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标题: Identification of a Molecular Target of Psychosine and Its Role in Glo [打印本页]

作者: 杨柳    时间: 2009-3-5 23:33     标题: Identification of a Molecular Target of Psychosine and Its Role in Glo

a Department of Pharmacology, University of Virginia School of Medicine, Charlottesville, Virginia 22908
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& {& T- u5 p/ e" L2 ^0 b# eb Department of Pharmacology, University of Toronto, Toronto, Ontario, Canada M5S 1A82 ]9 k: c( n$ V% g0 |% `; M
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Correspondence to: Kevin R. Lynch, Department of Pharmacology, Box 800735, University of Virginia School of Medicine, 1300 Jefferson Park Ave., Charlottesville, VA 22908-0735. Tel:(804) 924-2840 Fax:(804) 982-3878 E-mail:krl2z@virginia.edu.% m: E3 h8 {/ P
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Abstract( ?( D% j1 T% r* M0 @% z/ c1 E

; g. j3 Y1 T  u8 eGloboid cell leukodystrophy (GLD) is characterized histopathologically by apoptosis of oligodendrocytes, progressive demyelination, and the existence of large, multinuclear (globoid) cells derived from perivascular microglia. The glycosphingolipid, psychosine (D-galactosyl-?-1,1' sphingosine), accumulates to micromolar levels in GLD patients who lack the degradative enzyme galactosyl ceramidase. Here we document that an orphan G protein–coupled receptor, T cell death–associated gene 8, is a specific psychosine receptor. Treatment of cultured cells expressing this receptor with psychosine or structurally related glycosphingolipids results in the formation of globoid, multinuclear cells. Our discovery of a molecular target for psychosine suggests a mechanism for the globoid cell histology characteristic of GLD, provides a tool with which to explore the disjunction of mitosis and cytokinesis in cell cultures, and provides a platform for developing a medicinal chemistry for psychosine.
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Key Words: psychosine, G protein–coupled receptor, cytokinesis, leukodystrophy, sphingolipid
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6 K& D' k1 k9 g: `Introduction  t, c+ M6 N6 H2 |
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Globoid cell leukodystrophy (GLD1; also known as Krabbe's disease) is a hereditary metabolic disorder of infants, characterized morphologically by almost total absence of myelin, severe gliosis, and the presence of characteristic, multinucleated globoid cells in the white matter (Suzuki and Suzuki 1978 ). The deficiency of the catabolic enzyme galatosyl ceramidase results in accumulation of psychosine (PSY; D-galactosyl-?-1,1'-sphingosine) in the brain (Suzuki and Suzuki 1978 ). This accumulation of PSY in the white matter of children with GLD correlates temporally with apoptosis of oligodendrocytes and globoid cell formation by microglia (Tanaka and Webster 1993 ; Cho et al. 1997 ). The nature of a causal relationship between globoid cell formation and disappearance of oligodendrocytes, if any, is not understood. The course of the human disease is mimicked by the galactosyl ceramidase (GALC)-deficient twitcher mouse (Igisu and Suzuki 1984 ). The homozygous GALC-/GALC- twitcher mice are phenotypically normal at age 22 d but afterwards exhibit head twitching, progressive paralysis, and death by age 45 d (Matsushima et al. 1994 ). These GALC-/GALC- mice accumulate high levels (120 μM in brain at age 31 d) of PSY (Shinoda et al. 1987 )./ C8 {* h! h1 d4 [
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Although PSY has been long suspected as a molecular agent in GLD and its mouse model, the mechanism of action of PSY is not understood (Suzuki 1998 ). Recently, Xu et al. 2000  demonstrated that sphingosylphosphorylcholine (SPC) is a ligand for an "orphan" (i.e., previously unknown ligand) G protein–coupled receptor named ovarian cancer G protein–coupled receptor (OGR1). Due to our long-standing interest in lysophospholipid mediators such as sphingosine 1-phosphate, we began studying additional orphan G protein–coupled receptors that are similar to OGR1. One of these, named T cell death–associated gene 8 (TDAG8; so named because it is one of the genes expressed to high levels during the programmed cell death of immature T lymphocytes ), shares 41% identical amino acids with OGR1. In the course of testing a set of putative and known lipid signaling molecules, we found that TDAG8 is a specific receptor for PSY and several related glycosphingolipids. Further, the PSY/TDAG8 pair evokes a multinuclear phenotype in cultured cells reminiscent of the globoid cell formation that is the neurohistoligic fingerprint of Krabbe's disease.( e' x( V. G" Y

