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标题: Derivation and Characterization of New Human Embryonic Stem Cell Lines: SNUhES1, [打印本页]

作者: 江边孤钓    时间: 2009-3-5 10:52     标题: Derivation and Characterization of New Human Embryonic Stem Cell Lines: SNUhES1,

a Department of Obstetrics and Gynecology and
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c Laboratory of Electron Microscope, Seoul National University Children’s Hospital, Seoul, Korea;
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d Department of Physiology, Yonsei University College of Medicine, Seoul, Korea
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Key Words. Cell replacement therapy ? Derivation of hESCs ? Differentiation into cardiomyocytes ? EM analysis of hESCs ? Human embryonic stem cells
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* w& G8 f& x. tCorrespondence: Shin Yong Moon, M.D., Ph. D., Department of Obstetrics and Gynecology, College of Medicine, Seoul National University, 28 Yongon-dong, Chongno-gu, Seoul 110-744, Korea. Telephone: 82-2-2072-2384; Fax: 82-2-3672-7601; e-mail: shmoon@plaza.snu.ac.kr; and Dong-Wook Kim, Ph.D., Yonsei University College of Medicine, Department of Physiology, 134 Shinchon-dong, Seodaemun-gu, Seoul 120-752, Korea. Telephone: 82-2-361-5208; Fax: 82-2-393-0203; e-mail: dwkim2@yumc.yonsei.ac.kr% R; b: D2 Y8 P7 x7 x5 a

& [! w1 A5 {* D& Z+ V1 Z; k7 n" V$ HABSTRACT+ \2 H6 C+ @. a3 U- x% l! [* a
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Since mouse embryonic stem cells (mESCs) were isolated and cultured in vitro two decades ago , the research of ESCs has made outstanding contributions to our understanding of developmental biology. ESCs, derived from the inner cell mass (ICM) in preimplantation embryos, can proliferate extensively in vitro while maintaining an undifferentiated state and differentiate into most cell types under certain conditions . This ability of ESCs makes them a good source for cell replacement therapy . In addition, ESCs can be used as a source for study of basic developmental biology, identification of factors that are involved in regulation of developmental processes and differentiation into certain cells or tissue, and screening for drugs or toxins .* w# E) T' ~" Q
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Human ESC (hESC) lines have been successfully derived from human blastocysts . Derivation and characterization of hESCs is very important in terms of the direct application to human diseases. Like mESCs, the essential characteristics of hESCs include (a) derivation from the preimplantation embryos, (b) prolonged proliferation in vitro, and (c) stable developmental potentials to form derivatives of all three embryonic germ layers even after prolonged culture. However, hESCs are different from mESCs in the expression of markers. Stage-specific embryonic antigen-1 (SSEA-1), a cell surface marker, is expressed in mESCs but not in hESCs . In contrast, SSEA-3, SSEA-4, TRA-1-60, and TRA-1–81 are markers that are expressed only in hESCs .
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5 \+ `# {% _! _  \# XRecently, several studies have shown that neuronal cells , cardiomyocytes , and pancreatic ? cells  can be induced from hESCs. These results give promise to the clinical application of hESCs for the treatment of diseases such as Parkinson’s disease, diabetes, and heart disease. However, ESCs can display different differentiation potentials under the same conditions . Thus, testing the differentiation potentials of existing ESC lines is critical in the selection of the appropriate cell line for each experimental purpose. For cell replacement therapy in the field of neurological disorders, the cell lines that most effectively give rise to neuronal populations will be useful. Accordingly, establishment and characterization of many hESC lines are important in this respect.
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Here we report the establishment of new hESC lines, SNUhES1, 2, and 3. We observed that these cells have the same characteristics as the existing hESC lines in the undifferentiated state and can differentiate into cardiomyocyte lineage in vitro. In addition, our analysis by electron microscopy (EM) shows that the undifferentiated hESCs and differentiated cells are clearly different in their cellular structure.
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- k% ?4 V! R; t: r! z; AMATERIALS AND METHODS( m' m  s( z9 t- `2 U
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Derivation of Three hESC Lines: SNUhES1, SNUhES2, and SNUhES3
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Blastocysts cultured from cryopreserved pronuclear stage embryos were used for establishment of hESC lines. Ten healthy blastocysts that showed both clear ICM and trophectoderm under the microscope were obtained from 73 embryos. The ICM was immunosurgically isolated from nine blastocysts containing a large ICM . The remaining blastocyst had a relatively small ICM, and thus the ICM was separated by the whole-embryo culture method  to reduce the risk of cell loss. ICM isolated by both methods was plated onto fresh mouse STO feeder layers. After 5–7 days of culture, clumps of small, tightly packed cells proliferated from three (two of nine ICM isolated by immunosurgery and one isolated by whole-embryo culture) of the 10 ICM. These clumps were mechanically dissociated and replated onto fresh feeder layers. The replated cell clumps after several passages gave rise to flat colonies of cells with defined borders that morphologically resembled human or primate ESCs (Fig. 1A, C, and E). Under high magnification (x200), these cells showed a high ratio of nucleus to cytoplasm and prominent nucleoli (Fig. 1B, D, and F; Fig. 2A), as described previously. Each of SNUhES1, 2, and 3 cell lines was passaged for more than 90, 120, and 100 passages, respectively, while maintaining an undifferentiated state in the presence of the STO feeder layer. During routine passage of the cells, spontaneous differentiation was observed in some colonies even in the presence of the STO feeder layer. Differentiation usually happened in the central part of the colony or in its periphery, and the differentiated portions were manually removed before passaging undifferentiated cells.
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) N9 ?( Q7 w4 m4 E# gFigure 1. Derivation of human embryonic stem cell lines. Representative photographs of (A, B) SNUhES1, (C, D) SNUhES2, and (E, F) SNUhES3, respectively, are shown. SNUhES1 and 2 were derived from nine blastocysts using an immunosurgical method, while SNUhES3 was derived from a blastocyst using the whole-embryo culture method. Photographs were taken at low (x40; A, C, E) or high (x200; B, D, F) magnification.2 W& M4 s4 q( ~( l: P

