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   72032篇
  免费   5189篇
  国内免费   3261篇
  2024年   133篇
  2023年   1048篇
  2022年   1706篇
  2021年   2367篇
  2020年   2224篇
  2019年   2500篇
  2018年   2490篇
  2017年   1787篇
  2016年   1769篇
  2015年   2284篇
  2014年   4299篇
  2013年   5365篇
  2012年   3229篇
  2011年   4364篇
  2010年   3352篇
  2009年   3729篇
  2008年   3815篇
  2007年   3862篇
  2006年   3443篇
  2005年   3091篇
  2004年   2735篇
  2003年   2296篇
  2002年   2049篇
  2001年   1406篇
  2000年   1192篇
  1999年   1242篇
  1998年   1134篇
  1997年   992篇
  1996年   934篇
  1995年   857篇
  1994年   782篇
  1993年   724篇
  1992年   628篇
  1991年   583篇
  1990年   456篇
  1989年   418篇
  1988年   383篇
  1987年   357篇
  1986年   320篇
  1985年   444篇
  1984年   630篇
  1983年   478篇
  1982年   523篇
  1981年   374篇
  1980年   369篇
  1979年   312篇
  1978年   232篇
  1977年   173篇
  1976年   144篇
  1975年   132篇
排序方式: 共有10000条查询结果,搜索用时 15 毫秒
991.
动物胃肠道是食物消化和营养吸收器官,对机体健康至关重要。果蝇与哺乳动物的肠道在细胞组成、遗传调控等方面高度相似,是研究肠道发育的良好模型。体外培养细胞中的研究发现,Nprl2通过作用于Rag GTPase,抑制雷帕霉素靶点复合物1(target of rapamycin complex 1,TORC1)的活性,参与细胞代谢的调节。前期报道nprl2突变果蝇具有前胃增大、消化能力降低等肠道衰老相关表型。但对于Nprl2是否通过Rag GTPase调控肠道发育等方面尚不清楚。为了探究Rag GTPase在Nprl2调控果蝇肠道发育中的作用,本研究利用遗传杂交结合免疫荧光等方法对RagA敲减和nprl2突变果蝇的肠道形态、肠道细胞组成等方面进行研究。发现单独敲减RagA可以引起肠变粗、前胃增大等表型,敲减RagA能挽救nprl2突变体中肠道变细、分泌型细胞减少的表型,但并不能挽救nprl2突变体中前胃增大的表型。以上结果表明,RagA在肠道发育中发挥重要作用,Nprl2通过作用于Rag GTPase调节肠道细胞分化和肠道形态,但Nprl2对前胃发育和肠道的消化功能的调节可能通过不依赖于Rag GTPase的机制实现。  相似文献   
992.
993.
Thermostable direct hemolysin (TDH) is a ~19 kDa, hemolytic pore-forming toxin from the gram-negative marine bacterium Vibrio parahaemolyticus, one of the causative agents of seafood-borne acute gastroenteritis and septicemia. Previous studies have established that TDH exists as a tetrameric assembly in physiological state; however, there is limited knowledge regarding the molecular arrangement of its disordered N-terminal region (NTR)—the absence of which has been shown to compromise TDH's hemolytic and cytotoxic abilities. In our current study, we have employed single-particle cryo-electron microscopy to resolve the solution-state structures of wild-type TDH and a TDH construct with deletion of the NTR (NTD), in order to investigate structural aspects of NTR on the overall tetrameric architecture. We observed that both TDH and NTD electron density maps, resolved at global resolutions of 4.5 and 4.2 Å, respectively, showed good correlation in their respective oligomeric architecture. Additionally, we were able to locate extra densities near the pore opening of TDH which might correspond to the disordered NTR. Surprisingly, under cryogenic conditions, we were also able to observe novel supramolecular assemblies of TDH tetramers, which we were able to resolve to 4.3 Å. We further investigated the tetrameric and inter-tetrameric interaction interfaces to elaborate upon the key residues involved in both TDH tetramers and TDH super assemblies. Our current structural study will aid in understanding the mechanistic aspects of this pore-forming toxin and the role of its disordered NTR in membrane interaction.  相似文献   
994.
Increased ability to predict protein structures is moving research focus towards understanding protein dynamics. A promising approach is to represent protein dynamics through networks and take advantage of well-developed methods from network science. Most studies build protein dynamics networks from correlation measures, an approach that only works under very specific conditions, instead of the more robust inverse approach. Thus, we apply the inverse approach to the dynamics of protein dihedral angles, a system of internal coordinates, to avoid structural alignment. Using the well-characterized adhesion protein, FimH, we show that our method identifies networks that are physically interpretable, robust, and relevant to the allosteric pathway sites. We further use our approach to detect dynamical differences, despite structural similarity, for Siglec-8 in the immune system, and the SARS-CoV-2 spike protein. Our study demonstrates that using the inverse approach to extract a network from protein dynamics yields important biophysical insights.  相似文献   
995.
