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标题: Hyaluronic Acid (HA) Binding to CD44 Activates Rac1 and Induces Lamell [打印本页]

作者: 杨柳    时间: 2009-3-5 23:04     标题: Hyaluronic Acid (HA) Binding to CD44 Activates Rac1 and Induces Lamell

a Research Institute of Molecular Pathology (IMP), A-1030 Vienna, Austria
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b Institute of Molecular Biology, Austrian Academy of Sciences, A-5020 Salzburg, Austria
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Correspondence to: Lukas A. Huber, IMP, Research Institute of Molecular Pathology, Dr. Bohr-Gasse 7, A-1030 Vienna, Austria. Tel:( 43)-1-79730-885 Fax:( 43)-1-7987-153 E-mail:huber@nt.imp.univie.ac.at.
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) ~5 P* H5 F6 U! \Both cell adhesion protein CD44 and its main ligand hyaluronic acid (HA) are thought to be involved in several processes ultimately requiring cytoskeleton rearrangements. Here, we show that the small guanine nucleotide (GTP)-binding protein, Rac1, can be activated upon HA binding to CD44. When applied locally to a passive cell edge, HA promoted the formation of lamellipodial protrusions in the direction of the stimulus. This process was inhibited by the prior injection of cells with dominant-negative N17Rac recombinant protein or by pretreatment of cells with monoclonal anti-CD44 antibodies, interfering with HA binding, implying the direct involvement of CD44 in signaling to Rac1.6 ~* ~7 {/ q1 \% U& Z' [
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Key Words: extracellular matrix, cell guidance, Rac1, cytoskeleton, mammary epithelial cells
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Introduction
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+ @! z- l2 b; {2 UA widely distributed cell adhesion protein, CD44, serves as the major cell surface receptor for hyaluronic acid (HA)1. HA is a main carbohydrate component of the extracellular matrix with a simple, repeated disaccharide linear copolymer structure. It is mostly found in skin, joints, and eyes, but is also present in other organs and tissues. HA expression is tightly regulated; it is elevated in a variety of inflammatory conditions (Gerdin and Hallgren 1997 ). Transient overexpression of HA also takes place in granulation tissue during the wound healing process (Chen and Abatangelo 1999 ). The biological roles attributed to HA range from a purely structural function in the extracellular matrix to regulation of cell motility and adhesion (Itano et al. 1999 ; Delpech et al. 1997 ) and receptor-mediated alterations in gene expression (Fujii et al. 1999 ). Both CD44 and HA are thought to be involved in a variety of physiological processes, such as tumor formation and metastasis (Gunthert 1996 ), wound repair (Kaya et al. 1997 ), the inflammatory immune response (Gunthert 1999 ), lymphocyte homing and adhesion (Siegelman et al. 1999 ), and embryonic development (Ponta and Herrlich 1998 ). All these processes require concordant rearrangements of the actin cytoskeleton being the basis of various cell adhesion and migration events. Yet, there is almost no information available regarding possible intracellular signals transmitted upon CD44 binding to HA. Similarly, the exact roles of CD44 in vivo remain to be determined. Here, we show that in mouse mammary epithelial cells (EpH4), CD44 interaction with HA triggers the local signaling cascade, resulting in the direct activation of small GTP-binding protein Rac1, actin cytoskeleton rearrangements, and reorientation of cells in the direction of the provided cue.
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Materials and Methods. b8 |) Q, T0 f( v

) h% N7 v) T- f# {4 eCells, Antibodies, Reagents, and Constructs
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Media, tissue culture reagents, and FCS were purchased from GibcoBRL and Boehringer Mannheim Corp. EpH4 cells, a spontaneously immortalized mouse mammary epithelial cell line (Fialka et al. 1996 ), were cultured at 37°C in 5% CO2 and 98% humidity in Eagle's medium, supplemented with 10 mM Hepes/KOH, pH 7.3, 50 IU/ml penicillin, 50 mg/ml streptomycin, and 5% FCS.+ o, @1 M- v2 m! C, c

