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51.
Nitric oxide (NO) is an important molecule that acts in many tissues to regulate a diverse range of physiological processes.
It is becoming apparent that NO is a ubiquitous signal in plants. Since the discovery of NO emission by plants in the 1970s,
this gaseous compound has emerged as a major signalling molecule involved in multiple physiological functions. Research on
NO in plants has gained significant awareness in recent years and there is increasing indication on the role of this molecule
as a key-signalling molecule in plants. The investigations about NO in plants have been concentrated on three main fields:
The search of NO or any source of NO generation, effects of exogenous NO treatments, NO transduction pathways. However we
have limited information about signal transduction procedures by which NO interaction with cells results in altered cellular
activities. This article reviews recent advances in NO synthesis and its signalling functions in plants. First, different
sources and biosynthesis of NO in plants, then biological processes involving NO signalling are reviewed. NO signalling relation
with cGMP, protein kinases and programmed cell death are also discussed. Besides, NO signalling in plant defense response
is also examined. Especially NO signalling between animal and plant systems is compared. 相似文献
52.
ATP-binding cassette (ABC) transporters serve as importers and exporters for a wide variety of solutes in both prokaryotes
and eukaryotes, and are implicated in microbial drug resistance and a number of significant human genetic disorders. Initial
crystal structures of the soluble nucleotide binding domains (NBDs) of ABC transporters, while a significant step towards
understanding the coupling of ATP binding and hydrolysis to transport, presented researchers with important questions surrounding
the role of the signature sequence residues, the composition of the nucleotide binding sites, and the mode of NBD dimerization
during the transport reaction cycle. Recent studies have begun to address these concerns. This mini-review summarizes the
biochemical and structural characterizations of two archaebacterial NBDs from Methanocaldococcus jannaschii, MJ0796 and MJ1267, and offers current perspectives on the functional mechanism of ABC transporters. 相似文献
53.
Shigella dysentriae and other Gram‐negative human pathogens are able to use iron from heme bound to hemoglobin for growing. We solved at 2.6 Å resolution the 3D structure of the TonB‐dependent heme/hemoglobin outer membrane receptor ShuA from S. dysenteriae. ShuA binds to hemoglobin and transports heme across the outer membrane. The structure consists of a C‐terminal domain that folds into a 22‐stranded transmembrane β‐barrel, which is filled by the N‐terminal plug domain. One distal histidine ligand of heme is located at the apex of the plug, exposed to the solvent. His86 is situated 9.86 Å apart from His420, the second histidine involved in the heme binding. His420 is in the extracellular loop L7. The heme coordination by His86 and His420 involves conformational changes. The comparisons with the hemophore receptor HasR of Serratia marcescens bound to HasA‐Heme suggest an extracellular induced fit mechanism for the heme binding. The loop L7 contains hydrophobic residues which could interact with the hydrophobic porphyring ring of heme. The energy required for the transport by ShuA is derived from the proton motive force after interactions between the periplasmic N‐terminal TonB‐box of ShuA and the inner membrane protein, TonB. In ShuA, the TonB‐box is buried and cannot interact with TonB. The structural comparisons with HasR suggest its conformational change upon the heme binding for interacting with TonB. The signaling of the heme binding could involve a hydrogen bond network going from His86 to the TonB‐box. Proteins 2010. © 2009 Wiley‐Liss, Inc. 相似文献
54.
