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   510545篇
  免费   50565篇
  国内免费   210篇
  2018年   5112篇
  2017年   5136篇
  2016年   8198篇
  2015年   12986篇
  2014年   13859篇
  2013年   16849篇
  2012年   17807篇
  2011年   15574篇
  2010年   11391篇
  2009年   10661篇
  2008年   13030篇
  2007年   13508篇
  2006年   12762篇
  2005年   19007篇
  2004年   17905篇
  2003年   15311篇
  2002年   12013篇
  2001年   18335篇
  2000年   17759篇
  1999年   15150篇
  1998年   5473篇
  1997年   5526篇
  1996年   5127篇
  1995年   4878篇
  1994年   4726篇
  1992年   13186篇
  1991年   13137篇
  1990年   12964篇
  1989年   12527篇
  1988年   12033篇
  1987年   11547篇
  1986年   10686篇
  1985年   10614篇
  1984年   8714篇
  1983年   7426篇
  1982年   5610篇
  1981年   5062篇
  1980年   4836篇
  1979年   8374篇
  1978年   6555篇
  1977年   5930篇
  1976年   5783篇
  1975年   6330篇
  1974年   7141篇
  1973年   7007篇
  1972年   6543篇
  1971年   6044篇
  1970年   5336篇
  1969年   5285篇
  1968年   4993篇
排序方式: 共有10000条查询结果,搜索用时 15 毫秒
991.
992.
993.
994.
995.
996.
The critical weed-free period in organically-grown winter wheat   总被引:1,自引:0,他引:1  
Two experiments were conducted in central southern England between September 1994 and August 1996 to identify the critical weed-free period in organically grown winter wheat (Triticum aestivum, cv. Mercia). In competition with a mixed weed infestation of predominately Alopecurus myosuroides and Tripleurospermum inodorum it was found that wheat yield decreased as the duration of the weed-infested period increased and that the crop needed to be kept free of weeds from sowing in order to completely avoid any yield loss. Also, weeds emerging in the wheat crop (predominately T. inodorum) during the growing season had a significant and detrimental effect on yield. The existence of the critical period, therefore, depends on the imposition of an acceptable yield loss. If a 5% yield loss gives a marginal benefit compared with the cost of weed control, the critical period will begin at 506°C days after sowing (November) and end at 1023°C days after sowing (February). This information could be used by farmers to target mechanical weeding operations to control weeds at a time that will have maximum benefit to the crop.  相似文献   
997.
998.
DNA topoisomerase II regulates the three-dimensional organisation of DNA and is the principal target of many important anticancer and antimicrobial agents. These drugs usually act on the DNA cleavage/religation steps of the catalytic cycle resulting in accumulation of covalent DNA-topoisomerase II complexes. We have studied the different steps of the catalytic cycle as a function of salt concentration, which is a classical way to evaluate the biochemical properties of proteins. The results show that the catalytic activity of topoisomerase II follows a bell-shaped curve with optimum between 100 and 225 mM KCl. No straight-forward correlation exists between DNA binding and catalytic activity. The highest levels of drug-induced covalent DNA-topoisomerase II complexes are observed between 100 and 150 mM KCl. Remarkably, at salt concentrations between 150 mM and 225 mM KCl, topoisomerase II is converted into a drug-resistant form with greatly reduced levels of drug-induced DNA-topoisomerase II complexes. This is due to efficient religation rather than to absence of DNA cleavage as witnessed by relaxation of the supercoiled DNA substrate. In the absence of DNA, ATP hydrolysis is strongest at low salt concentrations. Unexpectedly, the addition of DNA stimulates ATP hydrolysis at 100 and 150 mM KCl, but has little or no effect below 100 mM KCl in spite of strong non-covalent DNA binding at these salt concentrations. Therefore, DNA-stimulated ATP hydrolysis appears to be associated with covalent rather than non-covalent binding of DNA to topoisomerase II. Taken together, the results suggest that it is the DNA cleavage/religation steps that are most closely associated with the catalytic activities of topoisomerase II providing a unifying theme for the biological and pharmacological modulation of this enzyme.  相似文献   
999.
1000.
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