首页 | 本学科首页   官方微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   509299篇
  免费   49893篇
  国内免费   208篇
  2018年   5752篇
  2017年   5319篇
  2016年   7368篇
  2015年   10183篇
  2014年   11313篇
  2013年   16407篇
  2012年   18465篇
  2011年   18484篇
  2010年   12357篇
  2009年   10584篇
  2008年   16112篇
  2007年   16730篇
  2006年   15516篇
  2005年   14692篇
  2004年   14532篇
  2003年   13904篇
  2002年   13408篇
  2001年   18967篇
  2000年   18982篇
  1999年   15385篇
  1998年   5482篇
  1997年   5622篇
  1996年   5287篇
  1995年   5178篇
  1994年   5092篇
  1993年   4982篇
  1992年   13215篇
  1991年   12934篇
  1990年   12863篇
  1989年   12583篇
  1988年   11846篇
  1987年   11067篇
  1986年   10330篇
  1985年   10807篇
  1984年   8941篇
  1983年   7680篇
  1982年   5936篇
  1981年   5327篇
  1980年   4969篇
  1979年   8519篇
  1978年   6654篇
  1977年   6250篇
  1976年   5967篇
  1975年   6466篇
  1974年   7036篇
  1973年   6910篇
  1972年   6369篇
  1971年   5773篇
  1970年   4999篇
  1969年   4999篇
排序方式: 共有10000条查询结果,搜索用时 93 毫秒
1.
During epithelial cell polarization, Yurt (Yrt) is initially confined to the lateral membrane and supports the stability of this membrane domain by repressing the Crumbs-containing apical machinery. At late stages of embryogenesis, the apical recruitment of Yrt restricts the size of the apical membrane. However, the molecular basis sustaining the spatiotemporal dynamics of Yrt remains undefined. In this paper, we report that atypical protein kinase C (aPKC) phosphorylates Yrt to prevent its premature apical localization. A nonphosphorylatable version of Yrt dominantly dismantles the apical domain, showing that its aPKC-mediated exclusion is crucial for epithelial cell polarity. In return, Yrt counteracts aPKC functions to prevent apicalization of the plasma membrane. The ability of Yrt to bind and restrain aPKC signaling is central for its role in polarity, as removal of the aPKC binding site neutralizes Yrt activity. Thus, Yrt and aPKC are involved in a reciprocal antagonistic regulatory loop that contributes to segregation of distinct and mutually exclusive membrane domains in epithelial cells.  相似文献   
2.
Developmental axon branching dramatically increases synaptic capacity and neuronal surface area. Netrin-1 promotes branching and synaptogenesis, but the mechanism by which Netrin-1 stimulates plasma membrane expansion is unknown. We demonstrate that SNARE-mediated exocytosis is a prerequisite for axon branching and identify the E3 ubiquitin ligase TRIM9 as a critical catalytic link between Netrin-1 and exocytic SNARE machinery in murine cortical neurons. TRIM9 ligase activity promotes SNARE-mediated vesicle fusion and axon branching in a Netrin-dependent manner. We identified a direct interaction between TRIM9 and the Netrin-1 receptor DCC as well as a Netrin-1–sensitive interaction between TRIM9 and the SNARE component SNAP25. The interaction with SNAP25 negatively regulates SNARE-mediated exocytosis and axon branching in the absence of Netrin-1. Deletion of TRIM9 elevated exocytosis in vitro and increased axon branching in vitro and in vivo. Our data provide a novel model for the spatial regulation of axon branching by Netrin-1, in which localized plasma membrane expansion occurs via TRIM9-dependent regulation of SNARE-mediated vesicle fusion.  相似文献   
3.
4.
5.
More than 50 hereditary lysosomal storage disorders (LSDs) are currently described. Most of these disorders are due to a deficiency of certain hydrolases/glycosidases and subsequent accumulation of nonhydrolyzable carbohydrate-containing compounds in lysosomes. Such accumulation causing hypertrophy of the lysosomal compartment is a characteristic feature of affected cells in LSDs. The investigation of biochemical and cellular parameters is of particular interest for understanding “life” of lysosomes in the normal state and in LSDs. This review highlights the wide spectrum of biochemical and morphological changes during developing LSDs that are extremely critical for many metabolic processes inside the various cells and tissues of affected persons. The data presented will help establish new complex strategies for metabolic correction of LSDs.  相似文献   
6.
7.
8.
9.
10.
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号