polymer is liquid, and it gels, becomes gelatinous or even solidifies at body temperature or above, so it either is, or quickly becomes, immobilized and stays localized at the delivery site.
- the polymer may be one that changes state and expels liquid (e.g., water) at temperatures consistent with ablation procedures.
- the polymer also contains a salt; use of cesium chloride has been found to greatly increase the microwave/heating interaction and also to render the accelerant visible under CT or MRI, thus allowing image-guided verification of localization prior to RF or microwave excitation.
- Other imaging modalities, such as ultrasound may be used for image guidance.
- the polymer with appropriate characteristics may be one such as a block-co-polymer PLGA-PEG- PLGA consisting of polyethylene glycol, which is covalently esterified by an FDA-approved poly lactic-co-glycolic acid on both ends.
- a range of parameters may be varied to establish ablation response as a function of microwave conditions (i.e., power, frequency, ablation period and distance) in a representative tissue, such as a pig or calf liver (see, for example, the modeling protocols in Pillai K, Akhter J, Chua T C, Shehata M, Alzahrani N, Al- Alem I, Morris D L. 2015.
- the thermal accelerant is a preparation of a serum albumin or other albumin, as described further below, together with certain electrolytes that condition its viscosity, microwave energy absorbance or thermal accelerant properties, and preferably also provide imaging under one or more medical imaging modalities such as MRI, ultrasound or x-ray CT imaging.
- a novel heat substrate to selectively increase heating and, by suitable placement, avoid undesirable cooling or 'heat sink' effects.
- This substrate is made of cesium chloride (CsCl) and is compounded in a reverse phase transition polymer to be positioned, and then activated by microwave energy from a distance.
- the reverse phase transition polymer which may, for example be a PLGA-PEG- PLGA block copolymer of suitable viscosity, transforms into a gel at body temperature or above and with the cesium chloride salt strongly responds to microwave radiation and locally increases the temperature to more effectively ablate tumor cells that lie just outside of ablation zone AZ of FIGS. 1 A, IB and 1C.
- this heat substrate is an excellent contrast agent by itself, and was found to be visible under CT imaging. These properties make it particularly efficacious for treating solid tumors, where a physician can control the amount, the location(s) and the concentration of the heat substrate delivered to and fixed at locations about the targeted tumor to ensure complete ablation. Moreover, for larger or irregularly-shaped tumors, several microwave antennae may be positioned under image guidance to completely cover the tumor with a corrected/enhanced heat distribution.
- FIG. 2A specifically shows that the heat substrate picks up microwave energy in a distance to augment heating, with high CsCl concentration of 100 mg/ml greatly increases heating measured near to (1 mm) the antenna, and that enhance heating with high uniformity is attained with other concentrations measured 15 mm away from the antenna (FIG. 2B).
- HS 100 mg/mL 2056 Hu, 4. HS (1000 mg/mL) 3070 Hu.
- the lower portion of FIG. 2C shows the same samples with computer-aided enhancement. Even the lowest concentration 10 mg/mL HS yields a discemable contrast comparing to water in CT.
- the imaging was performed using a GE Optima 580 W CT scanner with CT protocol: 120 kV, 50 mA, 0.8 second rotation, 0.562:1 pitch, and 16x0.625 mm detector configuration.
- the radiation output (CTDIvol) was 12.08 mGy, and the Dose Length Product was 193.88 mGy-cm.
- FIG. 2D illustrates the phase change properties with increasing temperature when the CsCl salt is compounded with polymer.
- Example 1 The investigations of Example 1 thus demonstrated the value of the heat substrate. Further investigations were designed and/or carried out to model or assess heating characteristics of the compositions in specific tumor tissues or specific distances, as well as evaluating imageability of representative formulations (see the discussion of FIG. 2C, supra) to better support use of the heat substrate in clinical procedures and new methods of treatment.
- the heat substrate may be suitably positioned in relation to the microwave antenna, so that application of microwave energy produces a tailored heating profile to heat up and ablate the surrounding tissue.
- the accelerant may be positioned somewhat away from the antenna to enhance heating of peripheral tissue which is too distant to be fully or uniformly ablated using a single microwave antenna alone.
- the thermal accelerant can also be positioned to prevent the heat loss (also known as "heat sink” see FIG. 1C— that would otherwise occur due to the presence of a large blood vessel in or adjacent to the intended ablation zone, trapping an effective level of heating in the near field without ablating the blood vessel itself.
- Modeling was performed for the use of multiple antennae, and for more than one localized body of thermal accelerant strategically placed to define a larger, or more uniform and expanded ablation zone, or to define an ablation zone while limiting the time that power is applied to other portions of the organ.
- the thermal accelerant plays a cooperative and synergistic role in augmenting the effective microwave energy. The suitability for each of these interventions, however, will require that the actual level of increased heating be sufficient to overcome any countervailing conduction and absorption effects exerted by surrounding tissue.
- thermal accelerant augments the microwave energy transmitted through the antenna, and it was expected that the thermal accelerant turns into a gel, once injected, in the target area of the body. Upon application of the microwave energy, the thermal accelerant will heat up the surrounding tissue, which is too distant to be ablated with single microwave antenna alone.
