WO2017099067A1 - Procédé de culture de cellules souches - Google Patents

Procédé de culture de cellules souches Download PDF

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Publication number
WO2017099067A1
WO2017099067A1 PCT/JP2016/086206 JP2016086206W WO2017099067A1 WO 2017099067 A1 WO2017099067 A1 WO 2017099067A1 JP 2016086206 W JP2016086206 W JP 2016086206W WO 2017099067 A1 WO2017099067 A1 WO 2017099067A1
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WIPO (PCT)
Prior art keywords
stem cell
stem cells
culture
culture vessel
bone marrow
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PCT/JP2016/086206
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English (en)
Japanese (ja)
Inventor
アレクセイ グラドコフ
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株式会社Cells Power
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Priority claimed from JP2016218144A external-priority patent/JP6153653B2/ja
Application filed by 株式会社Cells Power filed Critical 株式会社Cells Power
Priority to US15/754,618 priority Critical patent/US20180291346A1/en
Priority to MYPI2018700248A priority patent/MY188404A/en
Priority to SG11201800503YA priority patent/SG11201800503YA/en
Priority to RU2018107552A priority patent/RU2732238C2/ru
Priority to CN201680060399.XA priority patent/CN108350426A/zh
Priority to EP16872965.5A priority patent/EP3315603A4/fr
Publication of WO2017099067A1 publication Critical patent/WO2017099067A1/fr
Priority to PH12018500160A priority patent/PH12018500160A1/en
Priority to HK18113748.8A priority patent/HK1254737A1/zh

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  • the present invention relates to a stem cell culture method for culturing stem cells using bone marrow fluid collected from a donor.
  • a medium for culturing stem cells and the irradiation energy for stem cells exceeds 0 and is less than 10 joules / cm 2 , the laser power density is not more than 0.1 W / cm 2 , and the irradiation energy is not less than 0.1 and not more than 2.5 joules / cm 2
  • a stem cell culturing method is disclosed in which a predetermined rest period is provided for a stem cell to proliferate to a target proliferation number. According to this stem cell culture method, tissue collected from humans and non-humans (animals) or stem cells present in the cells can be activated and proliferated dramatically.
  • Stem cells are used for the treatment of various diseases (cardiovascular diseases, central nervous system diseases, etc.), regenerative medicine, and non-therapeutic applications, but the variegated stem cells that are cultured consist only of specific types of stem cells Compared to the above, the effect of treatment for various diseases and the effect of regeneration in regenerative medicine are small, the probability of complete cure of various diseases is low, and the probability of regeneration of various tissues and organs is low.
  • various stem cells are cultured, and it is not possible to culture only a specific type of stem cells.
  • the premise of the present invention for solving the above-described problem is a stem cell culturing method for culturing a specific type of stem cells using the first bone marrow fluid collected from a donor.
  • the stem cell culturing method is an intermediate between the bone marrow fluid separation step in which the first bone marrow fluid collected from the donor is separated into layers and the first bone marrow fluid separated in layers by the bone marrow fluid separation step
  • Bone marrow fluid extraction step for extracting the second bone marrow fluid located in the layer, and the second bone marrow fluid extracted by the bone marrow fluid extraction step and a predetermined culture solution are injected into a first culture container having a predetermined volume and a predetermined area bottom surface.
  • the first culture container is statically left for a predetermined time to fix the first stem cells on the bottom surface of the first culture container and to proliferate the first stem cells, and the planar shape of the first stem cells is formed on the bottom surface of the first culture container.
  • the first stem cell extraction step for extracting the first stem cells from the first culture container, and the first stem cell extraction Extract by process
  • the second stem cell extracted by the second stem cell extraction step and a predetermined culture solution are injected into a second culture container having a larger volume and a bottom surface area larger than the first culture container, and the second culture container is allowed to stand for a predetermined time.
  • the stem cell culture method injects the second bone marrow fluid extracted by the bone marrow fluid extraction step and the culture fluid into the first culture vessel, and then tilts the first culture vessel at a predetermined angle.
  • Shape deformation first observation step of observing deformation from the initial planar shape of the first stem cells in the first culture container at predetermined time intervals while statically standing for a predetermined time, and results of observation in the shape deformation first observation step
  • the first stem cell is deformed from the initial planar shape to a predetermined planar shape, it is determined that the first stem cell has settled on the bottom surface of the first culture vessel, and a new culture is performed while discharging the culture solution in the first culture vessel.
  • the liquid is injected into the first culture container, and the first stem cells fixed on the bottom surface of the first culture container at predetermined time intervals while statically left for a predetermined time with the first culture container inclined at a predetermined angle.
  • the total plane area relative to the bottom area of one culture vessel A first observation step of the stem cell, and in the first extraction step of the stem cell, as a result of the observation in the first observation step of the total planar area, the first stem cell proliferates and the planar shape of the first stem cell expands, When the total planar area of the stem cells reaches the first target ratio with respect to the bottom area of the first culture container, the first stem cells are extracted from the first culture container.
  • the stem cell culture method injects the second stem cell extracted in the stem cell second extraction step and the culture solution into the second culture container, and then tilts the second culture container at a predetermined angle.
  • a shape deformation second observation step of observing deformation of the second stem cells in the second culture vessel from the initial planar shape at predetermined time intervals while statically standing in a state for a predetermined time, and observation in the shape deformation second observation step.
  • Second stem cells fixed on the bottom surface of the second culture container at predetermined time intervals while injecting a fresh culture medium into the second culture container and leaving the second culture container tilted at a predetermined angle statically for a predetermined time
  • Total flat surface area of the second culture vessel A total planar area second observation step for observing the area, and in the stem cell third extraction step, as a result of observation in the total planar area second observation step, the second stem cells proliferate and the planar shape of the second stem cells expands.
  • the second stem cells are extracted from the second culture container.
  • the bone marrow fluid separation step 2 to 3 cc of the first bone marrow fluid is collected from the donor, and 2 to 3 cc of the first bone marrow fluid is injected into a separation container extending in the vertical direction.
  • the first bone marrow fluid is allowed to stand statically at a temperature substantially equal to the body temperature for a predetermined time to separate the first bone marrow fluid into layers in the vertical direction in the separation container.
  • the bone marrow fluid extraction step the first bone marrow fluid separated into layers in the separation container The second bone marrow fluid located in the middle layer is extracted.
  • the capacity of the first culture vessel is about 20 to 30 cc
  • the initial planar shape of the first stem cells is substantially circular
  • the planar shape after deformation of the first stem cells is substantially circular.
  • the first stem cell has a flat shape in which the first stem cell extends in an indefinite shape in one direction.
  • the first culture vessel is left statically at a temperature substantially the same as the body temperature for 12 to 24 hours.
  • the first culture vessel in the first observation step of the total planar area, is statically left at a temperature substantially the same as the body temperature for 36 to 48 hours, and about 1 to about 1 to about 36 to 48 hours.
  • the total planar area with respect to the bottom area of the first culture vessel of the first stem cells fixed on the bottom surface of the first culture vessel is observed at intervals of 2 hours.
  • the first target ratio of the total planar area of the first stem cells to the bottom area of the first culture vessel is 70 to 80%.
  • the first stem cells are injected into a separation container, the separation container is placed in a centrifuge and the first stem cells are centrifuged, and in the stem cell second extraction step, the separation is performed. After the first stem cells are centrifuged in layers in the container, the second stem cells located in the lowermost layer are extracted.
  • the capacity of the second culture vessel is about 40 to 60 cc
  • the initial planar shape of the second stem cell is substantially circular
  • the planar shape after deformation of the second stem cell is substantially circular.
  • the second stem cell has a flat shape in which the second stem cell extends in an indefinite shape in one direction.
  • the second culture cell is statically left at a temperature substantially the same as the body temperature for 36 to 48 hours.
  • the deformation from the initial planar shape of the second stem cells in the second culture vessel is observed at intervals of about 1 to 2 hours in a period of ⁇ 48 hours, and when the second stem cells are deformed to the irregular flat shape, the second It is determined that the stem cells have settled on the bottom surface of the second culture container.
  • the second culture container in the second observation step of the total planar area, is statically allowed to stand for 36 to 48 hours at a temperature substantially the same as the body temperature, and about 1-2 for 36 to 48 hours.
  • the total planar area with respect to the bottom area of the second culture vessel of the second stem cells fixed on the bottom surface of the second culture vessel is observed at time intervals.
  • the second target ratio of the total planar area of the second stem cells to the bottom area of the second culture vessel is 88 to 92%.
  • the first and second stem cells are mesenchymal stem cells.
  • the second bone marrow fluid located in the intermediate layer of the first bone marrow fluid separated into layers is extracted, and the second bone marrow fluid is cultured with the culture solution to thereby produce the first stem cells. Is fixed to the bottom surface of the first culture vessel and the first stem cells are proliferated.
  • the total planar area of the first stem cells reaches the first target ratio with respect to the bottom surface area of the first culture vessel, Extracting the first stem cell, extracting the second stem cell located in the lowermost layer of the first stem cells centrifuged in layers, culturing the second stem cell together with the culture medium, and cultivating the second stem cell in the second culture vessel
  • the second stem cell is extracted from the second culture container when the second stem cell is allowed to grow and the second stem cell is proliferated and the total planar area of the second stem cell reaches the second target ratio with respect to the bottom area of the second culture container.
  • the second bone marrow fluid is extracted, and specific second stem cells are extracted from the first stem cells separated in layers, so that proliferation of various stem cells can be prevented.
  • 2 stem cells can be cultured, and pure stem cells from which unnecessary stem cells are removed can be produced. Since the stem cell culture method can only cultivate specific types of stem cells, it is highly effective in treating various diseases and regeneration in regenerative medicine. Stem cells with a high probability of regenerating organs can be cultured.
  • the first culture container After injecting the extracted second bone marrow fluid and culture medium into the first culture container, the first culture container is left statically for a predetermined time in a state where the first culture container is tilted at a predetermined angle, and at a predetermined time interval.
  • the first stem cell is deformed from the initial planar shape to a predetermined planar shape as a result of observing the deformation of the first stem cell from the initial planar shape and observing the deformation of the first stem cell, the first stem cell is subjected to the first culture.
  • the stem cell culture method for extracting the first stem cells from the first culture container has the first culture container inclined at a predetermined angle.