' L4 u2 p6 {3 H+ p# qAnti-CD44 antibody, KM114, blocking hyaluronate recognition by CD44, and anti-CD44 antibody, IM7.8.1, were purchased from RDI. Anti-Rac1 antibodies were purchased from Transduction Laboratories. Oligosaccharide of HA (H-9649) was purchased from Sigma Chemical Co., and high molecular weight HA, labeled with FITC, was a kind gift from Dr. C. Isacke and coworkers (Imperial College, London, UK). Laminin (20–200 μg/ml) and fibronectin (12–300 μg/ml) were from Boehringer Mannheim. Lipofectamine PLUSTM Reagent was purchased from GibcoBRL. Rhodamine–phalloidin was from Molecular Probes (R-415). Recombinant N17Rac and N17Cdc42 were kindly provided by Dr. K. Rottner (Austrian Academy of Sciences, Salzburg, Austria; using a construct originally provided by Dr. A. Hall, University College, London, UK), dialyzed into 50 mM Tris, pH 7.5, 150 mM NaCl, 5 mM MgCl2, and 1 mM DTT. Concentrations of 1–2 mg/ml were used for injections. GST-CRIB construct was kindly donated by Dr. R. Cerione (Cornell University, Ithaca, NY). Human zyxin and paxillin in pEGFP-N1 vector were kindly supplied by Dr. J. Wehland and coworkers (GBF, Braunschweig, Germany). NH2-terminal EGFP human ?-actin, under the control of CMV promoter, cloned in pcDNA3 vector was kindly provided by Dr. M. Way (EMBL, Heidelberg, Germany).$ n4 c' U% ^# _: Y5 x: j( t

# `  C! X( ]- E8 X) ]2 s9 `- LMicroinjections and Local Applications3 F; z7 d! ~4 M( x% H& U, i& \
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Microinjections were performed with sterile Femtotips (Eppendorf, 5242 952.008) held in a Leitz micromanipulator with a pressure supply from an Eppendorf Microinjector 5242. Cells were injected with continuous outflow mode from the needle under a constant pressure of 20–40 hPa. Local applications of HA were performed essentially as described in Kaverina et al. 1999 , under a constant pressure of 25–50 hPa.9 q8 Y# G- S3 q

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Cells were observed in an open chamber at 37°C on an inverted microscope (Axiovert 135TV, Zeiss) equipped for epifluorescence and phase-contrast microscopy. Injections were performed at 40x (NA 1.3 Plan Neofluar), and videomicroscopy with a 100x (NA 1.4 Plan-Apochromat) with or without 1.6x optovar intermediate magnification. Data were acquired with a back-illuminated cooled CCD camera from Princeton Research Instruments driven by IPLabs software (Visitron Systems). The microscope was additionally equipped with shutters driven through a homemade interface to allow separate recordings of video sequences in phase-contrast and fluorescent channels. Time between frames was 18 s. The video sequences were analyzed and processed on a Macintosh Power PC using IPLabs and Adobe Photoshop 5.2.1 software.+ N7 m3 f/ |& D: ?
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Online Supplemental Material. N# h% m0 Z& t/ K/ T

$ I$ B7 c3 `( pThe online version of this article includes videos that accompany the figures presented here. Videos are supplied in the QuickTime format and are available at http://www.jcb.org/cgi/content/full/148/6/1159/DC1.
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Video 1.% J  j5 K9 d( N/ |- t
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Depicts Fig 1 a.
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4 C1 L' G. W/ I  T" ZFigure 1. HA treatment promotes lamellipodial outgrowth. a, Oligosaccharide of HA (1 μg/ml) was applied to sparsely grown EpH4 cells. Note lamellipodial outgrowth from previously inactive cell edges. Numbers refer to the time, in minutes and seconds, in the time-lapse sequence. Arrows show the area of outgrowth. b, Histogram of the number of polarized cells in control, HA-treated (HA), and HA-treated cells preincubated with anti-CD44 HA-blocking antibodies, KM114 (KM114/HA). Mean ± SD values are shown (n = 200 cells, three experiments). c, Time-lapse sequence of EGFP-?-actin expressing EpH4 cells treated with HA. Note growth of lamellipodia from inactive cell edge and appearance of multiple microruffles. Videos depicting a and c are available at http://www.jcb.org/cgi/content/full/148/6/1159/DC1. Bar, 10 μm.; F' @& v9 q6 \$ T" o# y2 p7 ~
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Video 2.
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; c7 ^! L( L# DDepicts Fig 1 c.
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Video 3.
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Depicts Fig 2 a.
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( S" c5 u+ ^/ \$ Y+ G1 _8 U5 wFigure 2. Lamellipodial outgrowth is spatially restricted and confined to the region of local HA application. When oligosaccharide HA (40 μg/ml) was supplied through the microinjection needle to the defined region of the cell, we could observe rapid lamellipodia formation exclusively underneath the micropipette (a). The lamellipodia being formed exhibited normal focal contact formation and growth, as shown for the EGFP-zyxin–expressing cell (b). High molecular weight HA (40 μg/ml) was equally potent in inducing local lamellipodial outgrowth (c). Videos depicting A–C and the inset in B are available at http://www.jcb.org/cgi/content/full/148/6/1159/DC1. Bars: (a–c) 10 μm, (b, inset) 5 μm.
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Video 4.2 T0 s( }' j- c, R- V% t$ Y