- FIG. 3 A and FIG. 3B This situation is illustrated schematically in FIG. 3 A and FIG. 3B wherein a small mass of the substrate located at the upper right distal region or surface of an irregular tumor (FIG. 3 A) and outside of a theoretical circular or symmetric effective ablation zone centered on the microwave antenna, produces a well-defined ablation region (thick band, as seen in FIG. 3B), extending the region of complete ablation to or beyond the tumor boundary.
- the study was further designed to test the notion that the thermal accelerant can help avoid the heat loss (also known as "heat sink") caused by a blood vessel adjacent to the ablation zone, without ablating the blood vessel itself
- FIG. 4 This situation is illustrated in FIG. 4, which identifies where to place the thermal accelerant to enhance tumor ablation while avoiding damage to the vessel.
- FIG. 4 This situation is illustrated in FIG. 4, which identifies where to place the thermal accelerant to enhance tumor ablation while avoiding damage to the vessel.
- FIG. 5 illustrates placement of thermal accelerant and multiple microwave antennas to create a wider and taller ablation region of uniform intensity, showing that if multiple antennae and thermal accelerant are strategically placed, the ablation zone can be expanded. This is to demonstrate a cooperative and synergistic role that the thermal accelerant (TA) plays in augmenting the heating by microwave energy.
- TA thermal accelerant
- FIGS. 3 A and 3B schematically diagram the microwave ablation, wherein a thermal accelerant is injected to an imaginary tumor target area.
- a typical ablation zone is about 2.5 cm in diameter when a single antenna is used with the microwave ablation conditions: 915 MHz, 60 W for 10 minutes.
- the thermal accelerant due to its viscous composition, remains relatively stationary at a target site once deposited since it turns to a gel at body temperature.
- the track of the thermal accelerant gel is shown just outside of the nominal ablation zone, and runs through the outer-boundary of the imaginary tumor in the liver.
- FIG. 3B shows the coagulative ablation zone extended by augmentation of the microwave energy.
- FIG. 4 shows an experimental set-up wherein the thermal accelerant deposited between a major blood vessel (>4 mm in diameter) and the ablation zone to see if the heat loss will be minimized. Because the microwave energy is augmented between the antenna and the thermal accelerant, shorter antenna actuation can achieve complete ablation of the tumor, and the blood vessel itself will be protected from being ablated.
- FIG. 5 shows multiple antennae and bodies of thermal accelerant strategically placed to maximize an ablation zone.
- the novel MWA methodology is intended to achieve the complete ablation of tumors.
- CsCl cesium chloride
- a reverse phase transition polymer with the following rationale: Tissue ablation by MW energy primarily operates by kinetically exciting water molecules to generate heat. A water molecule is structurally bent (104.5° C.) due to two non-bonding electrons on oxygen atom, and thus has a relatively high di
- CsCl cesium chloride
- the polymer component possesses the unique property of being a liquid at ambient temperature, but a gel at typical body temperature (35-37° C.). Moreover, upon a further increase in temperature, the polymer precipitates by expelling water molecules from the polymeric lattice structure.
- the polymer is considered safe, and consists of polyethylene glycol (PEG) that is esterified by a FDA approved poly-(lactic-co-glycolic) acid (PLGA) on both ends.
- PEG polyethylene glycol
- PLGA poly-(lactic-co-glycolic) acid
- the polymer is biodegradable and biocompatible.
- CsCl is an ionic compound and, thus, miscible with the aqueous polymer solution to give homogeneous distribution of CsCl permitting uniform heating within the target ablation space.
- CsCl tumbles synchronously to the alternating electric field fueled by its intrinsic dipole moment to generate heat.
- the desired amount of the thermal accelerant with known CsCl concentration can be deposited in the boundary of the tumor mass.
- the injected heat substrate turns into a gel of predetermined ablation shape and volume.
- the heat substrate gel will be heated by MW energy transmitted through an MW antenna (MicrothermX® Perseon Medical, Salt Lake City, Utah) to reach tumoricidal temperature (>60° C.) in the targeted area.
- MW antenna MicrothermX® Perseon Medical, Salt Lake City, Utah
- FIG. 6B the heat substrate was placed at 1.5 cm from the antenna, and was heated by MW energy transferred through an MW antenna (MicrothermX® Perseon Medical, Salt Lake City, Utah) to reach tumoricidal temperature (>60° C.). Temperature plots are shown in FIG. 6A.
- the thermal accelerant was found to augment the MW energy in a concentration dependent manner and reached beyond 60° C. within 5 minutes (c. 1 minute 250 mg/mL; ⁇ 3 minutes 100 mg/mL, respectively) in comparison to the sample without the thermal accelerant.
- FIG. 6A shows a typical set up for the in vitro experiment.
- FIG. 2C shows the TA solution with the concentration as low as 10 mg/mL produced a discernable contrast as compared to water.
- the degree of the CT contrast was found to be proportional to the concentration of the thermal accelerant (TA), so the TA solution is CT visible.
- the upper portion of FIG. 2C shows four samples l)-4) as follows: 1. Distilled water -15 Hu, 2. TA (10 mg/mL) 286 Hu, 3. TA (100 mg/mL) 2056 Hu, 4. TA (1000 mg/mL) 3070 Hu.
- 2C shows the same samples with computer-aided enhancement.
- the lowest concentration 10 mg/mL TA yields a discernible contrast compared to water in CT.