  • the first stem cells can be firmly fixed on the bottom surface of the first culture container by being left statically for a predetermined time in the state, and after the first stem cells have settled on the bottom surface of the first culture container, the first culture container
  • the new culture solution is poured into the first culture vessel while discharging the culture solution therein, and is allowed to stand statically for a predetermined time in a state where the first culture vessel is inclined at a predetermined angle, thereby proliferating the first stem cells. It can be surely promoted.
  • the stem cell culturing method by observing the deformation of the first stem cell in the first culture container from the initial planar shape, the first stem cell can be accurately confirmed on the bottom surface of the first culture container.
  • the reach of the total planar area of the first stem cells with respect to the target ratio can be accurately confirmed. Since the stem cell culture method can reliably establish and proliferate the first stem cells in the first culture container, and can accurately confirm the reach of the total planar area of the first stem cells relative to the first target ratio, Only the first stem cells not containing other stem cells can be cultured, and only a specific type of stem cells (second stem cells) to be manufactured can be cultured while preventing the proliferation of various stem cells.
  • the second culture container After injecting the extracted second stem cells and the culture solution into the second culture container, the second culture container is left to stand statically for a predetermined time with the second culture container inclined at a predetermined angle.
  • the second stem cell When the second stem cell is deformed from the initial planar shape to a predetermined planar shape as a result of observing the deformation of the second stem cell from the initial planar shape and observing the deformation of the second stem cell, the second stem cell is transformed into the second culture vessel.
  • the new culture solution is poured into the second culture vessel while discharging the culture solution in the second culture vessel, and the second culture vessel is tilted at a predetermined angle and allowed to stand for a predetermined time.
  • the second stem cells were observed as a result of observing the total planar area.
  • the second stem cell expands and the planar shape of the second stem cell expands.
  • the stem cell culture method for extracting the second stem cells from the second culture container has the second culture container inclined at a predetermined angle.
  • the second stem cells can be reliably fixed on the bottom surface of the second culture container by being left statically for a predetermined time in the state, and after the second stem cells have settled on the bottom surface of the second culture container,
  • the new culture solution is poured into the second culture vessel while draining the inner culture solution, and the second culture vessel is allowed to stand statically for a predetermined time in a state where the second culture vessel is inclined at a predetermined angle. It can be surely promoted.
  • the stem cell culturing method by observing the deformation of the second stem cells in the second culture container from the initial planar shape, it is possible to accurately confirm the fixation of the second stem cells to the bottom surface of the second culture container.
  • the reach of the total planar area of the 21st stem cell with respect to the target ratio can be confirmed accurately. Since the stem cell culture method can reliably establish and proliferate the second stem cells in the second culture container, and can accurately confirm the reach of the total planar area of the second stem cells relative to the second target ratio, Only second stem cells that do not contain other stem cells can be cultured, and only a specific type of stem cells (second stem cells) to be manufactured can be cultured while preventing the proliferation of various stem cells.
  • 2 to 3 cc of the first bone marrow fluid is collected from the donor, and 2 to 3 cc of the first bone marrow fluid is injected into a separation container extending in the vertical direction, and the separation container is statically left at a temperature substantially equal to the body temperature for a predetermined time. Then, the stem cell culture method for separating the first bone marrow fluid into layers in the vertical direction in the separation container and extracting the second bone marrow fluid located in the intermediate layer of the first bone marrow fluid separated into layers in the separation container is provided.
  • the first bone marrow fluid containing various stem cells is statically left at a temperature substantially the same as the body temperature for a predetermined time and separated into layers in the vertical direction, so that a specific second bone marrow fluid is reliably obtained from the first bone marrow fluid.
  • second stem cells a specific type of stem cells (second stem cells) to be produced can be cultured.
  • Stem cell culture normally requires 150 to 200 cc of bone marrow fluid, but the stem cell culturing method can be performed by collecting 2 to 3 cc of bone marrow fluid from a donor.
  • Stem cells can be cultured, so the time for collecting bone marrow fluid can be greatly reduced, bone marrow fluid can be collected at low cost, and the burden on donors during bone marrow fluid collection can be minimized. can do.
  • the capacity of the first culture vessel is about 20-30 cc, the initial planar shape of the first stem cells is substantially circular, and the first stem cells are deformed in one direction with the deformed planar shape of the first stem cells as a nucleus.
  • the first culture container has a flat shape extended to a regular shape, and the first culture container is statically left at a temperature substantially the same as the body temperature for 12 to 24 hours, and at intervals of about 1 to 2 hours between 12 and 24 hours.
  • the stem cell culturing method of observing deformation of the first stem cell from the initial planar shape and determining that the first stem cell has settled on the bottom surface of the first culture container when the first stem cell is deformed into an irregular flat shape is
  • a large culture container with a capacity exceeding 30 cc is used when the first stem cells are fixed, the first stem cells are difficult to settle on the bottom surface of the container and the growth of the first stem cells is slowed.
  • the first stem cell 1 can be quickly and easily fixed to the bottom of the culture vessel, it is possible to quickly grow the first stem cells in a first culture vessel.
  • the first culture container is left to stand for 12 to 24 hours at a temperature substantially the same as the body temperature, and the first culture container in the first culture container is spaced at about 1 to 2 hours between 12 and 24 hours. Since the deformation of the stem cell from the initial planar shape is observed, the deformation of the first stem cell is not missed, and the fixation of the first stem cell to the bottom surface of the first culture vessel can be confirmed accurately, and the first stem cell is fixed. After confirming the above, by injecting a new culture solution into the first culture vessel while discharging the culture solution in the first culture vessel, the proliferation of the first stem cells can be surely promoted.
  • the stem cell culture method determines that the first stem cells have settled on the bottom surface of the first culture vessel when the first stem cells are deformed into a flat shape having a substantially circular nucleus as the first stem cells that are irregularly extended in one direction.
  • the fixation of the first stem cell to the bottom surface of the first culture vessel can be accurately grasped without overlooking the fixation of the first stem cell to the bottom surface of the first culture vessel.
  • the stem cell culturing method for observing the total planar area with respect to the bottom area of the first culture container is a method of observing the total planar area of the first stem cells fixed on the bottom surface of the first culture container at intervals of about 1 to 2 hours.
  • the total planar area of the stem cell relative to the bottom area of the first culture container can be confirmed accurately, and the total planar area of the first stem cell has reached the first target ratio with respect to the bottom area of the first culture container.
  • the first stem cells can be extracted from the first culture container while maintaining the activity of the first stem cells without mistaking the timing of extracting the first stem cells from the first culture container.
  • the stem cell culture method in which the first target ratio of the total planar area of the first stem cells to the bottom area of the first culture container is 70 to 80% is such that the total planar area of the first stem cells is 80% with respect to the bottom area of the first culture container.
  • the activity of the first stem cells is gradually lost, but when the total planar area of the first stem cells grows to 70-80% of the bottom area of the first culture vessel, Since the first stem cells are extracted from the first culture container, the activity of the first stem cells can be retained, and the first stem cells can be grown while retaining the activity.
  • the first stem cells are injected into the separation container, the separation container is placed in a centrifuge, the first stem cells are centrifuged, the first stem cells are centrifuged in layers in the separation container, and then the first stem cell located in the lowest layer
  • the stem cell culturing method for extracting two stem cells is a method in which first stem cells containing unnecessary hybrid stem cells are separated into layers by centrifugation using a centrifuge, and the first stem cells located in the lowest layer of the first stem cells centrifuged in layers are separated.
  • the volume of the second culture vessel is about 40 to 60 cc, the initial planar shape of the second stem cell is substantially circular, and the second stem cell is deformed in one direction with the deformed planar shape of the second stem cell as a nucleus. It is a flat shape extended into a fixed shape, and the second culture vessel is left to stand for 36 to 48 hours at a temperature substantially the same as the body temperature, and at intervals of about 1 to 2 hours during 36 to 48 hours.
  • the stem cell culturing method for observing the deformation of the second stem cell from the initial planar shape and determining that the second stem cell has settled on the bottom surface of the second culture vessel when the second stem cell is deformed into an irregular flat shape is
  • a large container having a capacity exceeding 60 cc is used when the second stem cells are fixed, the second stem cells are difficult to settle on the bottom surface of the container and the growth of the second stem cells is slowed.
  • the second stem cell second Early and the bottom surface of the nutrient container can be easily fixed, it is possible to quickly grow a second stem cells in a second culture vessel.
  • the second culture container is statically left for 36 to 48 hours at a temperature substantially the same as the body temperature, and the second culture container in the second culture container is spaced at intervals of about 1 to 2 hours during 36 to 48 hours. Since the deformation of the stem cell from the initial planar shape is observed, the deformation of the second stem cell is not missed, and the fixation of the second stem cell to the bottom surface of the second culture vessel can be confirmed accurately, and the second stem cell is fixed. After confirming the above, by injecting a new culture solution into the second culture vessel while discharging the culture solution in the second culture vessel, the proliferation of the second stem cells can be surely promoted.
  • the stem cell culturing method determines that the second stem cell has settled on the bottom surface of the second culture vessel when the second stem cell is deformed into a flat shape having a substantially circular nucleus and the second stem cell extending indefinitely in one direction.
  • the fixation of the second stem cells to the bottom surface of the second culture vessel can be accurately grasped without missing the fixation of the second stem cells to the bottom surface of the second culture vessel.
  • the stem cell culturing method for observing the total planar area with respect to the bottom area of the second culture container is a method of observing the total planar area of the second stem cells fixed on the bottom surface of the second culture container at intervals of about 1 to 2 hours.
  • the total plane area of the stem cell relative to the bottom area of the second culture vessel can be accurately confirmed, and the total plane area of the second stem cell has reached the second target ratio with respect to the bottom area of the second culture vessel.
  • the stem cell culturing method can extract the second stem cells from the second culture container while maintaining the activity of the second stem cells without mistaken timing of extracting the second stem cells from the second culture container.
  • the stem cell culturing method in which the second target ratio of the total planar area of the second stem cells to the bottom area of the second culture container is 88 to 92%, the total planar area of the second stem cells to the bottom area of the second culture container is 92%
  • the second stem cells proliferate beyond this, the activity of the second stem cells is gradually lost, but when the total planar area of the second stem cells grows to 88-92% with respect to the bottom area of the second culture vessel, Since the second stem cell is extracted from the second culture vessel, the activity of the second stem cell can be retained, and a second stem cell having high activity can be produced.
