全文获取类型
收费全文 | 606篇 |
免费 | 28篇 |
国内免费 | 9篇 |
专业分类
643篇 |
出版年
2023年 | 6篇 |
2022年 | 4篇 |
2021年 | 1篇 |
2020年 | 6篇 |
2019年 | 12篇 |
2018年 | 29篇 |
2017年 | 6篇 |
2015年 | 6篇 |
2014年 | 47篇 |
2013年 | 23篇 |
2012年 | 10篇 |
2011年 | 32篇 |
2010年 | 32篇 |
2009年 | 45篇 |
2008年 | 26篇 |
2007年 | 62篇 |
2006年 | 35篇 |
2005年 | 57篇 |
2004年 | 18篇 |
2003年 | 16篇 |
2002年 | 10篇 |
2001年 | 11篇 |
2000年 | 7篇 |
1999年 | 10篇 |
1998年 | 12篇 |
1997年 | 3篇 |
1996年 | 11篇 |
1995年 | 8篇 |
1994年 | 8篇 |
1993年 | 8篇 |
1992年 | 3篇 |
1991年 | 3篇 |
1990年 | 10篇 |
1989年 | 4篇 |
1988年 | 5篇 |
1987年 | 8篇 |
1986年 | 6篇 |
1985年 | 3篇 |
1984年 | 6篇 |
1983年 | 4篇 |
1982年 | 4篇 |
1981年 | 8篇 |
1980年 | 6篇 |
1979年 | 4篇 |
1978年 | 1篇 |
1977年 | 1篇 |
1976年 | 2篇 |
1974年 | 1篇 |
1971年 | 3篇 |
排序方式: 共有643条查询结果,搜索用时 15 毫秒
91.
The binding affinity of the two substrate–water molecules to the water-oxidizing Mn4CaO5 catalyst in photosystem II core complexes of the extremophilic red alga Cyanidioschyzon merolae was studied in the S2 and S3 states by the exchange of bound 16O-substrate against 18O-labeled water. The rate of this exchange was detected via the membrane-inlet mass spectrometric analysis of flash-induced oxygen evolution. For both redox states a fast and slow phase of water-exchange was resolved at the mixed labeled m/z 34 mass peak: kf = 52 ± 8 s− 1 and ks = 1.9 ± 0.3 s− 1 in the S2 state, and kf = 42 ± 2 s− 1 and kslow = 1.2 ± 0.3 s− 1 in S3, respectively. Overall these exchange rates are similar to those observed previously with preparations of other organisms. The most remarkable finding is a significantly slower exchange at the fast substrate–water site in the S2 state, which confirms beyond doubt that both substrate–water molecules are already bound in the S2 state. This leads to a very small change of the affinity for both the fast and the slowly exchanging substrates during the S2 → S3 transition. Implications for recent models for water-oxidation are briefly discussed. 相似文献
92.
A.E. Walsby 《欧洲藻类学杂志》2013,48(4):371-381
The extracellular products of Anabaena cylindrica Lemm. comprise a large variety of compounds including peptides, brownish pigments and substances fluorescing white and blue in ultraviolet light. A number were separated or isolated using techniques of gel filtration, ion exchange and paper chromatography. Serine and threonine comprised over 90% of the amino acids in a group of complex pigmented and fluorescent compounds. One of these accounted for a large proportion of the peptide and pigment present. It contained a large pigment moiety of molecular weight > 5 000 which formed a firm complex with more than 10% of the iron supplied in the culture medium. The anti-polymyxin activity described by Whitton was not associated with any of the major pigments or peptides present. 相似文献
93.
