CULTURE METHOD OF FISH GERM STEM CELLS
20250027038 · 2025-01-23
Assignee
- KYUSHU UNIVERSITY, NATIONAL UNIVERSITY CORPORATION (Fukuoka-shi, Fukuoka, JP)
- UNIVERSITY OF MIYAZAKI (Miyazaki-shi, Miyazaki, JP)
Inventors
- Tapas CHAKRABORTY (Fukuoka, JP)
- Kohei OHTA (Fukuoka, JP)
- Michiya MATSUYAMA (Fukuoka, JP)
- Sipra MOHAPATRA (Fukuoka, JP)
- Issei YAHIRO (Fukuoka, JP)
- Kodai MIZUMURA (Fukuoka, JP)
- Naoki Nagano (Miyazaki, JP)
Cpc classification
C12N2501/115
CHEMISTRY; METALLURGY
C12N2500/12
CHEMISTRY; METALLURGY
C12N2500/90
CHEMISTRY; METALLURGY
C12N5/0037
CHEMISTRY; METALLURGY
International classification
Abstract
The present invention provides a method for culturing a fish germ stem cell, including culturing the stem cell on a surface coated with vitronectin and in a medium containing the following 8 components: (1) insulin, (2) selenium, (3) transferrin, (4) L-ascorbic acid, (5) FGF2, (6) TGF, (7) NaHCO.sub.3 or KHCO.sub.3, (8) L-glutamine.
Claims
1. A method for culturing a fish germ stem cell, comprising culturing the fish stem cell on a surface coated with vitronectin and in a medium comprising: (1) insulin, (2) selenium, (3) transferrin, (4) L-ascorbic acid, (5) FGF2, (6) TGF, (7) NaHCO.sub.3 or KHCO.sub.3, (8) L-glutamine.
2. The method according to claim 1, wherein the medium is a serum-free medium.
3. The method according to claim 1, wherein the method is performed under feeder-free conditions.
4. The method according to claim 1, comprising a step of reseeding at 0.510.sup.5 to 6.510.sup.5 cells/cm.sup.2 at the time of passage.
5. A kit for culturing a fish germ stem cell, comprising vitronectin, and the following 8 components: (1) insulin, (2) selenium, (3) transferrin, (4) L-ascorbic acid, (5) FGF2, (6) TGF, (7) NaHCO.sub.3 or KHCO.sub.3, (8) L-glutamine.
6. The kit according to claim 5, further comprising a basal medium.
7. The kit according to claim 5, further comprising sodium chloride when (7) is KHCO.sub.3.
8. The method according to claim 2, wherein the method is performed under feeder-free conditions.
9. The method according to claim 2, comprising a step of reseeding at 0.510.sup.5 to 6.510.sup.5 cells/cm.sup.2 at the time of passage.
10. The method according to claim 3, comprising a step of reseeding at 0.510.sup.5 to 6.510.sup.5 cells/cm.sup.2 at the time of passage.
11. The method according to claim 1, wherein the medium comprises: (1) insulin: 0.1-200 mg/L (2) selenium: 0.1-100 g/L (3) transferrin: 0.1-200 mg/L (4) L-ascorbic acid: 1-500 mg/L (5) FGF2: 1-500 g/L (6) TGF: 0.01-20 g/L (7) NaHCO.sub.3: 0.01-20 g/L (8) L-glutamine: 1-500 mg/L.
12. The method according to claim 1, wherein the medium comprises: (1) insulin: 10-60 mg/L (2) selenium: 11-63 g/L (3) transferrin: 5-32 mg/L (4) L-ascorbic acid: 32-192 mg/L (5) FGF2: 50-300 g/L (6) TGF: 1-6 g/L (7) KHCO.sub.3: 1.36-2.15 g/L (8) L-glutamine: 50-300 mg/L (9) NaCl: 60.5-363 mg/L.
13. The method according to claim 1, wherein the basal medium in the medium is DMEM/F12 medium.
14. The method according to claim 1, wherein the pH of the medium is at around 7 to 7.5.
15. The method according to claim 1, wherein the medium further comprises at least one component selected from the group consisting of amino acids, antibiotics, minerals, and buffers.