& Z  @3 T6 g1 c$ x6 X9 L& fDepicts Fig 2 b.1 ^/ L9 X! f; U5 L! \$ _  I* I7 g

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Depicts Fig 2 b, inset.
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Video 6.
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Depicts Fig 2 c.
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Video 7.' [9 \& }& e+ L4 }: y1 a
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( R4 i  g) h1 U" z' DFigure 3. Rac1 is required for HA/CD44-induced lamellipodial formation and is activated upon HA treatment. a, Lamellipodial outgrowth upon HA treatment could be inhibited by microinjection of dominant-negative N17Rac before HA treatment. Note that only the upper cell was injected with N17Rac, as depicted with empty arrowhead; the bottom cell exhibited the typical protrusive activity in response to HA. A representative anti-Rac1–probed immunoblot of affinity-precipitated Rac-GTP from control and HA-treated cells is shown in b, upper panel, together with a Western blot of total cellular Rac1 (lower panel). Rac-GTP amounts increased upon HA treatment, indicating the activation of Rac1. A video depicting a is available at http://www.jcb.org/cgi/content/full/148/6/1159/DC1. Bar, 10 μm.
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6 m5 f4 W: N, S& t8 k- C" nVideo 8 and the Supplemental Figure.
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; ~* O5 C& i" M% F3 e5 o/ iMicroinjection of the dominant-negative N17Cdc42 recombinant protein does not block HA/CD44-induced lamellipodial formation. EGFP-?-actin–expressing cell was microinjected into N17Cdc42 recombinant protein and, subsequently, treated with HA. Note the formation of new lamellipodia in response to HA.
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Results
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; G; Q, H+ o& O: O) D$ rEpH4 cells derive from a spontaneously immortalized mouse mammary epithelial cell line and display a fully polarized epithelial cell phenotype when grown to high density on semipermeable filter supports or in a three-dimensional collagen matrix (Fialka et al. 1996 ). However, when sparsely seeded, EpH4 cells often display a fan-shaped and motile fibroblastoid phenotype. Fibroblastoid cells typically exhibit protruding, mobile lamellipodial regions, interspersed by mainly concave, inactive cell edges, delimited by peripheral actin filament bundles (Small 1988 ). EpH4 cells express large amounts of CD44, consisting of standard and several variant isoforms (data not shown). In many cell types, CD44 exhibits a nonrandom distribution in the plasma membrane. In polarized epithelial cells, CD44 localization is restricted to the basolateral membrane domain, whereas in sparsely seeded, unpolarized EpH4 cells, CD44 is more broadly distributed, but clearly concentrated in the trailing regions and in the cell body (Oliferenko et al. 1999 ).
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When sparsely seeded, EpH4 cells were treated with soluble oligosaccharides of HA. The majority of cells appeared depolarized, often with multiple lamellipodia around their entire circumference. This phenomenon was followed in more detail in single cells by phase-contrast time-lapse microscopy. By these means, we could confirm the fast outgrowth of new lamellipodia from cell edges previously exhibiting an inactive actin cytoskeleton, including trailing regions (Fig 1 a, see also supplemental video). We quantified the percentage of cells exhibiting the polarized fibroblastoid phenotype in control and HA-treated cells. Almost three quarters (69%) of sparsely seeded EpH4 cells in control cultures exhibited unidirectional movement and a polarized morphology. Already 15 min after addition of HA, only 28% EpH4 cells remained polarized, whereas the rest exhibited multiple lamellipodia. However, the proportion of polarized cells in the presence of HA was comparable to control (68%) upon pretreatment of cells with anti-CD44 antibody, KM114 (Fig 1 b). This mAb efficiently inhibits binding of HA to CD44 (Miyake et al. 1990 ). Inhibition of HA-induced lamellipodial protrusion by KM114 implied the direct involvement of CD44 in mediating the HA effect. To evaluate changes in the actin cytoskeleton in real time, we repeated HA treatment on EpH4 cells transiently expressing EGFP-?-actin. We observed the reorganization of the actin cytoskeleton, new lamellipodial outgrowth, characterized by a band of actin fluorescence, active ruffling of the leading edges, and the appearance of very bright EGFP-actin containing spots, or microruffles, on the cell surface (Fig 1 c, see also supplemental video).: V2 A+ J  T+ P

