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标题: In Brief [打印本页]

作者: 杨柳    时间: 2009-3-5 23:01     标题: In Brief

Human epidermal keratinocytes are born in a basal layer enriched in stem cells but gradually lose their replicative ability as they migrate towards the skin's surface. On page 1117, Dellambra et al. report that the evolution of the keratinocytes from stem to transient amplifying cells can be blocked by downregulating a single gene encoding 14-3-3. The new cell line avoids senescence and, thus far, has proven to be immortal. The 14-3-3 family of proteins has been implicated in multiple signal transduction pathways, so the direct biochemical consequence of the intervention is unknown.
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In culture, normal keratinocyte stem cells go through 120–180 cell doublings before they senesce and stop dividing. During this period there is an increase in the number of larger transient amplifying cells, which form paraclones (aborted colonies with only terminally differentiated cells). Addition of an antisense 14-3-3 construct results, however, in maintenance of small, fast-dividing cells that have thus far undergone ~500 cell doublings with no end in sight. Others have demonstrated similar immortalizations by both turning on telomerase and turning off the cell cycle inhibitor p16INK4a, but Dellambra et al. find that the single intervention of antisense 14-3-3 recapitulates both of these events.( {1 }: U3 K5 R7 k) Z

) H( C0 ?* D! R+ y' ^Complete transformation of human cells has been achieved by adding telomerase, SV-40 large T antigen, and oncogenic Ras. The keratinocytes in this study are still anchorage-dependent and require serum for growth, but Dellambra et al. speculate that the addition of a single oncogene such as activated Ras may be sufficient to convert immortalization into transformation. In a recent study, >90% of primary breast carcinomas were shown to have undetectable 14-3-3 mRNA due to DNA hypermethylation (Ferguson, A.T., E. Evron, C.B. Umbricht, T.K. Pandita, T.A. Chan, H. Hermeking, J.R. Marks, A.R. Lambers, P.A. Futreal, M.R. Stampfer, and S. Sukumar. 2000. Proc. Natl. Acad. Sci. USA. 97:6049–6054).
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; n, p# Q9 s9 R8 ^8 t  X# fNSF-resistant Fusion3 f$ w$ D- w, h$ D1 o8 m9 E' m

( V* `+ J; R8 z  r6 T+ w; ?5 W8 tThe pairing of a v-SNARE (vesicle SNAP receptor) and a t-SNARE (target membrane SNARE) to form trans-SNARE complexes is necessary for many membrane fusion events. At least for in vitro fusion, the pairing is also sufficient, but whether this sufficiency holds true in vivo is still a matter of contention. Weber et al. (page 1063) remove one objection to the sufficiency argument by explaining how the SNAREs avoid the NSF paradox. NSF recycles SNAREs for additional rounds of fusion by splitting apart SNARE complexes made from proteins in the same membrane (cis-SNARE complexes), but Weber et al. demonstrate that fusion-competent trans-SNARE complexes are somehow resistant to this action of NSF.. ~' b" h' N2 [
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NSF can transiently inhibit fusion if it is added at the very beginning of a fusion reaction, probably by dissociating the heterodimeric t-SNARE that is needed to partner with the v-SNARE in the other membrane. If the SNAREs are first allowed to dock at 4°C, however, the subsequent addition of NSF has no effect on fusion at 37°C. The time course for acquiring NSF resistance is similar to the time course for becoming resistant to soluble v-SNARE. Possible explanations for the NSF resistance include steric exclusion of NSF from the closely apposed membranes, or a trans-complex conformation that differs from that of the NSF-sensitive cis-complex. NSF may make fusion vectorial by selectively reacting only with the products of the fusion reaction.- {, }6 @5 L+ O8 [
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Getting Rid of Fibrin$ n0 {$ E6 R) s- ~2 P
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Too much proteolysis can be a bad thing, but on page 1157, Akassoglou et al. report that at least one proteolytic cascade is beneficial after injury of the peripheral nervous system (PNS).+ R7 V: V3 f, S8 a, v5 _" N

* ?$ h. O9 i6 \6 t" E- {The cascade involves proteolysis of plasminogen by tissue plasminogen activator (tPA) to form plasmin; the plasmin then degrades fibrin, the main protein deposited during the clotting process. Mice that lack tPA or plasminogen show greater axon degeneration after a nerve crush compared to wild-type mice. The increased damage in the mice lacking plasminogen can be rescued by reducing the amount of the fibrin precursor, fibrinogen, either by gene deletion or by administering the pit viper venom Ancrod.7 U) D$ g4 w  d2 u0 Q# j! b

