干细胞之家 - 中国干细胞行业门户第一站

标题: In Brief [打印本页]

作者: 杨柳    时间: 2009-3-5 22:53     标题: In Brief

In an impressive demonstration of the combined power of high-throughput proteomics and cell biological analysis, Rout et al. (page 635) describe an exhaustive analysis of the composition and architecture of the yeast nuclear pore complex (NPC). The data present a comprehensive and definitive inventory of the core elements of the NPC, providing not only the identity of each protein component, but establishing their positions in the high resolution NPC structure published last year by Chris Akey's laboratory. Even more importantly, the paper provides a dramatic illustration of just how cell biology is emerging as the playing field on which genomic and proteomic data will be turned into biological insights.9 b9 D+ y* G9 e, y) E* B5 I

3 U7 m/ g" l3 W. c5 X+ D% u, cBeginning with a subcellular fraction that is highly enriched in NPCs, the scientists performed two-dimensional separations with HPLC followed by SDS-PAGE. Each band was then analyzed by trypsin digestion and mass spectrometry, and the corresponding open reading frames were identified in a yeast genome database search. The putative nucleoporins were then epitope tagged and their localization tested by immunofluorescence and subcellular fractionation, narrowing the pool to ~30 proteins that fit the authors' definition of nucleoporins. Immunoelectron microscopy using the tagged nucleoporins allowed the team to map the architecture of the NPC, and the stoichiometric relationships between the nucleoporins were determined by quantitative immunoblotting of SDS-PAGE–separated samples. Based on their results, Rout et al. propose that Brownian motion accounts for the translocation of molecules through the NPC, and that the system's directionality is established by asymmetric nucleoporins and the asymmetric distribution of soluble transport factors.$ e- f' r8 H. @/ S: |

; L9 ]& l5 e6 i3 W; @A Bcl-2 Homologue in Drosophila
, V, ~7 B, T8 E: l
4 I. m8 _5 a3 W9 l  M1 l; QBeginning on page 703, Colussi et al. report cloning the first known Bcl-2 homologue in insects. The gene product, named Debcl, is most similar to mammalian pro-apoptotic Bcl-2 family members of the Bax subfamily. Genetic and biochemical experiments show that Debcl acts in a caspase-dependent manner and can interact with mammalian or viral pro-survival Bcl-2 proteins, providing further evidence that the pathways to cell death are conserved from invertebrates to mammals.
4 `% }, w6 _" S. z' l( ]4 d: v( C! [: D8 k/ Q6 j
Though several components of the Drosophila cell death machinery have been identified, no Bcl-2–like protein has been found previously in the fly. By searching the Drosophila DNA sequence database, the researchers identified two putative Bcl-2 homologues, characterizing one in detail. Debcl shares significant sequence homology with mammalian Bax, a pro-apoptotic member of the Bcl-2 family, and its expression correlates with cell death during Drosophila development. Analysis of transgenic flies overexpressing debcl shows that Debcl kills by a mechanism that is caspase dependent. Since most programmed cell death during Drosophila embryogenesis can be suppressed by preventing expression of debcl, the new gene product appears to be a key regulator of cell death during fly development. Biochemical experiments show that Debcl can physically interact with many pro-survival Bcl-2 proteins, suggesting that Debcl may act by antagonizing the activity of Drosophila pro-survival Bcl-2 proteins.
' N9 @5 ]1 h! D! W/ v* W7 L! n
( K2 k" [7 p. W8 E( T: M2 ^Spatial Separation of Parental Genomes
3 A# K: M& t2 _$ t0 E, H8 P) d' d
Using two different approaches, Mayer et al. (page 629) demonstrate that maternal and paternal genomes remain topologically separated in early preimplantation mouse embryos. The findings have widespread implications for basic research in genomic imprinting and mammalian cloning, and may help illuminate the pathogenesis of human imprinting disorders.% u% ^" p0 `% j: z/ B8 q( [& a5 b5 _" L