7 N  Z/ }2 I, X; q6 G4 n$ BThe immediate effect of HA treatment on the cell shape led us to investigate whether the observed changes could be induced locally. This was tested by the local application of HA through a microinjector needle to selected regions of cells. When HA was applied to inactive cell edges we could indeed observe a spatially restricted outgrowth of lamellipodia underneath the micropipette (Fig 2 a, see also supplemental video). Pretreatment of cells with KM114 antibody effectively prevented these rearrangements, in a way similar to after the general application of HA (data not shown). HA-induced lamellipodia harbored small focal complexes that subsequently elongated and grew into mature focal adhesions, as revealed by experiments with cells transiently transfected with EGFP fusion constructs of the focal adhesion proteins, zyxin (Fig 2 b, see also supplemental video) and paxillin (data not shown). Identical results were obtained with high molecular weight HA (Fig 2 c, see also supplemental video). The local applications of the matrix proteins, laminin and fibronectin, under identical conditions did not produce lamellipodia outgrowth (data not shown).$ l& r9 n9 T) k, z
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HA-induced cytoskeleton rearrangements were highly reminiscent of lamellipodial protrusion and ruffling caused by the activated GTPase Rac1 (Ridley et al. 1992 ), a member of the Rho family of small GTPases (Tapon and Hall 1997 ). Rac1 is thought to be activated by various stimuli, including growth factors (Peppelenbosch et al. 1995 ; Ridley et al. 1995 ; Wennstrom et al. 1994 ; Nobes et al. 1995 ). To analyze whether Rac1 is indeed involved in HA-induced lamellipodial outgrowth, we analyzed the effect of HA on cells injected with the mutant form of Rac1, N17Rac, which acts as a dominant inhibitor of Rac1 activity. When cells were microinjected with N17Rac recombinant protein before HA treatment, the formation of lamellipodia was efficiently blocked (Fig 3 a, see also supplemental video). Analysis of the effect of N17Rac was performed in ten independent experiments; the HA-induced lamellipodia outgrowth was inhibited in all cells observed. Likewise, de novo–formed HA-induced lamellipodia were retracted when cells were injected with N17Rac after HA treatment (data not shown). Injection of dominant-negative N17Cdc42 did not prevent HA-induced lamellipodia outgrowth, arguing for a direct effect on Rac, rather than via Cdc42 (data not shown; see supplementary figure and video available at http://www.jcb.org/cgi/content/full/148/6/1159/DC1).
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To determine whether HA/CD44-induced lamellipodial outgrowth could be attributed to the direct activation of Rac1 instead of an activation of its downstream targets, we performed an affinity pull-down assay, allowing us to directly measure the amount of the active, GTP-bound form of Rac1 (Bagrodia et al. 1998 ). The CRIB domain of the downstream Rac1 effector, PAK, specifically binds the GTP-bound form of Rac1, which allows a quantification of actual amounts of active Rac1 in cell lysates. The affinity matrix, representing GST-fusion of CRIB domain coupled to the glutathione–Sepharose beads, was incubated with cell lysates derived from either control cells or cells treated with HA for various times. As shown in Fig 3 b, the amount of GTP-bound Rac1 was considerably increased already after two minutes of HA treatment, and continued to a plateau after 15 min. However, the total amount of Rac1 did not change upon HA treatment (Fig 3 b). Taken together, these results argue for the direct activation of Rac1 upon HA/CD44 engagement." l5 d4 E0 b2 `; a