9 v7 M  h4 F/ k* b9 L  F4 ~! J5 ~Materials and Methods
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1 V8 i3 c) L- c' w' `  iMaterials
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GluPSY, LacPSY, N-acetyl PSY, and lysosulfatide were from Matreya, Inc.; PSY and SPC were obtained from Avanti Polar Lipids. CTP was obtained from ICN Biochemicals; pcDNA3 plasmid was from Invitrogen; RH7777 cells (CRL 1601) and HEK293 cells (CRL-1573) were from the American Type Culture Collection; and human multiple tissue expression array and the pEGFP-N1 plasmid were from CLONTECH Laboratories, Inc. All other chemicals were from Sigma-Aldrich.+ h. Q0 @/ c% l7 v8 J

' u: u7 X- r- I0 q9 b9 p  }: N2 ]4 VCloning and Stable Transfection of TDAG8  l% H  p5 o5 j6 a3 h6 U0 \

+ m- W  Q! L6 ~# |Human TDAG8 was cloned from a genomic DNA library by PCR with two primers, forward primer 5'-AGACTTCTCTGTTTACTTTCT and reverse primer 5'-CTTCCCTTCAAAACATCCTTG, subcloned into the pcDNA3 expression vector, and its nucleotide sequence was verified. RH7777 or HEK293 cell monolayers were transfected with the TDAG8/pcDNA3 plasmid DNA using the calcium phosphate precipitate method, and clonal populations expressing the neomycin phosphotransferase gene were selected by addition of geneticin (G418) to the culture media. The RH7777 or HEK293 cells were grown in monolayers at 37°C in a 5% CO2/95% air atmosphere in growth media consisting of 90% MEM, 10% fetal bovine serum, 2 mM glutamine, and 1 mM sodium pyruvate.
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3 V  H3 ]3 L0 }2 E! q" t$ jConstruction of TDAG8-GFP DNA and Confocal Microscopy
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" b; x; Z7 q; d. z7 i* T- A  qHuman TDAG8 DNA was subcloned into the pEGFP-N1 vector at EcoRI-XhoI sites and transiently expressed in HEK293T cells by transfection using the calcium phosphate precipitation method. Cells were allowed to express the transgene for 2 d and then cultures were plated onto coverslips for an additional day. Indicated concentrations of lipid were added for 2 h at 37°C and then coverslips were washed with PBS at room temperature twice and fixed with cold 70% ethanol for 45 min. Coverslips were then dried and mounted onto slides using Vectashield with DAPI (Vector Laboratories). Confocal microscopy was performed using a Micro Systems LSM (ZEISS) and Axiovert 100 inverted scope at an excitation wavelength of 488 nM with 63x magnification for green fluorescent protein (GFP).
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cAMP Accumulation and Ca2  Mobilization
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For assay of cAMP, cells were plated on 24-well dishes as subconfluent populations. After 24 h, they were washed with PBS twice and incubated in Hepes-Krebs-Ringer buffer for 10 min. Cells were stimulated with different concentrations of lipid in the presence of 1 μM forskolin and 1 mM isobutylmethylxanthine for 15 min. The reaction was stopped by adding HCl to 0.1 N final concentration. After centrifugation to remove cell debris, the cAMP in the supernatant fluid was measured in an automated immunoassay (Gamma flow). Assay of calcium mobilization was performed as described previously by us (Im et al. 2000b ). In brief, intracellular calcium fluxes were measured on cell populations (2–4 x 106 cells) that had been loaded with the calcium-sensitive fluorophore, INDO-1, in the presence of 2 mM probenecid. Responses were measured using a temperature-controlled fluorimeter (Aminco SLM 8000C; SLM Instruments). Lipids were delivered as aqueous solutions containing 0.1% (wt/vol) fatty acid–free BSA; this vehicle was determined to elicit no response.# r7 d0 O4 B. W9 i" ~2 E

