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标题: In Vitro Differentiation of Mouse Embryonic Stem Cells: Enrichment of Endodermal [打印本页]

作者: 江边孤钓    时间: 2009-3-5 10:50     标题: In Vitro Differentiation of Mouse Embryonic Stem Cells: Enrichment of Endodermal

a Department of Surgery, Stem Cell Therapy Center, Soonchunhyang University Hospital, Seoul, Korea;4 b! h8 m9 L$ I7 o! G0 N

% U" I/ c6 ^8 e- x( m3 ab Division of Genome and Proteome Research, National Genome Research Institute, NIH Korea, Seoul, Korea;
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c Division of Genetic Disease, Department of Biomedical Science, National Institute of Health, Seoul, Korea;
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d Department of Pathology, Hanyang University Hospital, Seoul, Korea;
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e Department of Biochemistry, College of Medicine, Ewha Womans University, Seoul, Korea;
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f Department of Animal Biotechnology, Graduate School of Bio & Information Technology, Hankyong National University, Ansung, Korea;- c; E6 p, a$ N4 w
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g Department of Surgery, Hanyang University Hospital, Seoul, Korea
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6 J4 Q4 `& f5 o. [Key Words. Embryonic stem cell ? Embryoid body ? Differentiation ? Endoderm5 u+ ?: ^+ g' B) S- L, V4 ]

% G6 Z0 G1 o% @% J# ^2 W9 x" @; lCorrespondence: Bermseok Oh, Ph.D., Nokbun-Dong 5, Eunpyung-Gu, Seoul, 122-701, Korea. Telephone: 82-2-380-1523; Fax: 82-2-354-1063; e-mail: ohbs@nih.go.kr
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2 B, A5 |0 H7 p: sABSTRACT% I9 c0 c$ `+ Y) s  g

% _( u. H, p  c  I6 Z, f9 nEmbryonic stem (ES) cells derived from the inner cell mass of mammalian blastocysts are well known for their potential to maintain the undifferentiated state throughout an extended number of passages . Upon proper stimulation, ES cells differentiate into cells of various lineages, which can be used in cell replacement therapy . Transplantation of neural cells derived from mouse ES cells successfully rescued defective neurons in the central nervous system, proving their potential value in the treatment of neuronal diseases . More recently, ES cells have also been shown to differentiate into insulin-secreting ? cells treating diabetic animal . The development of human ES cell lines has widened the potential usage of ES cells even further, providing an excellent source for cell replacement therapy in various human diseases . Along with the technical progress in the cloning of mammalian cells, it is now quite conceivable to generate patients’ own ES cell lines to develop stem cells of desired lineages .
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To prepare ES-derived cells relevant to clinical situations, mouse ES cells have been experimentally differentiated via in vitro suspension culture into the embryoid body (EB), a cell clump comprised of all three germ layers. Various types of differentiated cells, such as neural cells, cardiac and skeletal muscle cells, hematopoietic cells, adipocytes, chondrocytes, and osteoclasts, are found in the EB . Because differentiation of ES cells has been known to recapitulate changes in the embryonic development, factors that partake essential functions during early embryogenesis are also expected to be involved in the formation of EBs. Yet because of the short cultivation time and dearth of information about the cellular characteristics of EBs, little is known about the process guiding the development of three germ layers and specific lineage of cells within the EB.( _/ M+ ?- V- @! ]* V9 a. v
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Cell–cell contact mediated by various adhesion molecules and apoptosis play an important role in the early stage of embryonic development. However, the expression or function of catenins and cadherins has not been examined in EB cells. Apoptosis is also expected to be associated with the formation of EBs as well as the formation of three germ layers; however, definite histological location of apoptosis has not been determined within the EB.7 y  S7 S9 n: S' }: i9 f