  • stem cell culturing method can cultivate only a specific type of stem cells (second stem cells) having high activity, the effect of treatment for various diseases and the effect of regeneration in regenerative medicine are large, and the various diseases are completely cured.
  • stem cells that are highly established and have a high probability of regenerating various tissues and organs can be cultured.
  • the stem cell culture method in which the first and second stem cells are mesenchymal stem cells is obtained by extracting a specific second bone marrow fluid from the first bone marrow fluid separated in layers and separating the first mesenchymal stem cells in layers.
  • By extracting specific second mesenchymal stem cells unnecessary hybrid mesenchymal stem cells can be removed, and the proliferation of various mesenchymal stem cells can be prevented.
  • Only stem cells (second mesenchymal stem cells) can be cultured. Since the stem cell culturing method can cultivate only specific types of mesenchymal stem cells, it is highly effective in treating various diseases and regeneration in regenerative medicine. Mesenchymal stem cells that are highly established to regenerate tissues and various organs can be cultured.
  • Explanatory drawing which shows an example of a bone marrow fluid separation process.
  • Explanatory drawing of the bone marrow fluid separation process continued from FIG.
  • Explanatory drawing which shows an example of a shape deformation
  • the partial enlarged view which shows an example of the planar shape of a 1st mesenchymal stem cell.
  • the elements on larger scale which show another example of the planar shape of a 1st mesenchymal stem cell.
  • the elements on larger scale which show another example of the planar shape of a 1st mesenchymal stem cell.
  • the elements on larger scale which show another example of the planar shape of a 1st mesenchymal stem cell.
  • Explanatory drawing which shows an example of a stem cell centrifugation process.
  • Explanatory drawing which shows an example of a stem cell 2nd extraction process.
  • Explanatory drawing which shows an example of a shape deformation
  • the elements on larger scale which show an example of the planar shape of a 2nd mesenchymal stem cell.
  • the elements on larger scale which show another example of the planar shape of a 2nd mesenchymal stem cell.
  • the elements on larger scale which show another example of the planar shape of a 2nd mesenchymal stem cell.
  • FIG. 1 is a schematic configuration diagram of a stem cell culture system 10 shown as an example.
  • 2 is an explanatory view showing an example of the bone marrow fluid separation step
  • FIG. 3 is an explanatory view of the bone marrow fluid separation step continued from FIG.
  • FIG. 4 is an explanatory diagram of a bone marrow fluid separation process continued from FIG.
  • the stem cell culturing method uses first bone marrow fluid collected from a plurality of donors (people), bone marrow fluid separation step, bone marrow fluid extraction step, shape deformation first observation step), total planar area first observation step, stem cell first A plurality of types included in the first bone marrow fluid 19 by performing one extraction step, stem cell centrifugation step, stem cell second extraction step, shape deformation second observation step, total planar area second observation step, and stem cell third extraction step
  • Specific types of single-type mesenchymal stem cells are cultured (manufactured) among mesenchymal stem cells.
  • the stem cell culture system 10 includes a computer 11, a barcode reader 12, and an electron microscope 13.
  • the computer 11 includes a central processing unit (CPU or virtual CPU), a storage device (memory or virtual memory), and a large-capacity storage area (hard disk, virtual hard disk, etc.), and a physical OS (operating system) or virtual OS ( Virtual operating system).
  • An input device such as a keyboard 14 and a mouse 15 and an output device such as a display 16 and a printer (not shown) are connected to the computer 11 via an interface (wireless or wired).
  • donor data is managed using a QR code (registered trademark).
  • Donor data includes the donor's name, address, telephone number, date of birth, sex, blood type, height, weight, email address, and the like.
  • a QR code is used as a two-dimensional code, but in addition to the QR code, a matrix type SP code, VeriCode (MaxiCode), CP code, DataMatrix, Code1, AztecCode, Intercode Kuta code and card e can be used.
  • the two-dimensional code used in the system 10 includes all that will be developed in the future.
  • donor data (donor identification information) can be managed by an IC tag (IC chip).
  • the first bone marrow fluid 19 collected from the donor is separated into layers.
  • 2-3 cc (2-3 ml) of the first bone marrow fluid 19 is collected from the sternum or iliac bone (pelvis) of the donors.
  • the first bone marrow fluid 19 is collected by “bone marrow puncture” (Marc), which punctures the bone marrow and sucks the bone marrow fluid (bone marrow blood) after local anesthesia is given to the donor.
  • a person in charge such as a doctor, a nurse, or a researcher activates the system 10 in the computer 11 simultaneously with the collection of the first bone marrow fluid 19, and uses the input device such as the keyboard 14 and the mouse 15 to input the donor data to the computer 11. To enter.
  • the computer 11 generates a unique donor identifier that identifies each donor each time donor data is input (every time the first bone marrow fluid 19 is collected from the donor), and associates the donor data with the donor identifier.
  • Store in the storage area (donor data storage means).
  • the computer 11 converts the input donor data into a QR code (two-dimensional code) by a two-dimensional code writer function (two-dimensional code (QR code) conversion means), and the first to fourth codes on which the QR code is printed
  • the papers 18a to 18d are output (two-dimensional code (QR code) output means), and the QR code is stored (stored) in the storage area in association with the donor identifier that identifies each donor (two-dimensional code (QR)). Code) storage means).
  • the QR code printed on the first code paper 18a printed with NO1 stores the number 1 until the bone marrow fluid separation step and the bone marrow fluid extraction step, and is printed on the second code paper 18b printed with NO2.
  • the QR code stores the number 2 up to the shape deformation first observation step, the total planar area first observation step, and the stem cell first extraction step.
  • the QR code printed on the third code sheet 18c printed with NO3 stores the number 3 up to the stem cell centrifugation step and the stem cell second extraction step, and is printed on the fourth code sheet 18d printed with NO4.
  • the QR code stores the number 4 up to the shape deformation second observation step, the total planar area second observation step, and the stem cell third extraction step.
  • the computer 11 compares the donor data stored in the storage area with the donor data indicated by the QR code read by the barcode reader 12 for each step from the bone marrow fluid separation step to the third stem cell extraction step.
  • 2-3 cc of the first bone marrow fluid 19 collected from the donor is injected (accommodated) into a glass test tube 20 (separation container) extending in the vertical direction.
  • the 2-3 cc first bone marrow fluid 19 contains 0.5 to 1 ml (about 5 ⁇ 10 7 (cells / ml)) of a plurality of types of mesenchymal stem cells.
  • a first code sheet 18a is attached to the outer peripheral surface of the glass test tube 20 into which the first bone marrow fluid 19 is injected.
  • the glass test tube 20 into which the first bone marrow fluid 19 has been injected is set in a test tube stand 21 and accommodated in a thermostatic chamber 22 together with the test tube stand 21.
  • a person in charge such as a doctor, a nurse, or a researcher attaches the first code sheet 18 a on which the QR code is printed on the outer peripheral surface of the glass test tube 20, and then attaches the QR code of the glass test tube 20 to the barcode reader 12. Let me read.
  • the barcode reader 12 is connected to the computer 11 via an interface (wired or wireless).
  • the bar code reader 12 transmits the read QR code to the computer 11.
  • the computer 11 extracts the number 1 and the donor data indicated by the QR code transmitted from the barcode reader 12 from the storage area and reads them into the cache memory, and displays a process first display screen (not shown) on the display 16. .
  • a process first display screen On the process first display screen, number 1 and donor data are displayed, bone marrow fluid separation button, bone marrow fluid extraction button, shape deformation first observation button, total plane area first observation button, stem cell first extraction button, A stem cell centrifugation button, a stem cell second extraction button, a shape deformation second observation button, a total planar area second observation button, a stem cell third extraction button, and a logout button are displayed. Click the logout button if you do not want to culture stem cells. When the logout button is clicked, the system 10 stops in the computer 11.
  • the person in charge clicks the bone marrow fluid separation button displayed on the display 16, and then injects the first bone marrow fluid 19 from the syringe into the glass test tube 20, and the glass test tube 20 into which the first bone marrow fluid 19 is injected is the test tube. Insert (set) into the stand 21.
  • the person in charge accommodates the test tube stand 21 in a thermostatic chamber 22 and statically holds the glass test tube 20 injected with the first bone marrow fluid 19 in the thermostatic chamber 22 for a predetermined time (about 2 hours). (Leave quietly without moving).
  • the temperature in the thermostat 22 is maintained at about 36 to 37 ° C., which is substantially the same as the body temperature.
  • the computer 11 displays the number 1 and the donor data indicated by the QR code printed on the first code sheet 18 a on the display 16, and displays a bone marrow separation in progress message and a bone marrow separation end button on the display 16.
  • the first bone marrow fluid 19 injected into the test tube 20 moves up and down in the test tube 20 as shown in FIG. Separate into several layers (3 layers) in the direction.
  • Stem cell culture usually requires 150 to 200 cc (150 to 200 ml) of bone marrow fluid, but this stem cell culture method requires only 2 to 3 cc of the first bone marrow fluid 19 to be collected from the donor. Since a specific type of mesenchymal stem cells (second mesenchymal stem cells 31) can be cultured (manufactured) in the bone marrow fluid 19, the collection time of the bone marrow fluid 19 can be greatly shortened. It can be collected at a low cost, and the burden on the donor when collecting the bone marrow fluid 19 can be minimized.
  • the bone marrow fluid extraction step is performed after the bone marrow fluid separation step in which the first bone marrow fluid 19 is separated into layers.
  • the bone marrow fluid extraction step the second bone marrow fluid 23 is extracted from the first bone marrow fluid 19 separated in layers.
  • the person in charge confirms that the first bone marrow fluid 19 has been separated into layers, and then clicks the bone marrow fluid separation end button displayed on the display 16.
  • the computer 11 displays a process second display screen (not shown) on the display 16.
  • a process second display screen On the process second display screen, number 1 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction button, shape deformation first observation button, total plane area first observation button, stem cell first extraction button , A stem cell centrifugation button, a stem cell second extraction button, a shape deformation second observation button, a total planar area second observation button, and a stem cell third extraction button are displayed.