' Z* x& S6 I1 w- o7 z; ~: bNorthern Blot Analysis
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For hybridization, a 32P-labeled human TDAG8 cDNA fragment was used. The human RNA master blot (CLONTECH Laboratories, Inc.) was hybridized and washed according to the protocol supplied by the manufacturer.6 d9 S: t: T6 Y' \7 o1 [

/ ~) j, B3 _! y. J6 nDAPI Staining
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+ O0 M4 T0 P# J1 yFor DAPI staining, cells were grown on coverslips and treated with 10 μM PSY for 6 (RH7777 cultures) or 4 d (HEK293 cells). After treatment, cells were washed with PBS at room temperature twice and fixed with cold 70% ethanol for 45 min. Coverslips were then dried and mounted onto slides using Vectashield with DAPI (Vector Laboratories) to display nuclei. Images are obtained using a fluorescence microscope (ZEISS) and Openlab v2.0 software on a Macintosh G3 computer.9 Q" P2 l$ e! a5 ?! r/ k# Q
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Flow Cytometry. F. ~# X' @% W6 ~& T

- G$ K9 w, ~; f1 C. e- Z. f! h" SCells were treated with 10 μM PSY for 6 d, harvested, and then fixed with 70% ethanol. Cells were treated with RNase A (0.1 mg/ml in PBS) at 37°C for 30 min, stained with propidium iodide (50 μg/ml in PBS), and then subjected to flow cytometry with a FACScanTM flowcytometer (Becton Dickinson) for measurement of the DNA content.2 Y9 ^+ }0 V( K
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Results and Discussion1 F0 [1 D+ O, }/ n0 ?4 a