) W) x- q6 k% H; i2 VAmong specific markers of germ layers, GATA-4 and -fetoprotein are considered endodermal markers initially expressed in the primitive endoderm during early postimplantation stages and are maintained in the visceral and parietal endoderm of the yolk sac during gastrulation. Nestin is expressed in the neuroectodermal area. Desmin is expressed in the mesodermal area, especially muscle fibers. These markers are useful for identifying three germ layers in EBs.' c2 \, W" V; z- N1 E. {
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In this study, we confirmed the relative location and the expression of marker genes of three germ layers in EBs, especially the cells of endoderm, which thus far have been the least characterized of the three. Furthermore, those endodermal cells were differentiated into hepatocytes by adding hepatotrophic factors. Our findings provide grounds for developing EB-derived cells into various stem cell lineages that can be used in the cell replacement therapy of hard-to-cure diseases.) q6 x% I3 o. `

# g4 P# O' r' P9 O- Y- ZMATERIALS AND METHODS: N- Q! a2 i7 c4 x1 U1 i- S: e+ P: g
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Morphological Changes and Apoptosis in the EB
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& w4 F6 g% s4 G) |To examine the process of cell differentiation during EB formation, undifferentiated ES cell colonies were detached and grown in suspension for 6 weeks. As shown in Figure 1, H&E staining of EBs formed in the suspension culture revealed massive morphological changes accompanied by differentiation of diverse cell types during this period. As early as 1 week, cells within the EB started to show the typical characteristic of large nucleus and scanty cytoplasm outside of it. Chromatin condensation, cytoplasmic vacuolization, disruption of the nuclear membrane, and nuclear fragmentation were also observed in EB cells (Fig. 1A). Various phases of apoptosis were detected with TUNEL assay (Fig. 1G). Starting from the second week, cells with distinct characteristics could be discerned in EBs (Figs. 1B, 1C). At the same time, primitive neural tube–like structure (Fig. 1D), a cylinder-like structure imitating gut tube (Fig. 1E), and squamous epithelium-like structure (Fig. 1F) appeared. Central apoptotic areas were first seen in 1-week-old EBs (Fig. 1G) and then shrunk down to an undetected level by the sixth week (Figs. 1H–1L).
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Figure 1. Histological sections (hematoxylin and eosin, x400) and TUNEL assay (x100) in embryoid bodies (EBs). (A, G): 1-week-old EB; (B, H): 2-week-old EB; (C, I): 3-week-old EB; (D, J): 4-week-old EB; (E, K): 5-week-old EB; (F, L): 6-week-old EB. Arrow in (D) indicates rosette formations resembling the early neural tube. Arrow in (F) presents well-differentiated squamous epithelium imitating skin structure. Sections were counterstained with hematoxylin./ x$ f, ^9 H( y/ w/ W
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Expression of Cell Adhesion Molecules During the Development of EBs6 k2 v" Z2 c: ?8 e; X3 l
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Adhesive characteristics of EB cells were assessed by analyzing the gene expressions of cell adhesion molecules (Fig. 2). E-cadherin, -catenin, -catenin, and desmoglein-2 were all continuously expressed in undifferentiated ES cells as well as in 6-week-old EBs. On the other hand, the message level of N-cadherin and ?-catenin dwindled along with the progression of differentiation. Interestingly, paxillin mRNA, which was abundant in undifferentiated ES cells, showed a transient decrease during the second and fourth weeks but became abundant again by the sixth week./ }, V  O0 W8 i$ {5 f) ]& ~; M( W" m9 |+ a
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Figure 2. mRNA expression analysis of embryoid body (EB) with cell adhesion molecules. Lane 1 shows undifferentiated embryonic stem cells; 2, 1-week-old EB; 3, 2-week-old EB; 4, 3-week-old EB; 5, 4-week-old EB; 6, 5-week-old EB; and 7, 6-week-old EB. ?-Actin and GAPDH were used for the quantitation of RNA.
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We also examined the expression of these adhesion molecules at the protein level by immunohistochemical staining. The expression of -catenin and ?-catenin remained strong throughout the experimental duration (Figs. 3A–3F). -Catenin was scarce in the 1-week-old EB but gradually increased in the following weeks (Figs. 3G–3I). In accordance with the level of their mRNAs, E-cadherin and N-cadherin proteins showed sustained expression throughout the examination period (Figs. 4A–4F). The neural tubes, which were strongly stained with N-cadherin antibody, were not stained with E-cadherin antibody (Figs. 4B, 4E).