$ u4 V& l3 z* z3 t% \Figure 2. Fine structures of undifferentiated and differentiated hESCs. Morphological comparison between (A) undifferentiated and (B, C) differentiated hESCs analyzed by electron microscopy. The two types of cells clearly showed a big morphological difference. Undifferentiated hESCs have large nuclei with prominent nucleoli, whereas differentiated hESCs exhibit mature cellular organelles. Magnification: A, x3.5K; B, x8.0K; C, x12K. Abbreviations: hESC, human embryonic stem cell; RER, rough endoplasmic reticulum.# A: l$ D% I0 h) ^- d6 K
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Marker Expression, Karyotyping and DNA Fingerprinting of hESC Lines* |1 R& C/ f* \. n
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Pluripotent hESCs have unique characteristics. In general, they show high expression levels of AP, SSEA-3, SSEA-4, TRA-1-60, TRA-1-81, Oct-4, and telomerase . We began to investigate whether our hESC lines fit these criteria. As shown in Figure 3A, our cell lines showed a high level of AP activity. Elevated expression of this enzyme is associated with undifferentiated pluripotent stem cells . Immunophenotyping of the hESCs was performed using a series of antibodies that detect cell surface markers. Our hESCs stained positively for SSEA-3, SSEA-4, TRA-1-60, and TRA-1-81 (Fig. 3C–F) but not SSEA-1 (Fig. 3B), a marker for mESCs. Staining intensity for SSEA-4 was consistently strong, but the intensity for SSEA-3 was relatively weak and variable among colonies, as reported previously . SSEA-3 and SSEA-4 are glycoproteins specifically expressed in early embryonic development and by undifferentiated hESCs . TRA-1–60 and -81 are tumor-related antigens that are normally synthesized by undifferentiated hESCs . In addition, Oct-4 expression was observed only in undifferentiated hESCs, and its expression disappeared when hESCs differentiated (Fig. 4A). Oct-4 is a transcription factor that is essential for establishment and maintenance of undifferentiated hESCs and mESCs .8 Y( y9 x1 a5 K5 s: Z