  • the person in charge clicks the bone marrow fluid extraction button on the process second display screen and causes the barcode reader 12 to read the QR code of the glass test tube 20.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 1 and the donor data are displayed on the display 16 and a bone marrow fluid separation end message, a bone marrow fluid extraction in progress message, and a bone marrow fluid extraction end button are displayed on the display. .
  • the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge takes out the test tube stand 21 from the thermostatic chamber 22, pulls out the glass test tube 20 from the test tube stand 21, and removes the second bone marrow fluid 23 present in a specific layer of the first bone marrow fluid 19 separated into layers. Extract.
  • the person in charge extracts (sucks) the second bone marrow fluid 23 having a layer thickness of 3 to 4 mm located in the intermediate layer of the first bone marrow fluid 19 separated into layers using a syringe (not shown).
  • the second bone marrow fluid 23 having a layer thickness of 3 to 4 mm located in the intermediate layer of the first bone marrow fluid 19 separated into layers using a pipette (not shown) is extracted (suctioned).
  • the first bone marrow fluid 19 containing various mesenchymal stem cells is separated into layers (three layers) in the vertical direction and then identified from the first bone marrow fluid 19 by using a syringe or pipette.
  • the (middle) second bone marrow fluid 23 can be reliably extracted, and unnecessary mesenchymal stem cells contained in the first bone marrow fluid 19 can be removed.
  • FIG. 5 is an explanatory view showing an example of the shape deformation first observation step
  • FIG. 6 is a side view of the first flat culture vessel 25 (first culture vessel).
  • FIG. 7 is a partially enlarged view showing an example of the planar shape of the first mesenchymal stem cell 35
  • FIG. 8 is a partially enlarged view showing another example of the planar shape of the first mesenchymal stem cell 35. 7 and 8 show enlarged images of the planar shape of the first mesenchymal stem cell 35 taken by the electron microscope 13.
  • the shape deformation first observation step is performed.
  • the second bone marrow fluid 23 and the culture solution 24 are injected (contained) into the first flat culture vessel 25 (first culture vessel) (cell culture vessel), and the inside of the culture vessel 25 is substantially equal to body temperature.
  • a person in charge such as a doctor, nurse or researcher extracts a specific second bone marrow fluid 23 from the first bone marrow fluid 19 and then clicks a bone marrow fluid extraction end button displayed on the display 16.
  • the computer 11 displays a process third display screen (not shown) on the display 16.
  • number 1 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation button, total planar area first observation button, stem cell first extraction A button, a stem cell centrifuge button, a stem cell second extraction button, a shape deformation second observation button, a total planar area second observation button, and a stem cell third extraction button are displayed.
  • the person in charge attaches the second code sheet 18b on which the QR code is printed to the bottom surface 36 (outer surface of the bottom wall) of the first flat culture vessel 25.
  • the shape deformation first observation button on the process third display screen is clicked to cause the barcode reader 12 to read the QR code of the culture vessel 25.
  • the QR code is transmitted from the barcode reader 12 to the computer 11, the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 2 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation in progress message, shape deformation A first observation end button is displayed on the display. If the donor data do not match, the computer 11 displays an error message and a culture stop message on the display 16.
  • the first flat culture vessel 25 used in the first deformation deformation observation step is a flat vessel made of transparent glass or transparent plastic and having a small volume and a bottom surface 36 having a predetermined area and having a substantially square shape in plan view. is there.
  • the first flat culture vessel 25 has a top portion 26 and a central portion 27 located between the bottom portion 28 and the top bottom portions 26 and 28, and an injection port 29 formed in the top portion 26.
  • the injection port 29 is watertightly closed by a lid 30.
  • the first flat culture vessel 25 has a capacity of about 20-30 cc (preferably 25 cc) and a bottom area of about 25-36 mm 2 .
  • the first flat culture vessel 25 has a side length of 5 to 6 mm.
  • a flat vessel having a small volume and a bottom surface 28 having a predetermined area can be used as the first flat culture vessel 25, a flat vessel having a small volume and a bottom surface 28 having a predetermined area can be used.
  • the person in charge removes the lid 30 from the injection port 29, and injects (accommodates) the second bone marrow fluid 23 sucked into the syringe or pipette into the culture vessel 25 from the injection port 29 of the culture vessel 25, as well as the syringe or pipette.
  • the culture solution 24 sucked into the culture vessel 25 is injected (stored) into the culture vessel 25 from the injection port 29 of the culture vessel 25, and the injection port 29 is closed by the lid 30.
  • the culture solution 24 includes a mineral salt to which penicillin (about 100 U / ml), amphotericin (about 100 ng / ml), streptomycin (about 100 mg / ml), L-glutamine (about 2 to 4 ml), and 20% fetal bovine serum are added. Solutions and amino acids are included.
  • the first mesenchymal stem cells 35 contained in the second bone marrow fluid 23 injected into the first flat culture vessel 25 are cultured with the culture solution 24 while being fixed on the bottom surface 36 of the culture vessel 25 over time. It gradually grows (differentiates) on the bottom surface 36 of the container 25 to form a colony.
  • the person in charge injects the second bone marrow fluid 23 and the culture solution 24 into the first flat culture vessel 25 and then installs (sets) the culture vessel 25 in the sample holder 31 of the electron microscope 13.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the bottom portion 28 of the first flat culture vessel 25, and the bottom portion 28 of the culture vessel 25 is held in a state where it is lifted by the spacer 33.
  • the culture vessel 25 is held at a predetermined angle so that the bottom portion 28 of the vessel 25 is on the top and the top portion 26 (injection port 29) of the culture vessel 25 is on the bottom.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the top portion 26 of the first flat culture vessel 25, and the top portion 26 of the culture vessel 25 is held in a state where it is lifted by the spacer 33.
  • the inclination angle ⁇ 1 of the first flat culture vessel 25 with respect to the upper surface 32 of the sample holder 31 is in the range of 2 to 5 °, and preferably in the range of 2 to 3 °.
  • the second bone marrow fluid 23 and the culture solution 24 are cultured in the first flat culture vessel 25 by inclining the first flat culture vessel 25 at the inclination angle with respect to the upper surface 32 of the sample holder 31. 25, and the water pressure between the second bone marrow fluid 23 and the culture fluid 24 is increased on the top 26 side (or the bottom 28 side) of the culture vessel 25 and the first pressure increases.
  • the mesenchymal stem cells 35 are concentrated on the bottom surface 36 side of the culture vessel 25, thereby increasing the activity of the first mesenchymal stem cells 35, and the first mesenchymal stem cells 35 are easily and easily formed on the bottom surface 36 of the culture vessel 25. It can be fixed quickly.
  • the electron microscope 13 is connected to the computer 11 via an interface (wired or wireless).
  • the electron microscope 13 has an image capturing function for capturing an enlarged image of a subject using an image sensor, and also has an image transmission function for transmitting the enlarged image to the computer 11.
  • the electron microscope 13 takes a magnified image of the planar shape of the first mesenchymal stem cells 35 contained in the second bone marrow fluid 23 injected into the first flat culture vessel 25 at intervals of about 1 to 2 hours, and the photographed stem cells 35 enlarged images having a planar shape are transmitted to the computer 11 at intervals of about 1 to 2 hours.
  • the image capturing interval and the image transmission interval in the electron microscope 13 can be freely set within 1 to 2 hours by an input device such as a keyboard 14 or a mouse 15.
  • the computer 11 stores (stores) the enlarged image of the planar shape of the first mesenchymal stem cell 35 transmitted from the electron microscope 13 and the imaging time in a storage area in a state associated with the donor identifier (stem cell image storage means). .
  • the computer 11 displays on the display 16 the enlarged image of the planar shape of the first mesenchymal stem cell 35 transmitted from the electron microscope 13 and the imaging time.
  • the person in charge confirms (views) the enlarged image of the planar shape of the first mesenchymal stem cell 35 displayed on the display 16 at intervals of about 1 to 2 hours during 12 to 24 hours.
  • the change in the planar shape of the contained stem cell 35 is observed.
  • the person in charge may directly observe the change in the planar shape of the first mesenchymal stem cell 35 from the observation window of the electron microscope 13 at intervals of about 1 to 2 hours during 12 to 24 hours.
  • the initial planar shape of the first mesenchymal stem cell 35 is substantially circular, and when the planar shape of the stem cell 35 is substantially circular, the stem cell 35 is not fixed on the bottom surface 36 (bottom wall inner surface) of the first flat culture vessel 25. In other words, the stem cell 27 has not started proliferation (differentiation).
  • the planar shape after deformation of the first mesenchymal stem cell 27 is a flat shape in which the stem cell 27 extends (expands) in one direction (predetermined direction) in an irregular shape with a substantially circular shape before fixing as a nucleus.
  • the stem cell 27 has started to proliferate (differentiate) by being fixed on the bottom surface 36 (bottom wall inner surface) of the flat culture vessel 25.
  • the person in charge observes the enlarged image of the planar shape of the first mesenchymal stem cell 35 displayed on the display 16 as a substantially circular shape as a result of the observation in the first deformation deformation observation step. Then, it is determined that the stem cells 35 are not settled on the bottom surface 36 (bottom wall inner surface) of the first flat culture vessel 25, and the change in the planar shape of the stem cells 35 is continuously observed at intervals of about 1 to 2 hours.
  • the person in charge has a planar shape of the first mesenchymal stem cell 35 displayed on the display 16 having an irregular shape with a substantially circular shape to a substantially circular shape as shown in FIG. When deformed into a flat shape, it is determined that the stem cell 35 has settled on the bottom surface 35 of the first flat culture vessel 25.
  • the stem cell 35 becomes difficult to settle on the bottom surface of the container and the growth of the stem cell 35 is slow.
  • the stem cell 35 can be easily fixed on the bottom surface 36 of the culture container 25 by using the first flat culture container 25 having the above-described capacity and the bottom surface area. 27 can be propagated quickly.
  • the first flat culture vessel 25 is left statically at a temperature substantially the same as the body temperature for 12 to 24 hours, and the first flat culture vessel 25 in the culture vessel 25 is spaced at intervals of about 1 to 2 hours during 12 to 24 hours. Since the deformation of the mesenchymal stem cell 35 from the initial planar shape is observed, the deformation of the stem cell 35 is not missed, and the fixation of the stem cell 35 to the bottom surface 36 of the culture vessel 25 can be confirmed accurately.
  • FIG. 9 is a partially enlarged view showing another example of the planar shape of the first mesenchymal stem cell 35.