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Figure 3. Immunohistochemical study of cell adhesion molecules in embryoid body (EB) (x400). -Catenin was expressed in (A) 1-week-old, (B) 3-week-old, and (C) 6-week old EBs. ?-Catenin was expressed in (D) 1-week-old, (E) 3-week-old, and (F) 6-week-old EBs. -Catenin was expressed in (G) 1-week old, (H) 3-week-old, and (I) 6-week-old EBs. Sections were counterstained with hematoxylin.
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3 u* z/ ]: ^0 cFigure 4. Immunohistochemical study of cell adhesion molecules in embryoid body (EB) (x400). E-cadherin expression was shown in (A) 1-week-old, (B) 3-week-old, and (C) 6-week-old EBs. N-cadherin expression was shown in (D) 1-week-old, (E) 3-week-old, and (F) 6-week-old EBs. Desmoglein-2 was expressed in (G) 1-week-old, (H) 3-week-old, and (I) 6-week-old EBs. Paxillin was expressed in (J) 1-week-old, (K) 3-week-old, and (L) 6-week-old EBs. Arrow in (B) indicates negative staining pattern of E-cadherin to neural tube–like structure. Arrowin (E) indicates specific expression of N-cadherin in neural tube–like structure. Sections were counterstained with hematoxylin.# s, N( X+ P& e1 |! H+ O0 A
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Expression of Genes Specific to the Neural Ectoderm and Mesoderm
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The expression of ectoderm and mesoderm markers revealed distinct changes during the process of EB development (Fig. 5). In RT-PCR analysis, mRNAs of nestin, a protein specific to neural stem cells, were abundant in undifferentiated ES cells but slightly decreased from the third week and thereon. The level of Pax-6 transcript, another neural stem cell marker, showed a peak in the 1-week-old EB. Expression of Flk-1 and platelet endothelial cellular adhesion molecule, both known to be mesodermal specific, was differentially regulated during the examination period. The level of collagen IV, a cartilage component, increased during the first week and remained strong throughout the rest of the culture period.
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$ J* U- b/ k. f  F* P% A* T! ]Figure 5. mRNA expression analysis of embryoid bodies (EBs) with ectodermal and mesodermal markers. Lane 1 shows undifferentiated embryonic stem cells; 2, 1-week-old EB; 3, 2-week-old EB; 4, 3-week-old EB; 5, 4-week-old EB; 6, 5-week-old EB; 7, 6-week-old EB. ?-Actin and GAPDH were used for the quantitation of RNA. Abbreviation: PECAM, platelet and endothelial cell adhesion molecule.
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When examined by immunohistochemical staining, nestin protein was abundantly expressed all over the 1-week EB except in the apoptotic areas (Fig. 6A). In later EBs, nestin proteins were detected in focal areas in 2- to 3-week-old EBs (Figs. 6B, 6C) and then in the primitive neural tube–like structures until the fifth week (Figs. 6D, 6E). By 6 weeks, nestin-positive neural tubes were destroyed and lost their cell–cell contact (Fig. 6F).; L0 c: |! s$ f1 D' \) a5 L" p
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Figure 6. Nestin and desmin expression in embryoid bodies (EBs). Nestin expression in (A) 1-week-old, (B) 2-week-old, (C) 3-week-old, (D) 4-week-old, (E) 5-week-old, and (F) 6-week-old EBs (x400). Desmin expression in 4-week-old EBs (G, x100; J,x 400) and 5-week-old EBs (H and I, x100; K and L, x400). Arrows in (D) and (E) indicate nestin-positive neural tube–like structure. Arrow in (K) indicates intestinal tube–like structure, showing positive staining of desmin. Sections were counterstained with hematoxylin.( ], Y6 L" r* m# V  ~& ?
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We also examined the localization of desmin, a mesoderm marker specific to striated and smooth muscle. Desmin proteins were not detectable for the first 3 weeks of culture but appeared in the 4-week-old EB (Figs. 6G, 6H). At 5 weeks, cystic areas in EBs showed internal desmin-positive areas, imitating the typical structure of muscle fibers inside endodermal layers (Figs. 6I, 6J). Desmin proteins were also present in areas outside of the cysts in the 5-week-old EB (Figs. 6K, 6L).
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Expression of Endoderm-Specific Genes' J1 }2 _+ D3 |, k  d$ j