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Application of soluble HA to EpH4 cells in culture promoted activation of Rac1 and rapid outgrowth of lamellipodia from previously inactive cell edges. This effect was dependent on the ability of CD44 to bind HA. More interestingly, when HA was applied locally, a spatially restricted outgrowth of lamellipodia was observed precisely in the region of HA application. This result means that activation of Rac1 probably takes place directly in the vicinity of the plasma membrane. Rac1 activation appears to be independent on Cdc42, since microinjection of dominant-negative Cdc42N17 protein does not block HA-induced lamellipodia outgrowth. HA-induced lamellipodia also contained mature focal adhesions. This strongly implies that, in this case, not only is Rac1 activated, but also that Rho remains active.
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The precise details of Rac1 activation upon HA/CD44 engagement remain to be elucidated. However, it is tempting to speculate that one of the Rac1 accessory proteins could participate in complex formation with CD44. One of the logical candidates would be the guanine nucleotide exchange factor, Tiam-1, which was shown to specifically activate Rac1, but not Cdc42 (Sander et al. 1999 ). Recently, while this paper was under review procedure, the biochemical evidence of the direct CD44/Tiam-1 interaction was reported (Bourguignon et al. 2000 ). This result might provide the potential straightforward link between CD44/HA binding and Rac1 activation. CD44 was also found in a complex with Rho-GDP dissociation inhibitor (RhoGDI; Olofsson 1999 ) and proteins of the ERM (ezrin-radixin-moesin) family in fibroblasts (Hirao et al. 1996 ). The interaction of ERM proteins with RhoGDI was shown to activate Rho subfamily members (Hirao et al. 1996 ; Takahashi et al. 1997 ). It might also be possible that HA binding to CD44 would trigger the conformational change in this complex, inactivating RhoGDI as a result, and ultimately contributing to the activation of Rac1.Yet, CD44/ERM interaction appears to be rather cell-type restricted. So far, we have no indication that they interact with each other in EpH4 mammary epithelial cells (Oliferenko et al. 1999 )., E& M3 p- U3 n& O6 M/ ]; `( Y: C

+ m! V6 O3 L  @7 |+ z7 [0 jInterestingly, when the dominant active mutant of Rac1 was overexpressed in human glioblastoma cells (U251MG), CD44 was shown to redistribute to lamellipodia where it subsequently was cleaved and shed from the surface (Okamoto et al. 1999 ). A possible mechanism for downregulating CD44-mediating signaling can be suggested by these experiments.) E. A9 Q9 p& V/ E

' [+ E8 }# i2 s: C- r* K# I" n2 aThe observation we describe here would suggest the possibility of the direct involvement of CD44 and HA in cell guidance. We would like to propose that HA may serve as an external stimulus influencing cell orientation, with CD44 mediating signaling to the actin cytoskeleton.
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6 c8 A, z2 q  t. ~7 q9 ySander, E.E., ten Klooster, J.P., van Delft, S., van der Kammen, R.A., Collard, J.G. 1999. Rac downregulates Rho activity: reciprocal balance between both GTPases determines cellular morphology and migratory behavior. J. Cell Biol. 147:1009-1022.4 A2 g1 E, ]/ g- v3 P

3 ~4 C5 f& [* C+ ~8 bSiegelman, M.H., DeGrendele, H.C., Estess, P. 1999. Activation and interaction of CD44 and hyaluronan in immunological systems. J. Leukoc. Biol. 66:315-321.
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Takahashi, K., Sasaki, T., Mammoto, A., Takaishi, K., Kameyama, T., Tsukita, S., Takai, Y. 1997. Direct interaction of the Rho GDP dissociation inhibitor with ezrin/radixin/moesin initiates the activation of the Rho small G protein. J. Biol. Chem 272:23371-23375.
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. W8 Z2 h" J( i, aWennstrom, S., Hawkins, P., Cooke, F., Hara, K., Yonezawa, K., Kasuga, M., Jackson, T., Claesson-Welsh, L., Stephens, L. 1994. Activation of phosphoinositide 3-kinase is required for PDGF-stimulated membrane ruffling. Curr. Biol. 4:385-393.(Snezhana Oliferenkoa, Irina Kaverinab, J)
作者: dypnr    时间: 2015-6-4 08:09