Christine L. Goodale Steven A. Thomas Guinevere Fredriksen Emily M. Elliott Kathryn M. Flinn Thomas J. Butler M. Todd Walter 《Biogeochemistry》2009,93(3):197-218
Atmospheric deposition contributes a large fraction of the annual nitrogen (N) input to the basin of the Susquehanna River,
a river that provides two-thirds of the annual N load to the Chesapeake Bay. Yet, there are few measurements of the retention
of atmospheric N in the Upper Susquehanna’s forested headwaters. We characterized the amount, form (nitrate, ammonium, and
dissolved organic nitrogen), isotopic composition (δ15N- and δ18O-nitrate), and seasonality of stream N over 2 years for 7–13 catchments. We expected high rates of N retention and seasonal
nitrate patterns typical of other seasonally snow-covered catchments: dormant season maxima and growing season minima. Coarse
estimates of N export indicated high rates of inorganic N retention (>95%), yet streams had unexpected seasonal nitrate patterns,
with summer peaks (14–96 μmol L−1), October crashes (<1 μmol L−1), and modest rebounds during the dormant season (<1–20 μmol L−1). Stream δ18O-nitrate values indicated microbial nitrification as the primary source of stream nitrate, although snowmelt or other atmospheric
source contributed up to 47% of stream nitrate in some March samples. The autumn nitrate crash coincided with leaffall, likely
due to in-stream heterotrophic uptake of N. Hypothesized sources of the summer nitrate peaks include: delayed release of nitrate
previously flushed to groundwater, weathering of geologic N, and summer increases in net nitrate production. Measurements
of shale δ15N and soil-, well-, and streamwater nitrate within one catchment point toward a summer increase in soil net nitrification
as the driver of this pattern. Rather than seasonal plant demand, processes governing the seasonal production, retention,
and transport of nitrate in soils may drive nitrate seasonality in this and many other systems. 相似文献
55.
Funaki M Benincasa K Randhawa PK 《Biochemical and biophysical research communications》2007,360(4):891-896
Insulin-stimulated GLUT4 recruitment to the plasma membrane is impaired in insulin resistance. We recently reported that a cell permeable phosphoinositide-binding peptide induces GLUT4 recruitment as potently as insulin, but does not activate GLUT4 to initiate glucose uptake. Here we investigated whether the peptide-induced GLUT4 recruitment is intact in insulin resistance. The expression levels of GLUT1 and GLUT4 were unaffected by chronically treating 3T3-L1 adipocytes with insulin. GLUT4 recruitment by acute insulin stimulation after chronic insulin treatment was significantly reduced, but was fully restored by the peptide treatment. However, subsequent acute insulin stimulation to activate GLUT4 failed to increase glucose uptake in peptide-pretreated cells. Insulin-stimulated GLUT1 recruitment was unaffected by the peptide pretreatment. These results suggest that the GLUT4 recruitment signal caused by the peptide is intact in insulin resistance, but GLUT4 activation that occurs subsequent to recruitment is not rescued by the peptide treatment. 相似文献
56.
Sebastian Schneider Arno Schintlmeister Manuel Becana Michael Wagner Dagmar Woebken Stefanie Wienkoop 《Plant, cell & environment》2019,42(4):1180-1189
Legume–rhizobia symbioses play a major role in food production for an ever growing human population. In this symbiosis, dinitrogen is reduced (“fixed”) to ammonia by the rhizobial nitrogenase enzyme complex and is secreted to the plant host cells, whereas dicarboxylic acids derived from photosynthetically produced sucrose are transported into the symbiosomes and serve as respiratory substrates for the bacteroids. The symbiosome membrane contains high levels of SST1 protein, a sulfate transporter. Sulfate is an essential nutrient for all living organisms, but its importance for symbiotic nitrogen fixation and nodule metabolism has long been underestimated. Using chemical imaging, we demonstrate that the bacteroids take up 20‐fold more sulfate than the nodule host cells. Furthermore, we show that nitrogenase biosynthesis relies on high levels of imported sulfate, making sulfur as essential as carbon for the regulation and functioning of symbiotic nitrogen fixation. Our findings thus establish the importance of sulfate and its active transport for the plant–microbe interaction that is most relevant for agriculture and soil fertility. 相似文献
57.
