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标题: In Brief [打印本页]

作者: mx988    时间: 2009-3-5 22:28     标题: In Brief

Kiehart and colleagues (page 471) used time-lapse and real-time imaging of a GFP-tagged fusion protein, along with a series of elegant biomechanical analyses, to determine the major types of forces acting on cell sheets during dorsal closure in Drosophila. In addition to illuminating this important aspect of fly biology, the experiments demonstrate a powerful new system for studying morphogenesis and wound healing.
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3 R8 ~0 K1 ]+ }, _, N1 qUsing a transgene encoding GFP fused to an actin-binding fragment from the fly moesin protein, the authors followed cell shape changes and tissue movements during dorsal closure. The team then used a laser to destroy small groups of cells in precise locations, observing the resulting changes in cell sheet morphology to determine the forces acting on the sheet. The results suggest that both purse string–like forces in the leading edge of the lateral epidermis and contractility in the amnioserosa contribute to dorsal closure, while tension in the anisotrophic lateral epidermis opposes dorsal closure.
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2 R% E" g5 g9 N( {9 l; i, oThe experiments also show that the epidermis of Drosophila embryos heals rapidly and reproducibly from repeated mechanical or laser wounds. Combined with the ability to observe cell movements and the well-established genetics of the fly, this finding should make the system broadly applicable for studies in wound healing, including genetic screens to identify loci involved in this poorly understood process.
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Observing DNA Replication Factories in Living Cells0 X2 J2 _- e9 B& x: Y- w; d+ R

+ u( h  Z* d* q  F9 H8 E) YUsing time-lapse imaging and a GFP-tagged component of the DNA replication machinery, Leonhardt and colleagues (page 271) examined the dynamics of DNA replication factories in living cells. The results suggest that in contrast with nuclear speckles and coiled bodies, replication factories are stably anchored in the nucleus in a pattern that changes by asynchronous assembly and disassembly of the foci. The approach should also be useful for future studies on nuclear organization.
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8 T% }- }1 ]6 A5 s" j0 _" LA growing number of proteins have been shown to associate with subnuclear replication foci in a cell cycle–dependent manner, but the molecular mechanism of this association remains poorly understood. In this new work, the authors created stable cell lines expressing translational fusions of GFP and proliferating cell nuclear antigen (PCNA), a central DNA replication factor. In time-lapse imaging of the live cells, replication factories appear to be immobilized in the nucleus, shifting position by assembling and disassembling asynchronously throughout S-phase. At higher resolution, the larger factories appear as collections of several independent smaller-sized foci. The results are consistent with a model in which replication factories, anchored to the DNA and an underlying nuclear skeleton, remain stationary while replicating DNA is processed through them. The asynchronous assembly of the factories also suggests that early, middle, and late replication may be arbitrarily defined points in a continuous process.. @" r' A1 ?# P% w+ C- n" H
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Differing Behavior of Mother and Daughter Centrioles
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- @( d2 A. \% ~4 SApplying GFP tagging and time-lapse imaging to studies on centrioles, Piel and colleagues (page 317) discovered unexpected complexities in the movements of mother and daughter centrioles and the role of cytoskeletal components in centriole behavior. The data, which show differences in both the motility and microtubule organizing activity of the two centrioles, suggest that centrioles may play a significant role in controlling microtubule arrays during cell locomotion and division.
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2 P2 h) z' f) jAfter generating stable cell lines expressing a GFP-centrin fusion protein, the team followed the localization of the fluorescent protein, which is incorporated into mother and daughter centrioles. The mother-daughter centriole pair appears to split during or shortly after telophase. After mitosis, the mother centriole remains near the center of the cell, but the daughter moves around the cytoplasm. The centrioles replicate at the G1/S transition, and the movements of the daughter gradually diminish until its behavior is identical to that of the mother. Microtubule or actin inhibitors stop the movement of the daughter when administered together, but not when administered separately. While both centrioles can nucleate microtubules, only the mother anchors them.; V- X" l" S( A