Chunxi Zhang 《BBA》2007,1767(6):493-499
The function and mechanism of TyrZ in active photosystem II (PSII) is one of the long-standing issues in the study of photosynthetic water oxidation. Based on recent investigations on active PSII and theoretical studies, a new model is proposed, in which D1-His190 acts as a bridge, to form a low-barrier hydrogen bond (LBHB) with TyrZ, and a coordination bond to Mn or Ca ion of the Mn-cluster. Accordingly, this new model differs from previous proposals concerning the mechanism of TyrZ function in two aspects. First, the LBHB plays a key role to decrease the activation energy for TyrZ oxidation and TyrZ· reduction during photosynthetic water oxidation. Upon the oxidation of TyrZ, the hydrogen bond between TyrZ and His190 changes from a LBHB to a weak hydrogen bond, and vice versa upon TyrZ· reduction. In both stages, the electron transfer and proton transfer are coupled. Second, the positive charge formed after TyrZ oxidation may play an important role for water oxidation. It can be delocalized on the Mn-cluster, thus helps to accelerate the proton release from substrate water on Mn-cluster. This model is well reconciled with observations of the S-state dependence of TyrZ oxidation and TyrZ· reduction, proton release, isotopic effect and recent EPR experiments. Moreover, the difference between TyrZ and TyrD in active PSII can also be readily rationalized. The His190 binding to the Mn-cluster predicted in this model is contradictious to the recent structure data, however, it has been aware that the crystal structure of the Mn-cluster and its environment are significantly modified by X-ray due to radiation damage and are different from that in active PSII. It is suggested that the His190 may be protonated during the radiation damage, which leads to the loss of its binding to Mn-cluster and the strong hydrogen bond with TyrZ. This type of change arising from radiation damage has been confirmed in other enzyme systems. 相似文献
94.
Sónia?S.?Leal Miguel?Teixeira Cláudio?M.?GomesEmail author 《Journal of biological inorganic chemistry》2004,9(8):987-996
The ferredoxin from the thermoacidophile Acidianus ambivalens is a representative of the archaeal family of di-cluster [3Fe-4S][4Fe-4S] ferredoxins. Previous studies have shown that these ferredoxins are intrinsically very stable and led to the suggestion that upon protein unfolding the iron-sulfur clusters degraded via linear three-iron sulfur center species, with 610 and 520 nm absorption bands, resembling those observed in purple aconitase. In this work, a kinetic and spectroscopic investigation on the alkaline chemical denaturation of the protein was performed in an attempt to elucidate the degradation pathway of the iron-sulfur centers in respect to protein unfolding events. For this purpose we investigated cluster dissociation, iron release and protein unfolding by complementary biophysical techniques. We found that shortly after initial protein unfolding, iron release proceeds monophasically at a rate comparable to that of cluster degradation, and that no typical EPR features of linear three-iron sulfur centers are observed. Further, it was observed that EDTA prevents formation of the transient bands and that sulfide significantly enhances its intensity and lifetime, even after protein unfolding. Altogether, our data suggest that iron sulfides, which are formed from the release of iron and sulfide resulting from cluster degradation during protein unfolding in alkaline conditions, are in fact responsible for the observed intermediate spectral species, thus disproving the hypothesis suggesting the presence of a linear three-iron center intermediate. Kinetic studies monitored by visible, fluorescence and UV second-derivative spectroscopies have elicited that upon initial perturbation of the tertiary structure the iron-sulfur centers start decomposing and that the presence of EDTA accelerates the process. Also, the presence of EDTA lowers the observed melting temperature in thermal ramp experiments and the midpoint denaturant concentration in equilibrium chemical unfolding experiments, further suggesting that the clusters also play a structural role in the maintenance of the conformation of the folded state. 相似文献
95.