今天再看下  
作者: s06806    时间: 2015-6-14 13:27

我仅代表干细胞之家论坛前来支持,感谢楼主!  
作者: biobio    时间: 2015-7-16 18:08

这个贴不错!!!!!  
作者: 陈晴    时间: 2015-8-5 08:18

照你这么说真的有道理哦 呵呵 不进沙子馁~~~  
作者: aakkaa    时间: 2015-11-17 15:35

就为赚分嘛  
作者: 张佳    时间: 2015-11-21 19:25

间充质干细胞
作者: beautylive    时间: 2015-11-30 10:10

免疫细胞治疗  
作者: laoli1999    时间: 2015-12-16 16:01

拿把椅子看表演
作者: marysyq    时间: 2016-1-7 09:27

昨天没来看了 ~~  
作者: dypnr    时间: 2016-1-11 21:44

干细胞之家是国内最好的干细胞网站了
作者: 3344555    时间: 2016-2-20 22:08

干细胞行业门户 干细胞之家
作者: 化药所    时间: 2016-3-1 14:42

努力~~各位。。。  
作者: qibaobao    时间: 2016-4-8 09:18

牛牛牛牛  
作者: 海小鱼    时间: 2016-4-15 20:01

ding   支持  
作者: 海小鱼    时间: 2016-6-17 10:35

希望可以用些时间了~````  
作者: qibaobao    时间: 2016-7-4 19:51

干细胞治疗糖尿病  
作者: 坛中酒    时间: 2016-8-1 11:10

努力,努力,再努力!!!!!!!!!!!  
作者: 小小C    时间: 2016-8-9 17:53

慢慢来,呵呵  
作者: aliyun    时间: 2016-8-18 16:31

干细胞之家
作者: 碧湖冷月    时间: 2016-8-18 20:54

帮你顶,人还是厚道点好  
作者: pengzy    时间: 2016-9-11 22:22

朕要休息了..............  
作者: pengzy    时间: 2016-10-4 22:24

细胞治疗行业  
作者: keanuc    时间: 2016-10-15 09:00

神经干细胞
作者: 旅美学者    时间: 2016-10-29 16:10

哈哈,看的人少,回一下  
作者: 生物小菜鸟    时间: 2016-11-11 22:31

进行溜达一下  
作者: s06806    时间: 2016-11-20 18:34

我十目一行也还是看不懂啊  
作者: 小倔驴    时间: 2016-11-28 16:35

今天临床的资料更新很多呀
作者: laoli1999    时间: 2016-12-15 16:42

每天到干细胞之家看看成了必做的事情
作者: SCISCI    时间: 2017-1-4 10:10

来几句吧  
作者: IPS干细胞    时间: 2017-2-23 00:24

一个有信念者所开发出的力量,大于99个只有兴趣者。  
作者: s06806    时间: 2017-4-3 10:10

21世纪,什么最重要——我!  
作者: ines    时间: 2017-4-6 06:59

希望大家帮我把这个帖发给你身边的人,谢谢!  
作者: 狂奔的蜗牛    时间: 2017-4-25 01:33

谢谢干细胞之家提供资料
作者: kaikai    时间: 2017-5-24 23:27

这样的贴子,不顶说不过去啊  
作者: 桦子    时间: 2017-5-27 08:10

一个子 没看懂  
作者: 龙水生    时间: 2017-5-28 19:57

感謝樓主 干细胞之家真的不错  
作者: dmof    时间: 2017-6-27 14:10

希望大家帮我把这个帖发给你身边的人,谢谢!  
作者: lab2010    时间: 2017-7-31 21:37

好困啊  
作者: 陈晴    时间: 2017-8-11 16:17

一个有信念者所开发出的力量,大于99个只有兴趣者。  
作者: wq90    时间: 2017-8-26 15:00

表观遗传学
作者: syt7000    时间: 2017-9-6 23:47

这年头,分不好赚啊  
作者: whyboy    时间: 2017-9-17 10:53

偶真幸运哦...  
作者: 与你同行    时间: 2017-9-23 17:01

楼主也是博士后吗  
作者: 王者之道    时间: 2017-9-28 09:19

其实回帖算是一种没德德,所以我快成圣人了  
作者: 桦子    时间: 2017-10-19 15:18

世界上那些最容易的事情中,拖延时间最不费力。  
作者: 化药所    时间: 2017-10-21 04:27

谢谢干细胞之家提供资料
作者: txxxtyq    时间: 2017-10-21 18:16

你加油吧  
作者: 张佳    时间: 2017-11-13 14:27

牛牛牛牛  
作者: HongHong    时间: 2017-11-22 22:27

抢座位来了  
作者: dataeook    时间: 2017-12-1 18:53

似曾相识的感觉  
