The present invention relates to cell culture and a technology of measuring the thickness of a cell sheet.
Regenerative medicine is drawing attention as an innovative medical treatment for realizing a fundamental remedy of a disabled or deficient cell, tissue, or organ. A regenerative tissue used in regenerative medicine is: produced by exogenously purifying a cell taken from a body of a patient himself or another person and subjecting the cell to processes of amplification, organization, and the like; and transplanted in the body of the patient. Tissue engineering technology is advancing year after year and a method of sheeting cells of a single species and a method of arranging a plurality of cell species sterically and constructing an organ artificially are developed. The regenerative medicine of a cornea and an esophagus using a cell sheet advances in particular. A cell sheet is evaluated by measuring the number of cells in a cell sheet suitable for transplant, a living cell percentage, a thickness, and others before the cell sheet is transplanted and only a cell sheet that has cleared a standard is used for the transplant. In the measurements, the thickness of a cell sheet has been evaluated destructively by selecting a sample from several manufactured cell sheets.
Parent Literature 1 proposes a method of introducing a reference material into a culture medium in a culture vessel and computing the thickness of a cell on the basis of a refraction index.
Patent Literature 1: Japanese Unexamined Patent Application Publication No. 2009-106272
It has been difficult, however, to apply the method of evaluating the thickness of a cell described in the patent literature to a cell sheet in the confluent state of cells or in the state of stacking cells in layers.
An object of the present invention is to provide a culture vessel, a measuring device, a culture method, and a culture apparatus for solving the above problem.
In order to attain the above object, the present invention provides a culture vessel including a lid, a sidewall, a culture plane, and a float installed in the interior and capable of being uplifted by a culture medium over the culture plane.
Further, in order to attain the above object, the present invention provides a measuring device including a culture vessel including a lid, a sidewall, a culture plane, and a float installed in the interior and capable of being uplifted by a culture medium over the culture plane, a sensor head installed outside the culture vessel and measuring a positional variation of the float in the vertical direction in the interior of the culture vessel, and a controller to process a measurement signal of the sensor head.
Furthermore, in order to attain the above object, the present invention provides a culture method for culturing a cell culture sheet while the positional variation in the vertical direction is measured on the basis of a measurement signal of a sensor head installed outside a culture vessel having a float capable of being uplifted by a culture medium over a culture plane in the interior and measuring a positional variation of the float in the vertical direction in the interior of the culture vessel.
In addition, in order to attain the above object, the present invention provides a culture apparatus including a culture vessel having a float capable of being uplifted by a culture medium over a culture plane in the interior, a sensor head installed outside the culture vessel and measuring a positional variation of the float in the vertical direction in the interior of the culture vessel, a controller to process a measurement signal of the sensor head, a culture medium exchange unit to discharge/inject the culture medium to the culture vessel, a mixed gas exchange unit to discharge/inject a mixed gas to the culture vessel, and a control section to control the controller, the culture medium exchange unit, and the mixed gas exchange unit.
The present invention makes it possible to measure the thickness of a cell sheet nondestructively during culturing.
Various embodiments according to the present invention will be explained hereunder in reference to the drawings. Here, in the drawings related to the embodiments, an identical constituent component is represented by an identical numeral.
A first embodiment is an embodiment of a cell culture vessel enabling the thickness of a cell sheet to be measured nondestructively during culturing and a cell sheet thickness measuring device using the cell culture vessel. A configuration example of a culture vessel and a measuring device according to the first embodiment is explained in reference to
In
A culture vessel according to the present embodiment includes a sidewall 3 of the culture vessel, a lid 4 of the culture vessel, a culture plane 5 of the culture vessel, and a float 8 installed in the interior. The float 8 is structured so as to be uplifted by a culture medium in the culture vessel, and has a mark to measure a positional variation in the vertical direction in the culture vessel from a culture vessel exterior, namely a reference section for position detection. The mark or the reference section for position detection can be configured, for example, by containing a pigment in a resin used as a float and using the bottom plane, or by pigmenting the bottom plane of a float.
A culture medium 6 is injected into a culture space of the culture vessel and cells 7 are cultured. The floating-ring-type float 8 is arranged in the culture vessel and can be uplifted by the culture medium 6. The float 8 includes a resin or the like similar to the culture vessel as it will be described later. A cell sheet thickness measuring device according to the present embodiment includes the culture vessel and further a sensor head 10 and a controller 11. The sensor head 10 includes a light-emitting element 10A and a light-receiving element 10B. The sensor head 10 has the light-emitting element 10A to irradiate the float 8 with light and the light-receiving element 10B to receive secondary light such as reflected light coming from the float. Irradiation rays are emitted from the light-emitting element 10A and reflected rays reflected by hitting the float 8 can be detected by the light-receiving element 10B. When the vertical position of the float 8 varies, the angle of reflected rays 9B detected by the light-receiving element 10B varies and hence the positional variation of the float 8 in the vertical direction can be identified by the variation of the angle.