# }0 w, S4 {7 h1 e, }To distinguish between maternal and paternal chromatin, the team first fed a solution of BrdU to male mice for several weeks before mating them with females. Paternal DNA in fertilized eggs and early embryos was visualized by immunofluorescence with anti-BrdU antibodies. The BrdU staining remains highly localized until at least the four-celled stage, demonstrating that the parental genomes remain separated.
* q, q: N8 \6 Y# Z+ `
- M: b: o" L' O5 U0 rIn a second set of experiments, the researchers crossed the laboratory mouse, Mus musculus, with the wild European mouse, M. spretus, using differences in sequence and copy number of centromeric satellite DNAs to distinguish between maternal and paternal chromatin. Results from these experiments also show a striking separation of parental chromatin in early embryos. In more advanced embryos from interspecific crosses, only 5–10% of the cells show segregation of the two centromere sets. Interestingly, ~10% of somatic cells from adult hybrid animals also appear to show segregated parental chromatin, suggesting that the diploid chromosome complement may be separated into two haploid sets in some somatic cell types or cell cycle stages.
5 m- ^7 G& Y  p1 C
- Y' Y9 v" S' P6 H. V+ ^# i4 ?/ J4 fNew Ligand for -Dystroglycan in Postsynaptic Membranes0 J& L7 F/ ~9 N1 p( a) h. n0 ?

* _) j5 ?  J2 J- v& E: YIn work that may open a new path to developing therapies for muscular dystrophies, Bowe et al. (page 801) describe the identification of an interaction between -dystroglycan and the proteoglycan biglycan. Interestingly, biglycan binds to the carboxy-terminal third of -dystroglycan, a portion with no previously identified structural motifs or functional interactions.$ J& H" B5 k. s; J0 b
/ D# V0 ~. Z' G+ T- S7 p
Though the role of -dystroglycan in extracellular matrix interactions has been characterized extensively, less is known about the protein's potential function in postsynaptic differentiation. The team developed a ligand blot overlay assay to search for novel dystroglycan-binding molecules in synaptic membranes from the Torpedo electric organ. Biochemical purification and analysis showed that one such molecule is the Torpedo homologue of the small leucine-rich repeat proteoglycan biglycan, and that the interaction occurs in the carboxy-terminal portion of -dystroglycan. Binding is dependent on the biglycan chondroitin sulfate side chains, suggesting that the interaction might be regulated in vivo by posttranslational modification. Biglycan expression is elevated in muscle tissue from the dystrophic mdx mouse, raising the possibility that biglycan has a role in muscular dystrophy. Using the assay developed for this work, the researchers have subsequently identified additional proteins that bind to biglycan.
4 |# x8 d. A  p. J
( O0 D* j6 S( h( x7 s+ L( ACoupling Exocytosis and Compensatory Endocytosis
( e2 v8 @3 a2 {+ f, k/ n$ a5 m' Z1 K# O( V4 R1 X* d
Smith et al. (page 755) analyzed compensatory endocytosis, the process believed to be responsible for compensating for the increase in cell surface area after exocytosis. Their data show that compensatory endocytosis is only observed at sites of prior exocytosis, providing initial support for a new mechanistic model for exocytosis–endocytosis coupling.4 G2 t% y+ Y; x4 A
5 y9 l+ j; I' ~) g, |( z0 s0 f! u3 Z
Ion channels have long been known to regulate the calcium influx that triggers exocytosis, and voltage-gated calcium channels have been implicated in regulating compensatory endocytosis. In sea urchin eggs, fertilization activates IP3 receptors, and the subsequent release of calcium from internal stores triggers the exocytosis of secretory vesicles. Fertilization also depolarizes the membrane potential, opening P-type voltage-gated calcium channels, and the resulting influx of calcium through these channels triggers compensatory endocytosis. Using toxin inhibition of retrieval activity and immunolocalization, Smith et al. found that P-type calcium channels appear on the cell surface only after egg activation. The channels are found on the secretory vesicle membranes, which fuse with the plasma membrane immediately after fertilization. Since the channels are only found at the exocytic sites on the egg surface, compensatory endocytosis is restricted to these sites.$ u; A: j7 Z* `* ]: R. ?

/ O! i6 F' n& }) W$ O$ SBased on these results, the researchers propose a model for exocytosis–endocytosis coupling in which prior exocytosis is required in addition to membrane depolarization because the P-type channels that regulate compensatory endocytosis are themselves regulated by exocytotic and endocytotic activity.1 R, ]; c3 G5 E  Q5 K5 y+ {1 ~

1 [1 K$ Q  G6 W1 x2 DBy Alan W. Dove, 712 W. 176th St. #2A, New York, NY 10033-7502. E-mail: alanwdove@earthlink.net(Comprehensive Mapping of the Nuclear Por)
作者: 红旗    时间: 2015-5-22 15:18