16. The method according to claim 1, wherein a period for culturing the fish germ stem cell is 1 to 100 days or more than 100 days.
17. The method according to claim 1, wherein the fish is Beloniformes, Clupeiformes, or Perciformes.
18. The kit according to claim 5, further comprising sodium chloride when (7) is KHCO.sub.3.
19. The kit according to claim 6, wherein the basal medium is DMEM/F12 medium.
20. The kit according to claim 5, further comprising at least one component selected from the group consisting of amino acids, antibiotics, minerals, and buffers.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0055] The present invention is described in detail below.
1. Culture Method of Fish Germ Stem Cells
[0056] The present invention provides a method for culturing a fish germ stem cell, including culturing the fish stem cell on a surface coated with vitronectin and in a medium containing 8 specific components ((1) insulin, (2) selenium, (3) transferrin, (4) L-ascorbic acid, (5) FGF2, (6) TGF, (7) NaHCO.sub.3 or KHCO.sub.3, and (8) L-glutamine) (hereinafter sometimes referred to as the method of the present invention).
[0057] In the method of the present invention, all 8 components contained in the medium can be produced by methods known per se, and commercially available products may also be used. The species from which insulin, transferrin, FGF2, and TGF are derived is not particularly limited as long as the desired effect of the present invention is obtained, and it is preferably human. These components may be of biological origin, or may be recombinant proteins. When (7) is NaHCO.sub.3, commercially available Essential 8 supplement (Thermo scientific, Catalogue no A1517001), which is a mixture of components (1) to (8), is also preferably used.
[0058] The amounts of these 8 components to be added to the medium are not particularly limited as long as the desired effect of the present invention is obtained. In one embodiment, the following amounts can be adopted. [0059] (1) insulin: 0.1-200 mg/L (preferably, 1-150 mg/L, 5-100 mg/L, 5-90 mg/L, 10-80 mg/L, or 10-70 mg/L) [0060] (2) selenium: 0.1-100 g/L (preferably, 1-90 g/L, 5-80 g/L, 5-70 g/L, 10-60 g/L, or 10-50 g/L) [0061] (3) transferrin: 0.1-200 mg/L (preferably, 1-150 mg/L, 1-100 mg/L, 1-90 mg/L, 5-80 mg/L, or 5-70 mg/L) [0062] (4) L-ascorbic acid: 1-500 mg/L (preferably, 1-400 mg/L, 5-300 mg/L, 10-250 mg/L, 10-200 mg/L, or 10-150 mg/L) [0063] (5) FGF2: 1-500 g/L (preferably, 1-400 g/L, 5-350 g/L, 10-300 g/L, 20-250 g/L, or 50-250 g/L) [0064] (6) TGF: 0.01-20 g/L (preferably, 0.1-10 g/L, 0.5-10 g/L, 0.5-8 g/L, 0.7-8 g/L, or 0.8-6 g/L) [0065] (7) NaHCO.sub.3: 0.01-20 g/L (preferably, 0.1-10 g/L, 0.5-10 g/L, 0.5-8 g/L, 0.7-8 g/L, or 0.8-6 g/L) [0066] (8) L-glutamine: 1-500 mg/L (preferably, 1-400 mg/L, 5-350 mg/L, 10-300 mg/L, 20-250 mg/L, or 50-250 mg/L)
[0067] In one embodiment, NaHCO.sub.3 may be replaced by the same amount of KHCO.sub.3.