  • FIG. 9 shows an enlarged image of the planar shape of the first mesenchymal stem cell 35 taken by the electron microscope 13.
  • the first mesenchymal stem cell 35 (first stem cell) is deformed from a substantially circular shape (initial planar shape) to an indeterminate flat shape with the substantially circular shape as a nucleus, and After the first deformation process for confirming the fixing of the flat culture container 25 (first culture container) to the bottom surface 36, the first observation process for the total planar area is performed.
  • the culture solution 24 injected into the first flat culture vessel 25 is discharged from the culture vessel 25, and a new culture solution 24 is injected (accommodated) into the culture vessel 25.
  • the first flat culture vessel 25 is statically left at 36 ° C. for 36 to 48 hours at a temperature substantially the same as the body temperature (about 37 ° C.), it is about 1 for 36 to 48 hours.
  • the total planar area of the first mesenchymal stem cells 35 fixed on the bottom surface 36 of the culture vessel 25 with respect to the bottom surface area of the culture vessel 25 is observed with the electron microscope 13 at intervals of ⁇ 2 hours. It is determined whether or not the first target ratio has been reached with respect to the bottom surface area.
  • the first target ratio of the total planar area of the first mesenchymal stem cells 35 to the bottom area of the first flat culture vessel 25 is 70 to 80% (70 to 80% confluent).
  • a person in charge such as a doctor, a nurse, or a researcher confirms that the first mesenchymal stem cell 35 contained in the second bone marrow fluid 23 has settled on the bottom surface 36 of the first flat culture vessel 25 and then is displayed on the display 16.
  • the computer 11 displays a process fourth display screen (not shown) on the display 16.
  • bone marrow fluid separation end message On the process fourth display screen, number 2 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area first observation button, stem cell first An extraction button, a stem cell centrifuge button, a stem cell second extraction button, a shape deformation second observation button, a total planar area second observation button, and a stem cell third extraction button are displayed.
  • the person in charge clicks the second stem cell observation button on the process fourth display screen, removes the first flat culture vessel 25 from the sample holder 31 of the electron microscope 16, and reads the QR code of the culture vessel 25 with the barcode reader 12. Make it.
  • the QR code is transmitted from the barcode reader 12 to the computer 11, the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 2 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area A first observation message and a total plane area first observation end button are displayed on the display 16.
  • the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge discharges the culture solution 24 injected into the first flat culture vessel 25 in the first deformation deformation observation process from the culture vessel 25 using a syringe or pipette, and a new culture solution 24 sucked into the syringe or pipette. Is injected (accommodated) into the culture vessel 25.
  • the new culture solution 24 is the same as that injected in the shape deformation first observation step.
  • the person in charge injects a new culture solution 24 into the first flat culture vessel 25 and then installs (sets) the culture vessel 25 on the sample holder 31 of the electron microscope 13.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the bottom portion 28 of the first flat culture vessel 25, and the bottom portion 28 of the culture vessel 25 is held in a state where it is lifted by the spacer 33.
  • the culture vessel 25 is held at a predetermined angle so that the bottom portion 28 of the vessel 25 is on the top and the top portion 26 (injection port 29) of the culture vessel 25 is on the bottom (see FIG. 6).
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the top portion 26 of the first flat culture vessel 25, and the top portion 26 of the culture vessel 25 is held in a state where it is lifted by the spacer 33.
  • the inclination angle ⁇ 1 of the first flat culture vessel 25 with respect to the upper surface 32 of the sample holder 31 is in the range of 2 to 5 °, and preferably in the range of 2 to 3 °.
  • the stem cell 35 is injected by injecting a new culture solution 24 into the culture vessel 25 while discharging the culture solution 24 in the first flat culture vessel 25. Can be surely promoted.
  • the first mesenchymal stem cell 35 and the culture solution 24 are contained in the first flat culture vessel 25 by inclining the first flat culture vessel 25 at the inclination angle with respect to the upper surface 32 of the sample holder 31.
  • the pressure is biased toward the top portion 26 (or the bottom portion 26 side) of the culture vessel 25, and the water pressure between the first mesenchymal stem cell 35 and the culture solution 24 is large at the top portion 26 side (or the bottom portion 26 side) of the culture vessel 25.
  • the first mesenchymal stem cells 35 are concentrated on the bottom surface 36 side of the culture vessel 25, thereby increasing the activity of the first mesenchymal stem cells 35, and the first mesenchymal stem cells are formed on the bottom surface 36 of the culture vessel 25. 35 can be propagated (differentiated) easily and rapidly.
  • the electron microscope 13 takes a magnified image of the planar shape of the first mesenchymal stem cell 35 in the first flat culture vessel 25 at intervals of about 1 to 2 hours, and the magnified image of the planar shape of the photographed stem cell 35 is approximately 1 Transmit to the computer 11 at intervals of ⁇ 2 hours.
  • the computer 11 stores (stores) the enlarged image of the planar shape of the first mesenchymal stem cell 35 transmitted from the electron microscope 13 and the imaging time in a storage area in a state associated with the donor identifier (stem cell image storage means). .
  • the computer 11 displays on the display 16 the enlarged image of the planar shape of the first mesenchymal stem cell 35 transmitted from the electron microscope 13 and the imaging time.
  • the person in charge confirms (views) the enlarged image of the planar shape of the first mesenchymal stem cells 35 displayed on the display 16 at intervals of about 1 to 2 hours during 36 to 48 hours, and the first flat culture vessel 25 While observing the total planar area of the stem cells 35 fixed on the bottom surface 36 of the culture vessel 25 with respect to the bottom area of the culture vessel 25, the total planar area of the stem cells 25 is the first target ratio (70-80% confluent with respect to the bottom surface area of the culture vessel 25) ) Is reached.
  • the person in charge directly observes the total planar area of the first mesenchymal stem cell 35 with respect to the bottom area of the first flat culture vessel 25 from the observation window of the electron microscope 13 at intervals of about 1 to 2 hours during 36 to 48 hours. Then, it may be determined whether or not the total planar area of the stem cells 35 has reached the first target ratio (70 to 80% confluent) with respect to the bottom area of the culture vessel 25.
  • the person in charge measures the total planar area relative to the bottom area of the first flat culture vessel 25 of the first mesenchymal stem cell 35 displayed on the display 16 as a result of the observation in the total planar area first observation step. If the first target ratio (70 to 80% confluent) is not reached, the total planar area of the stem cells 35 relative to the bottom area of the culture vessel 25 is continuously observed at intervals of about 1 to 2 hours. In addition, when the total planar area of the first mesenchymal stem cell 35 reaches the first target ratio with respect to the entire area of the enlarged image displayed on the display 16, the bottom area of the first flat culture vessel 25 of the stem cell 35 is reached. It is assumed that the total plane area for reaches the first target ratio.
  • the first mesenchymal stem cell 35 proliferates on the bottom surface 36 (bottom wall inner surface) of the first flat culture vessel 25 to form a colony, and the plane of the stem cell 35
  • the shape expands as shown in FIG. 9, when the total planar area of the stem cells 35 displayed on the display 16 with respect to the bottom area of the culture vessel 25 reaches the first target ratio (70 to 80% confluent), A stem cell first extraction step for extracting the stem cells 35 from the culture vessel 25 is performed.
  • the first mesenchymal stem cells 35 grown (differentiated) in the first flat culture vessel 25 are extracted from the culture vessel 25.
  • a person in charge such as a doctor, a nurse, or a researcher displays the display 16 Click the button for ending the first observation of the total planar area displayed in (1).
  • the computer 11 displays a process fifth display screen (not shown) on the display 16.
  • bone marrow fluid separation end message On the process 5th display screen, number 2 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation second observation end message, total planar area first observation end message, stem cell number 1 extraction button, stem cell centrifuge button, stem cell second extraction button, shape deformation second observation button, total plane area second observation button, stem cell third extraction button are displayed.
  • the person in charge clicks the stem cell first extraction button on the process fifth display screen, and causes the barcode reader 12 to read the QR code of the first flat culture vessel 25.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 2 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation second observation end message, total plane area
  • a first observation end message, a stem cell first extraction in progress message, and a stem cell first extraction end button are displayed on the display 16. If the donor data do not match, the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge discharges the culture solution 24 injected in the first flat culture vessel 25 from the culture vessel 25 using a syringe or pipette and rinses the culture vessel 25 with PBS. After that, the trypsin solution sucked into the syringe or pipette is injected into the culture container 25.
  • the trypsin solution is injected into the first flat culture vessel 25
  • the first mesenchymal stem cells 35 fixed on the bottom surface 36 of the culture vessel 25 are detached from the bottom surface 36 by the trypsin solution and float on the water surface of the trypsin solution.
  • the person in charge aspirates the stem cells 35 using a pipette, and accommodates the stem cells 35 in the pipette.
  • the total planar area of the first mesenchymal stem cell 35 with respect to the bottom area of the first flat culture vessel 25 is accurately confirmed by observing the total planar area of the first mesenchymal stem cell 35 at intervals of about 1 to 2 hours. It is possible to reliably grasp that the total planar area of the stem cells 27 has reached the first target ratio with respect to the bottom surface area of the culture vessel 25.
  • FIG. 10 is an explanatory diagram showing an example of a stem cell centrifugation step.
  • a stem cell centrifugation step is performed after the stem cell first extraction step in which the first mesenchymal stem cells 35 are extracted from the first flat culture vessel 25.
  • the first mesenchymal stem cells 35 extracted in the stem cell first extraction step are centrifuged in layers by a centrifuge 37.
  • a person in charge such as a doctor, a nurse, or a researcher sucks the first mesenchymal stem cell 35 from the first flat culture vessel 25 into the pipette, and then clicks a stem cell first extraction end button displayed on the display 16.
  • the computer 11 displays a process sixth display screen (not shown) on the display 16.
  • process sixth display screen number 2 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total planar area first observation end message, stem cell number 1 Extraction end message, stem cell centrifuge button, stem cell second extraction button, shape deformation second observation button, total plane area second observation button, stem cell third extraction button are displayed.
  • the person in charge attaches the third code sheet 18c on which the QR code is printed to the outer peripheral surface of the glass test tube 38 into which the first mesenchymal stem cells 35 are injected.