顶的就是你  
作者: awen    时间: 2015-6-3 13:10

@,@..是什么意思呀?  
作者: 依旧随遇而安    时间: 2015-7-12 21:34

我帮你 喝喝  
作者: immail    时间: 2015-7-22 11:10

干细胞研究重在基础
作者: 龙水生    时间: 2015-7-25 14:17

不管你信不信,反正我信  
作者: 大小年    时间: 2015-7-28 12:09

我等你哟!  
作者: foxok    时间: 2015-8-7 23:15

说嘛1~~~想说什么就说什么嘛~~  
作者: haha3245    时间: 2015-8-12 19:05

每天都会来干细胞之家看看
作者: 杏花    时间: 2015-9-22 17:10

挺好啊  
作者: 榴榴莲    时间: 2015-10-8 18:08

就为赚分嘛  
作者: tuanzi    时间: 2015-11-1 11:55

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: xuguofeng    时间: 2015-11-22 22:10

既然来了,就留个脚印  
作者: aakkaa    时间: 2015-12-14 20:34

先看看怎么样!  
作者: bluesuns    时间: 2015-12-27 16:34

帮顶  
作者: tuanzi    时间: 2015-12-29 10:27

我毫不犹豫地把楼主的这个帖子收藏了  
作者: na602    时间: 2016-2-16 15:27

支持~~  
作者: dglove    时间: 2016-2-29 13:43

今天再看下  
作者: dogcat    时间: 2016-3-1 07:23

人之所以能,是相信能。  
作者: chongchong    时间: 2016-4-21 17:38

很好!很强大!  
作者: 983abc    时间: 2016-5-12 11:10

应该加分  
作者: youngcell    时间: 2016-6-15 21:18

不错不错.,..我喜欢  
作者: 初夏洒脱    时间: 2016-6-30 13:54

不错,看看。  
作者: aliyun    时间: 2016-7-8 12:54

正好你开咯这样的帖  
作者: SCISCI    时间: 2016-7-16 21:35

哦...............  
作者: 陈晴    时间: 2016-8-18 13:26

免疫细胞疗法治疗肿瘤有效  
作者: HongHong    时间: 2016-8-23 11:02

楼主也是博士后吗  
作者: xiao2014    时间: 2016-9-19 13:01

先顶后看  
作者: 三好学生    时间: 2016-10-16 10:18

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: 老农爱科学    时间: 2016-10-29 10:41