A principle for measuring a cell sheet thickness in cell sheet culture according to the present embodiment is explained sequentially hereunder in reference to
(A) in
Successively, when prescribed culture medium exchange time comes, the used culture medium in the culture vessel is discharged from the culture vessel (ST4). The float touches a cell top plane thereby and the position of the float in the vertical direction is measured (ST5). The thickness of the cell sheet is identified from the measurement difference between ST5 and ST1 (ST6). Then whether or not the thickness has reached a prescribed cell sheet thickness is judged (ST7), a new culture medium is injected into the culture vessel if the thickness does not reach the prescribed value (ST8), and the position of the float in the vertical direction is measured (ST9). The depth of the injected culture medium is identified from the measurement difference between ST9 and ST5 (ST10) and the culture is continued (ST11). As a result, by the configuration according to the present embodiment of measuring the position of a float in the vertical direction, it is possible not only to measure the thickness of a cultured cell sheet but also to appropriately measure the depth of an injected culture medium, and hence it is possible to culture a cell sheet efficiently by adjusting the quantity of an injected culture medium. By carrying out the steps ST4 to ST11 described above in sequence, a cell sheet is cultured to a prescribed thickness. After the thickness of the cell sheet is confirmed at ST7 to have reached a prescribed thickness, a new culture medium is injected into the culture vessel (ST12) and the culture is finished.
In a cell sheet thickness measuring device according to the present embodiment, a material having a lower specific gravity than a culture medium is desirably used for a float member. When polystyrene (PS) or polycarbonate (PC) which is used frequently for cell culture is used for example, a float is formed desirably so as to have a hollow structure or a foamed structure in order to make the specific gravity smaller than the specific gravity 1 of a culture medium. Further, a material such as a resin having a high moisture resistance and being compatible with sterilization treatment is desirably used for a culture vessel member and a float member stated above. As a result, the cell sheet thickness measuring device can be compatible with sterilization treatment such as a γ ray treatment, and applicable to physical and chemical applications and regenerative medicine applications.
When a laser beam is used in a sensor head according to the present embodiment, pulse irradiation of the laser beam having a wavelength of 350 to 1,000 nm is desirable in order to reduce the influence on a cell to be cultured.
Meanwhile, although light such as laser beam is used for detecting the vertical position of a float in the present embodiment, the principle of a magnetic field, an electric field, or a contact type is also applicable. Further, although fixed-point measurement of a sensor head is exemplified, measurement at an arbitrary point of a cell sheet can be carried out by installing a sensor head having a movable mechanism. Furthermore, although a round culture dish is exemplified in the present embodiment, a culture dish of another shape such as a square is also applicable by the same principle. Moreover, although single-layered culture is exemplified in the present embodiment, a culture vessel of double-layered culture is also applicable by the same principle.
By a culture vessel and a measuring device according to the first embodiment described above in detail, it is possible to measure a cell sheet thickness nondestructively during culturing.
As a second embodiment, an embodiment of a measuring device to simultaneously measure cell sheet thicknesses in a culture vessel base in which a plurality of cell culture vessels are installed is explained.
According to the second embodiment, it is possible to measure cell sheet thicknesses nondestructively while a plurality of cell sheets are cultured simultaneously.
A third embodiment is an embodiment of a culture method and a culture apparatus of a cell sheet by using a culture vessel and a cell sheet thickness measuring device in the respective embodiments explained above. That is, the present embodiment is an embodiment of a culture method and a culture apparatus for exchanging a culture medium and culturing a cell sheet by using a culture medium exchange unit to discharge/inject a culture medium to the aforementioned culture vessel and a mixed gas exchange unit to discharge/inject a mixed gas; and an embodiment of an automatic culture apparatus including a culture vessel having a float capable of being uplifted by a culture medium over a culture plane in the interior, a sensor head installed outside the culture vessel and measuring a positional variation of the float in the vertical direction in the interior of the culture vessel, a controller to process a measurement signal of the sensor head, a culture medium exchange unit to discharge/inject a culture medium to the culture vessel, a mixed gas exchange unit to discharge/inject a mixed gas to the culture vessel, and a control section to control the controller, the culture medium exchange unit, and the mixed gas exchange unit and culturing a cell sheet while the culture medium is exchanged.
A culture apparatus according to the present embodiment can control more uniform culture quality by arranging the mechanisms of automatic cell dissemination, automatic culture medium exchange, automatic observation, and others as well as can culture a cell while a cell sheet thickness is measured nondestructively in the same manner as the first and second embodiments described earlier.
Although various embodiments according to the present invention have heretofore been explained, the present invention is not limited to the above embodiments as long as the feature of the present invention is not hindered and includes various other modifications that can be thought within the range of the technological thought of the present invention. For example, the above embodiments are explained in detail for better understanding the present invention and the present invention is not necessarily limited to the cases having all the configurations explained above. Further, it is possible to replace a part of a configuration of an embodiment with a configuration of another embodiment and add a configuration of an embodiment to a configuration of another embodiment. Furthermore, it is possible to add, delete, or replace another configuration to, from, or with a part of a configuration of an embodiment.
Further, although the configurations, the function, the control terminal, and others that are described above have been explained on the basis of the case of using software for achieving some or all of them, it goes without saying that some or all of them may also be achieved by hardware, for example by designing an integrated circuit.
1. Front sectional view of culture vessel
2. Plan view of culture vessel
3. Sidewall of culture vessel
4. Lid of culture vessel
5. Culture plane of culture vessel
6. Culture medium
7. Cell
8. Float of floating-ring type
9A Irradiation rays
9B Reflected rays
10. Sensor head
11. Controller
12. Cruciform float
13. Net-type float
14. Culture vessel base
15. Sensor head X-axis transfer mechanism
16. Sensor head Y-axis transfer mechanism
17. Microscope
18. Discharge port of culture vessel
19. Injection port of culture vessel
20. Culture medium exchange unit
21. Discharge port of mixed gas
22. Supply port of mixed gas
23. Mixed gas exchange unit
24. Incubator
25. Temperature control unit
26. Humidity control unit
27. Purity control unit
28. Control terminal
Filing Document | Filing Date | Country | Kind |
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PCT/JP2015/052667 | 1/30/2015 | WO | 00 |