8 t, ?9 ?- d* E# A! ?0 L' LNext we compared the expression of endodermal genes in the EB, in 16.5-day embryos, and in the adult liver (Fig. 7). The expression of Oct-4, a specific marker for undifferentiated ES cells, showed a continuous decrease throughout EB development and was absent in the E6.5-day embryo or in the adult liver. GATA-4, which is expressed in visceral endoderm, showed increasing expression in 1- to 2-week-old EBs but decreased thereafter. mRNAs of -fetoprotein and transferrin were not detectable in the ES cells, continuously increased between 1 and 3 weeks, and started to decrease after 5 weeks. Both transcripts were highly expressed in the E16.5-day embryo, but -fetoprotein was absent in the adult liver. Three liver-specific molecules, that is, transthyretin (TTR), aldolase, and albumin, were highly expressed in early weeks and continuously decreased throughout the rest of the culture period.
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3 T" y1 h; T8 d0 MFigure 7. mRNA expression analysis of embryoid bodies (EBs) with endodermal markers. Lane 1 shows undifferentiated embryonic stem cells; 2,1-week-old EB; 3,2-week-old EB; 4,3-week-old EB; 5,4-week-old EB; 6, 5-week-old EB; 7, 6-week-old EB; 8, 16.5-day-old embryo liver; and 9, adult liver. ?-Actin and GAPDH were used for the quantitation of RNA. Abbreviation: FP, -fetoprotein; TTR, transthyretin., \& _0 [' H- `/ v  p) Q& S
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By immunohistochemical analyses, -fetoprotein protein was localized to the outer layer of the EB (Fig. 8) until the fourth week. After 5 weeks, small areas inside of the EB were positive for -fetoprotein (Figs. 8E, 8F). GATA-4 was present in both outer layers and inner areas of the EB (Figs. 8G–8L) but was avoided in the area around the neural tube–like structures (Fig. 8J).
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Figure 8. -Fetoprotein and GATA-4 expression in embryoid bodies (EBs) (x400). -Fetoprotein expression in (A) 1-week-old, (B) 2-week-old, (C) 3-week-old, (D) 4-week-old, (E) 5-week-old, and (F) 6-week-old EBs. GATA-4 expression in (G) 1-week-old, (H) 2-week-old, (I) 3-week-old, (J) 4-week-old, (K) 5-week-old, and (L) 6-week-old EBs. Sections were counterstained with hematoxylin.; H* p8 a; _( ?* C) j
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In Vitro Differentiation of Endoderm-Like EB Cells into Hepatocytes
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) L; i, d6 f+ Q* \) B: }& XTo further characterize cells from the outer endodermal layer, 2-week-old EBs were treated with trypsin, and retrieved cells were analyzed by RT-PCR for the expression of endoderm-specific genes such as -fetoprotein, Apo2, and TTR. The expression level of these endodermal genes increased with the duration of trypsin treatment (Figs. 9, 10). Immunohistochemical staining revealed that -fetoprotein is strongly expressed in cells isolated by 3-minute trypsin treatment (Fig. 11).
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Figure 9. mRNA expression of endodermal marker protein in trypsinized 2-week-old embryoid bodies (EBs). Lane 1S shows supernatant of 1-minute trypsin-treated EB; 1R, remnant of 1-minute trypsin-treated EB; 3S, supernatant of 3-minute trypsin-treated EB; 3R; remnant of 3-minute trypsin-treated EB; 6S, supernatant of 6-minute trypsin-treated EB; 6R, remnant of 6-minute trypsin-treated EB; 9S, supernatant of 9-minute trypsin-treated EB; 9R, remnant of 9-minute trypsin-treated EB; EB1, 1-week-old EB; and EB2, 2-week-old EB. ?-Actin was used for the quantitation of RNA. Abbreviation: TTR, transthyretin.
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Figure 10. -Fetoprotein mRNA expression pattern in trypsinized 2-week-old embryoid bodies (EBs)., T& `5 Q7 [0 e' R) F
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Figure 11. -Fetoprotein expression in 3 minute–trypsinized 2-week-old embryoid body (EB) cells. -Fetoprotein staining and nuclear staining with mounting solution of single cells from 3 minute–trypsinized 2-week-old EBs were seen.
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Next we examined the developmental potential of the dissociated endoderm-like cells by cultivating them with various hepatotropic factors, based on previous report of Hamazaki et al.  on hepatic differentiation. The endodermal cells were cultured in gelatin-coated dishes for 2 days with aFGF and then with HGF for another 2 days. After replating on matrigel matrix–coated dishes, cells were treated with HGF, OSM, and Dex for 4 days, followed by incubation with ITS for 3 days. After this 7-day stimulation regimen of hepatic differentiation, total RNAs were extracted and analyzed for the expression of liver metabolic enzymes. RT-PCR confirmed that the combined stimulation with growth factors, cytokines, and matrigel matrix strongly induced the expression of liver metabolic enzymes, such as G-6-P, PAH, TAT, and cytochrome P450s (P450-2B10 and P450-cb), in these in vitro–maturated endoderm cells (Fig. 12). With this maturation condition, polygonal hepatocyte-like cells were seen after a 7-day maturation period (Figs. 13A, 13B). Binucleated cells suggesting hepatocytes were seen (Fig. 13C). Those cells were stained with albumin, indicating that hepatocyte-like cells were possessing functional hepatic protein (Fig. 13D). Furthermore, these hepatocyte-like cells were stained with periodic acid-Shiff and ICG (Figs. 14A, 14B).) x0 g  _" i: ^

