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共有 105621 条符合本次的查询结果, 用时 1.4694461 秒

241. Materials science: Share corrosion data.

作者: Xiaogang Li.;Dawei Zhang.;Zhiyong Liu.;Zhong Li.;Cuiwei Du.;Chaofang Dong.
来源: Nature. 2015年527卷7579期441-2页

242. Global climate agreement: After the talks.

作者: David G Victor.;James P Leape.
来源: Nature. 2015年527卷7579期439-41页

243. Is the 2 °C world a fantasy?

作者: Jeff Tollefson.
来源: Nature. 2015年527卷7579期436-8页

244. The fragile framework.

作者: Richard Monastersky.;Nick Sousanis.
来源: Nature. 2015年527卷7579期427-35页

246. 'Digital chimp' trove preserves brains of retired apes.

作者: Sara Reardon.
来源: Nature. 2015年527卷7579期422-3页

247. Leap-second decision delayed by eight years.

作者: Elizabeth Gibney.
来源: Nature. 2015年527卷7579期421-2页

248. Brazilian courts tussle over unproven cancer treatment.

作者: Heidi Ledford.
来源: Nature. 2015年527卷7579期420-1页

249. Green Climate Fund faces slew of criticism.

作者: Sanjay Kumar.
来源: Nature. 2015年527卷7579期419-20页

250. Climate optimism builds ahead of Paris talks.

作者: Jeff Tollefson.
来源: Nature. 2015年527卷7579期418-9页

251. Salmon approval heralds rethink of transgenic animals.

作者: Heidi Ledford.
来源: Nature. 2015年527卷7579期417-8页

252. A 'perfect' agreement in Paris is not essential.

作者: Johan Rockström.
来源: Nature. 2015年527卷7579期411页

255. The way forward is through Paris.

来源: Nature. 2015年527卷7579期409页

256. The problem with platinum.

作者: David Holmes.
来源: Nature. 2015年527卷7579期S218-9页

257. Ovarian cancer: beyond resistance.

作者: David Holmes.
来源: Nature. 2015年527卷7579期S217页

258. Molecular structures of unbound and transcribing RNA polymerase III.

作者: Niklas A Hoffmann.;Arjen J Jakobi.;María Moreno-Morcillo.;Sebastian Glatt.;Jan Kosinski.;Wim J H Hagen.;Carsten Sachse.;Christoph W Müller.
来源: Nature. 2015年528卷7581期231-6页
Transcription of genes encoding small structured RNAs such as transfer RNAs, spliceosomal U6 small nuclear RNA and ribosomal 5S RNA is carried out by RNA polymerase III (Pol III), the largest yet structurally least characterized eukaryotic RNA polymerase. Here we present the cryo-electron microscopy structures of the Saccharomyces cerevisiae Pol III elongating complex at 3.9 Å resolution and the apo Pol III enzyme in two different conformations at 4.6 and 4.7 Å resolution, respectively, which allow the building of a 17-subunit atomic model of Pol III. The reconstructions reveal the precise orientation of the C82-C34-C31 heterotrimer in close proximity to the stalk. The C53-C37 heterodimer positions residues involved in transcription termination close to the non-template DNA strand. In the apo Pol III structures, the stalk adopts different orientations coupled with closed and open conformations of the clamp. Our results provide novel insights into Pol III-specific transcription and the adaptation of Pol III towards its small transcriptional targets.

259. Genome-wide detection of DNase I hypersensitive sites in single cells and FFPE tissue samples.

作者: Wenfei Jin.;Qingsong Tang.;Mimi Wan.;Kairong Cui.;Yi Zhang.;Gang Ren.;Bing Ni.;Jeffrey Sklar.;Teresa M Przytycka.;Richard Childs.;David Levens.;Keji Zhao.
来源: Nature. 2015年528卷7580期142-6页
DNase I hypersensitive sites (DHSs) provide important information on the presence of transcriptional regulatory elements and the state of chromatin in mammalian cells. Conventional DNase sequencing (DNase-seq) for genome-wide DHSs profiling is limited by the requirement of millions of cells. Here we report an ultrasensitive strategy, called single-cell DNase sequencing (scDNase-seq) for detection of genome-wide DHSs in single cells. We show that DHS patterns at the single-cell level are highly reproducible among individual cells. Among different single cells, highly expressed gene promoters and enhancers associated with multiple active histone modifications display constitutive DHS whereas chromatin regions with fewer histone modifications exhibit high variation of DHS. Furthermore, the single-cell DHSs predict enhancers that regulate cell-specific gene expression programs and the cell-to-cell variations of DHS are predictive of gene expression. Finally, we apply scDNase-seq to pools of tumour cells and pools of normal cells, dissected from formalin-fixed paraffin-embedded tissue slides from patients with thyroid cancer, and detect thousands of tumour-specific DHSs. Many of these DHSs are associated with promoters and enhancers critically involved in cancer development. Analysis of the DHS sequences uncovers one mutation (chr18: 52417839G>C) in the tumour cells of a patient with follicular thyroid carcinoma, which affects the binding of the tumour suppressor protein p53 and correlates with decreased expression of its target gene TXNL1. In conclusion, scDNase-seq can reliably detect DHSs in single cells, greatly extending the range of applications of DHS analysis both for basic and for translational research, and may provide critical information for personalized medicine.

260. Immunology: In the right place at the right time.

作者: Esteban Carrizosa.;Thorsten R Mempel.
来源: Nature. 2015年528卷7581期205-6页
共有 105621 条符合本次的查询结果, 用时 1.4694461 秒