1 \. P# Q' ?9 `, @' Q/ KWhen expressed in RH7777 hepatoma cells, human TDAG8 mediated PSY-induced inhibition of forskolin-driven cAMP rise in a concentration-dependent manner (EC50 = 3.4 μM) (Fig 1A and Fig B). This response was evoked also by structurally related lysolipids, e.g., D-glucosyl-?-1,1' sphingosine (GlcPSY), LacPSY, and lysosulfatide, but not by N-acetyl PSY, sphingosine 1-phosphate, lysophosphatidic acid, ceramide 1-phosphate, or lysophosphatidylcholine (Fig 1 C). Similar results were found using the orthologous mouse TDAG8 DNA (data not shown). The PSY response was not blocked by pretreatment of RH7777 cultures with pertussis toxin (PTX; 100 ng/ml for 24 h), suggesting the involvement of PTX-insensitive G proteins, perhaps Gz (Kozasa and Gilman 1995 ). SPC also was active in this assay, but this response, which was PTX sensitive (not shown), probably proceeds through an endogenous receptor in RH7777 cells (Im et al. 2000a ). This suspicion was confirmed when SPC failed in further assays (see below). The ability of PSY to activate TDAG8 was confirmed by this lipid evoking Ca2  transients in TDAG8/HEK293 cells (Fig 2) and the PSY-driven internalization of a TDAG8/GFP fusion protein in HEK293T cells (Fig 3). Both actions were mimicked by related lysoglycolipids (e.g., GlcPSY and lysosulfatide), but not by SPC or N-acetyl PSY at concentrations up to 10 μM (data not shown).
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Figure 1. Inhibition of forskolin-evoked cAMP accumulation in TDAG8 DNA-transfected RH7777 cells. Clonal populations of RH7777 cells transfected with the TDAG8 receptor DNA (B and C) or plasmid vector (A) were treated with forskolin and isobutylmethylxanthine and challenged with varying concentrations of PSY. After 15 min, cells were solubilized and the cAMP content was determined. The cAMP content per well in the absence of PSY was 115.3 ± 15.8 pmol. (A) Lack of response in mock-transfected RH7777 cells treated with 10 μM PSY. (B) Dose–response curve of PSY for inhibition of cAMP accumulation (open circles, PTX  treated; filled circles, PTX untreated). (C) Activity of various sphingoid-based lipids (10 μM) in this assay.' I8 p' z  J" h& t, T
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Figure 2. PSY induced Ca2  mobilization in TDAG8-HEK293 cells. Cells were placed in suspension by treatment of monolayers with trypsin/EDTA, loaded with the calcium-sensitive fluorophore, INDO-1/AM, and 2–4 x 106 cells were placed in a temperature-controlled cuvette. (A) Representative traces in response to 10 μM PSY by TDAG8/HEK293 or mock-transfected HEK293 cells. (B) Concentration–response curve for PSY in evoking Ca2  mobilization by TDAG8/HEK293 cells.
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Figure 3. Internalization of TDAG8-GFP fusion protein in response to PSY treatment. (A and B) HEK293T cells expressing GFP fusion protein alone. (C and D) HEK293T cells expressing TDAG8/GFP fusion protein. The cells depicted in A and C were untreated, and the cells in B and D were treated with 10 μM PSY for 2 h at 37°C.
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4 o8 H3 f/ W( {" h" U1 GRecently, the generation of large, multinuclear (globoid) cells characteristic of Krabbe's disease was reproduced in vitro by treating human U937 monocyte cells with PSY (Kanazawa et al. 2000 ). We replicated this finding (not shown) and further used reverse trascriptase PCR to discover that TDAG8 is expressed in these cells, but not in other cell lines (e.g., HEK293 and K562) that do not form globoid cells in response to PSY treatment (Im, D.S., and K.R. Lynch, unpublished data). To discover the human tissues that express TDAG8, we probed a human multiple tissue RNA array with radiolabeled TDAG8 DNA. As documented in Fig 4, TDAG8 RNA is found most prominently in extracts of spleen (fetal and adult), lymph node, and peripheral blood leukocytes, although a low level signal was found in virtually all human tissue extracts. This expression pattern, coupled with our observation that THP1 and HL60 cell cultures express TDAG8 (not shown), is consistent with TDAG8 gene expression in monocytes and macrophages, including tissue macrophages such as microglia./ o/ P5 `4 Q1 o, U% J' s
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Figure 4. Autoradiogram of a human multiple tissue array RNA dot blot (CLONTECH Laboratories, Inc.) hydbridized with 32P-labeled human TDAG8 DNA.