  • the stem cell centrifuge button on the process 6th display screen is clicked, and the barcode reader 12 reads the QR code of the glass test tube 38.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 3 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area A first observation end message, a stem cell first extraction end message, a stem cell centrifugation in progress message, and a stem cell centrifugation end button are displayed on the display 16. If the donor data do not match, the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge injects (accommodates) the first mesenchymal stem cells 35 in the pipette into the glass test tube 38 and installs (sets) the glass test tube 38 in the centrifuge 37.
  • the person in charge removes the glass test tube 38 from the centrifuge 37 after the first mesenchymal stem cell 35 is centrifuged by the centrifuge 37 for a predetermined time.
  • the first mesenchymal stem cells 35 in the glass test tube 38 are separated into two layers in the vertical direction by a centrifuge 37.
  • FIG. 11 is an explanatory diagram showing an example of the second stem cell extraction step.
  • the stem cell second extraction step is performed after the stem cell centrifugation step in which the first mesenchymal stem cells 35 are separated into layers.
  • second mesenchymal stem cells 39 located in the lower layer (lowermost layer) are extracted from the first mesenchymal stem cells 35 separated in layers.
  • a person in charge such as a doctor, nurse or researcher separates the first mesenchymal stem cell 35 in a layered manner in the vertical direction by the centrifuge 37, and then removes the glass test tube 38 from the centrifuge 37 and displays the display 16. Click the stem cell centrifugation end button displayed in.
  • the computer 11 displays a process seventh display screen (not shown) on the display 16.
  • a process seventh display screen (not shown) on the display 16.
  • number 3 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, shape deformation first observation end message, stem cell first An extraction end message, a stem cell centrifugation end message, a stem cell second extraction button, a shape deformation second observation button, a total planar area second observation button, and a stem cell third extraction button are displayed.
  • the person in charge clicks the stem cell second extraction button on the process seventh display screen, and causes the barcode reader 12 to read the QR code of the glass test tube 38.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 3 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area
  • a first observation end message, a stem cell first extraction end message, a stem cell centrifugation end message, a stem cell second extraction in progress message, and a stem cell second extraction end button are displayed on the display 16.
  • the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge extracts the second mesenchymal stem cell 39 present in the lower layer (lowermost layer) of the first mesenchymal stem cells 35 separated in layers in the glass test tube 38.
  • the person in charge extracts (sucks) the second mesenchymal stem cell 39 located in the lower layer (lowermost layer) of the first mesenchymal stem cells 35 separated into layers using a syringe.
  • the second mesenchymal stem cell 39 located in the lower layer (lowermost layer) of the first mesenchymal stem cells 35 separated into layers using a pipette is extracted (sucked).
  • the first mesenchymal stem cell 35 containing unnecessary stem cells is centrifuged in a centrifuge 37 to be separated into layers in the vertical direction, and the lower layer (lowermost layer) of the stem cells 35 centrifuged in layers.
  • the specific second mesenchymal stem cell 39 can be reliably extracted from the stem cell 35, and unnecessary mesenchymal stem cells are removed from the stem cell 35. Can do.
  • the stem cell 35 is extracted from the culture vessel 25 when the total planar area of the stem cell 35 grows to 70 to 80% with respect to the bottom surface area of the culture vessel 25, so that the activity of the stem cell 35 is retained.
  • the stem cell 35 can be expanded in a state where the activity is maintained, and the second mesenchymal stem cell 39 having activity can be extracted from the stem cell 35.
  • FIG. 12 is an explanatory view showing an example of the second deformation deformation observation step
  • FIG. 13 is a side view of the second flat culture vessel 25 (second culture vessel).
  • FIG. 14 is a partially enlarged view showing an example of the planar shape of the second mesenchymal stem cell 39
  • FIG. 15 is a partially enlarged view showing another example of the planar shape of the second mesenchymal stem cell 39. 14 and 15 show enlarged images of the planar shape of the second mesenchymal stem cell 39 taken by the electron microscope 13.
  • the shape deformation second observation step is performed.
  • the second mesenchymal stem cell 39 and the culture solution 24 are injected (contained) into a second flat culture vessel 34 (second culture vessel) (cell culture vessel), and the culture vessel 34 is set to a body temperature.
  • the second container in the culture vessel 34 is left at about the same temperature (about 37 ° C.) for 36 to 48 hours statically (moved quietly without moving) at intervals of about 1 to 2 hours during 36 to 48 hours.
  • the deformation of the mesenchymal stem cell 39 (second stem cell) from the initial planar shape is observed with the electron microscope 13 to determine whether the stem cell 39 has settled on the bottom surface 45 of the culture vessel 34.
  • a fourth code sheet 18d on which a QR code specifying a donor is printed is attached to the bottom surface 45 (outer surface of the bottom wall) of the second flat culture vessel 34 into which the second mesenchymal stem cells 39 and the culture solution 24 are injected. .
  • a person in charge such as a doctor, a nurse, or a researcher extracts a specific second mesenchymal stem cell 39 from the first mesenchymal stem cell 35 and then clicks a stem cell second extraction end button displayed on the display 16. .
  • the computer 11 displays a process eighth display screen (not shown) on the display 16.
  • process eighth display screen number 4 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total planar area first observation end message, stem cell number 1 extraction end message, stem cell centrifugation end message, stem cell second extraction end message, shape deformation second observation button, total plane area second observation button, stem cell third extraction button are displayed.
  • the person in charge attaches the fourth code sheet 18d on which the QR code is printed to the bottom surface 45 (outer surface of the bottom wall) of the second flat culture vessel 34.
  • the shape deformation second observation button on the process eighth display screen is clicked to cause the barcode reader 12 to read the QR code of the culture vessel 34.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 4 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area
  • a first observation end message, a stem cell first extraction end message, a stem cell centrifugation end message, a stem cell second extraction end message, a shape deformation second observation message, and a shape deformation second observation end button are displayed on the display 16.
  • the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge injects (accommodates) the second mesenchymal stem cell 39 sucked into the syringe or pipette into the second flat culture vessel 34 and injects the culture solution 24 sucked into the syringe or pipette into the culture vessel 34 ( Contain).
  • the second flat culture vessel 34 (second culture vessel) used in the second deformation deformation observation step is made of transparent glass or transparent plastic, and has a small volume and a planar shape with a bottom surface 45 having a predetermined area. The area of the bottom surface 45 is about twice that of the first flat culture vessel 25 (first culture vessel).
  • the second flat culture vessel 34 has a top portion 40 and a center portion 41 located between the bottom portion 42 and the top bottom portions 40, 42, and an inlet 43 formed in the top portion 40.
  • the inlet 43 is watertightly closed by a lid 44.
  • the second flat culture vessel 34 (second culture vessel) has a capacity of about 40 to 60 cc (preferably 50 cc) and a bottom area of about 50 to 72 mm 2 .
  • the second flat culture vessel 26 has a length of one side of about 7 to 8.5 mm.
  • a flat vessel having a small volume and a bottom surface 45 having a predetermined area and having a circular or elliptical planar shape may be used as the second flat culture vessel 34.
  • the culture solution 24 is the same as that injected in the shape deformation first observation step.
  • the second mesenchymal stem cell 39 injected into the culture vessel 34 is cultured on the bottom surface 45 of the culture vessel 34 while being fixed to the bottom surface 45 of the culture vessel 34 over time, and gradually grows (differentiates) on the bottom surface 45 of the culture vessel 34. To form colonies.
  • the person in charge removes the lid 44 from the injection port 43 and injects (accommodates) the second mesenchymal stem cell 39 sucked into the pipette from the injection port 43 of the second flat culture vessel 34 into the culture vessel 34.
  • the culture solution 24 sucked into the syringe or pipette is injected (stored) into the culture vessel 34 from the injection port 43 of the culture vessel 34, and the injection port 43 is closed with a lid 44.
  • the person in charge injects the second mesenchymal stem cell 39 and the culture solution 24 into the second flat culture vessel 34, and then installs (sets) the culture vessel 34 in the sample holder 31 of the electron microscope 13.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the bottom portion 42 of the second flat culture vessel 34, and the bottom portion 42 of the culture vessel 34 is held by the spacer 33.
  • the culture vessel 34 is held in a state inclined at a predetermined angle such that the bottom portion 42 of the culture vessel is on the top and the top 40 (injection port 43) of the culture vessel 34 is on the bottom.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the top 40 of the second flat culture vessel 34, and the top 40 of the culture vessel 34 is held in a state where it is lifted by the spacer 33.
  • the culture vessel 34 may be held at a predetermined angle so that the top 40 of the vessel 34 is on the top and the bottom 42 of the culture vessel 34 is on the bottom.
  • the inclination angle ⁇ 2 of the second flat culture vessel 34 with respect to the upper surface 32 of the sample holder 31 is in the range of 2 to 5 °, and preferably in the range of 2 to 3 °.
  • the second mesenchymal stem cells 39 and the culture solution 24 are contained in the second flat culture vessel 34 by inclining the second flat culture vessel 34 at the inclination angle with respect to the upper surface 32 of the sample holder 31.
  • the culture vessel 34 is biased toward the top 40 (or the bottom 42), and the water pressure between the second mesenchymal stem cell 39 and the culture solution 24 is large on the top 40 (or the bottom 42) of the culture vessel 25.
  • the second mesenchymal stem cells 39 concentrate on the bottom surface 45 side of the culture vessel 34, thereby increasing the activity of the second mesenchymal stem cells 39, and the second mesenchymal stem cells are formed on the bottom surface 45 of the culture vessel 34. 39 can be fixed easily and quickly.
  • the electron microscope 13 takes a magnified image of the planar shape of the second mesenchymal stem cell 39 injected into the second flat culture vessel 34 at intervals of about 1 to 2 hours, and the magnified image of the planar shape of the photographed stem cell 39 is taken. It is transmitted to the computer 11 at intervals of about 1 to 2 hours.
  • the computer 11 stores (stores) the planar enlarged image of the second mesenchymal stem cell 39 transmitted from the electron microscope 13 and the imaging time in a storage area in a state associated with the donor identifier (stem cell image storage means). .
  • the computer 11 displays the enlarged image of the planar shape of the second mesenchymal stem cell 39 transmitted from the electron microscope 13 and the imaging time on the display 16.
  • the person in charge confirms (views) the enlarged image of the planar shape of the second mesenchymal stem cell 39 displayed on the display 16 at intervals of about 1 to 2 hours during 36 to 48 hours. Observe changes.
