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1.
ABC转运蛋白的结构与转运机制   总被引:5,自引:0,他引:5  
腺苷三磷酸结合盒转运蛋白(ATP-binding cassette transponer,ABC转运蛋白)超家族是一组跨膜蛋白,具有ATP结合区域的单向底物转运泵,以主动转运方式完成多种分子的跨膜转运.ABC转运蛋白的一个亚家族与多药抗性(multidrug resistance,MDR)有关,而多药抗性是临床肿瘤化疗中需要解决的主要问题,所以其结构与转运机制一直是研究的热点.最近几年获得了一些高分辨率的ABC转运蛋白的晶体结构,该文将根据ABC转运蛋白的结构的研究进展对其可能的转运机制进行讨论.  相似文献   

2.
植物多向耐药性(pleiotropic drug resistance,PDR)基因亚家族是ATP结合盒(ATP-binding cassette,ABC)基因家族的一员,其编码的PDR蛋白通过水解ATP释放能量、引起蛋白构象变化实现物质跨膜转运。PDR蛋白可以转运萜类物质、植物生长素和金属离子以应答外界生物和非生物胁迫。综述植物PDR蛋白结构、转运机制及其功能,为克隆植物PDR基因并深入研究其结构与功能提供基础知识。  相似文献   

3.
物质运输系统是植物和环境间相互作用的方法之一,受膜上接合的转运蛋白的控制.植物中数量最多的膜转运蛋白是接合ATP的盒式蛋白,简称ABC蛋白.通过核基困BLAST同源序列查询,在拟南芥中发现了60个开放阅读框架(ORFs)编码ABC转运蛋白,在编码的60个蛋白上发现有89个ABC结构域.  相似文献   

4.
吴远双  宋毅豪  吴宝尧  李昆志 《广西植物》2018,38(11):1534-1544
植物在生长及适应环境的过程中会吸收很多有益或有害的物质,自身也会产生大量代谢物,植物对这些物质的转运是植物生长发育及适应环境的重要环节,有多种转运蛋白家族参与其中。多药和有毒化合物排出转运蛋白(MATEs)是生物体中重要的转运蛋白家族之一,而植物中MATE基因的丰富程度要远远高于其他生物。根据植物MATEs的蛋白结构,这些基因被分为4个主要的亚家族,即MATE I,MATEⅡ,MATEⅢ和MATE IV。同一亚家族或同一MATE基因簇的基因还具有相同或相似的功能。植物MATEs定位于细胞的各种生物膜上,如细胞质膜、液泡膜、高尔基膜及囊泡膜等。此外,一些MATEs的表达还具有组织特异性,它们转运的底物也具有多样性和特异性,使得MATEs呈现出多种生物学功能。它们在外源性物质的排出、次生代谢产物的转运和累积、铁转运、铝脱毒和植物激素信号传递及植物的抗病性等方面都起着重要作用。该文对MATEs的发现、基因分类、亚细胞定位及生理功能等方面进行了概述,对深入研究该基因家族提供了思路,对该基因家族的应用进行了展望。  相似文献   

5.
ABC转运蛋白结构及在植物病原真菌中的功能研究进展   总被引:1,自引:0,他引:1  
ABC(ATP-binding cassette)转运蛋白是最大的膜转运蛋白超家族之一,其主要功能是利用ATP水解产生的能量将底物进行逆浓度梯度运输.所有生物体都含有大量ABC蛋白.ABC蛋白位于细胞的不同空间,如细胞膜、液泡、线粒体和过氧化物酶体.通常,ABC转运蛋白由跨膜结构域(TMD)和核苷酸结合结构域(NBD)组成,分别与底物和ATP结合.NBD执行与ATP结合和水解,是ABC转运蛋白的动力引擎,TMD识别特异性配体.大多数ABC转运蛋白最初是通过研究生物体耐药性而被发现的,包括多效耐药(PDR)和多药耐药(MDR).本文对ABC转运蛋白的结构及作用机制,以及植物病原真菌中ABC转运蛋白功能的研究进展进行综述.  相似文献   

6.
结核分枝杆菌ABC转运蛋白与物质的跨膜转运   总被引:1,自引:0,他引:1  
结核分枝杆菌作为一种胞内寄生菌,主要存在于巨噬细胞吞噬体内,并且通过与宿主细胞竞争摄取营养物质、主动排出有毒物质来维持生存。因此,参与上述过程的ABC转运蛋白在结核分枝杆菌的致病中发挥着举足轻重的作用。已有报道结核分枝杆菌基因组编码了38个ABC转运蛋白。这类蛋白质有着广泛的底物结合谱,参与了无机离子、糖类、氨基酸、寡肽、药物等多种物质的跨膜转运。本文将对结核分枝杆菌编码的ABC转运蛋白超家族中的不同成员及其底物特异性、转运机制以及与毒力的关系的研究进展进行综述。  相似文献   

7.
蔗糖转运蛋白(sucrose transporter,SUT)负责蔗糖的跨膜运输,在韧皮部介导的源-库蔗糖运输和为库组织供应蔗糖的生理活动中起关键作用。本文介绍植物体内蔗糖转运蛋白基因家族、细胞定位与功能调节以及高等植物的蔗糖感受机制的研究进展。  相似文献   