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$ K: j0 N! |6 o/ s+ h, GTo test the hypothesis that PSY acting via TDAG8 mediates the disjunction of mitogenesis and cytokinesis characteristic of globoid cells, we treated cell cultures transfected with TDAG8 DNA with PSY and quantified nuclear DNA content. When TDAG8-expressing RH7777 cells were treated with 10 μM PSY, multinuclear globoid cells were observed by DAPI staining (Fig 5 A, and Table 1). Neither expression of TDAG8 without PSY treatment nor PSY treatment in the absence of TDAG8 DNA transfection resulted in the appearance of multinuclear, globoid cells. Likewise, TDAG8/HEK293 cells became multinuclear in response to PSY treatment (Fig 5B and Fig c) and both receptor and ligand were required to generate the globoid cell phenotype. In concert with the structure activity profile found with inhibition of cAMP and calcium mobilization (see above), GlcPSY and lysosulfatide mimicked the action of PSY in evoking globoid cell formation, whereas N-acetyl PSY and SPC did not (data not shown). The requirement for both members of the ligand receptor pair to be present, the long time course required for globoid cell formation, and a previous report using U937 cells (Kanazawa et al. 2000 ) all suggest that this phenomenon involves a disjunction of mitosis and cytokinesis rather than simple cell fusion.
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Figure 5. Inhibition of cytokinesis by PSY. TDAG8-RH7777 (A) or TDAG8-HEK293 (B) cells were stained with DAPI (middle). Green lines on overlays indicate boundaries of single cells. (C) Representative FACS? data from HEK293 cells (top) or HEK293 cells expressing TDAG8 (bottom) treated either with 10 μM PSY (C-2 and C-4) or vehicle (C-1 and C-3). Cell cultures were treated for 6 d.
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; o* K. n. w" \9 {+ O3 R; ]" X; lTable 1. PSY Induces Multinuclear Cells in TDAG8-expressing RH7777 Cultures
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Our identification of a PSY receptor and the role of this ligand receptor pair in evoking globoid cell formation has several implications. First, TDAG8 is the second member of the OGR1 receptor cluster found to have a lipid ligand; OGR1 is activated by SPC (but not PSY), whereas two other members of the cluster, G2A (Weng et al. 1998 ) and GPR4 (Heiber et al. 1995 ), remain to be paired with a ligand. Our identification of a PSY receptor confirms the prescient observations of Okajima and Kondo 1995  and Himmel et al. 1998 , both of whom suggested that PSY acts through a specific G protein–coupled receptor. Second, the PSY receptor, presumably acting through unknown heterotrimeric G proteins, blocks cell division, but not nuclear division, and thus provides a tool that might be useful in exploring mechanisms of cytokinesis. It is noteworthy that two tissues that contain multinuclear cells, placenta (trophoblasts) and lung (macrophages), are prominent in expressing TDAG8 RNA (Fig 4). Third, the structure activity profile of PSY receptor ligands suggests that TDAG8 might be involved in the pathogenesis of related lipid storage disorders, such as Gaucher's disease (accumulation of GlcPSY), which is characterized by hepatomegaly, splenomegaly, and osteoporotic erosion (Brady 1978 ), and metachromatic leukodystrophy (lysosulfatide accumulation), which is characterized by myelin degeneration (Moser and Dulaney 1978 ). However, neither of these diseases is associated with the globoid cell formation characteristic of Krabbe's disease. Finally, the identification of a molecular target for PSY and related lipids provides a platform on which a medicinal chemistry, including the discovery and optimization of receptor blockers, can be built. PSY antagonists might prove useful clinically in altering the course of some lipid storage disorders. Currently, only palliative care is available to Krabbe's disease and metachromatic leukodystrophy patients, whereas patients suffering from the often more indolent Gaucher's disease have available enzyme replacement therapy (albeit at enormous cost). The twitcher mouse provides a convenient model for testing potential receptor blockers. In addition, if a mouse with its TDAG8 genes ablated proves fertile, crossing this genotype onto a twitcher background could prove informative.: [; T) T( U# U5 j& D7 e
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Footnotes
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1 Abbreviations used in this paper: GFP, green fluorescent protein; GlcPSY, D-glucosyl-?-1,1' sphingosine; GLD, globoid cell leukodystrophy; OGR1, ovarian cancer G protein–coupled receptor; PSY, psychosine; PTX, pertussis toxin; SPC, sphingosylphosphorylcholine; TDAG8, T cell death–associated gene 8.
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Acknowledgements
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  }; D; {, W2 Q: O& JWe are grateful for Dr. Erik Hewlett's (Department of Internal Medicine, University of Virginia) gift of PTX, which was prepared in his laboratory. We thank Dr. Ann Sutherland (Department of Cell Biology, University of Virginia) for helping microscopic analysis.
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! A! W/ L) z$ _/ j9 s* T! }9 M* cThis work was supported by a research grant from the National Institutes of Health (R01 GM5272), C.E. Heise is supported by a National Research Service Award predoctoral traineeship (T32 GM07055), and D.-S. Im is the recipient of a postdoctoral fellowship award from the Hunter's Hope Foundation.Revised: 26 January 2001References
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作者: tuanzi    时间: 2015-8-23 17:19