( P7 K7 v9 T( \' i9 wThe benefits of tPA in the PNS contrast with its damaging effects during excitotoxic neurodegeneration in the central nervous system (CNS). In the CNS, small amounts of tPA may function to remodel synapses, whereas the larger amounts released during excitotoxicity degrade laminin, thus removing a matrix survival signal for neurons. In the PNS both the substrate and the result are different: tPA is recruited to clear up the mess left when the circulation temporarily encroaches into the nervous system. Increasing the efficiency of this process with doses of tPA or fibrinogen-reducing medications may help patients suffering from nerve damage or inflammation.
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A Channel Opens Wide! P, M$ V1 N  _) R
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On page 1027, Shulga et al. link two budding yeast proteins, called Nup170p and Nup188p, to the elusive nuclear pore complex (NPC) diffusion channel, and suggest that these nucleoporins may also function in NPC gating. The gating mechanism allows facilitated transport of larger proteins through an apparatus that otherwise allows diffusion of only smaller proteins.- R: C0 k) O! z4 Y2 r/ e; Q

( G3 q2 F- Y: W  X$ Z9 N. CShulga et al. study passive permeability in strains deleted for 1 of 10 different NPC proteins. At 0°C, only the strains missing Nup170p or Nup188p show passive nucleo-cytoplasmic equilibration of reporter proteins that remain stuck in the nucleus of a wild-type strain. Diffusion into the nucleus is similarly affected. A 36-kD reporter protein shows limited diffusion into the nucleus of a wild-type cell, but larger reporters (of up to 66 kD for nup188- cells and up to 126 kD for nup170- cells) diffuse freely into the nuclei of mutant cells. Signal-directed nuclear transport rates are normal in the mutant cells, suggesting that the NPC is largely intact.
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& b' t; H6 _& x( ]$ sThe effect of Nup170p on passive permeability, and the interaction of Nup170p with a facilitated transport docking site, suggest that the diffusion channel and the putative facilitated transporter may be features of the same central structure. If Nup170p and Nup188p can affect the functional diameter of the diffusion channel they may also be involved in gating of the NPC.8 K, M  X0 K" T/ m) E

8 p9 o, `# {* n  W  ]Spatial Organization of Signaling" `) H8 |0 t( X2 ]
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Signaling microdomains in membranes have been studied using detergent extraction, but concerns remain that detergents may be disrupting important interactions or selectively extracting some proteins. Wilson et al. (page 1131) bring the time-tested approach of direct observation to this question. They use immunogold electron microscopy (EM) to delineate a sequence of spatially controlled interactions during mast cell signaling.
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& A3 p( h! Q' w0 k0 z8 OTheir study subject is the cross-linking of FcRI, the high-affinity IgE receptor on mast cells. Cross-linking leads to receptor phosphorylation by the Src-related kinase Lyn; Syk kinase then binds to the phosphorylated receptor to continue the signal transduction cascade. Wilson et al. find that both the receptor and Lyn are predominantly in small clusters before activation, with a significant level of interaction between receptor and Lyn clusters. After receptor cross-linking this colocalization of small clusters persists, but most FcRI is now found in large clusters from which Lyn is excluded. The majority of Syk is intercalated into both the large and small clusters.
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Wilson et al. speculate that phosphorylation by Lyn occurs in the small clusters, but then Lyn must be spatially separated from the activated receptor for the signal transduction process to continue. The domains in which subsequent receptor–Syk interactions occur are large enough to have been detected in other studies by light microscopy and detergent extraction, but the spatial organization of the earlier Lyn interaction is revealed here for the first time with the higher resolution of EM.2 b% T0 o2 b5 z0 X  m' R& X
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By William A. Wells, 1095 Market St. #516, San Francisco, CA 94103. E-mail: wells@biotext.com(One-Step Immortalization)
作者: beautylive    时间: 2015-6-8 10:08

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作者: 科研人    时间: 2015-6-17 15:28

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世界上那些最容易的事情中,拖延时间最不费力。  
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世界上那些最容易的事情中,拖延时间最不费力。  
作者: dr_ji    时间: 2016-4-28 17:33

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作者: mk990    时间: 2016-7-28 14:10

端粒酶研究
作者: syt7000    时间: 2016-8-10 14:18

肌源性干细胞
作者: keanuc    时间: 2016-8-13 19:07

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作者: abc987    时间: 2016-10-10 18:07

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干细胞研究重在基础
作者: tempo    时间: 2016-11-27 12:25

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作者: 小小C    时间: 2016-12-23 08:35

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作者: myylove    时间: 2017-1-16 19:03

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作者: 狂奔的蜗牛    时间: 2017-1-31 04:22