! N# h$ M9 w7 A' |Figure 3. Marker analyses of hESCs. Staining of ESC markers such as (A) alkaline phosphatase, (B) SSEA-1, (C) SSEA-3, (D) SSEA-4, (E) TRA-1-60, and (F) TRA-1-81 are shown in SNUhES3 cells (x150 magnification). Similar results were obtained for the cell lines SNUhES1 and 2. Abbreviation: hESCs, human embryonic stem cells.
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Figure 4. Expression of Oct-4 and telomerase in hESC lines. (A): Oct-4 expression in hESC lines: lane 1, undifferentiated SNUhES1; lane 2, differentiated SNUhES1; lane 3, undifferentiated SNUhES2; lane 4, differentiated SNUhES2; lane 5, undifferentiated SNUhES3; lane 6, differentiated SNUhES3; lane 7, STO feeder layer. (B): SNUhES cell lines express high levels of telomerase activity. A 36-bp internal control was used for amplification efficiency and quantification, as indicated by the arrow. A ladder of telomerase products amplified by PCR is shown with six base increments starting at 50 nucleotides at the portion indicated by the asterisk. Lane 1, positive control provided by kit; lane 2, heat-inactivated positive control; lane 3, PCR control without addition of template; lane 4, undifferentiated SNUhES1; lane 5, heat-inactivated SNUhES1; lane 6, undifferentiatedSNUhES2;lane7, heat-inactivatedSNUhES2; lane 8, undifferentiated SNUhES3; lane 9, heat-inactivated SNUhES3; lane 10, STO feeder layer; lane 11, heat-inactivated STO feeder layer. Abbreviations: hESC, human embryonic stem cell; PCR, polymerase chain reaction.5 Y3 M0 S2 d  y4 |

/ ^' v. y* P: }9 f/ EHigh levels of telomerase activity, a useful marker for identifying undifferentiated hESCs , were also observed in the three cell lines (Fig. 4B). Undifferentiated SNUhES1 (lane 4), 2 (lane 6), and 3 (lane 8) showed the same high activity as the positive control (lane 1) provided by the kit, but heat-inactivated samples (lanes 2, 5, 7, 9, and 11) and the STO feeder layer (lane 10) did not retain any telomerase activity. The high level of telomerase activity in these cell lines indicates that they have a potential to infinitely proliferate . Thus, from this pattern of marker expression, these cell lines satisfy the criteria that characterize existing, pluripotent hESCs. Karyotyping was performed at passages 12 to 15, and all three cell lines retained normal karyotypes (Fig. 5). In this assay, SNUhES1 and SNUhES3 had 46, XY karyotypes (Fig. 5A and C), whereas SNUhES2 showed a 46, XX karyotype (Fig. 5B). DNA fingerprinting was performed for these cell lines (Table 1). From the study of the nine STR loci , it is clear that these three cell lines were derived from different embryos. These fingerprinting results also provide useful information for identification of each cell line after cell distribution.6 Q* W9 J, h( `4 y

  ^2 }% X# E, ]( U  y4 E9 w( O) oFigure 5. Karyotypes of SNUhES cell lines. When analyzed by G-staining method, karyotypes of after 12–15 passages were found to be normal: (A) SNUhES1, 46, XY, (B) SNUhES2, 46, XX, and (C) SNUhES3, 46, XY.' ?" g. U% V* j( u' Q

2 k7 q# W3 k' S: v, PTable 1. DNA fingerprinting for SNUhES cell lines: distribution of alleles for the nine short tandem repeat loci in the three human embryonic stem cell lines. ]* @# Q/ Q, H2 K

7 X/ z. S8 \4 u9 a+ h: `Differentiation Potentials of hESCs in SCID Mice
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An important property of ESCs is their ability to differentiate into all kinds of somatic cell types. To test this potential in vivo, the hESCs were injected into SCID mice . As shown in Figure 6, these cells produced teratomas in each injected SCID mouse. Teratomas were found to contain tissues of the three embryonic germ layers: endoderm (gut-like structure  and gut epithelium ), mesoderm (cartilage ), and ectoderm (neural rosettes ). When these cell lines were cultured in a feeder-free condition, differentiation occurred rapidly in vitro (data not shown). When cultured on bacterial Petri dishes, these cell lines also showed a potential to make EBs, intermediates during the process of differentiation. Thus, these results suggest that the established cell lines are pluripotent even after prolonged proliferation.
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/ S9 [1 }7 ^1 v. @, jFigure 6. Teratoma formation after injection of human embryonic stem cells into severe combined immunodeficient mice. The tissues were stained with hematoxylin and eosin. (A): Gut-like structure (endoderm) from SNUhES1. (B): Gut epithelium-like tissue (endoderm) from SNUhES2. (C): Cartilage-like tissue (mesoderm) from SNUhES3. (D): Neural rosettes-like structure (ectoderm) from SNUhES1.
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  L6 ~: o1 S$ J$ l7 `Structural Differences between Undifferentiated and Differentiated hESCs: R! x) Z8 `& w6 O: O