干细胞行业门户 干细胞之家
作者: 舒思    时间: 2015-9-7 07:37

顶的就是你  
作者: laoli1999    时间: 2015-9-10 18:01

哈哈 瞧你说的~~~  
作者: 剑啸寒    时间: 2015-9-10 21:43

感謝樓主 干细胞之家真的不错  
作者: foxok    时间: 2015-9-16 18:59

顶.支持,路过.....  
作者: 石头111    时间: 2015-9-17 11:18

21世纪,什么最重要——我!  
作者: tempo    时间: 2015-10-7 13:40

任何的限制,都是从自己的内心开始的。  
作者: s06806    时间: 2015-10-19 14:11

顶.支持,路过.....  
作者: beautylive    时间: 2015-11-16 11:18

任何的限制,都是从自己的内心开始的。  
作者: 兔兔    时间: 2015-11-19 18:27

哈哈,有意思~顶顶 ,继续顶顶。继续顶哦  
作者: 我心飞翔    时间: 2015-12-3 18:20

很有吸引力  
作者: 大小年    时间: 2015-12-6 17:16

应该加分  
作者: biobio    时间: 2015-12-7 12:35

不对,就是碗是铁的,里边没饭你吃啥去?  
作者: 杏花    时间: 2015-12-14 12:54

顶顶更健康,越顶吃的越香。  
作者: 橙味绿茶    时间: 2015-12-19 16:34

快毕业了 希望有个好工作 干细胞还是不错的方向
作者: 泡泡鱼    时间: 2015-12-24 16:18

拿分走人呵呵,楼下继续!
作者: s06806    时间: 2016-1-4 08:54

(*^__^*) 嘻嘻……   
作者: nauticus    时间: 2016-1-14 16:10

干细胞行业  
作者: 陈晴    时间: 2016-1-19 22:01

太棒了!  
作者: 若天涯    时间: 2016-3-29 11:35

你加油吧  
作者: laoli1999    时间: 2016-5-10 16:27

加油啊!!!!顶哦!!!!!  
作者: pcr    时间: 2016-6-6 14:24

不错,支持下  
作者: 水木清华    时间: 2016-6-18 19:31

支持你加分  
作者: 追风    时间: 2016-6-24 15:10

拿分走人呵呵,楼下继续!
作者: 张佳    时间: 2016-7-3 10:54

家财万贯还得回很多贴哦  
作者: 某某人    时间: 2016-7-4 11:27

免疫细胞疗法治疗肿瘤有效  
作者: cjms    时间: 2016-7-10 21:16

顶下再看  
作者: dogcat    时间: 2016-8-6 14:01

(*^__^*) 嘻嘻……  
作者: kaikai    时间: 2016-8-18 22:04

ding   支持  
作者: pspvp    时间: 2016-10-13 20:34

今天临床的资料更新很多呀
作者: dogcat    时间: 2016-10-29 15:56

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: 初夏洒脱    时间: 2016-11-23 22:08

人之所以能,是相信能。  
作者: 蝶澈    时间: 2016-12-13 09:18

表观遗传学
作者: alwaysniu    时间: 2016-12-25 04:22

不错啊! 一个字牛啊!  
作者: dongmei    时间: 2017-1-12 08:42

肿瘤干细胞
作者: 天蓝色    时间: 2017-1-20 05:33

不管你信不信,反正我信  
作者: 老农爱科学    时间: 2017-2-17 11:54

挤在北京,给首都添麻烦了……  
作者: ikiss    时间: 2017-2-28 12:43

顶你一下.  
作者: IPS干细胞    时间: 2017-3-20 01:02

这贴?不回都不行啊  
作者: 生物小菜鸟    时间: 2017-4-10 04:43

拿分走人呵呵,楼下继续!
作者: 舒思    时间: 2017-4-13 13:35

应该加分  
作者: 快乐小郎    时间: 2017-4-16 06:44

都是那么过来的  
作者: bluesuns    时间: 2017-4-19 19:23

朕要休息了..............  
作者: dreamenjoyer    时间: 2017-4-20 08:43

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: 干细胞2014    时间: 2017-5-1 14:35