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作者: alwaysniu    时间: 2017-2-24 02:49

ding   支持  
作者: frogsays    时间: 2017-3-3 22:18

干细胞研究还要面向临床
作者: 知足常乐    时间: 2017-3-8 04:11

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作者: MIYAGI    时间: 2017-3-19 03:13

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肌源性干细胞
作者: beautylive    时间: 2017-4-17 14:42

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作者: 丸子    时间: 2017-5-16 06:17

设置阅读啊  
作者: 甘泉    时间: 2017-6-7 15:26

声明一下:本人看贴和回贴的规则,好贴必看,精华贴必回。  
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作者: 王者之道    时间: 2017-9-12 09:35

我又回复了  
作者: biobio    时间: 2017-9-14 04:49

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作者: Diary    时间: 2017-9-25 05:27

彪悍的人生不需要解释。  
作者: happyboy    时间: 2017-10-5 03:25

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作者: 分子工程师    时间: 2017-11-1 14:33

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作者: marysyq    时间: 2017-11-28 17:40

彪悍的人生不需要解释。  
作者: beautylive    时间: 2017-12-2 17:01

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作者: 昕昕    时间: 2017-12-6 01:34

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作者: heart10    时间: 2017-12-20 07:08

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我是来收集资料滴...  
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作者: 昕昕    时间: 2018-3-1 22:57

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作者: 狂奔的蜗牛    时间: 2018-3-9 01:08

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好帖子,要顶!
作者: awen    时间: 2018-3-28 23:05

赚点分不容易啊  
作者: 陈晴    时间: 2018-3-31 06:54

强人,佩服死了。呵呵,不错啊  
作者: nauticus    时间: 2018-4-14 11:22

回复一下  
作者: bioprotein    时间: 2018-4-25 19:34

谢谢干细胞之家提供资料
作者: Whole    时间: 2018-4-26 09:35

顶一个先  
作者: bioprotein    时间: 2018-5-16 00:18

原来是这样  
作者: 咖啡功夫猫    时间: 2018-5-16 19:13

我又回复了  
作者: htc728    时间: 2018-5-20 10:54

我又回复了  
作者: bluesuns    时间: 2018-6-4 04:45

哈哈,顶你了哦.  
作者: Whole    时间: 2018-6-5 12:53

世界上那些最容易的事情中,拖延时间最不费力。  
作者: laoli1999    时间: 2018-6-5 18:34

谢谢分享  
作者: 咖啡功夫猫    时间: 2018-7-12 09:35

干细胞与动物克隆
作者: 小小C    时间: 2018-7-14 17:14

慢慢来,呵呵  
作者: 红旗    时间: 2018-7-26 20:40

正好你开咯这样的帖  
作者: 科研人    时间: 2018-8-27 13:35

说嘛1~~~想说什么就说什么嘛~~  
作者: 依旧随遇而安    时间: 2018-9-2 16:56

今天临床的资料更新很多呀
作者: bluesuns    时间: 2018-9-8 05:54

正好你开咯这样的帖  
作者: 一个平凡人    时间: 2018-9-13 04:11

哈哈,顶你了哦.  
作者: 剑啸寒    时间: 2018-9-15 13:52

楼上的话等于没说~~~  
作者: 甘泉    时间: 2018-11-4 22:21

世界上那些最容易的事情中,拖延时间最不费力。  
作者: 一个平凡人    时间: 2018-11-8 07:15

先看看怎么样!  
作者: chinagalaxy    时间: 2018-11-10 12:18

我的啦嘿嘿  
作者: 丸子    时间: 2018-11-29 08:01

呵呵 都没人想我~~  
作者: sky蓝    时间: 2018-12-19 01:33

我来了~~~~~~~~~ 闪人~~~~~~~~~~~~~~~~  
作者: 命运的宠儿    时间: 2018-12-22 18:11

不错!  
作者: dada    时间: 2018-12-25 12:53

观看中  
作者: 碧湖冷月    时间: 2018-12-31 08:18

写得好啊  
作者: dataeook    时间: 2018-12-31 20:54

神经干细胞
作者: 王者之道    时间: 2019-1-22 15:52

照你这么说真的有道理哦 呵呵 不进沙子馁~~~  
作者: tempo    时间: 2019-2-16 07:55

说的不错  
作者: chongchong    时间: 2019-2-22 05:28

加油啊!!!!顶哦!!!!!  
作者: sshang    时间: 2019-2-23 21:17

设置阅读啊  
作者: 干细胞2014    时间: 2019-3-25 04:27

宁愿选择放弃,不要放弃选择。  
作者: abc987    时间: 2019-4-2 23:41

经过你的指点 我还是没找到在哪 ~~~  




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