# y9 ~, y8 z/ V& ~% t, ]: }" BSince most previous studies of the centrosome have employed fixed cells or isolated organelles, this new work provides important insights into centrosome behavior. The authors propose that microtubules are nucleated near centrioles, then released to associate either with the mother centriole or with other anchoring sites, and that centriole splitting could be an important mechanism for controlling the cellular microtubule array.: @/ a& i% @' r$ A. O" h! {) Y
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Control of Growth Cone Collapse
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Reports by Fournier and colleagues (page 411) and Wahl and colleagues (page 263) focus on the collapse of the growth cone, a structure that mediates axonal pathfinding during neuronal development. The results suggest that growth cone collapse is carried out by a combination of cytoskeletal reorganization and endocytosis, and that at least one growth cone collapse signal is transduced by the activation of Rho and Rho kinase. Repulsive environmental cues can cause the complete collapse of the growth cone, arresting neurite outgrowth, or partial collapse, which causes asymmetry and steers the growth cone. Though growth cone collapse and steering are crucial to neuronal development, the molecular details of these phenomena remain unclear./ Y6 h! W  e3 }( G; q0 X5 T

! n; y* l2 a) JFournier and colleagues studied the collapse response to Sema3A, a member of the class 3 semaphorin family that repulses the axons of sympathetic and sensory neurons. After Sema3A treatment, F-actin, NP-1, Plexin, and rac1 are redistributed to new membrane ridges and vacuoles. Sema3A also stimulates endocytosis during growth cone collapse. In dorsal root ganglion and retinal ganglion cell (RGC) systems, inhibitors of axon extension stimulate endocytosis. The authors suggest that the stimulation of endocytosis and actin filament rearrangement may be general mechanisms of growth cone collapse. Focusing on the signal transduction pathways involved in inducing growth cone collapse, Wahl and colleagues found that the repulsive guidance molecule ephrin-A5 induces the activation of the small GTPase Rho and its downstream effector Rho kinase. When RGC cultures are treated with ephrin-A5, Rho is activated while Rac is downregulated, and inhibitors of Rho GTPase and Rho kinase reduce the collapse rate of growth cones in this system.
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& C$ n  t7 i6 G. S3 a/ tIntegrin-mediated Signals and Bax-mediated Apoptosis3 \  T% L( \! b; G

7 o: n5 J  Z3 ~1 }/ IIn an effort to elucidate the mechanisms linking extracellular matrix (ECM) adhesion to the intracellular apoptotic machinery, Gilmore and colleagues (page 431) studied the localization of the apoptotic protein Bax in mammary epithelial cells. Their results support a model in which integrin-mediated survival signals control the conformation and localization of Bax, suggesting new avenues for basic research on apoptosis as well as novel molecular targets for cancer therapy.. R1 [" V+ q$ K

& p2 L  M% _* ~8 q9 m7 w# U- r7 g, iThe loss of adhesion to the ECM induces apoptosis in most normal cells, a process apparently initiated by the loss of survival-promoting signals from integrins on the cell surface. In this new work, the authors show that a loss of ECM attachment in mammary epithelial cells causes Bax, a Bcl-2 family protein, to relocalize rapidly from the cytosol to mitochondria. At the same time, the BH3 domain of Bax becomes exposed. The conformational change in Bax and subsequent apoptosis require signaling by the integrin-associated kinase pp125FAK, and occur before the irreversible commitment to apoptosis. Based on these results, the authors present a model in which pp125FAK acts through PI3-kinase and pp60src to maintain Bax in a conformation that prevents its localization to the mitochondria; when ECM attachment and survival-promoting signaling are lost, Bax relocalizes to the mitochondria, leading to apoptosis.
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Alan W. Dove, 712 W. 176th St. #2A, New York, NY 10033-7502. E-mail: alanwdove@earthlink.net(Cell Sheet Morphogenesis in Drosophila)
作者: 榴榴莲    时间: 2015-6-8 17:56

几头雾水…  
作者: foxok    时间: 2015-6-19 15:17

干细胞与动物克隆
作者: 123456zsz    时间: 2015-7-9 18:18

做对的事情比把事情做对重要。  
作者: 舒思    时间: 2015-8-15 18:52

回帖是种美德.  
作者: txxxtyq    时间: 2015-8-19 13:27

人之所以能,是相信能。  
作者: 泡泡鱼    时间: 2015-8-29 11:58

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强人,佩服死了。呵呵,不错啊  
作者: 舒思    时间: 2015-8-30 14:09

