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   97203篇
  免费   7714篇
  国内免费   34篇
  104951篇
  2021年   835篇
  2018年   1301篇
  2017年   1214篇
  2016年   1635篇
  2015年   1730篇
  2014年   2092篇
  2013年   2969篇
  2012年   3244篇
  2011年   3353篇
  2010年   2495篇
  2009年   2105篇
  2008年   3048篇
  2007年   3002篇
  2006年   2827篇
  2005年   2662篇
  2004年   2661篇
  2003年   2549篇
  2002年   2366篇
  2001年   4398篇
  2000年   4152篇
  1999年   3223篇
  1998年   1043篇
  1997年   1035篇
  1996年   915篇
  1995年   836篇
  1993年   830篇
  1992年   2443篇
  1991年   2453篇
  1990年   2457篇
  1989年   2202篇
  1988年   2064篇
  1987年   1978篇
  1986年   1825篇
  1985年   1818篇
  1984年   1495篇
  1983年   1297篇
  1982年   929篇
  1981年   873篇
  1979年   1435篇
  1978年   1127篇
  1977年   1015篇
  1976年   973篇
  1975年   1157篇
  1974年   1256篇
  1973年   1337篇
  1972年   1184篇
  1971年   1042篇
  1970年   924篇
  1969年   955篇
  1968年   836篇
排序方式: 共有10000条查询结果,搜索用时 15 毫秒
1.
2.
3.
4.
1. In a manner similar to that of the sartorius muscle, the isolated kidney of the frog can accumulate K against a gradient to upwards of three times its normal concentration. 2. The K-accumulating region is identified as the proximal tubule, which in the isolated tissue immersed over 24 hours in the cold (2–3°C.) amounts to about 90 per cent of the nephron minus the glomerulus. In the fresh tissue it constitutes about 70 per cent. The cells of the proximal tubule are impermeable to Na, but freely permeable to K and Cl. 3. The distal tubule in the isolated kidney does not accumulate K over the external concentration. The cells are permeable to Na which they actively extrude. This extrusion of Na goes parallel with a loss of osmotically associated water amounting to about 15 per cent of the weight of the fresh kidney, but varying somewhat with the conditions. 4. The accumulation of K in the proximal tubules is in accordance with the equations established for the sartorius muscle, and, as theoretically expected, there is no volume increase (but rather a small decrease) with the large accumulations, when the external Na concentration is maintained throughout. 5. With K accumulation in isotonic mixtures large volume changes occur as K is progressively substituted for Na. Over the range of external K concentration of 10 to 100 mM per litre the weight of the whole kidney changes to 2.5 times and the water of the cells of the proximal tubules increases to over four times. Up to an external K value of 90 mM per litre the mean weight of the kidney shows a linear relation when plotted against the reciprocal of the Na concentration plus the small glucose and Ca concentration. This relation is interpreted theoretically. 6. The effect of cyanide in the isotonic mixtures is to prevent the contraction of the distal tubules and to cause swelling of the same. It does not affect the volume, volume changes, or differential permeability of the proximal tubule. At the same time the membranes of the proximal tubule cells lose their characteristic permeability at a lower level of distension in the presence of cyanide. 7. The mean Na ratio for the kidney after 24 hours'' immersion in the cold is 0.26 ± 0.014 (giving standard deviation of mean). The ratio is defined as See PDF for Equation. For the fresh kidney the mean ratio is 0.39 ± 0.006. 8. The mean inulin ratio (28 observed in the cold) is 0.23 ± 0.012 and the same value for 10 observed at room temperature. At room temperature—2 hour immersion—the ratio is increased by cyanide to a mean of 0.32 ± 0.028, but only a slight increase is caused by cyanide in the cold. 9. The mean hemoglobin ratio after 24 hours'' immersion in the cold is 0.17 ± 0.004 and is unaffected by cyanide.  相似文献   
5.
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