[0068] In another embodiment, when KHCO.sub.3 is used in the method of the present invention, it is preferable to add sodium chloride (NaCl). In one embodiment with the addition of NaCl, the following concentrations can be preferably used: [0069] (1) insulin: 10-60 mg/L (preferably, 10-58 mg/L, 10-50 mg/L, 11-45 mg/L, 15-30 mg/L, or 15-25 mg/L) [0070] (2) selenium: 11-63 g/L (preferably, 13-60 g/L, 15-50 g/L, 17-40 g/L, 18-30 g/L, or 19-25 g/L) [0071] (3) transferrin: 5-32 mg/L (preferably, 5.5-30 mg/L, 5.5-28 mg/L, 6-26 mg/L, 8-25 mg/L, or 9-15 mg/L) [0072] (4) L-ascorbic acid: 32-192 mg/L (preferably, 40-150 mg/L, 45-100 mg/L, 50-90 mg/L, 55-80 mg/L, or 57-75 mg/L) [0073] (5) FGF2: 50-300 g/L (preferably, 60-200 g/L, 70-180 g/L, 75-150 g/L, 80-120 g/L, or 90-110 g/L) [0074] (6) TGF: 1-6 g/L (preferably, 1.1-5 g/L, 1.5-4 g/L, 1.6-3.5 g/L, 1.7-2.8 g/L, or 1.8-2.6 g/L) [0075] (7) KHCO.sub.3: 1.36-2.15 g/L (preferably, 1.4-2.00 g/L, 1.5-1.90 g/L, 1.5-1.85 g/L, 1.6-1.83 g/L, or 1.65-1.80 g/L) [0076] (8) L-glutamine: 50-300 mg/L (preferably, 60-200 mg/L, 80-180 mg/L, 70-150 mg/L, 80-120 mg/L, or 90-110 mg/L) [0077] (9) NaCl: 60.5-363 mg/L (preferably, 65-350 mg/L, 80-300 mg/L, 90-200 mg/L, 100-150 mg/L, or 110-130 mg/L)
[0078] Vitronectin (or may be vitronectin fragment as long as the functions thereof are maintained) to be used in the present invention may be produced by a method known per se, or a commercially available product may also be used. The species from which vitronectin or a fragment thereof is derived is not particularly limited as long as the desired effect of the present invention is obtained, and it is preferably human.
[0079] Coating of the surface of culture containers such as well, dish, and the like with vitronectin can also be performed by a method known per se. As one embodiment, vitronectin is dispersed in PBS, and the PBS is dispensed to a culture container and incubated at 37 C. for 1 hr, whereby the inner surface of the culture container can be coated with vitronectin.
[0080] The medium that can be used in the method of the present invention is not particularly limited as long as the desired effect of the present invention is obtained, and any basal medium can be used. In one embodiment, the following media can be used preferably. Dulbecco's Modified Eagle's medium (DMEM), Ham's Nutrient Mixture F12 medium, DMEM/F12 medium, McCoy's 5A medium, Eagle's Minimum Essential medium (EMEM), alpha Modified Eagle's Minimum Essential medium (aMEM), MEM medium (Minimum Essential medium), RPMI1640 medium, Iscove's Modified Dulbecco's medium (IMDM), MCDB131 medium, Williams' medium E, IPL41 medium, Fischer's medium, StemPro34 (manufactured by Invitrogen Corp.), X-VIVO 10 (manufactured by Cambrex), X-VIVO 15 (manufactured by Cambrex), HPGM (manufactured by Cambrex), StemSpan H3000 (manufactured by STEMCELL Technologies), StemSpan SFEM (manufactured by STEMCELL Technologies), StemlineII (manufactured by Sigma Ltd. Aldrich), QBSF-60 (manufactured by Quality Biological), StemProhESCSFM (manufactured by Invitrogen Corp.), Essential6 (registered trade mark) medium (manufactured by Gibco), Essential8 (registered trade mark) medium (manufactured by Gibco), Essential8 (registered trade mark) Flex medium (manufactured by Thermo Fisher Scientific), StemFlex medium (manufactured by Thermo Fisher Scientific), StemScale (registered trade mark) PSC Suspension medium (manufactured by Thermo Fisher Scientific), mTeSR1 or 2 or Plus medium (manufactured by STEMCELL Technologies), ReproFF or ReproFF2 (manufactured by REPROCELL), PSGro hESC/iPSC medium (manufactured by System Biosciences), NutriStem (registered trade mark) medium (manufactured by Biological Industries), MSC NutriStem (registered trade mark) XF medium (manufactured by Biological Industries), CSTI-7 medium (manufactured by Cell Science & Technology Institute, Inc.), MesenPRO RS medium (manufactured by Gibco), MF-medium (registered trade mark) mesenchymal stem cellular proliferation medium (manufactured by TOYOBO), mesenchymal stem cell serum-free medium (manufactured by Fukoku), Mesenchymal Stem Cell Growth medium 2 (manufactured by PromoCell), Sf-900II (manufactured by Invitrogen Corp.), Opti-Pro (manufactured by Invitrogen Corp.), StemFit (registered trade mark) AK02N or Basic02 or AK03N or Basic03 or Basic04 medium (manufactured by Ajinomoto Health & Nutrition Supply), STEMUP medium (manufactured by Nissan chemical Corporation), L15 medium, and the like. Preferred may be DMEM/F12 (Ham) 1:1 medium.