6 q0 x  W3 n( q! x0 h4 \Figure 12. mRNA expression of hepatic differentiation marker genes in differentiating embryonic stem cells from isolated endodermal cells. Lane 1 shows 2-week-old embryoid body (EB); 2, isolated endodermal cells by trypsin treatment for 3 minutes in 2-week-old EB; 3, acidic fibroblast growth factor (aFGF) alone; 4, aFGF and hepatocyte growth factor (HGF); and 5, aFGF, HGF, oncostatin M (OSM), insulin, transferrin, and selenious acid (ITS), dexamethasone (Dex), and matrigel matrix. Increased hepatic gene expression is seen in the aFGF, HGF, OSM, ITS, Dex, and matrigel matrix maturation condition. Abbreviations: G-6-P, glucose-6-phosphatase; PAH, phenylalanine hydroxylase; TAT, tyrosine aminotransferase., Y' m4 Q* `! Z7 D* `
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Figure 13. Morphology of hepatocyte-like cells differentiated from isolated endodermal cells. (A, B): Polygonal hepatocyte-like cells are seen in acidic fibroblast growth factor (aFGF), hepatocyte growth factor (HGF), oncostatin M (OSM), insulin, transferrin, and selenious acid (ITS), dexamethasone (Dex), and matrigel matrix maturation condition (A, x100; B, x200). (C): Binuclear cells indicating hepatocyte are seen (x400). (D): Many albumin-positive cells are seen after aFGF, HGF, OSM, ITS, Dex, and matrigel matrix maturation condition (x200).3 ]+ `; b% ^" u