干细胞研究还要面向临床
作者: biobio    时间: 2015-9-17 22:01

谢谢分享了!   
作者: beautylive    时间: 2015-10-22 18:36

干细胞美容
作者: immail    时间: 2015-10-25 19:12

干细胞与动物克隆
作者: s06806    时间: 2015-11-14 11:17

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作者: 泡泡鱼    时间: 2015-12-4 19:18

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作者: bluesuns    时间: 2015-12-12 12:17

在线等在线等  
作者: 舒思    时间: 2015-12-15 21:39

好贴坏贴,一眼就看出去  
作者: 龙水生    时间: 2016-1-12 08:57

转基因动物
作者: 科研人    时间: 2016-1-15 13:10

知道了 不错~~~  
作者: 剑啸寒    时间: 2016-1-25 15:43

朕要休息了..............  
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谁都不容易啊 ~~  
作者: aakkaa    时间: 2016-2-22 10:18

围观来了哦  
作者: 依旧随遇而安    时间: 2016-3-7 17:02

支持一下吧  
作者: 糊涂小蜗牛    时间: 2016-3-16 21:43

干细胞库  
作者: tuanzi    时间: 2016-4-5 14:43

呵呵 那就好好玩吧~~~~  
作者: pengzy    时间: 2016-4-21 10:54

设置阅读啊  
作者: pengzy    时间: 2016-4-22 15:18

希望可以用些时间了~````  
作者: tempo    时间: 2016-4-23 17:32

哈哈,这么多的人都回了,我敢不回吗?赶快回一个,很好的,我喜欢  
作者: pspvp    时间: 2016-5-17 16:35

观看中  
作者: dr_ji    时间: 2016-6-19 22:43

快毕业了 希望有个好工作 干细胞还是不错的方向
作者: 修复者    时间: 2016-6-20 15:43

不错!  
作者: wq90    时间: 2016-7-23 11:10

你加油吧  
作者: vsill    时间: 2016-9-10 12:27

做对的事情比把事情做对重要。  
作者: Greatjob    时间: 2016-10-2 14:31

哦...............  
作者: hmhy    时间: 2016-11-15 15:26

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作者: 大小年    时间: 2016-11-27 13:27

正好你开咯这样的帖  
作者: 旅美学者    时间: 2016-12-9 16:15

支持一下吧  
作者: 墨玉    时间: 2017-1-23 02:38

顶一个先  
作者: nosoho    时间: 2017-2-4 21:49

不管你信不信,反正我信  
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作者: Diary    时间: 2017-2-12 08:43

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作者: kaikai    时间: 2017-2-14 12:10

你还想说什么啊....  
作者: foxok    时间: 2017-2-23 05:06

顶的就是你  
作者: chinagalaxy    时间: 2017-3-11 11:17

小心大家盯上你哦  
作者: 狂奔的蜗牛    时间: 2017-3-12 01:36

我毫不犹豫地把楼主的这个帖子收藏了  
作者: tempo    时间: 2017-3-12 19:43

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作者: bioprotein    时间: 2017-4-13 19:59

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作者: yunshu    时间: 2017-5-4 14:35

顶你一下,好贴要顶!  
作者: dogcat    时间: 2017-5-5 13:34

呵呵,明白了  
作者: HongHong    时间: 2017-5-20 22:27

每天都会来干细胞之家看看
作者: 未必温暖    时间: 2017-5-27 23:26

说嘛1~~~想说什么就说什么嘛~~  
作者: IPS干细胞    时间: 2017-6-12 14:27

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: xiao2014    时间: 2017-6-29 04:03