The effect of dicyclohexylcarbodiimide (DCCD) on electron transfer in the acceptor quinone complex of reaction centers (RC) from Rhodobacter sphaeroides is reported. DCCD covalently labelled the RC over a wide concentration range. At low concentrations (<10 M) the binding was specific for the L subunit. At relatively high concentrations (>100 M) DCCD accelerated the rate of charge recombination of the P+QB
- state, consistent with a decrease in the equilibrium constant between QA
-QB and QAQB
-. At similar concentrations, in the presence of cytochrome c as exogenous donor, turnover of the RC was inhibited such that only three cytochromes were oxidized in a train of flashes. Both these inhibitory effects were fully reversed by dialysis, indicating that stable covalent binding was not involved. Possible mechanisms of action are discussed in terms of the putative role of specific residues in proton transfer and protonation and release of quinol from the RC. 相似文献
96.
Oxygen consumption in Mn-depleted photosystem II (PSII) preparations under continuous and pulsed illumination is investigated. It is shown that removal of manganese from the water-oxidizing complex (WOC) by high pH treatment leads to a 6-fold increase in the rate of O2 photoconsumption. The use of exogenous electron acceptors and donors to PSII shows that in Mn-depleted PSII preparations along with the well-known effect of O2 photoreduction on the acceptor side of PSII, there is light-induced O2 consumption on the donor side of PSII (nearly 30% and 70%, respectively). It is suggested that the light-induced O2 uptake on the donor side of PSII is related to interaction of O2 with radicals produced by photooxidation of organic molecules. The study of flash-induced O2 uptake finds that removal of Mn from the WOC leads to O2 photoconsumption with maximum in the first flash, and its yield is comparable with the yield of O2 evolution on the third flash measured in the PSII samples before Mn removal. The flash-induced O2 uptake is drastically (by a factor of 1.8) activated by catalytic concentration (5-10 μM, corresponding to 2-4 Mn per RC) of Mn2+, while at higher concentrations (> 100 μM) Mn2+ inhibits the O2 photoconsumption (like other electron donors: ferrocyanide and diphenylcarbazide). Inhibitory pre-illumination of the Mn-depleted PSII preparations (resulting in the loss of electron donation from Mn2+) leads to both suppression of flash-induced O2 uptake and disappearance of the Mn-induced activation of the O2 photoconsumption. We assume that the light-induced O2 uptake in Mn-depleted PSII preparations may reflect not only the negative processes leading to photoinhibition but also possible participation of O2 or its reactive forms in the formation of the inorganic core of the WOC. 相似文献
97.
Chloride is an essential cofactor for photosynthetic water oxidation. However, its location and functional roles in active photosystem II are still a matter of debate. We have investigated this issue by studying the effects of Cl− replacement by Br− in active PSII. In Br− substituted samples, Cl− is effectively replaced by Br− in the presence of 1.2 M NaBr under room light with protection of anaerobic atmosphere followed by dialysis. The following results have been obtained. i) The oxygen-evolving activities of the Br−-PSII samples are significantly lower than that of the Cl−-PSII samples; ii) The same S2 multiline EPR signals are observed in both Br− and Cl−-PSII samples; iii) The amplitudes of the visible light induced S1TyrZ• and S2TyrZ• EPR signals are significantly decreased after Br− substitution; the S1TyrZ• EPR signal is up-shifted about 8 G, whereas the S2TyrZ• signal is down-shifted about 12 G after Br− substitution. These results imply that the redox properties of TyrZ and spin interactions between TyrZ• and Mn-cluster could be significantly modified due to Br− substitution. It is suggested that Cl−/Br− probably coordinates to the Ca2+ ion of the Mn-cluster in active photosystem II. 相似文献
98.