[0081] It is sometimes preferred to stabilize the pH of the medium used for culturing fish germ stem cells at around 7 to 7.5. In such cases, the pH of the medium can be adjusted using methods known per se. In one embodiment, the pH can be adjusted by adding an appropriate amount of a buffer such as HEPES to the medium, but the method is not limited thereto.
[0082] Also, in one embodiment, known medium additives such as amino acids (essential amino acid, non-essential amino acid, etc.), antibiotics (gentamicin, etc.), minerals (calcium, magnesium, etc.), and buffers (HEPES, etc.) may also be added as appropriate to the medium, in addition to the above-mentioned components.
[0083] Various culture conditions in the method of the present invention are not particularly limited as long as the desired effects of the present invention are obtained. As one embodiment, the culture temperature is generally 25-39 C. (preferably 30-37 C.). The CO.sub.2 concentration in the culture atmosphere is generally 1 to 10% by volume, preferably 2 to 5% by volume. In addition, the culture period may be appropriately set depending on the purpose of culture. Using the present invention, culture may be possible for 1 to 100 days or more than 100 days. The frequency of medium replacement may be, but is not limited to, every day, once every 2 days, once every 3 days, once every 4 days, once every 5 days, once every 6 days, or once every 7 days.
[0084] The species of fish to which the method of the present invention can be applied is not particularly limited. Examples include Beloniformes (e.g., killifish, needlefish, mackerel pike, etc.), Clupeiformes (e.g., sardine, Pacific herring, silver-stripe round herring, etc.), Perciformes (e.g., wrasse, mackerel, scorpion fish, etc.), and the like. Killifish, anchovy, Siebold's wrasse, and Chub mackerel are preferred, and Chub mackerel is particularly preferred.
[0085] Serum may be included in the method of the present invention. In a preferred embodiment, the medium used in the present invention may be a serum-free medium. By not using serum, various disadvantages of using serum (e.g., high cost, problems relating to standardization, contamination, etc.) can be avoided, and germ stem cells with high quality can be stably produced at a comparatively low cost.
[0086] In one embodiment, the method of the present invention can also be performed under feeder-free conditions. By culturing germ stem cells under feeder-free conditions, contamination with feeder cells can be preferably avoided when collecting the germ stem cells after culture.
[0087] In one embodiment, the method of the present invention may proliferate germ stem cells in large quantities while maintaining them for a long period of time by passaging the germ stem cells. For passaging, a method known per se may be used. In one embodiment, it may be preferable to optimize cell density at the time of passage. The preferred cell density is generally 0.510.sup.5-6.510.sup.5 cells/cm.sup.2, more preferably 110.sup.5-5.010.sup.5 cells/cm.sup.2, further preferably 210.sup.5-4.510.sup.5 cells/cm.sup.2, but not limited to these.
2. Kit for Culturing Fish Germ Stem Cell
[0088] The present invention also provides a kit for culturing a fish germ stem cell, comprising the following (hereinafter sometimes referred to as the kit of the present invention): [0089] vitronectin, and the following 8 components: (1) insulin, (2) selenium, (3) transferrin, (4) L-ascorbic acid, (5) FGF2, (6) TGF, (7) NaHCO.sub.3 or KHCO.sub.3, (8) L-glutamine.
[0090] In one embodiment, the kit of the present invention may further contain a basal medium.