- the polymer used with the thermal accelerant desirably has the property of being a liquid at ambient temperature, but a gel at typical body temperature (35-37° C.), which, in some embodiments, can allow the gel to remain stationary at a target site once deposited. Upon a further increase in temperature, the polymer precipitates by expelling water molecules from the polymeric lattice structure as shown in FIG. 2D supra.
- the polymer of this example is technically a block-co-polymer that is made of poly(lactic-co-glycolic acid) (PLGA) and polyethyleneglycol (PEG).
- PLGA is a FDA approved polymer for its biocompatibility like PEG.
- the polymer used as a heat substrate component here is structurally arranged as follows: PLGA- PEG-PLGA. At ambient temperature (25° C.), the polymer is conformed in such a way that a PLGA interacts with the intramolecular PLGA to form a hairpin. This conformation will change as the temperature increases so that interm olecular PLGA-PLGA interactions predominate (37° C.). Upon further heating (>60° C.), the conformation will be changed back to the hairpin conformation except that water molecules are expelled out of the polymer layer at higher temperature.
- Aim 1 Laparotomy will be performed on a pig, and the liver will be exposed. Using ultrasound as image-guidance, the microwave (MW) antenna will be inserted and the microwave energy of the preset parameters will be applied.
- MW microwave
- the thermal accelerator (TA, 250 CsCl mg/mL of 20% (w/v) polymer solution) is injected to the liver parenchyma, an imaginary target area using ultrasound as image-guidance and deposited as a stationary gel.
- the MW antenna will be inserted approximately 1.5 cm away from the thermal accelerant.
- the microwave energy of the same parameters will be applied to the antenna (i.e., 915 MHz, 45 or 60 W for 5 to 10 minutes). All animals will be euthanized immediately after the procedure, and the liver will be harvested for further comparisons including CT and analysis of the ablation patterns and measurement of the ablation volume; Aim 2) As described in Aim 1), the animals are anesthetized and laparotomized to expose the liver.
- the antenna With ultrasound guidance, the antenna will be placed 1.5 cm from a large blood vessel and ablated with the preset conditions (915 MHz, 45 or 60 W for 5 to 10 minutes) on the first pig (control). In the second pig's liver, the antenna will be placed 1.5 cm from a large blood vessel after the thermal accelerator is injected near the blood vessel, and then the microwave energy is applied. Each pig will receive three ablations: 1) 45 W for 10 minutes, 2) 60 W for 5 minutes, 3) 60 W for 10 minutes.
- the pigs are euthanized to harvest the liver for CT and analysis of the ablation patterns and measurement of the ablation volume by depth, height, and width; Aim 3)
- a pig liver will be exposed after laparotomy is performed on a pig under anesthesia.
- two antennae will be inserted in the liver 2 cm apart and the microwave energy (60 W) will be applied for 10 minutes for control.
- two antennae will be inserted 2 cm apart, and followed by two injections of the thermal accelerant (TA) by which the injection is made 2 cm away from each antenna to form a rhombic shape as depicted in FIG. 3.
- TA thermal accelerant
- FIG. 7 is a chart showing a proposed investigative protocol.
- the Aim 1 is intended to examine heat augmentation efficiency of the thermal accelerant (TA) in percutaneous microwave ablation using a single antenna, while Aim 2 is intended to assess efficacy for overcoming heat sink effects, and Aim 3 investigate the TA being used for situations that may have been addressed previously by using an extra antenna.
- TA thermal accelerant
- the thermal accelerant was conceived in order to mitigate the incomplete ablation issue, and envisions a novel thermal accelerant (TA) that can augment the microwave energy from a distance unreachable by a single antenna alone. This helps not only extending the ablation zone covering the outer-boundary of a tumor mass but also ablating more rapidly. As clinically shown, more effective and faster microwave ablation helps the procedure be more complete, thus lowering rate of tumor recurrence rate.
- TA can be injected strategically near a heat sink so that the heat loss can be prevented.
- the TA for best utility in image-guided thermal ablation to treat tumor, preferably has the following properties: 1) it can augment the electromagnetic radiation energy (e.g., radiofrequency, microwave), especially from a distance unattainable by a single antenna; 2) it is visible under various imaging modalities (e.g., computed tomography (CT), ultrasound or MRI); 3) it is injectable, and is stationary once injected, e.g., due to its viscous composition; and 4) it is non-toxic.
- electromagnetic radiation energy e.g., radiofrequency, microwave
- CT computed tomography
- MRI magnetic resonance imaging
- the components of the TA may include three, non-toxic components: 1) a polymer (natural or artificial) as a carrier; 2) an ionic component for overall charge and viscosity balance; 3) an imaging component.
- TA can be deposited at the target area of the tumor under image-guidance (e.g., US, CT or MRI), and be able to augment the applied energy (e.g., microwave, radiofrequency or electroporation) to better achieve complete ablation.
- image-guidance e.g., US, CT or MRI
- TA comprised of bovine serum albumin (BSA), NaCl and tantalum powder satisfy the aforementioned criteria, to provide more effective ablation resulting in elimination of untreated outer-boundary of tumors and the heat sink effect.
- the salt adjusts the charge distribution within the albumin, while tantalum enhances its imaging characteristics.