HOHO~~~~~~  
作者: 昕昕    时间: 2016-11-29 17:01

抢座位来了  
作者: hmhy    时间: 2016-12-16 11:55

干细胞行业门户 干细胞之家
作者: 丸子    时间: 2016-12-27 13:18

照你这么说真的有道理哦 呵呵 不进沙子馁~~~  
作者: apple0    时间: 2017-1-13 17:01

原来这样也可以  
作者: 修复者    时间: 2017-2-2 10:18

我的啦嘿嘿  
作者: dongmei    时间: 2017-2-2 21:51

回答了那么多,没有加分了,郁闷。。  
作者: nosoho    时间: 2017-2-6 10:10

原来这样也可以  
作者: 干细胞2014    时间: 2017-2-9 18:54

好贴坏贴,一眼就看出去  
作者: 小倔驴    时间: 2017-2-13 03:40

顶.支持,路过.....  
作者: 与你同行    时间: 2017-2-14 12:10

谢谢楼主啊!
作者: 黄山    时间: 2017-2-26 21:52

一个子 没看懂  
作者: dogcat    时间: 2017-2-26 22:27

貌似我真的很笨????哎  
作者: tempo    时间: 2017-6-12 17:17

顶你一下.  
作者: 罗马星空    时间: 2017-6-13 07:32

初来乍到,请多多关照。。。  
作者: ines    时间: 2017-6-15 13:54

谢谢分享了!   
作者: chinagalaxy    时间: 2017-6-29 22:42

我毫不犹豫地把楼主的这个帖子收藏了  
作者: happyboy    时间: 2017-7-11 01:58

来上茶~~~~  
作者: www1202000    时间: 2017-7-11 17:18

干细胞之家是国内最好的干细胞网站了
作者: abc987    时间: 2017-7-20 16:17

干细胞治疗  
作者: MIYAGI    时间: 2017-8-1 22:26

HOHO~~~~~~  
作者: 兔兔    时间: 2017-9-10 11:01

进行溜达一下  
作者: lalala    时间: 2017-9-16 05:54

挺好啊  
作者: popobird    时间: 2017-9-20 00:43

发贴看看自己积分  
作者: leeking    时间: 2017-9-20 09:27

应该加分  
作者: 舒思    时间: 2017-9-24 02:53

原来这样也可以  
作者: marysyq    时间: 2017-9-27 00:29

不错啊! 一个字牛啊!  
作者: alwaysniu    时间: 2017-9-28 01:02

爷爷都是从孙子走过来的。  
作者: chongchong    时间: 2017-10-21 08:40

说嘛1~~~想说什么就说什么嘛~~  
作者: doors    时间: 2017-10-23 13:53

初来乍到,请多多关照。。。嘿嘿,回个贴表明我来过。  
作者: myylove    时间: 2017-10-27 22:54

天啊. 很好的资源
作者: 墨玉    时间: 2017-11-2 13:52

胚胎干细胞
作者: 锦锦乐道    时间: 2017-11-4 04:08

谁都不容易啊 ~~  
作者: 知足常乐    时间: 2017-11-5 11:35

设置阅读啊  
作者: 桦子    时间: 2017-11-21 14:32

也许似乎大概是,然而未必不见得。  
作者: feixue66    时间: 2017-11-23 21:01

来上茶~~~~  
作者: 碧湖冷月    时间: 2017-11-25 17:14

偶真幸运哦...  
作者: 苹果天堂    时间: 2017-12-8 16:43

脂肪干细胞
作者: 未必温暖    时间: 2017-12-15 11:34

呵呵,明白了  
作者: 陈晴    时间: 2018-1-29 22:17

厉害!强~~~~没的说了!  
作者: 快乐小郎    时间: 2018-2-20 11:59

继续查找干细胞研究资料
作者: 依旧随遇而安    时间: 2018-3-10 17:35

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: 再来一天    时间: 2018-4-8 01:41

先看看怎么样!  
作者: 科研人    时间: 2018-4-18 10:35

干细胞之家是国内最好的干细胞网站了
作者: 狂奔的蜗牛    时间: 2018-4-19 06:24

任何的限制,都是从自己的内心开始的。  
作者: 草长莺飞    时间: 2018-4-29 23:24

这个贴不错!!!!!  
作者: vsill    时间: 2018-5-4 08:18

加油啊!!!!顶哦!!!!!  
作者: 小丑的哭泣    时间: 2018-5-16 20:42

羊水干细胞
作者: dogcat    时间: 2018-5-19 18:15

支持~~  
作者: 墨玉    时间: 2018-6-16 05:01

回个帖子支持一下!
作者: xiao2014    时间: 2018-6-22 11:43

晕死也不多加点分  
作者: 加菲猫    时间: 2018-6-25 00:05

昨晚多几分钟的准备,今天少几小时的麻烦。  
作者: 橙味绿茶    时间: 2018-6-29 01:49

回答了那么多,没有加分了,郁闷。。  
作者: apple0    时间: 2018-7-22 13:01

昨天没来看了 ~~  
作者: 旅美学者    时间: 2018-8-6 19:09

祝干细胞之家 越办越好~~~~~~~~~`  
作者: 刘先生    时间: 2018-9-6 17:45

干细胞与基因技术
作者: 温暖暖    时间: 2018-9-18 18:16

必须顶  
作者: netlover    时间: 2018-10-5 11:27

免疫细胞疗法治疗肿瘤有效  
作者: yunshu    时间: 2018-10-8 02:14

回个帖子支持一下!
作者: 小丑的哭泣    时间: 2018-10-15 06:54

其实回帖算是一种没德德,所以我快成圣人了  
作者: 墨玉    时间: 2018-10-31 21:42

干细胞行业  
作者: bioprotein    时间: 2018-12-2 11:53

不错不错.,..我喜欢  
作者: laoli1999    时间: 2018-12-3 07:17

哈哈,看的人少,回一下  
作者: Diary    时间: 2018-12-31 23:49

不管你信不信,反正我信  
作者: haha3245    时间: 2019-1-4 11:35

今天没事来逛逛  
作者: IPS干细胞    时间: 2019-2-1 23:16

帮顶  
作者: 分子工程师    时间: 2019-3-21 10:27

谁都不容易啊 ~~  
作者: 命运的宠儿    时间: 2019-3-21 11:35

支持一下吧  
作者: 分子工程师    时间: 2019-4-1 15:40

好帖子,要顶!
作者: 3344555    时间: 2019-4-7 06:32

照你这么说真的有道理哦 呵呵 不进沙子馁~~~  
作者: Diary    时间: 2019-4-14 15:23

感觉好像在哪里看过了,汗~  




欢迎光临 干细胞之家 - 中国干细胞行业门户第一站 (http://www.stemcell8.cn/) Powered by Discuz! X1.5