[0091] The basal medium, vitronectin, 8 specific components, species of fish, and the like to be contained in the kit of the present invention are the same as those explained for the method of the present invention.
[0092] Vitronectin, 8 specific components, and the basal medium to be contained in the kit of the present invention may be included in the kit each in the form of being enclosed in a separate container. The 8 specific components may be respectively enclosed in separate containers, or two or more components may be enclosed in one container. All 8 components may be mixed and enclosed in one container.
[0093] In one preferred embodiment, vitronectin and the 8 specific components included in the kit of the present invention can be provided in the form of being dissolved or dispersed in an appropriate solution. In addition, the basal medium can be provided in the form of a liquid medium.
[0094] As explained in the method of the present invention, NaHCO.sub.3 can be replaced with the same molar amount of KHCO.sub.3. Therefore, in one embodiment, NaHCO.sub.3 may be replaced with KHCO.sub.3.
[0095] In another embodiment, when the kit of the present invention contains KHCO.sub.3, it is preferable to include sodium chloride (NaCl) as an additional component. According to the kit of the present invention, the method of the present invention can be performed conveniently. Therefore, the kit of the present invention can also be referred to as a kit for practicing the method of the present invention.
[0096] The present invention is explained more specifically in the following by referring to Examples. However, the present invention is not limited at all by these Examples.
EXAMPLE
[Experimental Example 1] Isolation of Germ Stem Cell
[0097] The germ stem cells of Chub mackerel and killifish used in the following Examples were isolated by a method known per se. Briefly, they were isolated by the following procedure.
[0098] Gonads were collected under sterile conditions and incubated in DPBS containing 0.001% tetracycline hydrochloride (DPBS-AB) for at least 2 hr. The gonads were then washed at least three times with calcium-free DPBS-AB, and then the gonads were minced into 2-5 mm.sup.3 pieces. They were washed with 3 mL of Accumax per 1 g of tissue and the remaining DPBS was removed. 12 mL of Accumax per 1 g of tissue was added and all contents were transferred to a disposable 10 cm dish. They were incubated at room temperature with occasional stirring with a glass Pasteur pipette until a homogeneous mixture was obtained (at least 2 hr for ovary and at least 3 hr for testis). The obtained mixture was filtered through a mesh with a pore size of 100 m, and then through meshes with a pore size of 40 m and 20 m. The filtrate was centrifuged at 1400 g for 30 min at room temperature. Cell pellets were washed at least three times with DPBS-BSA and then one more time with the medium to be used next. Finally, the washed cell pellets were dispersed in the medium to be used next in an amount of 1 mL per 0.1 g of pellet. Then, germ stem cells were isolated from the dispersed cell population by performing magnetic separation of germ stem cells using a rat anti-CD90.2 antibody conjugated with magnetic beads.
[Experimental Example 2] Preparation of Medium
[0099] Using DMEM/F12 (Ham) 1:1 medium (hereinafter sometimes to be simply referred to as DMEM medium) or L15 medium as a base, 8 types of media having the components of the following Table 1 and Table 2 were prepared.