哦...............  
作者: na602    时间: 2017-6-17 13:01

快毕业了 希望有个好工作 干细胞还是不错的方向
作者: IPS干细胞    时间: 2017-6-20 21:18

干细胞存储  
作者: dada    时间: 2017-6-23 10:18

干细胞疾病模型
作者: 黄山    时间: 2017-6-25 14:54

我好想升级  
作者: 张佳    时间: 2017-6-26 07:55

病毒转染干细胞
作者: marysyq    时间: 2017-7-7 08:10

我回不回呢 考虑再三 还是不回了吧 ^_^  
作者: 张佳    时间: 2017-7-7 17:35

围观来了哦  
作者: 123456zsz    时间: 2017-7-31 10:17

今天再看下  
作者: keanuc    时间: 2017-8-3 15:35

一定要回贴,因为我是文明人哦  
作者: 三好学生    时间: 2017-8-13 05:06

呵呵 那就好好玩吧~~~~  
作者: 罗马星空    时间: 2017-8-24 17:18

我在努力中  
作者: mk990    时间: 2017-9-1 08:43

干细胞分化技术
作者: yukun    时间: 2017-9-10 23:10

祝干细胞之家 越办越好~~~~~~~~~`  
作者: netlover    时间: 2017-9-19 01:18

先顶后看  
作者: 石头111    时间: 2017-10-2 21:51

长时间没来看了 ~~  
作者: vsill    时间: 2017-10-3 06:49

嘿...反了反了,,,,  
作者: 命运的宠儿    时间: 2017-10-13 13:33

谢谢分享了!   
作者: dada    时间: 2017-10-13 17:41

又看了一次  
作者: 丸子    时间: 2017-10-24 16:51

内皮祖细胞
作者: 锦锦乐道    时间: 2017-10-25 08:17

造血干细胞
作者: bioprotein    时间: 2017-11-2 14:01

今天没事来逛逛  
作者: awen    时间: 2017-11-11 12:35

晕死也不多加点分  
作者: 小敏    时间: 2017-11-14 22:27

来上茶~~~~  
作者: 考拉    时间: 2017-11-30 07:11

每天都会来干细胞之家看看
作者: happyboy    时间: 2017-12-8 13:11

似曾相识的感觉  
作者: 刘先生    时间: 2017-12-12 15:54

不错,看看。  
作者: txxxtyq    时间: 2018-1-30 17:19

我在顶贴~!~  
作者: 陈晴    时间: 2018-2-10 08:10

天啊. 很好的资源
作者: s06806    时间: 2018-2-27 08:52

顶你一下,好贴要顶!  
作者: syt7000    时间: 2018-3-2 12:18

哦...............  
作者: dr_ji    时间: 2018-3-7 03:18

人之所以能,是相信能。  
作者: IPS干细胞    时间: 2018-3-10 20:15

角膜缘上皮干细胞
作者: apple0    时间: 2018-4-8 01:13

羊水干细胞
作者: 黄山    时间: 2018-4-17 12:54

支持~~顶顶~~~  
作者: laoli1999    时间: 2018-5-25 06:35

今天再看下  
作者: keanuc    时间: 2018-5-25 21:13

自己知道了  
作者: ines    时间: 2018-5-27 22:01

不错,支持下  
作者: 石头111    时间: 2018-6-3 13:43

哎 怎么说那~~  
作者: 天蓝色    时间: 2018-6-5 23:35

文笔流畅,修辞得体,深得魏晋诸朝遗风,更将唐风宋骨发扬得入木三分,能在有生之年看见楼主的这个帖子。实在是我三生之幸啊。  
作者: 狂奔的蜗牛    时间: 2018-6-14 05:15

终于看完了~~~  
作者: 小小C    时间: 2018-6-18 12:42

ips是诱导多能干细胞induced pluripotent stem cells iPS
作者: 365wy    时间: 2018-6-19 04:08

不错不错,我喜欢看  
作者: dogcat    时间: 2018-6-21 10:27

回复一下  
作者: 剑啸寒    时间: 2018-6-27 19:03

呵呵 都没人想我~~  
作者: lalala    时间: 2018-7-13 12:35

顶下再看  
作者: haha3245    时间: 2018-7-16 02:43

慢慢来,呵呵  




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