- R& j  `3 q( oIt was reported that undifferentiated hESCs have a high ratio of nucleus to cytoplasm . This fact prompted us to investigate the structural differences between undifferentiated and differentiated hESCs in more detail using EM. Expanded undifferentiated colonies and EBs (8 weeks old) were used for analyses by transmission EM (TEM). As expected , the nucleus to cytoplasm ratio was high in undifferentiated hESCs (Fig. 2A). In addition, several other features were observed in these cells: They had indistinct cell membranes, free ribosomes, and ovoid nuclei with one to three reticulated nucleoli. Among the cellular organelles, small mitochondria with a few crista, a characteristic of premature cells, were occasionally found, but others such as rough endoplasmic reticulum (RER), Golgi complex, and lipid droplet were not observed. In contrast, differentiated cells showed highly developed cellular organelles such as extensive Golgi complexes associated with small secretory vesicles and ER studded with ribosomes (Fig. 2B, C), indicating that cells are actively synthesizing secretory proteins as in somatic tissues. Organelles like lipid droplet and large mitochondria were also evident. Cytoplasmic membranes were irregular and extensively developed to enlarge the interface between cells. The existence of desmosomes and tonofilaments suggests that these cells differentiated into epithelial cells. Microvilli (shown in Fig. 2C) are similar (e.g., columnar and dense) to those of gastric epithelial cells. Cyto-skeleton components such as actin and tonofilaments were also shown. Taken together, these results clearly show that undifferentiated hESCs have a relatively simple structure during proliferation, whereas the differentiated cells resemble epithelial cells and display all kinds of cellular organelles for intracellular and intercellular activities such as protein transport, as shown in adult somatic cells.
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In Vitro Differentiation into Cardiomyocytes/ g5 m: P+ v! I& t8 E" T" S

2 `* t% H( H4 X/ dTo examine the differentiation potentials of three cell lines into cardiomyocytes, EBs formed from hESC colonies were first induced into mesodermal fate in a suspension culture and then differentiated into cardiomyocytes after attachment onto culture dishes. In general, mesodermal markers (e.g., enolase, cartilage matrix protein) began to be expressed approximately 18 days after suspension culture of EBs in all three cell lines. Thus, based on the expression of mesodermal markers, we attached 20-, 25-, and 30-day-old EBs onto gelatin-coated culture dishes after suspension culture. After further differentiation (~20 days) of attached EBs, contracting clusters were found from 30-day-old EBs but not from 20- or 25-day-old EBs. Contracting EBs were made from SNUhES3 most efficiently (~20% of total clusters), but they were seldom found in SNUhES1 and 2. These contractions continued for up to 4 weeks., M7 b, C% S; T* y8 E
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Using immunocytochemistry, the presence of cTnI, a cardiac-specific protein that is involved in the regulation of cardiac muscle contraction , was studied in differentiated EBs. As shown in Figure 7A–C, all three SNUhES cell lines expressed cTnI. However, among three cell lines, SNUhES1 and 3 showed a relatively strong expression of cTnI in comparison with SNUhES2, which revealed a weak expression of cTnI. SNUhES1, 2, and 3 cells gave rise to about 40%, 19%, and 60%, respectively, in the number of cTnI-positive cells among 4,6-diamidino-2-phenylindole–positive total cells (data not shown). These results indicate that of the three cell lines, SNUhES3 differentiates into cardiomyocytes most effectively.: {# k- o2 ^6 i4 N
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Figure 7. Analyses of embryonic stem cell–derived cardio-myocytes by immunostaining and reverse transcription polymerase chain reaction. (A–C): Immunostaining of differentiated EBs with mouse anti-cTnI antibody and Alexa Fluor 488 (green)–labeled donkey anti-mouse immunoglobulin G on SNUhES1, 2, and 3, respectively. (D): Expression of cardiac-specific markers in EBs (lane 2) differentiated from SNUhES3 compared with undifferentiated SNUhES3 (lane 1). Abbreviation: EB, embryoid body.
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Several other cardiac markers were analyzed from the SNUhES3 by RT-PCR. Figure 7D shows that GATA4, ANF, and cardiac actin (cACT) were also more highly expressed in cells differentiated from SNUhES3 (lane 2) than in undifferentiated cells (lane 1). GATA4 is known to be expressed in precardiac mesoderm of the developing heart , and ANF is a hormone that is expressed in ventricular cardiomyocytes .8 s6 i' @9 {2 T6 U+ q