- the preparation demonstrates signal decay rate time constants (Ti) shorter than many tissues.
- liver at 3 Tesla has Ti of approximately 800 ms.
- the albumin/NaCl preparation has Ti in the range of 250 ms to 330 ms, depending on the concentration of NaCl.
- T2 contrast mechanisms can also be used, primarily via negative contrast in which the TA has shorter T2 than surrounding tissue and T2-weighted scans are used for guidance.
- Albumin is comprised of 3 domains of similar structure, which all originated from the same domain.
- Each domain is composed of ten a-helices and can be further divided into two subdomains, denoted as A and B, containing 6 and 4 helices, respectively.
- the two subdomains are connected by a long amino acid loop, which is responsible for the change in orientation of the subdomains.
- the conformational flexibility between domains depends on the bending of the helices. Its canonical structure is supported by a conserved set of 17 disulfide bridges, which are maintained in all mammalian serum albumins.
- the first domain is the only one to contain 5, not 6, disulfide bridges, missing one at Cys-34.
- microwave ablation with the TA can produce significantly larger ablation volumes than that of the control in porcine liver, lung, kidney, and muscle.
- the TA can be controlled to “switch-off’ at specific temperatures during ablation to control the ablated volume.
- a water-soluble protein e.g., albumin
- the protein component can be coagulated as temperature increases at which the ability to augment the energy of TA ceases since the conformation of the protein is altered.
- the coagulation temperature is pH-dependent, i.e., low pH shifts the coagulation (denaturation) temperature of albumin from 62 °C (at pH 7.4) to 46 °C (at pH 3.5).
- Such ability to control the TA can allow for protection from collateral injury of important tissues or organs during ablation. While it will be appreciated that the temperature at which the TA switches off can be varied, though some non-limiting examples of such temperatures can be >60° C, >80° C, >100° C, and so forth in optimized formulations, in some embodiments, temperatures of up to 170° C can be observed under in vitro conditions during microwave ablations under the following conditions: 915 MHz, 60W for 10 minutes at 1.5 cm from the antenna.
- Ablation was performed on a plurality of samples of organs (A-D), with each multiple samples being exposed to TA and multiple samples acting as the controls. As shown in Table 2, ablation volumes with TA for certain tissues were, in some instances, almost three times greater than those of the control in which TA was not used.
- FIG. 8 A and FIG. 8B illustrate the surface potential of HSA (A) and BSA (B), with different colors representing positively and negatively charged areas.
- HSA HSA
- BSA BSA
- Mature BSA contains 583 amino acids and has 99 positive (K, H, R) and negative (D, E) residues.
- mature HSA contains 585 amino acids and has 99 positive (K, H, R) and 98 negative (D, E) residues.
- BSA shares only 75.8% homology with HSA.
- the tantalum component of TA is a high radiopaque material that provides fluoroscopic visualization. Tantalum is an inert metal with a history of use in implants requiring incorporation of a contrast agent, such as arterial stents, hip prostheses, and embolization materials. [9, 10] In addition to its use in embolization materials, tantalum powder has been used as a contrast agent injected into the cervical spinal cord for visualization during percutaneous cordotomy. Additionally, tantalum powder has found uses in neurosurgery, to mark the plane of section in lobotomy or leucotomy, to provide visualization or definition of a site for tumor removal, and for detection of recurrent subdural hematoma after surgery.
- the calculated dipole moment of a carrier can be up to, and including, 1,000 D.
- the albumins of high concentrations tend to have a very high viscosity due, in most part, to protein-protein interactions as shown in FIG. 9 which schematically illustrates the viscosity of BSA as a function of concentration.
- the viscosity of the TA can depend on the formulation, but in some embodiments, can range from approximately 50 centiPoise to approximately 25,000 centiPoise. Relative examples of viscosity of compounds are shown in Table 1 below:
- Materials or formulations with a high dipole moment as potential thermal accelerants can be expressed by the e” and s values for thermal ablation (radiofrequency, microwave, irreversible electroporation.
- thermal ablation radiofrequency, microwave, irreversible electroporation.
- permittivity can be employed in lieu of, or in addition to, evaluation of dipole moment.
- materials can be tested using an electromagnetic wave of sinusoidal frequency co, which is directed at a subject sample by an open-ended coaxial cable of a low- power oscillator. Measurement of the magnitude and phase of the fraction of the wave which is reflected allows deduction of the complex permittivity of the tissue.
- the real permittivity is also known as the dielectric constant.
- ARD Absorption Rate Density (watt m 3 )
- s electrical conductivity (ohm 1 m 1 )
- the magnitude of the electrical field (volt m 1 ) produced by the microwave antenna at the point of interest in the tissue.
- the electrical conductivity, s, at 915 MHz of one sample equal to 4.74 mho/m with real permittivity (s’, 40.147) and imaginary permittivity (e”, - 93.164).
- Albumin contains (ca. 66 kDa) with roughly 200 ionic residues (100 positive and 100 negative). These residues are arranged in 3-D to have its overall polarity (dipole moment) of approximately 700 D (Debye).
- the key parameters (s, s’, s”) are similar to those of MeOH due to the protein-protein interaction forces within the solution.
- a chaotrope such as NaCl or sodium citrate can be used, as discussed above.