The yeast glucose transporters Hxt1, Hxt2, Hxt3, Hxt4, Hxt6, Hxt7 and Gal2, individually expressed in an hxt1-7 null mutant strain, demonstrate the phenomenon of countertransport. Thus, these transporters, which are the most important glucose transporters in Saccharomyces cerevisiae, are facilitated diffusion transporters. Apparent K(m)-values from high to low affinity, determined from countertransport and initial-uptake experiments, respectively, are: Hxt6 0.9+/-0.2 and 1.4+/-0.1 mM, Hxt7 1.3+/-0.3 and 1.9+/-0.1 mM, Gal2 1.5 and 1.6+/-0.1 mM, Hxt2 2.9+/-0.3 and 4.6+/-0.3 mM, Hxt4 6.2+/-0.5 and 6.2+/-0.3 mM, Hxt3 28.6+/-6.8 and 34.2+/-3.2 mM, and Hxt1 107+/-49 and 129+/-9 mM. From both independent methods, countertransport and initial uptake, the same range of apparent K(m)-values was obtained for each transporter. In contrast to that in human erythrocytes, the facilitated diffusion transport mechanism of glucose in yeast was symmetric. Besides facilitated diffusion there existed in all single glucose transport mutants, except for the HXT1 strain, significant first-order behaviour. 相似文献
58.
59.
糖尿病小型猪三磷酸腺苷结合盒转运体A1表达的变化 总被引:1,自引:3,他引:1
用贵州小香猪建立2型糖尿病动物模型,探讨糖尿病小型猪三磷酸腺苷结合盒转运体A1(ABCA1)表达的变化.采用高脂高蔗糖饲料喂养贵州小香猪,建立2型糖尿病动物模型.血浆总胆固醇、甘油三酯、高密度脂蛋白胆固醇和葡萄糖的浓度均用氧化酶法测定,血浆游离脂肪酸(FFA)用比色法测定, 采用逆转录-聚合酶链反应、蛋白质印迹和免疫组织化学分别检测ABCA1mRNA和蛋白质的表达.喂养6个月后,实验组与正常对照组比较,空腹血糖值明显升高;空腹胰岛素水平在头3个月轻度升高,在第6个月末其水平降低; 血清总胆固醇、甘油三酯和游离脂肪酸水平升高;肝组织、冠状动脉、肾组织ABCA1表达上调,同时观测到糖尿病小型猪肝组织LXRα表达上调.结果提示高脂高蔗糖饲料可引起小型猪脂质和糖代谢紊乱, 并导致肝组织、冠状动脉和肾组织ABCA1表达上调以及肝组织LXRα表达上调. 相似文献
60.
《Saudi Journal of Biological Sciences》2022,29(4):2238-2246
Spinach (Spinacia oleracea L.) is considered a nitrogen (N) intensive plant with high nitrate (NO3?) accumulation in its leaves. The current study via a two-year field trial introduced an approach by combining N fertilization from different sources (e.g., ammonium nitrate; 33.5 % N, and urea; 48 % N) at different rates (180, and 360 kg N ha?1) with the foliar spraying of molybdenum (Mo) as sodium molybdate, and/or manganese (Mn) as manganese sulphate at rates of 50 and 100 mgL?1 of each or with a mixture of Mo and Mn at rates of 50 and 50 mg L?1, respectively on growth, chemical constituents, and NO3? accumulation in spinach leaves. Our findings revealed that the highest rate of N fertilization (360 kg N ha?1) significantly increased most of the measured parameters e.g., plant length, fresh and dry weight plant?1, number of leaves plant?1, leaf area plant?1, leaf pigments (chlorophyll a, b and carotenoids), nutrients (N, P, K, Fe, Mn, Zn), total soluble carbohydrates, protein content, net assimilation rate, and NO3? accumulation, but decreased leaf area ratio and relative growth rate. Moreover, plants received urea-N fertilizer gave the highest values of all previous attributes when compared with ammonium nitrate –N fertilizers, and the lowest values of NO3? accumulation. The co-fertilization of N-Mo-Mn gave the highest values in all studied attributes and the lowest NO3? accumulation. The best treatment was recorded under the treatment of 360 kg N-urea ha?1 in parallel with the combined foliar application of Mo and Mn (50 + 50 mg L?1). Our findings proposed that the co-fertilization of N-Mo-Mn could enhance spinach yield and its quality, while reducing NO3? accumulation in leaves, resulting agronomical, environmental and economic benefits. 相似文献