1 s; D0 y5 ^5 x* zDISCUSSION
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8 D* I& P) r: E9 `' \) p/ GWe thank Dr. Jung Bin Lee (Forensic Medicine, College of Medicine, Seoul National University) for performing DNA fingerprinting. This research was supported by grant numbers SC11011 and SC12060 from the Stem Cell Research Center of the 21st Century Frontier Research Program funded by the Ministry of Science and Technology, Republic of Korea.' r: V) ^- p  i" x, l* l
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作者: tempo    时间: 2015-12-27 20:37

不早了 各位晚安~~~~  
作者: xuguofeng    时间: 2016-1-7 11:27

爷爷都是从孙子走过来的。  
作者: aakkaa    时间: 2016-1-7 14:50

dddddddddddddd  
作者: 陈晴    时间: 2016-2-21 10:01

小生对楼主之仰慕如滔滔江水连绵不绝,海枯石烂,天崩地裂,永不变心.  
作者: IPS干细胞    时间: 2016-3-8 19:02

呵呵 高高实在是高~~~~~  
作者: keanuc    时间: 2016-4-12 09:54

哈哈 瞧你说的~~~  
作者: 泡泡鱼    时间: 2016-4-26 09:27

顶你一下.  
作者: Diary    时间: 2016-6-9 06:01

先看看怎么样!  
作者: 橙味绿茶    时间: 2016-6-29 12:10

好帖,有才  
作者: youngcell    时间: 2016-6-30 11:01

昨天没来看了 ~~  
作者: tuanzi    时间: 2016-8-21 19:07

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: dogcat    时间: 2016-9-21 19:19