TABLE-US-00001 TABLE 1 medium based on DMEM/F12 (ham) 1:1 medium medium name (basal medium to be Medium 2 Medium 3 Medium 4 Medium 5 the base) (DMEM) ( DMEM) (DMEM) (DMEM) DMEM/F12 (Ham) 1:1 Make up Make up Make up Make up to 1 L to 1 L to 1 L to 1 L insulin 19.4 mg 19.4 mg 19.4 mg 19.4 mg selenium 0.014 mg 0.014 mg 0.014 mg 0.014 mg transferrin 10.7 mg 10.7 mg 10.7 mg 10.7 mg L-ascorbic acid 64 mg 64 mg 128 mg 128 mg FGF2 0.1 mg 0.2 mg 0.1 mg 0.2 mg TGFb 0.002 mg 0.002 mg 0.002 mg 0.004 mg L-glutamine 100 mg 100 mg 100 mg 100 mg NaHCO.sub.3 1743 mg 1743 mg 1743 mg 1743 mg HEPES 15 mM 15 mM 15 mM 15 mM gentamicin 100 mg 100 mg 100 mg 100 mg
TABLE-US-00002 TABLE 2 medium based on L15 medium medium name (basal medium to be Medium 2 Medium 3 Medium 4 Medium 5 the base) (L15) (L15) (L15) (L15) L15 Make up Make up Make up Make up to 1 L to 1 L to 1 L to 1 L insulin 19.4 mg 19.4 mg 19.4 mg 19.4 mg selenium 0.014 mg 0.014 mg 0.014 mg 0.014 mg transferrin 10.7 mg 10.7 mg 10.7 mg 10.7 mg L-ascorbic acid 64 mg 64 mg 128 mg 128 mg FGF2 0.1 mg 0.2 mg 0.1 mg 0.2 mg TGFb 0.002 mg 0.002 mg 0.002 mg 0.004 mg L-glutamine 100 mg 100 mg 100 mg 100 mg NaHCO.sub.3 1743 mg 1743 mg 1743 mg 1743 mg HEPES 15 mM 15 mM 15 mM 15 mM gentamicin 100 mg 100 mg 100 mg 100 mg
[Example 1] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells1
[0100] The germ stem cells of Chub mackerel prepared in Experimental Example 1 were cultured in a vitronectin-coated container by using the 8 types of media prepared in Experimental Example 2, and the percentage of CD90.2-positive cells after culture was confirmed. CD90.2 positivity indicates the presence of stemness. The number of cells at the start of culture was 6.510.sup.5 cells or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2). As a negative control, germ stem cells were cultured using DMEM medium or L15 medium in a container not coated with vitronectin. The cells were cultured in a container not coated with vitronectin and in DMEM medium or L15 medium. The cells were cultured in a CO.sub.2 incubator (Panasonic) under the conditions of culture temperature 27-33 C., CO.sub.2 concentration 2-5%. The incubator was humidified with sterile distilled water supplemented with 0.0001% sodium lauryl sulfate (Nacalai). The incubator was UV sterilized for 15 min every 4 days and washed with H.sub.2O.sub.2 monthly. CD90.2-positive cells were subjected to immune cell staining using a fluorescently labeled antibody against CD90.2 and analyzed using a cell analyzer (Sony EC800).
[0101] As shown in
[Example 2] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells-2
[0102] The germ stem cells of Chub mackerel prepared in Experimental Example 1 were cultured in a vitronectin-coated container by using the 8 types of media (and 2 types of media as negative targets) prepared in Experimental Example 2, and the stemness and doubling time after culture were confirmed. The number of cells at the start of culture was 3.2510.sup.5 cells, 6.510.sup.5 cells, or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2). As a negative control, germ stem cells were cultured using DMEM medium or L15 medium in containers not coated with vitronectin. The undifferentiated state and doubling time by culture for 24 hr were confirmed. In the experiment, n=6. The stemness was calculated using CD90.2 staining and the cell analysis was performed using Sony EC800. Other respective experiment conditions were the same as in Example 1. For the doubling time, initial cell number (N0) at the time point of initial time (t0) and cell number (N) after t hours were determined, and the doubling time was calculated using the following formula:
[0103] The results are shown in
[0104] The doubling time, as shown in
[0105] From the above results, the stemness could be maintained under specific conditions, and efficient proliferation of germ stem cells could be achieved under specific conditions, even when either DMEM medium or L15 medium was used as the basal medium.