BackgroundIn recent months, the current COVID-19 pandemic has generated thousands of studies directly or indirectly related with this disease and/or the coronavirus SARS-CoV-2 causing the infection. On August 22, 2022, the database PUBMED included 287,639 publications containing the term COVID-19. However, in spite of the importance of trace elements in human health, including the immune system, data on the levels of metals/metalloids in COVID-19 patients is very limited.MethodsThe concentrations of As, Cd, Cr, Cu, Hg, Fe, Mg, Mn, Pb, Se, V and Zn were determined by inductively coupled plasma-mass spectrometry (ICP-MS) in 126 serum samples of individuals infected with SARS-CoV-2, as well as in 88 samples of non-infected individuals. Participants were divided into four groups: i) individuals COVID-19 positive (COVID-19 +) with an asymptomatic infection course; ii) individuals suffering mild COVID-19; iii) individuals suffering severe COVID-19, and iv) individuals COVID-19 negative (COVID-19-) (control group). The occurrence of the analyzed metals/metalloids was evaluated along with the biochemical profile, including blood cell counts, lipids, proteins and crucial enzymes.ResultsSerum levels of Mg, V, Cr, Cu, Cd, and Pb were higher in COVID-19 positive patients than those in the control group. Although no significant differences were observed between the different groups of patients, the concentrations of Cd, Pb, V and Zn showed a tendency to be higher in individuals with severe COVID-19 than in those showing mild symptoms or being asymptomatic. Arsenic and Hg were rarely detected, regardless if the subjects were infected by SARS-CoV-2, or not. The current results did not show significant differences in the levels of the rest of analyzed elements according to the severity of the disease (asymptomatic, mild and severe).ConclusionsIn spite of the results here obtained, we highlight the need to reduce the exposure to Cd, Pb and V to minimize the potential adverse health outcomes after COVID-19 infection. On the other hand, although a protective role of essential elements was not found, Mg and Cu concentrations were higher in severe COVID-19 patients than in non-infected individuals.  相似文献   
996.
997.
998.
Ligand binding to proteins often is accompanied by conformational transitions. Here, we describe a competition assay based on single molecule Förster resonance energy transfer (smFRET) to investigate the ligand-induced conformational changes of the dengue virus (DENV) NS2B-NS3 protease, which can adopt at least two different conformations. First, a competitive ligand was used to stabilize the closed conformation of the protease. Subsequent addition of the allosteric inhibitor reduced the fraction of the closed conformation and simultaneously increased the fraction of the open conformation, demonstrating that the allosteric inhibitor stabilizes the open conformation. In addition, the proportions of open and closed conformations at different concentrations of the allosteric inhibitor were used to determine its binding affinity to the protease. The KD value observed is in accordance with the IC50 determined in the fluorometric assay. Our novel approach appears to be a valuable tool to study conformational transitions of other proteases and enzymes.  相似文献   
999.
番木瓜是岭南四大名果之一,在我国东南部地区广泛种植,因其具有食用和药用双重价值,因此深受人们的青睐。果糖-6-磷酸,2-激酶/果糖-2,6-二磷酸酯酶(fructose-6-phosphate,2-kinase/fructose-2,6-bisphosphatase,F2KP)是一个独特的双功能酶,具有激酶功能域和酯酶功能域,能催化生物体内糖代谢的重要调节物果糖-2,6-二磷酸(Fru-2,6-P_(2))的合成和降解。为了研究番木瓜中编码该酶的基因CpF2KP的功能,得到目的蛋白尤为重要。本研究从番木瓜基因组中提取到CpF2KP基因的编码序列(coding sequence,CDS)序列,该基因CDS全长2274 bp。将该基因CDS全长扩增之后选用pGEX-4T-1载体进行原核表达。对载体pGEX-4T-1用EcoRⅠ和BamHⅠ进行双酶切,利用基因重组的方式将扩增序列构建到原核表达载体上。经过诱导条件探索,SDS-PAGE结果显示GST-CpF2KP重组蛋白的大小约为110 kDa,诱导CpF2KP蛋白表达的最适条件为:异丙基β-D-硫代半乳糖苷(isopropyl beta-D-thiogalactopyranoside,IPTG)浓度为0.5 mmol/L,温度28℃。对诱导后的CpF2KP蛋白进行纯化,得到了纯化的单一目的蛋白。此外,检测了该基因的组织表达特性发现该基因在种子中表达量最高,在果肉中表达量最低。该研究为进一步深入揭示番木瓜CpF2KP蛋白的功能及研究该基因参与的生物学过程提供了重要基础。  相似文献   
1000.
Mg~(2+)对线粒体H~+-ATP酶的F_O在脂质体重建时的影响   总被引:1,自引:1,他引:0  
线粒体ATP合成酶是由具有H~+转运活性的F_0亚基,可溶性的催化中心F_1和连接二者的致寡霉素敏感蛋白(OSCP)所组成. 将纯化的猪心线粒体H—ATP酶复合体的F_0亚基,用胆酸盐透析法在有Mg~(2+)和无Mg~(2+)条件下在大豆磷脂脂质体上重建得脂酶体(L·F_0).用探剂9-AA荧光淬灭法和电权法测定了两种脂酶体的质子转运活力.由两种方法所得的实验结果均表明,在透返介质中加入1mmolmg~(2+)条件下形成的脂酶体(L·F_0)+Mg~(2+)较无Mg~(2+)者的质子转运活性明显增加.前者的荧光强度变化较后者增加约30%;由电极法测得的质子转运的初速度,前者为5nmolH~+′sF_0,后者为3nmolH~+′s·nmolF_O,质子转运活性高约一倍.这进一步支持Mg~(2+)通过调节脂的物理状态而诱导F_O具有较适合的构象,并进而将这一影响传递至F_1,使整个H~+—AhP酶具有较高活性的假设.  相似文献   
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