作者: 3344555    时间: 2017-12-23 17:27

谢谢分享了!  
作者: cjms    时间: 2017-12-31 03:43

干细胞行业  
作者: 咖啡功夫猫    时间: 2018-1-12 23:35

(*^__^*) 嘻嘻……   
作者: 多来咪    时间: 2018-1-14 00:35

今天再看下  
作者: 8666sea    时间: 2018-2-21 04:02

真是有你的!  
作者: feixue66    时间: 2018-3-2 22:15

似曾相识的感觉  
作者: 刘先生    时间: 2018-3-9 05:10

偶真幸运哦...  
作者: DAIMAND    时间: 2018-3-18 05:56

呵呵 哪天得看看 `~~~~  
作者: heart10    时间: 2018-3-28 06:56

干细胞研究人员的天堂
作者: feixue66    时间: 2018-5-16 09:01

回复一下  
作者: Kuo    时间: 2018-5-16 20:34

21世纪,什么最重要——我!  
作者: dataeook    时间: 2018-5-31 12:50

厉害!强~~~~没的说了!  
作者: lalala    时间: 2018-6-29 15:10

怎么就没人拜我为偶像那?? ~  
作者: 陈晴    时间: 2018-7-16 15:59

祝干细胞之家 越办越好~~~~~~~~~`  
作者: 水木清华    时间: 2018-7-19 22:45

希望大家都有好运  
作者: dglove    时间: 2018-7-28 09:18

发贴看看自己积分  
作者: 依旧随遇而安    时间: 2018-7-31 06:05

我卷了~~~~~~~  
作者: feixue66    时间: 2018-8-3 16:33

昨天没来看了 ~~  
作者: bioprotein    时间: 2018-8-4 02:38

看或者不看,贴子就在这里,不急不忙  
作者: SCISCI    时间: 2018-8-28 17:29

回帖是种美德.  
作者: whyboy    时间: 2018-9-11 19:36

琴棋书画不会,洗衣做饭嫌累。  
作者: 陈晴    时间: 2018-9-25 12:55

希望大家帮我把这个帖发给你身边的人,谢谢!  
作者: Whole    时间: 2018-9-30 16:58

好帖,有才  
作者: 旅美学者    时间: 2018-10-8 16:01

顶你一下.  
作者: wq90    时间: 2018-10-13 04:05

不错,感谢楼主
作者: 墨玉    时间: 2018-10-23 17:50

爷爷都是从孙子走过来的。  
作者: lalala    时间: 2018-10-28 13:18

加油站加油  
作者: xuguofeng    时间: 2018-11-8 09:01

干细胞疾病模型
作者: 张佳    时间: 2018-11-14 07:24

生殖干细胞
作者: tempo    时间: 2018-11-20 08:27

努力,努力,再努力!!!!!!!!!!!  
作者: 红旗    时间: 2018-11-23 23:47

干细胞治疗  
作者: highlight    时间: 2018-12-6 21:50

这个站不错!!  
作者: qibaobao    时间: 2018-12-10 02:12

不看白不看,看也不白看  
作者: leeking    时间: 2018-12-20 15:27

一定要回贴,因为我是文明人哦  
作者: 黄山    时间: 2018-12-23 15:35

说嘛1~~~想说什么就说什么嘛~~  
作者: 陈晴    时间: 2018-12-25 19:17

初来乍到,请多多关照。。。  
作者: 我学故我思    时间: 2018-12-26 10:54

ding   支持  
作者: 天蓝色    时间: 2019-1-12 11:55

楼主福如东海,万寿无疆!  
作者: 多来咪    时间: 2019-2-11 02:52

不错啊! 一个字牛啊!  
作者: xiaomage    时间: 2019-2-24 14:27

初来乍到,请多多关照。。。  
作者: 8666sea    时间: 2019-2-25 11:18

干细胞之家是不错的网站
作者: apple0    时间: 2019-3-10 20:32

加油啊!!!!顶哦!!!!!  
作者: txxxtyq    时间: 2019-4-6 05:58

看看..  
作者: 老农爱科学    时间: 2019-4-6 16:06

我的啦嘿嘿  
作者: dada    时间: 2019-4-7 09:10

帮你顶,人还是厚道点好  
作者: dr_ji    时间: 2019-5-23 07:15

(*^__^*) 嘻嘻……   
作者: lab2010    时间: 2019-5-31 15:31

谢谢分享了!  
作者: 咖啡功夫猫    时间: 2019-6-9 17:04

佩服佩服啊.  
作者: 983abc    时间: 2019-6-16 07:23

今天临床的资料更新很多呀




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