[Example 3] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells3
[0106] Under the same conditions as in Example 1 except that the basal medium was DMEM alone, the germ stem cells of Chub mackerel prepared in Experimental Example 1 were cultured, and the cell survival, confluency, and CFU (Colony Forming Unit) were confirmed 24 hr after the start of culture. The number of cells at the start of culture was 3.110.sup.5 cells, 6.2510.sup.5 cells, or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2), n=6. The viability was calculated using propidium iodide and Hoechst staining and the cell analysis was performed using Sony EC800. Confluency was calculated by the ratio of the area covered by the cells to the total available area of the medium. Colonies (>50) were counted individually. The results are shown in
[0107] As shown in
[Example 4] Examination of Optimal Cell Density at the Time of Passage1
[0108] Using medium 4 (DMEM) of Example 1, the optimal cell density at the time of passage was examined. The number of cells at the time of passage was 3.110.sup.5 cells, 6.2510.sup.5 cells, 12.510.sup.5 cell, or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2) and passage was performed by the following procedure: passage was performed at 4-day intervals. Between each passage, the upper layer of the spent medium (70-80% of the total medium) that does not contain cell was discarded. The cells were then gently suspended using a pipette. The cell suspension was collected in a 50 ml conical tube and centrifuged at 1400g for 10 min. The cell pellet was carefully suspended in a fresh final medium. The cell number was counted and seeded in a container coated with vitronectin. After 46 to 52 hr of passage, the cell number, doubling time, stemness, and viability were calculated. The cell number was calculated using a cell analyzer. The doubling time, stemness, and viability were calculated by the same methods as above. The results are shown in
[0109] As shown in
[Example 5] Cell Proliferation Rate and Detection of Cell Marker after Proliferation
[0110] The germ stem cells of Chub mackerel prepared in Experimental Example 1 were cultured in a vitronectin-coated container and in a DMEM/F12 (Ham) 1:1 medium containing insulin (19.4 mg/L), selenium (14 g/L), transferrin (10.7 mg/L), L-ascorbic acid (64 mg/L), FGF2 (200 g/L), TGF (2 g/L), NaHCO.sub.3 (1.743 g/L), L-glutamine (100 mg/L), and HEPES (15 mM), and the cell proliferation rate and the expression state of cell markers (CD90.2, KLF, OCT4, GFR1a and VASA) were confirmed. The cell markers were confirmed using Live cell immunohistochemistry. The cells were passaged every 4 days. The results are shown in
TABLE-US-00003 TABLE 3 AP live stain CD90.2 KIF4 Oct4 Sox2 Vasa GFR1a SOX9 Passage 10 99.5 0.75 98.7 1.1 96.4 1.7 99.5 0.5 0 0 54.2 3.1 0 Passage 15 98.5 0.75 98.8 0.97 97.5 1.6 98.7 0.8 0 0 53.4 2.3 0 Passage 20 98.4 1.23 99.1 0.92 98.4 1.4 99.3 0.6 0 0 45.4 2.7 0 Passage 25 98.5 1.35 96.4 1.75 95.7 1.1 97.2 1.4 0 2.1 1.4 50.2 2.9 0
[0111] As shown in
[Example 6] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells4
[0112] The conditions that enable maintenance and expansion culture of fish germ stem cells were examined. The killifish germ stem cells prepared in Experimental Example 1 were used. As the medium, DMEM/F12 (Ham) 1:1 medium was used as a basal medium. The presence or absence of the serum (10%, KSR (KnockOut Serum Replacement) Thermo fisher Scientific (GIBCO)), Chub mackerel plasma (1%, preparation method of plasma is as follows: Blood of Chub mackerel was collected by cardiac puncture using a 23-gauge needle and syringe treated with 0.25% disodium EDTA, the blood was promptly centrifuged at 6000 rpm for 10 min and the supernatant was collected. Plasma was UV irradiated for 5 min before use and filtered through a 0.22 filter. The plasma used in this Example was prepared by mixing plasma collected from Chub mackerel of various fish ages and sexes), vitronectin (human-derived, Thermo fisher Scientific (GIBCO)), and 8 specific components (substituted by E8 supplement, insulin, etc. are recombinant peptides and of human origin) was examined. Culture conditions were the same as in Example 1. The results are shown in
[0113] As shown in
[Example 7] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells5
[0114] The germ stem cells of Chub mackerel prepared in Experimental Example 1 were cultured under various culture conditions 1 to 5 shown in
[0118] The results are shown in
[Example 8] Examination of Optimal Cell Density at the Time of Passage2