- sodium citrate can be used as a chaotrope for human serum albumin, though it will be appreciated that, in some embodiments, additional chaotropes can be used.
- the chaotrope can be used to break apart the protein-protein interactions of molecules to allow the molecules to move more freely to generate more heat. It will be appreciated that while some chaotropes can be ionic so as to be a part of the ionic component of the TA, in some embodiments, the chaotropes can be non-ionic or slightly ionic such that the chaotropes are miscible in aqueous solutions.
- the effect of the chaotrope can increase s, and e” values, as shown in the table, values that can be approximately 4.2 times greater than the value for normal saline solution, which is typical of living tissue.
- This large-scale factor directly expresses the increase in heating rate above that which would be present without the injection of TA into the tumor. That is, electrical conductivity s and loss factor e”, namely that the loss factor e” increases with the ionic concentration, which thereby increases tissue conductivity for alternating electrical current in the frequency of radiowaves can be used to explain both microwave and radiofrequency ablation.
- chaotropes can include L-glycine, L-alanine, L-valine, L-proline, L-serine, L-histidine, L-arginine-HCl, L-histidine-HCl, L-lysine-HCl, L-glutamic sodium, urea, and NaAc.
- Table 2 above illustrate the effect of the chaotrope on dielectric properties of various materials.
- albumin and TA-4 have similar values of real permittivity, 30.7 and 41.15, respectively, while the respective values of loss factor jump from - 10.2 to -93.16, which is greater than a nine-fold increase.
- TA-4 has an even greater increase in the loss factor when compared to methanol, which has a loss factor value of -8.81, which is similar to that of albumin. Methanol and albumin alone are therefore much less effective as thermal accelerants as compared to when a chaotrope is added.
- chaotropes can be affected by other properties of materials.
- addition of the chaotrope can increase the temperature of the 1% NaCl due to its high dipole moment, though the temperature increase will be smaller as compared to albumin due to the smaller size of the NaCl molecule.
- tumbling motion of the larger albumin molecules generate more kinetic energy as compared to the smaller NaCl molecules, which can account for the larger increases in heat of the albumin molecules.
- FIG. 10B is a schematic plot of temperature v. [NaCl] concentration at the 120 second endpoint under the same microwave regimen, showing a temperature peak at around 50 mg/mL NaCl.
- Albumin thermal accelerant as described above was used in a number of in vivo microwave ablation experiments in pigs and the ablated sites were stained with triphenyl tetrazolium chloride to distinguish dead from viable cells.
- TA (1 mL of albumin (500 mg), NaCl (50 mg)) generated a larger ablation zone unaffected by a large blood vessel (1 cm in diameter).
- TTC-treated kidney tissue images show a typical ablation zone using a single antenna with 60 W, 915 MHz, for 10 minutes, and the ablation is slightly off-centered as the connective tissues in the central renal sinus area are less affected.
- the resultant ablation zone is about 1 cm in diameter.
- TA was able to produce a drastic increase of the ablation zone (3 cm in diameter) where the central tissues were also shown to be completely ablated (60 W, 915 MHz, 10 minutes; the distance between antenna and TA was 1.3 cm).
- FIG. 11 show the results of further tissue ablation experiments done to assess ablation volumes in cm. sup.3 for 1 mL of the thermal accelerant in different tissues (kidney, muscle and liver) with no TA or 1 mL of the TA at different concentrations of CsCl absorber. In each case the effective ablation zone was greater with the TA. Different concentrations of TA were tested with concentrations up to 250 mg/mL for the liver tissue ablation, as the liver is a key organ for treatment by this method. The other tissues also showed significant ablation volume increases.
- the heat substrate or thermal accelerant of the present invention can be implemented in various forms or concoctions, and may involve tailoring the physical characteristics of a natural or artificial polymer to improve their utility as injectable, fixable, imageable and heatable media.
- a natural or artificial polymer to improve their utility as injectable, fixable, imageable and heatable media.
- cesium chloride microwave accelerant other halides such as the bromide or iodide, and other alkaline or alkaline earth cations that are medically useful may be expected to offer similar if not comparable ablation enhancement.
- Rubidium chloride, or a suitably protected rubidium portion may be useful.
- materials in alginate media, or salts having anions such as carboxylate or sulfite materials may be employed if they exhibit suitable characteristics, and a discussion of useful cations, anions or electrolyte or other materials for optimizing the desired physical imaging, heating and other characteristics of the thermal accelerant are included above.
- various embolization media can be so modified, and their basic emulsion-like composition will also provide ultrasound imageability.
- formulation of albumin with sodium chloride salt has been shown to provide a low-viscosity thermal accelerant having appropriate physical characteristics for diverse tissue treatments (including intravascular) with good microwave heating performance, while being completely biocompatible.
- Different ones of the described thermal accelerants may be appropriate for different microwave regimens of 400 MHz, 915 MHz, 2450 MHz, or 5800 MHz range, and may be used if they are medically safe and result in effective microwave ablation enhancement characteristics for the tissue, tumor mass or organ under consideration.
- the described polymer can be delivered to a vessel in the target tissue and heated to act as an embolization substance to block a vessel that feed the target tumor to thereby cause tumor regression by cutting off oxygen and nutrients supply through the vessel.
- a further variation is to add one or more anticancer drugs or treatment agents to the polymer, so that once localized and heated the polymer serves as an in-situ time-release treatment agent.