说的不错  
作者: 咖啡功夫猫    时间: 2016-9-30 15:35

希望可以用些时间了~````  
作者: dreamenjoyer    时间: 2016-10-12 16:11

抢座位来了  
作者: dglove    时间: 2016-11-9 12:01

想都不想,就支持一下  
作者: 墨玉    时间: 2016-11-19 14:26

拿分走人呵呵,楼下继续!
作者: aliyun    时间: 2016-12-25 13:27

我回不回呢 考虑再三 还是不回了吧 ^_^  
作者: wq90    时间: 2017-1-1 01:59

回贴赚学识,不错了  
作者: dr_ji    时间: 2017-1-21 04:29

厉害!强~~~~没的说了!  
作者: 123456zsz    时间: 2017-1-27 02:31

呵呵 那就好好玩吧~~~~  
作者: highlight    时间: 2017-3-9 17:23

自己知道了  
作者: 天蓝色    时间: 2017-3-10 04:25

回答了那么多,没有加分了,郁闷。。  
作者: Kuo    时间: 2017-3-15 07:25

想都不想,就支持一下  
作者: 初夏洒脱    时间: 2017-4-1 08:54

不错的东西  持续关注  
作者: 墨玉    时间: 2017-5-1 02:55

不知道说些什么  
作者: 干细胞2014    时间: 2017-5-18 21:20

干细胞行业  
作者: dreamenjoyer    时间: 2017-5-20 17:35

问渠哪得清如许,为有源头活水来。  
作者: 生物小菜鸟    时间: 2017-6-12 09:18

支持你就顶你  
作者: apple0    时间: 2017-6-14 03:06

说的不错  
作者: 苹果天堂    时间: 2017-6-21 15:18

神经干细胞
作者: lalala    时间: 2017-7-7 07:14

又看了一次  
作者: 风云动    时间: 2017-7-26 21:57

帮你项项吧  
作者: kaikai    时间: 2017-8-10 00:10

神经干细胞
作者: IPS干细胞    时间: 2017-8-19 02:29

我帮你 喝喝  
作者: changfeng    时间: 2017-9-15 15:10

一楼的位置好啊..  
作者: 甘泉    时间: 2017-9-26 20:41

楼主也是博士后吗  
作者: lalala    时间: 2017-9-30 05:54

你加油吧  
作者: 分子工程师    时间: 2017-10-11 18:20

怎么就没人拜我为偶像那?? ~  
作者: 温暖暖    时间: 2017-10-12 23:27

好啊,谢楼主
作者: foxok    时间: 2017-11-26 08:00

真好。。。。。。。。。  
作者: 若天涯    时间: 2017-12-10 14:34

快毕业了 希望有个好工作 干细胞还是不错的方向
作者: 锦锦乐道    时间: 2018-1-4 11:10

皮肤干细胞
作者: frogsays    时间: 2018-1-18 20:43

干细胞疾病模型
作者: doors    时间: 2018-1-23 03:09

我喜欢这个贴子  
作者: popobird    时间: 2018-2-11 07:10

干细胞我这辈子就是看好你
作者: frogsays    时间: 2018-2-19 03:58

佩服佩服啊.  
作者: 丸子    时间: 2018-2-19 15:16

人气还要再提高  
作者: 狂奔的蜗牛    时间: 2018-3-12 04:26

神经干细胞
作者: 黄山    时间: 2018-3-28 11:42

呵呵 大家好奇嘛 来观看下~~~~  
作者: 杏花    时间: 2018-4-4 21:01

哎 怎么说那~~  
作者: 知足常乐    时间: 2018-4-29 19:36

挤在北京,给首都添麻烦了……  
作者: 123456zsz    时间: 2018-5-5 15:23

一楼的位置好啊..  
作者: happyboy    时间: 2018-5-31 16:10

我的妈呀,爱死你了  
作者: Greatjob    时间: 2018-6-2 15:40

我也来顶一下..  
作者: 小小C    时间: 2018-6-15 23:08

干细胞疾病模型
作者: 天蓝色    时间: 2018-6-29 00:39

这个贴好像之前没见过  
作者: syt7000    时间: 2018-7-15 17:42

继续查找干细胞研究资料
作者: 罗马星空    时间: 2018-7-22 19:18

今天没事来逛逛  
作者: tuanzi    时间: 2018-7-25 19:28

原来这样也可以  
作者: www1202000    时间: 2018-9-16 18:41

干细胞行业  
作者: 初夏洒脱    时间: 2018-9-28 10:19

回贴赚学识,不错了  
作者: 我心飞翔    时间: 2018-11-4 20:24

干细胞研究人员的天堂
作者: Greatjob    时间: 2018-11-12 07:33

拿把椅子看表演
作者: htc728    时间: 2018-11-30 10:54

不错啊! 一个字牛啊!  
作者: 甘泉    时间: 2018-12-6 03:14

今天没事来逛逛,看了一下,感觉相当的不错。  
作者: apple0    时间: 2019-1-3 18:31

真的有么  
作者: 求索迷茫    时间: 2019-1-5 01:32

谢谢楼主啊!
作者: alwaysniu    时间: 2019-1-5 05:12

dddddddddddddd  
作者: 365wy    时间: 2019-1-24 18:00

抢座位来了  
作者: immail    时间: 2019-1-30 15:51

胚胎干细胞
作者: txxxtyq    时间: 2019-2-4 02:41

正好你开咯这样的帖  
作者: 水木清华    时间: 2019-2-13 00:26

昨天没来看了 ~~  
作者: tian2006    时间: 2019-2-19 05:41

彪悍的人生不需要解释。  
作者: 石头111    时间: 2019-3-2 14:33

说嘛1~~~想说什么就说什么嘛~~  
作者: 与你同行    时间: 2019-3-13 15:26

感谢党和人民的关爱~~~  
作者: pcr    时间: 2019-3-14 18:26

我十目一行也还是看不懂啊  
作者: 快乐小郎    时间: 2019-3-22 14:01

不早了 各位晚安~~~~  
作者: popobird    时间: 2019-4-1 05:24

淋巴细胞




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