[0119] In the culture conditions of Example 7, whether the cell density at the time of passage influences the stemness and doubling time was examined. The germ stem cells of Chub mackerel prepared in Experimental Example 1 were used. The number of cells at the time of passage was 3.110.sup.5 cells, 6.2510.sup.5 cells, 12.510.sup.5 cells, or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2). The stemness and doubling time were determined in the same manner as in Example 4. The results are shown in
[0120] As shown in
[Example 9] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells6
[0121] The germ stem cells of Chub mackerel prepared in Experimental Example 1 were seeded in the two kinds of media (DMEM-NAHCO3 and DMEM-KHCO3) prepared in Example 7 at 3 cell densities, and the viability, confluency, and CFU (Colony forming Unit) 24 hr later were determined by the same method as in Example 3. In each experiment, N=6. The results are shown in
[0122] As shown in
[Example 10] Examination of Medium Components Suitable for Culturing Fish Germ Stem Cells7
[0125] The germ stem cells of killifish and Chub mackerel prepared in Experimental Example 1 were cultured under various culture conditions shown in
[0126] As shown in
[Example 11] Examination of Optimal Cell Density at the Time of Passage3
[0127] The optimal cell density when the germ stem cells of Chub mackerel prepared in Experimental Example 1 are cultured using a vitronectin-coated container and Media C was examined. The cells were seeded at 3.110.sup.5 cells, 6.2510.sup.5 cells, 12.510.sup.5 cells, or 2510.sup.5 cells (the area of the culture dish used was 1.9 cm.sup.2). The cell number, doubling time, confluency, stemness, and viability at the time points of 24 hr, 48 hr, 72 hr, and 96 hr after culture were determined. The results are shown in
[0128] As shown in
[Example 12] Examination of Optimal Cell Density at the Time of Passage4
[0129] The optimal cell density of germ stem cells of Chub mackerel was examined under the same conditions as in Example 11 except that the medium used was changed to Media N. The cell number, doubling time, stemness, and viability at the time points of 24 hr, 48 hr, 72 hr, and 96 hr after culture were determined. The results are shown in
[0130] As shown in
[Example 13] Improvement of DMEM-KHCO3 Medium
[0131] As shown in Example 12, medium N (medium obtained by additionally adding ascorbic acid to DMEM-KHCO3) has lower tolerance with respect to cell density than Medium C (medium obtained by additionally adding ascorbic acid to DMEM-NAHCO3). When the aforementioned experiment was conducted, fish germ stem cells were cultured using DMEM-KHCO3 and there was a tendency for the cells to easily peel off from the surface of the culture container after about 2 weeks. Thus, the improvement of DMEM-KHCO3 was examined.
[0132] Medium N is composed of DMEM/F12 as a basal medium and further contains insulin, selenium, transferrin, L-ascorbic acid, FGF2, TGF, L-glutamine, KHCO3, and HEPES (and gentamicin as antibiotic). The present inventors added various test substances to medium N and selected a substance suitable for the improvement of medium N. The standard of selection used were stemness, viability, mortality, confluency (2 days later), and colony number (4 days later). The germ stem cells of Chub mackerel were used. The test period was set to 15 days. In the test, N=6. The stemness, viability, mortality, confluency, and colony number were calculated with the results in Media C as the baseline.
[0133] As a result of selection, it was found that the addition of NaCl can favorably improve Medium N. The results with the addition of NaCl are shown in
[0134] As shown in
[Example 14] Examination of Concentration Range of Components Contained in FSC10 Medium
[0135] Preferred concentration ranges of the components contained in FSC10 were examined. The germ stem cells of killifish and Chub mackerel were used. The test period was set to 7 days. In the test, N=10. The stemness, viability, confluency, and CFU were used as the standard. Concentration ranges were determined where each standard was at least 70% or greater as compared with FSC10 prepared in Example 13. The results are shown in
INDUSTRIAL APPLICABILITY
[0136] According to the present invention, fish germ cells with stable quality can be proliferated efficiently at a comparatively low cost. Therefore, the present invention is extremely useful in the field of test research targeting fish and the field of production and breeding of fish, and the like.
[0137] This application is based on a patent application No. 2021-196963 filed in Japan (filing date: Dec. 3, 2021), the contents of which are incorporated in full herein.