Tanai Cardona 《BBA》2010,1797(3):425-433
Cyanobacteria adapt to varying light conditions by controlling the amount of excitation energy to the photosystems. On the minute time scale this leads to redirection of the excitation energy, usually referred to as state transitions, which involves movement of the phycobilisomes. We have studied short-term light adaptation in isolated heterocysts and intact filaments from the cyanobacterium Nostoc punctiforme ATCC 29133. In N.punctiforme vegetative cells differentiate into heterocysts where nitrogen fixation takes place. Photosystem II is inactivated in the heterocysts, and the abundancy of Photosystem I is increased relative to the vegetative cells. To study light-induced changes in energy transfer to Photosystem I, pre-illumination was made to dark adapted isolated heterocysts. Illumination wavelengths were chosen to excite Photosystem I (708 nm) or phycobilisomes (560 nm) specifically. In heterocysts that were pre-illuminated at 708 nm, fluorescence from the phycobilisome terminal emitter was observed in the 77 K emission spectrum. However, illumination with 560 nm light caused quenching of the emission from the terminal emitter, with a simultaneous increase in the emission at 750 nm, indicating that the 560 nm pre-illumination caused trimerization of Photosystem I. Excitation spectra showed that 560 nm pre-illumination led to an increase in excitation transfer from the phycobilisomes to trimeric Photosystem I. Illumination at 708 nm did not lead to increased energy transfer from the phycobilisome to Photosystem I compared to dark adapted samples. The measurements were repeated using intact filaments containing vegetative cells, and found to give very similar results as the heterocysts. This demonstrates that molecular events leading to increased excitation energy transfer to Photosystem I, including trimerization, are independent of Photosystem II activity. 相似文献
99.
Yuki Takegawa Makoto Nakamura Shin Nakamura Takumi Noguchi Julien Sellés A. William Rutherford Alain Boussac Miwa Sugiura 《BBA》2019,1860(4):297-309
The monomeric chlorophyll, ChlD1, which is located between the PD1PD2 chlorophyll pair and the pheophytin, PheoD1, is the longest wavelength chlorophyll in the heart of Photosystem II and is thought to be the primary electron donor. Its central Mg2+ is liganded to a water molecule that is H-bonded to D1/T179. Here, two site-directed mutants, D1/T179H and D1/T179V, were made in the thermophilic cyanobacterium, Thermosynechococcus elongatus, and characterized by a range of biophysical techniques. The Mn4CaO5 cluster in the water-splitting site is fully active in both mutants. Changes in thermoluminescence indicate that i) radiative recombination occurs via the repopulation of *ChlD1 itself; ii) non-radiative charge recombination reactions appeared to be faster in the T179H-PSII; and iii) the properties of PD1PD2 were unaffected by this mutation, and consequently iv) the immediate precursor state of the radiative excited state is the ChlD1+PheoD1? radical pair. Chlorophyll bleaching due to high intensity illumination correlated with the amount of 1O2 generated. Comparison of the bleaching spectra with the electrochromic shifts attributed to ChlD1 upon QA? formation, indicates that in the T179H-PSII and in the WT*3-PSII, the ChlD1 itself is the chlorophyll that is first damaged by 1O2, whereas in the T179V-PSII a more red chlorophyll is damaged, the identity of which is discussed. Thus, ChlD1 appears to be one of the primary damage site in recombination-mediated photoinhibition. Finally, changes in the absorption of ChlD1 very likely contribute to the well-known electrochromic shifts observed at ~430?nm during the S-state cycle. 相似文献
100.
砂仁叶片光破坏的防御 总被引:12,自引:6,他引:12
报告了生长于热带林窗向阳处砂仁叶片叶绿素荧光参数的日变化,及阻止卷叶和用二硫苏糖醇(DTT)处理对它的影响.受强光照射,砂仁叶片迅速卷起.在雾天上午光强还相当弱(低于100μmol m-2s-1)时,砂仁叶片就发生光抑制,中午最重,下午当光强减弱时,光抑制逐渐得到缓解.其热耗散(qN、NPQ)随光强的升高而增加,且下午仍在缓慢增加.阻止卷叶使强光下砂仁叶片光抑制加剧,F0、NPQ升高.DTT处理也使光抑制加剧,F0升高,且使PSⅡ反应中心发生可逆失活.夜间2300各处理的荧光参数基本恢复.卷叶、叶黄素循环和PSⅡ可逆失活3种保护机制在同种植物中依次启动的现象尚属少见. 相似文献