- P, G/ i' s; L+ SFigure 14. Hepatocyte-like cells were stained with periodic acid-Shiff (A, x200) and indocyanine green (B, x200).
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DISCUSSION
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% _6 K- O6 t1 j& _& B& U. DD.C. and H.-J.L. contributed equally to this study. This work was supported by research grants from the Korea National Institutes of Health and from the Korea Health 21 R&D Project, Ministry of Health and Welfare, Republic of Korea (00-PJ1-PG1-CH5-0004) and Soonchunhyang University Research Fund (20040161). We thank Dr. Won-Ki Paik for the critical reading and discussion of this manuscript. We are grateful to Dr. Se Jin Jang for technical advice on histological analyses. We also thank Cheol Yong Song, Jae Hyeong Kim, Kuk Hyeon Lee, Tai Ho Im, and Byung-Seok Park for their financial support.- T, k4 \% w  B1 Y. F  F

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Chinzei R, Tanaka Y, Shimizu-Saito K et al. Embryoid-body cells derived from a mouse embryonic stem cell line show differentiation into functional hepatocytes. Hepatology 2002;36:22–29.
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Yin Y, Lim YK, Salto-Tellez M et al. AFP , ESC-derived cells engraft and differentiate into hepatocytes in vivo. STEM CELLS 2002;20:338–346.
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Yamamoto H, Quinn G, Asari A et al. Differentiation of embryonic stem cells into hepatocytes: biological functions and therapeutic application. Hepatology 2003;37:983–993.; I" `$ m" j( Q2 K* R2 J. k
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Okazawa H, Shimizu J, Kamei M et al. Bcl-2 inhibit sretinoic acid-induced apoptosis during the neural differentiation of embryonic stem cells. J Cell Biol 1996;132:955–968.
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Malgorzata B, David BW. Induction of yolk sac endoderm in GATA-4-deficient embryoid bodies by retinoic acid. Mech Dev 1997;65:43–54.
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作者: horst    时间: 2009-3-24 08:07