  • the person in charge may directly observe the change in the planar shape of the second mesenchymal stem cell 39 from the observation window of the electron microscope 13 at intervals of about 1 to 2 hours during 36 to 48 hours.
  • the initial planar shape of the second mesenchymal stem cell 39 is approximately circular, and when the planar shape of the stem cell 39 is approximately circular, the stem cell 39 is not fixed on the bottom surface 45 (bottom wall inner surface) of the second flat culture vessel 34. In other words, the stem cell 39 has not started to grow (differentiate).
  • the planar shape after deformation of the second mesenchymal stem cell 39 is a flat shape in which the stem cell 39 extends indefinitely in one direction with a substantially circular shape before fixing as a nucleus, and the stem cell 39 is a bottom surface 45 of the second flat culture vessel 34.
  • the stem cell 39 has started to proliferate (differentiate) and has settled on the inner surface of the bottom wall.
  • the person in charge observes the stem cell 39 when the planar shape of the second mesenchymal stem cell 39 displayed on the display 16 is observed in a substantially circular shape as a result of the observation in the shape deformation second observation step. Is not fixed on the bottom surface 45 (inner surface of the bottom wall) of the second flat culture vessel 34, and the change in the planar shape of the stem cells 39 is continuously observed at intervals of about 1 to 2 hours.
  • the person in charge has a planar shape of the second mesenchymal stem cell 39 displayed on the display 16 having an irregular shape with a substantially circular shape to a substantially circular shape as shown in FIG. When deformed into a flat shape, it is determined that the stem cell 39 has settled on the bottom surface 45 of the second flat culture vessel 34.
  • the stem cell 39 becomes difficult to settle on the bottom face of the container and the growth of the stem cell 39 is slow.
  • the stem cell 39 can be easily fixed on the bottom surface 45 of the culture container 34 by using the second flat culture container 34 having the capacity and the bottom surface area. 39 can be rapidly propagated.
  • the second flat culture vessel 34 is statically left at a temperature substantially the same as the body temperature for 36 to 48 hours, while the second flat culture vessel 34 is kept in the culture vessel 34 at intervals of about 1 to 2 hours during 36 to 48 hours. Since the deformation of the mesenchymal stem cell 39 from the initial planar shape is observed, the deformation of the stem cell 39 is not missed, and the fixation of the stem cell 39 to the bottom surface 45 of the culture vessel 34 can be confirmed accurately.
  • FIG. 16 is a partially enlarged view showing another example of the planar shape of the second mesenchymal stem cell 39
  • FIG. 17 is a diagram showing an example of preservation of the second mesenchymal stem cell 39.
  • FIG. 16 shows an enlarged image of the planar shape of the second mesenchymal stem cell 39 taken by the electron microscope 13.
  • the second mesenchymal stem cell 39 (second stem cell) is deformed from a substantially circular shape (initial planar shape) to an indeterminate flat shape with the substantially circular shape as a nucleus, and 2 After the third observation step for stem cells that has confirmed the fixation on the bottom surface 45 of the flat culture vessel 34 (second culture vessel), the second observation step for the total planar area is performed.
  • the culture solution 24 injected into the second flat culture vessel 34 is discharged from the culture vessel 34 and a new culture solution 24 is injected (accommodated) into the culture vessel 34.
  • the second flat culture vessel 34 is allowed to stand statically (without moving) for 36 to 48 hours at a temperature substantially the same as the body temperature (about 36 to 37 ° C.), and for 36 to 48 hours.
  • the total planar area of the second mesenchymal stem cells 39 fixed on the bottom surface 45 of the culture vessel 34 with respect to the bottom surface area of the culture vessel 34 is observed with an electron microscope 13 at intervals of about 1 to 2 hours, and the total planar area of the stem cells 39 is cultured.
  • the second target ratio of the total planar area of the second mesenchymal stem cells 39 to the bottom area of the second flat culture vessel 34 is 88 to 92% (88 to 92% confluent).
  • a person in charge such as a doctor, nurse, researcher, or the like presses the shape deformation second observation end button displayed on the display 16. Click.
  • the computer 11 displays a process ninth display screen (not shown) on the display 16.
  • number 4 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total planar area first observation end message, stem cell number 1 extraction end message, stem cell centrifugation end message, stem cell second extraction end message, shape deformation second observation end message, total plane area second observation button, stem cell third extraction button are displayed.
  • the person in charge clicks the total plane area second observation button on the process ninth display screen, removes the second flat culture vessel 34 from the sample holder 31 of the electron microscope 13, and reads the QR code of the culture vessel 34 with the barcode reader 12. To read.
  • the computer 11 displays the donor data displayed on the display 16 (donor data read into the memory) and the donor data indicated by the QR code read by the barcode reader.
  • the number 4 and the donor data are displayed on the display 16 and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area number 1 observation end message, stem cell first extraction end message, stem cell centrifugation end message, stem cell second extraction end message, shape deformation second observation end message, total plane area second observation message, total plane area second observation end button Is displayed on the display 16.
  • the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge discharges the culture solution 24 injected into the second flat culture vessel 34 in the second observation step of the total planar area from the culture vessel 34 using a syringe or pipette, and a new culture solution sucked into the syringe or pipette. 24 is injected (accommodated) into the culture vessel 34.
  • the new culture solution 24 is the same as that injected in the shape deformation first observation step.
  • the person in charge injects a new culture solution 24 into the second flat culture vessel 34 and then installs (sets) the culture vessel 34 on the sample holder 31 of the electron microscope 13.
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the bottom portion 42 of the second flat culture vessel 34, and the bottom portion 42 of the culture vessel 34 is held by the spacer 33.
  • the culture vessel 34 is held in a state inclined at a predetermined angle so that the bottom portion 42 of the tube is on the top and the top portion 40 (injection port 43) of the culture vessel 34 is on the bottom (see FIG. 13).
  • a spacer 33 is interposed between the upper surface 32 of the sample holder 31 of the electron microscope 13 and the top 40 of the second flat culture vessel 34, and the top 40 of the culture vessel 34 is held in a state where it is lifted by the spacer 33.
  • the culture vessel 34 may be held at a predetermined angle so that the top 40 of the vessel 34 is on the top and the bottom 42 of the culture vessel 34 is on the bottom.
  • the inclination angle ⁇ 2 of the second flat culture vessel 34 with respect to the upper surface 32 of the sample holder 31 is in the range of 2 to 5 °, and preferably in the range of 2 to 3 °.
  • the stem cell 39 is injected by injecting a new culture solution 24 into the culture vessel 34 while discharging the culture solution 24 in the second flat culture vessel 34. Can be surely promoted.
  • the second mesenchymal stem cells 39 and the culture solution 24 are contained in the second flat culture vessel 34 by inclining the second flat culture vessel 34 at the inclination angle with respect to the upper surface 32 of the sample holder 31. It is biased toward the top 40 side (or bottom 42 side) of the culture vessel 34, and the water pressure between the second mesenchymal stem cell 39 and the culture solution 24 is large on the top 40 side (or bottom 42 side) of the culture vessel 34.
  • the second mesenchymal stem cells 39 concentrate on the bottom surface 45 side of the culture vessel 34, thereby increasing the activity of the second mesenchymal stem cells 39, and the second mesenchymal stem cells are formed on the bottom surface 45 of the culture vessel 34. 39 can be propagated (differentiated) easily and rapidly.
  • the electron microscope 13 takes a magnified image of the planar shape of the second mesenchymal stem cell 39 in the second flat culture vessel 34 at intervals of about 1 to 2 hours, and the magnified image of the planar shape of the photographed stem cell 39 is approximately 1 Transmit to the computer 11 at intervals of ⁇ 2 hours.
  • the computer 11 stores (stores) the planar enlarged image of the second mesenchymal stem cell 39 transmitted from the electron microscope 13 and the imaging time in a storage area in a state associated with the donor identifier (stem cell image storage means). .
  • the computer 11 displays the enlarged image of the planar shape of the second mesenchymal stem cell 39 transmitted from the electron microscope 13 and the imaging time on the display 16.
  • the person in charge checks (views) the enlarged image of the planar shape of the second mesenchymal stem cell 39 displayed on the display 16 at intervals of about 1 to 2 hours during 36 to 48 hours, and the second flat culture vessel 34 While observing the total planar area of the stem cells 39 fixed to the bottom surface 45 of the culture vessel 34 with respect to the bottom area of the culture vessel 34, the total planar area of the stem cells 39 is the second target ratio (82-92% confluent with respect to the bottom surface area of the culture vessel 34 ) Is reached.
  • the person in charge directly observes the total planar area of the second mesenchymal stem cell 39 relative to the bottom surface area of the second flat culture vessel 34 from the observation window of the electron microscope 13 at intervals of about 1 to 2 hours during 36 to 48 hours. Then, it may be determined whether or not the total planar area of the stem cells 39 has reached the second target ratio (88 to 92% confluent) with respect to the bottom area of the culture vessel 34.
  • the person in charge has a total planar area with respect to the bottom area of the second flat culture vessel 34 of the second mesenchymal stem cell 39 displayed on the display 16 as shown in FIG. Is not reached the second target ratio (88 to 92% confluent), the total planar area of the stem cells 39 relative to the bottom area of the culture vessel 34 is continuously observed at intervals of about 1 to 2 hours.
  • the total planar area of the second mesenchymal stem cell 39 reaches the second target ratio with respect to the entire area of the enlarged image displayed on the display 16, the bottom area of the second flat culture vessel 34 of the stem cell 39 It is assumed that the total plane area with respect to reaches the second target ratio.
  • the second mesenchymal stem cell 39 proliferates on the bottom surface 45 (bottom wall inner surface) of the second flat culture vessel 34 (second culture vessel), and the stem cell 39 forms a colony. Then, as the planar shape of the stem cell 39 is expanded, as shown in FIG. 16, the total planar area of the stem cell 39 displayed on the display 16 with respect to the bottom surface area of the culture vessel 34 becomes the second target ratio (88 to 92% confluent). ), A third stem cell extraction step for extracting the stem cells 39 from the culture vessel 34 is performed. In the third stem cell extraction step, the second mesenchymal stem cells 39 grown (differentiated) in the second flat culture vessel 34 are extracted from the culture vessel 34.