- the invention described herein involves the ablation methodology of creating thermal lesions by augmentation of the electric or electromagnetic energy, e.g. absorption of radiated energy and conversion into thermal energy.
- the ablation methodology includes a thermal accelerant (TA) that functions as a satellite energy absorber, e.g., to increase the heating effect.
- the thermal accelerant (TA) is preferably comprised of three components, 1) polymer (natural or artificial) as a carrier; 2) an ionic component or equivalent for overall charge and viscosity balance; 3) an imaging component which allows the ablation procedure to be monitored.
- polymers may include either natural or artificial, for example, albumins, silk, wool, chitosan, alginate, pectin, DNA, cellulose, polysialic acids, dendritic polylysine, poly (lactic-co-glycolic) acid (PLGA).
- the ionic component may include, M + X or M 2+ Y 2_ , where M belongs to alkaline or alkaline earth metal such as Li, Na, K, Rb, Cs and X represents halogens, acetate and other equivalent counter balance to M + , and Y can be X2 or mixed halogens, acetates, carbonate, sulfate, phosphate and other equivalent counter balance to M.sup.
- remotely deposited TA can absorb the energy much more effectively than the surroundings and help extend the ablation zone.
- Remotely deposited TA here means at a distance greater or equal to 1.5 cm from the antenna open slot, when the conditions (60 W 915 MHz for 10 minutes) are used as reported in Appendix C.
- the electromagnetic energy e.g., microwave, RF, electroporation
- TA deposited adjacent to a large blood vessel can prevent the ablation target from suffering excessive heat loss, therefore TA can mitigate the "heat sink" effect to provide complete ablation.
- TA can be used in embolization/ablation combination treatments to destroy tumors.
- TA has a viscosity similar viscosity to Lipiodol, thus can be delivered via an intravascular catheter to be deposited accurately. A subsequent ablation can destroy tumors effectively.
- the thermal accelerant (TA) formulations and materials described above can function as satellite energy absorbers to create thermal lesions by augmenting the coupling of the electric or electromagnetic energy into heat at distances not effectively treatable by an antenna alone.
- the TA may be comprised of three components, 1) polymer (natural or artificial) as a carrier; 2) an ionic component or equivalent for overall charge and/or viscosity balance; and 3) an imaging component.
- the polymers may include either natural or artificial, for example, albumins, silk, wool, chitosan, alginate, pectin, DNA, cellulose, polysialic acids, dendritic polylysine, poly(lactic-co-glycolic) acid (PLGA), gellan, polysaccharides and poly-aspartic acid, and combinations thereof.
- albumins silk, wool, chitosan, alginate, pectin, DNA, cellulose, polysialic acids, dendritic polylysine, poly(lactic-co-glycolic) acid (PLGA), gellan, polysaccharides and poly-aspartic acid, and combinations thereof.
- the ionic component may include, M + X or M 2+ Y 2_ (as a generalized formula M n_ Y n_ ), where M belongs to alkaline or alkaline earth metal such as Li, Na, K, Rb, Cs and X represents halides, acetate, and other equivalent counter balance to M + , and Y can be X2 or mixed halides, acetates, carbonate, sulfate, phosphate and other equivalent counter balance to M 2+ as well as formic acid, glycolic acid, lactic acid, propionic acid, caproic acid, oxalic acid, malic acid, citric acid, benzoic acid, uric acid and their corresponding conjugate bases.
- Other organic components can independently be substituted as described in Wang, S. et al, Mol. Pharmaceutics 2015, 12, 4478-4487.
- remotely deposited TA can absorb the energy much more effectively than the surroundings and help extend the ablation zone.
- “remotely deposited TA” means in the far range, so would mean distance greater or equal to 1.5 cm from the microwave antenna, for example, when the conditions (e.g., 60 W 915 MHz for 10 minutes) are used.
- the ablation zone can extend further from the antenna for a given power/time treatment, or the same ablation volume can be effectively ablated in a shorter time, or the degree of heating can be enhanced in specific tissue regions that are inherently less capable of microwave heating.
- TA deposited adjacent to a large blood vessel can protect the ablation zone from heat loss, therefore TA can mitigate the "heat sink" effect to assure complete ablation.
- suitably-placed TA may extend ablation to the far side of a vessel, enabling new treatment geometries for simple microwave antennas.
- TA can be used in embolization/ablation combination treatments to destroy tumors.
- TA may be formulated with a similar viscosity to Lipiodol, and thus can be delivered via an intravascular catheter to be deposited accurately. A subsequent ablation can destroy tumors effectively.
- the TA formulation may include excipients, which may depend upon the specific purpose. Excipients may, for example, include, PEG, lactose, microcrystalline cellulose, sodium starch glycolate, croscarmellose sodium, PVP, HPMC, magnesium stearate, colloidal SiCh.
- tissue targets may be quite diverse, and use of TA in the field of Cancer/Tumor ablation may include breast (benign and malignant, thyroid (benign and malignant), lung (primary and metastatic), liver (primary and metastatic, liver surgery margin coagulation), adrenal (benign functioning, caner and metastatic), kidney (primary and metastatic), bone, prostate, soft tissue (primary and metastatic).