真是好资料,很有帮助,谢谢了
作者: 命运的宠儿    时间: 2015-6-5 09:10

任何的限制,都是从自己的内心开始的。  
作者: txxxtyq    时间: 2015-6-16 15:54

一个人最大的破产是绝望,最大的资产是希望。  
作者: 罗马星空    时间: 2015-6-25 09:02

一个人最大的破产是绝望,最大的资产是希望。  
作者: 红旗    时间: 2015-7-13 18:02

干细胞治疗糖尿病  
作者: marysyq    时间: 2015-7-22 02:47

楼主good  
作者: 红旗    时间: 2015-7-23 14:23

顶顶更健康,越顶吃的越香。  
作者: 大小年    时间: 2015-7-29 09:10

转基因动物
作者: 橙味绿茶    时间: 2015-8-9 17:00

加油啊!!!!顶哦!!!!!支持楼主,支持你~  
作者: 红旗    时间: 2015-8-18 20:31

干细胞之家是国内最好的干细胞网站了
作者: 兔兔    时间: 2015-8-22 03:23

你还想说什么啊....  
作者: 昕昕    时间: 2015-8-23 00:27

想都不想,就支持一下  
作者: nauticus    时间: 2015-8-23 01:08

21世纪,什么最重要——我!  
作者: yukun    时间: 2015-9-14 19:40

我起来了 哈哈 刚才迷了会  
作者: 依旧随遇而安    时间: 2015-9-23 12:37

顶.支持,路过.....  
作者: yukun    时间: 2015-10-18 13:29

正好你开咯这样的帖  
作者: 龙水生    时间: 2015-10-18 21:01

很好!很强大!  
作者: tuanzi    时间: 2015-11-23 21:26

我帮你 喝喝  
作者: 舒思    时间: 2016-2-3 15:00

感觉好像在哪里看过了,汗~  
作者: sky蓝    时间: 2016-3-11 22:18

干细胞从业人员  
作者: dataeook    时间: 2016-3-12 11:53

我卷了~~~~~~~  
作者: 我心飞翔    时间: 2016-3-21 17:13

站个位在说  
作者: whyboy    时间: 2016-4-27 08:43

越办越好~~~~~~~~~`  
作者: 苹果天堂    时间: 2016-5-13 13:43

你加油吧  
作者: youngcell    时间: 2016-6-29 17:00

这个贴不错!!!!!  
作者: nosoho    时间: 2016-6-30 20:43

我又回复了  
作者: 未必温暖    时间: 2016-7-20 16:18

不错!  
作者: doors    时间: 2016-8-6 07:30

支持你一下下。。  
作者: ikiss    时间: 2016-8-7 16:10

既然来了,就留个脚印  
作者: 123456zsz    时间: 2016-8-13 13:01

你加油吧  
作者: 知足常乐    时间: 2016-9-20 14:43

我卷了~~~~~~~  
作者: www1202000    时间: 2016-10-1 21:54

我好想升级  
作者: dreamenjoyer    时间: 2016-10-5 18:22

很有吸引力  
作者: lalala    时间: 2016-10-31 13:53

希望可以用些时间了~````  
作者: 昕昕    时间: 2016-11-4 17:52

HOHO~~~~~~  
作者: dmof    时间: 2016-11-7 08:27

给我一个女人,我可以创造一个民族;给我一瓶酒,我可以带领他们征服全世界 。。。。。。。。。  
作者: 黄山    时间: 2016-11-15 11:27

彪悍的人生不需要解释。  
作者: netlover    时间: 2016-11-22 09:18

嘿...反了反了,,,,  
作者: vsill    时间: 2016-11-25 10:27

每天早上起床都要看一遍“福布斯”富翁排行榜,如果上面没有我的名字,我就去上班……  
作者: 依旧随遇而安    时间: 2016-12-14 23:47

哈哈 瞧你说的~~~  
作者: 石头111    时间: 2017-1-6 17:53

任何的限制,都是从自己的内心开始的。  
作者: 科研人    时间: 2017-1-10 05:21

支持~~顶顶~~~  
作者: 旅美学者    时间: 2017-2-10 22:54

在线等在线等  
作者: 咖啡功夫猫    时间: 2017-2-12 03:55

干细胞存储  
作者: doc2005    时间: 2017-2-24 07:27

挤在北京,给首都添麻烦了……  
作者: alwaysniu    时间: 2017-2-28 08:10

不错啊! 一个字牛啊!  
作者: Whole    时间: 2017-3-16 07:34

支持一下  
作者: biopxl    时间: 2017-3-17 19:43

不错不错,我喜欢看  
作者: xm19    时间: 2017-3-20 20:43

厉害!强~~~~没的说了!  
作者: dada    时间: 2017-3-21 08:27

