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Selective loading and processing of prespacers for precise CRISPR adaptation 期刊论文
NATURE, 2020
作者:  Liu, Guoxia;  Papa, Arianne;  Katchman, Alexander N.;  Zakharov, Sergey I.;  Roybal, Daniel;  Hennessey, Jessica A.;  Kushner, Jared;  Yang, Lin;  Chen, Bi-Xing;  Kushnir, Alexander;  Dangas, Katerina;  Gygi, Steven P.;  Pitt, Geoffrey S.;  Colecraft, Henry M.;  Ben-Johny, Manu;  Kalocsay, Marian;  Marx, Steven O.
收藏  |  浏览/下载:5/0  |  提交时间:2020/07/03

CRISPR-Cas immunity protects prokaryotes against invading genetic elements(1). It uses the highly conserved Cas1-Cas2 complex to establish inheritable memory (spacers)(2-5). How Cas1-Cas2 acquires spacers from foreign DNA fragments (prespacers) and integrates them into the CRISPR locus in the correct orientation is unclear(6,7). Here, using the high spatiotemporal resolution of single-molecule fluorescence, we show that Cas1-Cas2 selects precursors of prespacers from DNA in various forms-including single-stranded DNA and partial duplexes-in a manner that depends on both the length of the DNA strand and the presence of a protospacer adjacent motif (PAM) sequence. We also identify DnaQ exonucleases as enzymes that process the Cas1-Cas2-loaded prespacer precursors into mature prespacers of a suitable size for integration. Cas1-Cas2 protects the PAM sequence from maturation, which results in the production of asymmetrically trimmed prespacers and the subsequent integration of spacers in the correct orientation. Our results demonstrate the kinetic coordination of prespacer precursor selection and PAM trimming, providing insight into the mechanisms that underlie the integration of functional spacers in the CRISPR loci.


Cas1-Cas2 selects precursor prespacers from DNA fragments in a length- and PAM-sequence-dependent manner, and these precursors are trimmed by DnaQ exonucleases to enable integration into the CRISPR locus in the correct orientation.


  
Isolation of an archaeon at the prokaryote-eukaryote interface 期刊论文
NATURE, 2020, 577 (7791) : 519-+
作者:  Imachi, Hiroyuki;  Nobu, Masaru K.;  Nakahara, Nozomi;  Morono, Yuki;  Ogawara, Miyuki;  Takaki, Yoshihiro;  Takano, Yoshinori;  Uematsu, Katsuyuki;  Ikuta, Tetsuro;  Ito, Motoo;  Matsui, Yohei;  Miyazaki, Masayuki;  Murata, Kazuyoshi;  Saito, Yumi;  Sakai, Sanae;  Song, Chihong;  Tasumi, Eiji;  Yamanaka, Yuko;  Yamaguchi, Takashi;  Kamagata, Yoichi;  Tamaki, Hideyuki;  Takai, Ken
收藏  |  浏览/下载:9/0  |  提交时间:2020/07/03

The origin of eukaryotes remains unclear(1-4). Current data suggest that eukaryotes may have emerged from an archaeal lineage known as '  Asgard'  archaea(5,6). Despite the eukaryote-like genomic features that are found in these archaea, the evolutionary transition from archaea to eukaryotes remains unclear, owing to the lack of cultured representatives and corresponding physiological insights. Here we report the decade-long isolation of an Asgard archaeon related to Lokiarchaeota from deep marine sediment. The archaeon-'  Candidatus Prometheoarchaeum syntrophicum'  strain MK-D1-is an anaerobic, extremely slow-growing, small coccus (around 550 nm in diameter) that degrades amino acids through syntrophy. Although eukaryote-like intracellular complexes have been proposed for Asgard archaea(6), the isolate has no visible organelle-like structure. Instead, Ca. P. syntrophicum is morphologically complex and has unique protrusions that are long and often branching. On the basis of the available data obtained from cultivation and genomics, and reasoned interpretations of the existing literature, we propose a hypothetical model for eukaryogenesis, termed the entangle-engulf-endogenize (also known as E-3) model.


Isolation and characterization of an archaeon that is most closely related to eukaryotes reveals insights into how eukaryotes may have evolved from prokaryotes.


  
Prokaryotes in the WAIS Divide ice core reflect source and transport changes between Last Glacial Maximum and the early Holocene 期刊论文
GLOBAL CHANGE BIOLOGY, 2018, 24 (5) : 2182-2197
作者:  Santibanez, Pamela A.;  Maselli, Olivia J.;  Greenwood, Mark C.;  Grieman, Mackenzie M.;  Saltzman, Eric S.;  McConnell, Joseph R.;  Priscu, John C.
收藏  |  浏览/下载:18/0  |  提交时间:2019/04/09
Antarctic ice core  early Holocene  Last Deglaciation  Last Glacial Maximum  prokaryotes  West Antarctic Ice Sheet Divide