- the enhanced ablation accuracy, speed and uniformity offer promising improvements for Endometrial ablation/Menorrhagia: Uterus; Spinal Decompression and Denervation; Benign Prostatic Hyperplasia (BPH); as well as treating other tissues such as Esophagus (reflux), bronchial tree (emphysema reduction), biliary tree (stent obstruction from tumor), joints (laxity), surgical resection and bleeding.
- Esophagus reflux
- bronchial tree emphysema reduction
- biliary tree stent obstruction from tumor
- joints laxity
- radiofrequency can drive ablation in addition to, and/or in lieu of, microwave energy.
- RF can use electrical signals (e.g., a current) of varying frequency, e.g., both inside and outside frequencies of radio waves, to perform ablation.
- electrical signals e.g., a current
- needle-like electrodes can be placed percutaneously into the target tissue using imaging guidance (e.g., ultrasound, CT imaging, or MRI).
- FIG. 12 illustrates an exemplary embodiment of a setup 100 used for RF ablation.
- a probe, or electrode 110, and a thermocouple 120 can be inserted into tissue or an organ (both identified for simplicity by reference number 130), e.g., heart, liver, kidney, and so forth.
- a distance L between the probe 110 and the thermocouple 120 can vary, though in some embodiments, the distance L can be approximately 1 cm, approximately 1.5 cm, approximately 2 cm, and so forth. In some embodiments, the distance L can be set based on the type of tissue 130, the size of the tumor and/or desired ablation zone, and so forth.
- the probe 110 can include a metal shaft, which is insulated except for an exposed conductive tip that is in direct electrical contact with the targeted tissue.
- An RF generator (not shown) can supply RF energy to the tissue 130 through the electrode 110.
- the setup 100 can include a reference electrode (not shown), which can be positioned at a conductive pad contacting the patient’s skin in an area of relatively good electrical and thermal conductivity. The RF generator produces a RF voltage between the active RF electrode and the reference electrode, thereby establishing lines of electric field within the patient’s body between the two electrodes. The electric field oscillates with the RF frequency ( ⁇ 1MHz).
- the TA 140 can be positioned in the organ 130 before ablation begins.
- the TA 140 can be dispensed and/or delivered from the electrode 110, as shown, though, in some embodiments, the TA 140 can be injected or otherwise delivered into the organ 130 via a syringe or a similar apparatus known to one skilled in the art.
- the ions in the tissue move with the oscillating field and proportionately to the field intensity causing friction, which is converted into heat. That is, ions in the tissue can cause collision among surrounding molecules, such as neighboring sodium and chloride ions. The collisions of these molecules generate kinetic energy, which can turn into heat.
- the TA 140 can exhibit similar oscillating properties, but at two or more orders of magnitude higher than the ions, which can generate significantly more heat than the ions, resulting in the increased ablation observed when the TA 140 is used.
- Successful RF ablation of an entire tumor typically occurs at temperatures of greater than about 60 °C throughout the target area.
- poor tissue penetration by certain electrodes can result in an inability to ablate tumors larger than 1 cm in diameter.
- Illustrative embodiments overcome these inherent problems by ablating larger tumors (e.g., larger than 1 cm) with multiple electrodes, multiple-hook electrodes, bipolar arrays, cooled-tip electrodes, and/or pulsed RF probes.
- poor energy penetrations also can be improved by altering tissue dielectric properties. For example, various concentrations in a contiguous injection of saline solutions have shown a marked improvement in the larger ablation volume.
- This effect is non-linear with markedly increased tissue conductivity decreasing tissue heating.
- the increased conductivity can be beneficial for RF ablation in that it enables increased energy deposition which increases tissue heating.
- increased tissue conductivity also increases the energy required to heat a given volume of tissue. When this amount of energy cannot be delivered (e.g., it is beyond the maximum generator output), the slope is negative and less tissue heating (and coagulation) will result.
- optimal parameters for saline injection need to be determined for each type of RF apparatus used and for the different tumor types and tissues to be treated.
- a drawback of saline solution to improve RF ablation involves its discrepancy of geometry of ablation. Specifically, the saline solution is drained to the directions with the least resistance, which results in an uncontrolled shape of ablation with increased risk of collateral injury to adjacent organs or tissue, e.g., bile duct, diaphragm, nerves. Use of TA during RF ablation can mitigate these effects and increase a volume of the ablation zone as desired.
- Radiofrequency Ablation of an ex vivo swine liver Radiofrequency Ablation of an ex vivo swine liver.
- a radiofrequency system (Viva combo RF Generator, STARmed, Goyang, S. Korea) was used for all ablation procedures at a power of 35W with a continuous mode for 10 minutes ( Figure 2).
- the RF applicator (15G 2cm ActiveTip) has perfusion ports at the tip through which 2 mL of TA were injected. The temperature change was measured 1.5 cm away in the transverse plane from the RF electrode.
- the thermocouple 120 was at the same depth as the RF electrode 110 tip as shown in FIG. 12. The experiments were repeated four times for control and TA, and the data were comparatively plotted and statistically analyzed(GraphPad PRISM ® Version 6e).
- Use of the TA can accelerate the ablation zone temperature change measured at a distance from the probe during RF ablation. For example, results of an RF ablation at a distance of 1 centimeter from the probe 110 in the bovine liver are shown in FIG. 14.