我卷了~~~~~~~  
作者: abc987    时间: 2017-5-8 13:10

我想要`~  
作者: 生科院    时间: 2017-5-16 08:26

我喜欢这个贴子  
作者: pspvp    时间: 2017-6-4 11:01

干细胞之家
作者: 再来一天    时间: 2017-7-20 12:01

赚点分不容易啊  
作者: 化药所    时间: 2017-7-22 02:53

呵呵 高高实在是高~~~~~  
作者: pcr    时间: 2017-7-23 14:18

干细胞存储  
作者: kaikai    时间: 2017-7-24 06:16

dc-cik nk  
作者: 张佳    时间: 2017-9-5 00:18

天啊. 很好的资源
作者: 3344555    时间: 2017-10-2 23:27

站个位在说  
作者: dypnr    时间: 2017-10-4 09:56

我帮你 喝喝  
作者: 心仪    时间: 2017-10-8 13:52

嘿嘿......哈哈......呵呵.....哟~呼  
作者: dada    时间: 2017-10-8 17:16

说的不错  
作者: 3344555    时间: 2017-11-2 08:01

赚点分不容易啊  
作者: dglove    时间: 2017-11-8 01:31

干细胞之家是不错的网站
作者: 小小C    时间: 2017-11-15 10:01

我帮你 喝喝  
作者: 糊涂小蜗牛    时间: 2017-11-24 01:10

这个贴不错!!!!!  
作者: lalala    时间: 2017-12-3 14:25

水至清则无鱼,人至贱则无敌!  
作者: nauticus    时间: 2017-12-10 11:26

只有一条路不能选择——那就是放弃的路;只有一条路不能拒绝——那就是成长的路。  
作者: dongmei    时间: 2017-12-16 03:01

经过你的指点 我还是没找到在哪 ~~~  
作者: whyboy    时间: 2018-1-22 18:52

我帮你 喝喝  
作者: 锦锦乐道    时间: 2018-1-23 11:40

干细胞分化技术
作者: 陈晴    时间: 2018-2-10 15:27

我是来收集资料滴...  
作者: dataeook    时间: 2018-2-14 10:27

拿分走人呵呵,楼下继续!
作者: 983abc    时间: 2018-3-3 16:00

活着,以死的姿态……  
作者: 一个平凡人    时间: 2018-3-5 11:26

说嘛1~~~想说什么就说什么嘛~~  
作者: tempo    时间: 2018-3-11 13:14

一楼的位置好啊..  
作者: 旅美学者    时间: 2018-3-21 00:41

声明一下:本人看贴和回贴的规则,好贴必看,精华贴必回。  
作者: feixue66    时间: 2018-3-23 12:35

神经干细胞
作者: dglove    时间: 2018-3-23 21:07

胚胎干细胞
作者: dd赤焰    时间: 2018-3-26 06:26

做对的事情比把事情做对重要。  
作者: 风云动    时间: 2018-3-28 23:05

很有吸引力  
作者: dataeook    时间: 2018-4-23 16:55

水至清则无鱼,人至贱则无敌!  
作者: Whole    时间: 2018-5-12 14:27

顶你一下,好贴要顶!  
作者: 榴榴莲    时间: 2018-5-15 19:42

水至清则无鱼,人至贱则无敌!  
作者: 三好学生    时间: 2018-5-18 09:51

每天都会来干细胞之家看看
作者: dogcat    时间: 2018-5-30 11:01

对不起,我走错地方了,呵呵  
作者: 陈晴    时间: 2018-6-6 00:50

回个帖子支持一下!
作者: 丸子    时间: 2018-6-18 21:19

每天到干细胞之家看看成了必做的事情
作者: biobio    时间: 2018-6-26 03:38

干细胞与基因技术
作者: 生科院    时间: 2018-7-3 19:44

回帖是种美德.  
作者: cjms    时间: 2018-7-4 16:11

呵呵 哪天得看看 `~~~~  
作者: HongHong    时间: 2018-7-11 08:19

肿瘤干细胞
作者: 科研人    时间: 2018-7-20 16:54

HOHO~~~~~~  
作者: dreamenjoyer    时间: 2018-8-10 01:10

不对,就是碗是铁的,里边没饭你吃啥去?  
作者: heart10    时间: 2018-8-30 20:01

不早了 各位晚安~~~~  
作者: hmhy    时间: 2018-9-16 18:00

呵呵 高高实在是高~~~~~  
作者: aliyun    时间: 2018-9-19 19:31

老大,我好崇拜你哟  
作者: 心仪    时间: 2018-9-24 22:26

神经干细胞
作者: aliyun    时间: 2018-10-8 11:10

我又回复了  




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