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Securin-independent regulation of separase by checkpoint-induced shugoshin-MAD2 期刊论文
NATURE, 2020, 580 (7804) : 536-+
作者:  Redhai, Siamak;  Pilgrim, Clare;  Gaspar, Pedro;  van Giesen, Lena;  Lopes, Tatiana;  Riabinina, Olena;  Grenier, Theodore;  Milona, Alexandra;  Chanana, Bhavna;  Swadling, Jacob B.;  Wang, Yi-Fang;  Dahalan, Farah;  Yuan, Michaela;  Wilsch-Brauninger, Michaela;  Lin, Wei-hsiang;  Dennison, Nathan;  Capriotti, Paolo;  Lawniczak, Mara K. N.;  Baines, Richard A.;  Warnecke, Tobias;  Windbichler, Nikolai;  Leulier, Francois;  Bellono, Nicholas W.;  Miguel-Aliaga, Irene
收藏  |  浏览/下载:51/0  |  提交时间:2020/07/03

Shugoshin and MAD2 regulate separase-mediated chromosome separation during mitosis, in parallel to a previously identified mechanism involving the anaphase inhibitor securin.


Separation of eukaryotic sister chromatids during the cell cycle is timed by the spindle assembly checkpoint (SAC) and ultimately triggered when separase cleaves cohesion-mediating cohesin(1-3). Silencing of the SAC during metaphase activates the ubiquitin ligase APC/C (anaphase-promoting complex, also known as the cyclosome) and results in the proteasomal destruction of the separase inhibitor securin(1). In the absence of securin, mammalian chromosomes still segregate on schedule, but it is unclear how separase is regulated under these conditions(4,5). Here we show that human shugoshin 2 (SGO2), an essential protector of meiotic cohesin with unknown functions in the soma(6,7), is turned into a separase inhibitor upon association with SAC-activated MAD2. SGO2-MAD2 can functionally replace securin and sequesters most separase in securin-knockout cells. Acute loss of securin and SGO2, but not of either protein individually, resulted in separase deregulation associated with premature cohesin cleavage and cytotoxicity. Similar to securin(8,9), SGO2 is a competitive inhibitor that uses a pseudo-substrate sequence to block the active site of separase. APC/C-dependent ubiquitylation and action of the AAA-ATPase TRIP13 in conjunction with the MAD2-specific adaptor p31(comet) liberate separase from SGO2-MAD2 in vitro. The latter mechanism facilitates a considerable degree of sister chromatid separation in securin-knockout cells that lack APC/C activity. Thus, our results identify an unexpected function of SGO2 in mitotically dividing cells and a mechanism of separase regulation that is independent of securin but still supervised by the SAC.


  
Targeting of temperate phages drives loss of type I CRISPR-Cas systems 期刊论文
NATURE, 2020, 578 (7793) : 149-+
作者:  Xiang, Lifeng;  Yin, Yu;  Zheng, Yun;  Ma, Yanping;  Li, Yonggang;  Zhao, Zhigang;  Guo, Junqiang;  Ai, Zongyong;  Niu, Yuyu;  Duan, Kui;  He, Jingjing;  Ren, Shuchao;  Wu, Dan;  Bai, Yun;  Shang, Zhouchun;  Dai, Xi;  Ji, Weizhi;  Li, Tianqing
收藏  |  浏览/下载:80/0  |  提交时间:2020/07/03

On infection of their host, temperate viruses that infect bacteria (bacteriophages  hereafter referred to as phages) enter either a lytic or a lysogenic cycle. The former results in lysis of bacterial cells and phage release (resulting in horizontal transmission), whereas lysogeny is characterized by the integration of the phage into the host genome, and dormancy (resulting in vertical transmission)(1). Previous co-culture experiments using bacteria and mutants of temperate phages that are locked in the lytic cycle have shown that CRISPR-Cas systems can efficiently eliminate the invading phages(2,3). Here we show that, when challenged with wild-type temperate phages (which can become lysogenic), type I CRISPR-Cas immune systems cannot eliminate the phages from the bacterial population. Furthermore, our data suggest that, in this context, CRISPR-Cas immune systems are maladaptive to the host, owing to the severe immunopathological effects that are brought about by imperfect matching of spacers to the integrated phage sequences (prophages). These fitness costs drive the loss of CRISPR-Cas from bacterial populations, unless the phage carries anti-CRISPR (acr) genes that suppress the immune system of the host. Using bioinformatics, we show that this imperfect targeting is likely to occur frequently in nature. These findings help to explain the patchy distribution of CRISPR-Cas immune systems within and between bacterial species, and highlight the strong selective benefits of phage-encoded acr genes for both the phage and the host under these circumstances.


CRISPR-Cas systems cannot eliminate temperate bacteriophages from bacterial populations and-in this context-the systems impose immunopathological costs on the host, creating selective pressures that may explain their patchy distribution in bacteria.


  
Simple signals indicate which period of the annual cycle drives declines in seasonal populations 期刊论文
ECOLOGY LETTERS, 2019
作者:  Burant, Joseph B.;  Betini, Gustavo S.;  Norris, D. Ryan
收藏  |  浏览/下载:13/0  |  提交时间:2019/11/27
Annual cycle  breeding  conservation  habitat loss  non-breeding  population dynamics  seasonality  
Moving forward in circles: challenges and opportunities in modelling population cycles 期刊论文
ECOLOGY LETTERS, 2017, 20 (8)
作者:  Barraquand, Frederic;  Louca, Stilianos;  Abbott, Karen C.;  Cobbold, Christina A.;  Cordoleani, Flora;  DeAngelis, Donald L.;  Elderd, Bret D.;  Fox, Jeremy W.;  Greenwood, Priscilla;  Hilker, Frank M.;  Murray, Dennis L.;  Stieha, Christopher R.;  Taylor, Rachel A.;  Vitense, Kelsey;  Wolkowicz, Gail S. K.;  Tyson, Rebecca C.
收藏  |  浏览/下载:25/0  |  提交时间:2019/04/09
Chaos  cycle loss  evolution  forcing  mechanistic models  population fluctuations  predator-prey  stochasticity  synchrony