- the OsteoCoolTM RF Ablation system (Medtronic Memphis TN) was used for all ablation procedures with the following settings: ablation time 10 minutes; set temperature 95 °C; power limit 20W; impedance cut off 50 W.
- the RF applicator (18G, 2cm ActiveTip) was placed to the same site where a TA sample (1 mL) was injected.
- the TA samples are, 1) HeatSYNC Gel, 2) carrier biopolymer, 3) aqueous NaCl solutions with 50, 100, 150 mg/mL.
- the temperature change was measured 1.0 cm away from the RF applicator at the same depth as the applicator’s tip.
- the TA can be used as a cauterizing agent. Once the RF energy heats the TA to a specific temperature, e.g., >80° C., the TA can coagulate and become integral with the ablated tissue.
- the TA can be applied to a tissue or organ to augment heating of said tissue or organ and/or to cauterize the site to prevent bleeding.
- the TA can be applied as a gel to one or more surfaces thereof such that heating the TA merges with the ablated tissue to seal up the site.
- FIG. 15 illustrates an exemplary method 200 of tissue ablation in accordance with the illustrative embodiments. It should be noted that, as described, this process is simplified from a longer process that normally would be used to perform an ablation. Accordingly, the process can have additional steps that those skilled in the art likely would use. In addition, some of the steps may be performed in a different order than that shown, or at the same time. Those skilled in the art therefore can modify the process as appropriate. Moreover, as noted above and below, materials and structures noted are but one of a wide variety of different materials and structures that may be used. Those skilled in the art can select the appropriate materials and structures depending upon the application and other constraints. Accordingly, discussion of specific materials and structures is not intended to limit all embodiments.
- the process 200 can begin at step 202 by introducing one or more electrodes 110 into a body of a patient to reach a target site.
- the target site can include a tissue, organ, tumor, and so forth.
- the electrode 110 can be disposed within the target site, proximate to the target site, and/or extending through the target site.
- the thermal accelerant 140 can be positioned within the body of the patient at a distance from the electrode (step 204).
- the thermal accelerant 140 can be positioned so as to define and/or extend an ablation zone for the target site.
- the relative distances between the TA 140, the electrode 110, and the target site 130 can vary based on the desired ablation zone, patient anatomy, the size of the target site, and so forth, as discussed in detail above.
- a second electrode or a second thermal accelerant can be added to the target site, as discussed above, to maximize the ablation zone.
- the electrode 110 can be activated to excite the TA (step 206).
- the electrode 110 can include one or more energy emitting devices (not shown) thereon to excite particles of the TA to a specific temperature.
- the energy emitting devices can utilize one or more of microwave, radiofrequency, and electroporation to perform the excitation.
- heating the TA can cause the TA to cauterize to the target site by coagulating to become integral with the ablated tissue. Heating of the TA can continue until it the target site has become sufficiently ablated.
- the electrode can be switched off and withdrawn from the patient (step 208).
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| FR2884149B1 (en) * | 2005-04-12 | 2007-06-08 | Henri Mehier | IMPLANTABLE TUBE FOR THE INJECTION IN PARTICULAR OF HEAT PUMP FLUID IN ALL OR PART OF A HUMAN OR ANIMAL TISSUE |
| ES2651687T3 (en) * | 2008-03-31 | 2018-01-29 | Applied Medical Resources Corporation | Electrosurgical system with a memory module |
| WO2010014658A1 (en) * | 2008-07-31 | 2010-02-04 | Regents Of The University Of Minnesota | Thermochemical ablation system using heat from delivery of electrophiles |
| US8071534B2 (en) * | 2009-01-28 | 2011-12-06 | Clean Technology International Corporation | Material for facilitating thermal treatments of biological tissues and method of energy targeting leading to thermal treatment of biological tissues |
| US9662165B2 (en) * | 2012-10-02 | 2017-05-30 | Covidien Lp | Device and method for heat-sensitive agent application |
| EP3302263B1 (en) * | 2015-06-05 | 2021-01-06 | Brown University | Heat substrate and/or image enhancement compositions and enhanced tissue ablation methods |
| EP3393383A4 (en) * | 2015-12-23 | 2019-07-31 | Rhode Island Hospital | THERMAL ACCELERATOR COMPOSITIONS AND METHODS OF USE |
| CN109464186B (en) * | 2017-09-08 | 2023-12-22 | 泽丹医疗股份有限公司 | Device and method for treating lung tumors |
| US11364070B2 (en) * | 2018-01-23 | 2022-06-21 | Boston Scientific Scimed, Inc. | Enhanced needle array and therapies for tumor ablation |
-
2020
- 2020-12-09 KR KR1020227023594A patent/KR20220125252A/en active Pending
- 2020-12-09 EP EP20899590.2A patent/EP4072457A4/en active Pending
- 2020-12-09 JP JP2022535545A patent/JP2023506466A/en active Pending
- 2020-12-09 WO PCT/US2020/064082 patent/WO2021119173A1/en not_active Ceased
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| KR20220125252A (en) | 2022-09-14 |
| JP2023506466A (en) | 2023-02-16 |
| WO2021119173A1 (en) | 2021-06-17 |
| EP4072457A4 (en) | 2024-01-03 |
| WO2021119173A4 (en) | 2021-08-05 |
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