  • the total planar area of the second mesenchymal stem cell 39 relative to the bottom area of the second flat culture vessel 34 can be accurately confirmed by observing the total planar area at intervals of about 1 to 2 hours. It is possible to reliably grasp that the total planar area of the stem cells 39 has reached the second target ratio with respect to the bottom area of the culture vessel 34.
  • a person in charge such as a doctor, nurse, researcher, or the like displays the display 16 Click the button for ending the second observation of the total plane area displayed in (1).
  • the computer 11 displays a process tenth display screen (not shown) on the display 16.
  • bone marrow fluid separation end message On the process 10th display screen, number 4 and donor data are displayed, bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total planar area first observation end message, stem cell number 1 extraction end message, stem cell centrifugation end message, stem cell second extraction end message, shape deformation second observation end message, total planar area second observation end message, stem cell third extraction button are displayed.
  • the person in charge clicks the stem cell third extraction button on the process tenth display screen, and causes the barcode reader 12 to read the QR code of the second flat culture vessel 34.
  • the QR code is transmitted from the barcode reader 12 to the computer 11, the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12.
  • the number 4 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area First observation end message, stem cell first extraction end message, stem cell centrifugation end message, stem cell second extraction end message, shape deformation second observation end message, total planar area second observation end message, stem cell third extraction end button Display on display 16If the donor data do not match, the computer 11 displays an error message and a culture stop message on the display 16.
  • the person in charge discharges the culture solution 24 injected into the second flat culture vessel 34 in the second observation step of the total planar area from the culture vessel 34 using a syringe or pipette, and after washing the inside of the culture vessel 34 with PBS.
  • the trypsin solution sucked into the syringe or pipette is injected into the culture vessel 34.
  • the trypsin solution is injected into the second flat culture vessel 34, the second mesenchymal stem cells 39 fixed on the bottom surface 45 of the culture vessel 34 are detached from the bottom surface 45 by the trypsin solution and float on the water surface of the trypsin solution.
  • the person in charge aspirates the second mesenchymal stem cell 39 using a pipette, and injects (accommodates) the stem cell 39 into the storage container 46 from the pipette.
  • the second mesenchymal stem cell 39 injected into the storage container 46 is a specific type (substantially single type) of pure mesenchymal stem cells having an activity from which unnecessary mesenchymal stem cells have been removed.
  • the person in charge injects the second mesenchymal stem cell 39 from the pipette into the storage container 46, and then attaches the fourth code sheet 18 d on which the QR code is printed to the outer peripheral surface of the storage container 46.
  • the person in charge clicks the stem cell third extraction end button on the process tenth display screen displayed on the display 16 and causes the barcode reader 12 to read the QR code of the storage container 46, and then the second mesenchymal stem cell 39.
  • the second mesenchymal stem cell 39 is stored in the refrigerator 47 at about 3-4 ° C.
  • the computer 11 displays the donor data (donor data read into the memory) displayed on the display 16 and the donor indicated by the QR code read by the barcode reader 12. If the donor data match, the number 4 and the donor data are displayed on the display 16, and the bone marrow fluid separation end message, bone marrow fluid extraction end message, shape deformation first observation end message, total plane area A first observation end message, a stem cell first extraction end message, a stem cell centrifugation end message, a stem cell second extraction end message, a shape deformation second observation end message, a total planar area second observation end message, and a stem cell third extraction end message. Display on display 16 To.
  • the stem cell 39 is extracted from the culture vessel 34 when the total planar area of the stem cell 39 grows to 88 to 92% with respect to the bottom surface area of the culture vessel 34, so that the activity of the stem cell 39 is retained.
  • the stem cell 39 can be grown in a state where the activity is maintained.
  • the second bone marrow fluid 23 located in the intermediate layer of the first bone marrow fluid 19 separated into layers is extracted, and the second bone marrow fluid 23 is cultured together with the culture solution 24 to obtain the first mesenchymal system.
  • the first mesenchymal stem cells 35 are grown while the stem cells 35 (first stem cells) are fixed on the bottom surface 36 of the first flat culture vessel 25 (first culture vessel), and the total planar area of the first mesenchymal stem cells 35 is increased.
  • the first target ratio is reached with respect to the bottom surface area of the first flat culture vessel 25, the first mesenchymal stem cell 35 is extracted from the culture vessel 25 and centrifuged in layers.
  • a second mesenchymal stem cell 39 (second stem cell) located in the lower layer (the lowermost layer) is extracted, and the second mesenchymal stem cell 39 is cultured together with the culture solution 24 to obtain the second mesenchymal stem cell 39.
  • 2 Increase the number of second mesenchymal stem cells 39 while fixing to the bottom surface 45 of the flat culture vessel 34
  • the second mesenchymal stem cell 39 is extracted from the culture vessel 34.
  • stem cell culturing method can cultivate only specific types of stem cells (second mesenchymal stem cells 39), the effect of treatment for various diseases and the effect of regeneration in regenerative medicine are great, and the various diseases are completely cured.
  • Stem cells that are highly established and have a high probability of regenerating various tissues and organs can be cultured.

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Abstract

Le problème décrit par la présente invention est de proposer un procédé de culture de cellules souches capable d'empêcher la prolifération de différentes cellules souches et de cultiver uniquement des types spécifiques de cellules souches. La solution selon l'invention consiste en un procédé de culture de cellules souches dans lequel un second aspirat de moelle osseuse 23, qui constitue une couche intermédiaire, est extrait d'un premier aspirat de moelle osseuse 19 séparé en couches ; le second aspirat de moelle osseuse 23 est cultivé avec un milieu de culture et des premières cellules souches sont fixées sur une surface de fond d'une première cuve de culture ; quand une surface totale des premières cellules souches atteint une première proportion cible par rapport à la zone de surface de fond de la première cuve de culture, les premières cellules souches sont extraites de la première cuve de culture ; des secondes cellules souches de couche supérieure sont extraites des premières cellules souches séparées en couches et les secondes cellules souches sont cultivées avec un milieu de culture, les secondes cellules souches étant fixées sur une surface de fond d'une seconde cuve de culture ; et, lorsqu'une surface totale des secondes cellules souches atteint un second rapport cible par rapport à la surface de fond de la seconde cuve de culture, les secondes cellules souches sont extraites de la seconde cuve de culture.
PCT/JP2016/086206 2015-12-07 2016-12-06 Procédé de culture de cellules souches WO2017099067A1 (fr)

Priority Applications (8)

Application Number Priority Date Filing Date Title
US15/754,618 US20180291346A1 (en) 2015-12-07 2016-12-06 Stem cell culturing method
MYPI2018700248A MY188404A (en) 2015-12-07 2016-12-06 Stem cell culturing method
SG11201800503YA SG11201800503YA (en) 2015-12-07 2016-12-06 Stem cell culturing method
RU2018107552A RU2732238C2 (ru) 2015-12-07 2016-12-06 Способ культивирования стволовых клеток
CN201680060399.XA CN108350426A (zh) 2015-12-07 2016-12-06 干细胞培养方法
EP16872965.5A EP3315603A4 (fr) 2015-12-07 2016-12-06 Procédé de culture de cellules souches
PH12018500160A PH12018500160A1 (en) 2015-12-07 2018-01-22 Stem cell culturing method
HK18113748.8A HK1254737A1 (zh) 2015-12-07 2018-10-26 幹細胞培養方法

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JP2015-238349 2015-12-07
JP2016218144A JP6153653B2 (ja) 2015-12-07 2016-11-08 幹細胞培養方法
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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006109757A (ja) * 2004-10-14 2006-04-27 Olympus Corp 骨髄由来間葉系幹細胞の培養方法
WO2011111787A1 (fr) * 2010-03-10 2011-09-15 株式会社ツーセル Préparation de cellules contenant des cellules souches mésenchymateuses et procédé de production de celles-ci
WO2015021189A1 (fr) * 2013-08-06 2015-02-12 Regenerative Sciences, Llc Dispositif et procédés d'isolement de partie adipeuse de moelle osseuse
JP2015084686A (ja) * 2013-10-29 2015-05-07 オリンパス株式会社 細胞培養用ジグおよび自動培地交換システム
JP2015186465A (ja) 2014-03-27 2015-10-29 株式会社吉田製作所 幹細胞培養装置、および幹細胞培養方法

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006109757A (ja) * 2004-10-14 2006-04-27 Olympus Corp 骨髄由来間葉系幹細胞の培養方法
WO2011111787A1 (fr) * 2010-03-10 2011-09-15 株式会社ツーセル Préparation de cellules contenant des cellules souches mésenchymateuses et procédé de production de celles-ci
WO2015021189A1 (fr) * 2013-08-06 2015-02-12 Regenerative Sciences, Llc Dispositif et procédés d'isolement de partie adipeuse de moelle osseuse
JP2015084686A (ja) * 2013-10-29 2015-05-07 オリンパス株式会社 細胞培養用ジグおよび自動培地交換システム
JP2015186465A (ja) 2014-03-27 2015-10-29 株式会社吉田製作所 幹細胞培養装置、および幹細胞培養方法

Non-Patent Citations (4)

* Cited by examiner, † Cited by third party
Title
"Jiko Soshiki Yurai Kansaibo Delivery System o Oyo shita Undoki Saisei Iryo no Kaihatsu", FUKUOKA INDUSTRY SCIENCE TECHNOLOGY FOUNDATION, SANGAKUKAN KYODO KENKYU KAIHATSU JIGYO KENKYU SEIKA HOKOKUSHO, 2006, pages 1 - 27, XP009509718, Retrieved from the Internet <URL:http://www.ist.or.jp/randd/seikahoukokusyo/H18-2.pdf> [retrieved on 20170222] *
"Toriatsukai Setsumeisho No.: LCT-IMS, Human Mesenchymal Stem Cell , Hito Kan'yokei Kansaibo Baiyo Kanren Seihin Seihin Joho", KANKYO MECHATRONICS JIGYOBU BIOMEDICAL-BU, September 2016 (2016-09-01), pages 1 - 4 *
See also references of EP3315603A4 *
YUKIO NAKAMURA: "Mokutekibetsu de Eraberu Saibo Baiyo Protocol", JIKKEN IGAKU BESSATSU, 20 March 2012 (2012-03-20), pages 139 - 148, XP009509903, ISBN: 978-4-7581-0183-7 *

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