呵呵 那就好好玩吧~~~~  
作者: 舒思    时间: 2017-8-7 13:43

一个有信念者所开发出的力量,大于99个只有兴趣者。  
作者: 心仪    时间: 2017-8-9 01:16

免疫细胞治疗  
作者: 蚂蚁    时间: 2017-8-15 18:55

干细胞美容
作者: SCISCI    时间: 2017-9-25 10:10

初来乍到,请多多关照。。。  
作者: s06806    时间: 2017-10-13 17:11

不错不错,我喜欢看  
作者: bioprotein    时间: 2017-10-22 00:22

一楼的位置好啊..  
作者: awen    时间: 2017-10-31 18:54

厉害!强~~~~没的说了!  
作者: 多来咪    时间: 2017-12-1 16:09

努力,努力,再努力!!!!!!!!!!!  
作者: IPS干细胞    时间: 2017-12-9 17:29

干细胞我这辈子就是看好你
作者: laoli1999    时间: 2017-12-18 16:19

今天没事来逛逛,看了一下,感觉相当的不错。  
作者: tian2006    时间: 2017-12-22 21:36

加油啊!!!!顶哦!!!!!  
作者: 狂奔的蜗牛    时间: 2017-12-25 01:18

这个贴不错!!!!!看了之后就要回复贴子,呵呵  
作者: immail    时间: 2017-12-31 09:33

…没我说话的余地…飘走  
作者: 草长莺飞    时间: 2018-1-3 13:02

一个子 没看懂  
作者: 大小年    时间: 2018-1-22 13:10

免疫细胞治疗  
作者: 坛中酒    时间: 2018-2-2 22:34

先看看怎么样!  
作者: 榴榴莲    时间: 2018-2-5 00:43

挺好啊  
作者: vsill    时间: 2018-2-5 04:01

顶一个先  
作者: bluesuns    时间: 2018-2-22 16:51

回贴赚学识,不错了  
作者: 昕昕    时间: 2018-2-27 08:27

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: mk990    时间: 2018-3-3 17:08

很有吸引力  
作者: 红旗    时间: 2018-3-13 11:10

厉害!强~~~~没的说了!  
作者: 泡泡鱼    时间: 2018-4-20 03:59

干细胞抗衰老  
作者: 草长莺飞    时间: 2018-4-21 04:40

观看中  
作者: 罗马星空    时间: 2018-5-10 08:27

干细胞疾病模型
作者: haha3245    时间: 2018-6-10 02:54

牛牛牛牛  
作者: 风云动    时间: 2018-6-12 01:44

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: 昕昕    时间: 2018-6-27 23:05

抢座位来了  
作者: Whole    时间: 2018-7-1 10:54

初来乍到,请多多关照。。。嘿嘿,回个贴表明我来过。  
作者: lalala    时间: 2018-7-17 03:09

严重支持!
作者: wq90    时间: 2018-7-30 05:21

彪悍的人生不需要解释。  
作者: frogsays    时间: 2018-8-19 02:29

一楼的位置好啊..  
作者: 安生    时间: 2018-9-1 01:24

谁能送我几分啊  
作者: 糊涂小蜗牛    时间: 2018-9-4 12:54

今天再看下  
作者: 蝶澈    时间: 2018-9-7 21:57

来几句吧  
作者: yunshu    时间: 2018-9-9 10:25

越办越好~~~~~~~~~`  
作者: immail    时间: 2018-9-14 14:35

我回不回呢 考虑再三 还是不回了吧 ^_^  
作者: 分子工程师    时间: 2018-9-30 21:08

每天都会来干细胞之家看看
作者: 小倔驴    时间: 2018-10-6 03:12

dddddddddddddd  
作者: 草长莺飞    时间: 2018-11-1 00:34

我十目一行也还是看不懂啊  
作者: dongmei    时间: 2018-11-2 03:45

先顶后看  
作者: doc2005    时间: 2018-12-22 02:57

谢谢分享  
作者: 我学故我思    时间: 2019-1-7 14:54

这个贴不错!!!!!看了之后就要回复贴子,呵呵  
作者: ikiss    时间: 2019-1-12 08:55

既然来了,就留个脚印  
作者: bioprotein    时间: 2019-1-29 07:41

干细胞产业是朝阳产业
作者: 旅美学者    时间: 2019-2-4 14:35

21世纪,什么最重要——我!  




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