8.
节肢动物ABC转运蛋白及其介导的杀虫剂抗性   总被引:1,自引:0,他引:1  
腺苷三磷酸结合盒转运蛋白(ATP-binding cassette transporter),简称ABC转运蛋白(ABC transporter),是继细胞色素P450单加氧酶、羧酸酯酶、谷胱甘肽S-转移酶之后又一类参与解毒作用的重要蛋白家族,因其在杀虫剂解毒等方面起着非常重要的作用,近年来逐渐受到广泛关注。ABC转运蛋白是一大类跨膜蛋白,其核心结构通常由4个结构域组成,包括2个高度疏水的跨膜结构域(transmembrane domains , TMD)和2个核苷酸结合域(nucleotide binding domains, NBD)。根据序列相似性和保守结构域,可以把ABC转运蛋白家族分为8个亚家族,每个亚家族的成员数及功能不同。这类蛋白在各种生物体内均有分布,其主要功能包括转运物质、信号传导、细胞表面受体及参与细胞内DNA修复,转录及调节基因的表达过程等。此外,近年来的研究表明,ABC转运蛋白的突变或过表达不仅与节肢动物对化学农药的抗药性密切相关,而且在抗Bt毒素方面也起着非常重要的作用,对转Bt作物造成严重威胁。本文综述了节肢动物ABC转运蛋白的结构,ATP水解介导的作用机制,亚家族的分类、结构及生理功能,以及由ABC转运蛋白介导的抗药性研究进展,旨在深入了解ABC转运蛋白的研究现状及其在节肢动物抗药性方面的作用,为阐明节肢动物抗药性机制提供新的理论依据,对改进农业害虫的抗性监测和治理策略也具有一定的指导意义。  相似文献   

9.
ABC转运蛋白及其在合成生物学中的应用   总被引:1,自引:0,他引:1  
ABC转运蛋白(ATP-binding cassette transporter,ABC transporter)作为一种超大膜转运蛋白家族,在大多数生物体中发挥着重要作用。文中从结构特征、转运机制以及生理功能等方面论述了ABC转运蛋白的研究进展,进而着重综述了近些年来ABC转运蛋白在合成生物学领域中的应用,并为今后进一步的研究提出了展望,希望为扩展其应用提供指导。  相似文献   

10.
放线菌由于能产生多种结构新颖、活性独特的次级代谢产物,在医药工业、农业和环境保护上具有重要作用。全基因组测序的数据显示,放线菌中含有数目众多的腺苷三磷酸结合盒(ATP-binding cassette,ABC)转运蛋白基因,在营养摄入、次级代谢产物转运、外源毒素解毒等一系列过程中发挥着重要的作用。本文概述了ABC转运蛋白的结构和作用机制,并结合本实验室的研究工作,对近年来放线菌中ABC转运蛋白的研究进展进行了比较全面的综述,着重介绍了负责次级代谢产物跨膜转运的ABC外排蛋白,并展望了放线菌ABC转运蛋白的研究热点和应用前景。  相似文献   

11.
ATP-binding cassette (ABC) transporters are involved in the transport of multiple substrates across cellular membranes, including metabolites, proteins, and drugs. Employing a functional fluorochrome export assay, we found that UVB irradiation strongly inhibits the activity of ABC transporters. Specific inhibitors of poly(ADP-ribose) polymerase-1 (PARP-1) restored the function of ABC transporters in UVB-irradiated cells, and PARP-1-deficient cells did not undergo UVB-induced membrane transport inhibition. These data suggest that PARP-1 activation is necessary for ABC transporter functional downregulation. The hydrolysis of poly(ADP-ribose) by poly(ADP-ribose) glycohydrolase (PARG) was also required, since specific PARG inhibitors, which limit the production of ADP-ribose molecules, restored the function of ABC transporters. Furthermore, ADP-ribose molecules potently inhibited the activity of the ABC transporter P-glycoprotein. Hence, poly(ADP-ribose) metabolism appears to play a novel role in the regulation of ABC transporters.  相似文献   

12.
ATP binding cassette (ABC) transporters, which are found in all species, are known mainly for their ability to confer drug resistance. They have been thoroughly studied in mammals, where they became the center of interest for clinical reasons related to the resistance of tumor cells to chemotherapy treatment. Less is known about plant members of the ABC family, however, growing number of reports on their role in different physiological processes attract attention. The vacuolar ABC transporters in plants characterized to date are involved in the intracellular sequestration of cytotoxins (e.g. herbicides), as well as the products of endogenous metabolism like chlorophyll catabolites. Others localized within plasma membrane are active in the transport of secondary metabolites or phytohormones. Finally certain transporters are present in cell organelles and play a role in such processes as P oxidation. Here, we briefly introduce these proteins, and describe structural characteristic and physiological aspect of their activity in a plant cell.  相似文献   

13.
The human ATP-binding cassette (ABC) transporters comprise a large family of membrane transport proteins and play a vital role in many cellular processes. The genes provide functions as diverse as peptide transport, cholesterol and sterol transport, bile acid, retinoid, and iron transport. In addition some ABC genes play a role as regulatory elements. Many ABC genes play a role in human genetic diseases, and several are critical drug transport proteins overexpressed in drug resistant cells. Analysis of the gene products allows the genes to be grouped into seven different subfamilies.  相似文献   

14.
Polyphagous insect herbivores are adapted to many different secondary metabolites of their host plants. However, little is known about the role of ATP-binding cassette (ABC) transporters, a multigene family involved in detoxification processes. To study the larval response of the generalist Helicoverpa armigera (Lepidoptera) and the putative role of ABC transporters, we performed developmental assays on artificial diet supplemented with secondary metabolites from host plants (atropine-scopolamine, nicotine and tomatine) and non-host plants (taxol) in combination with a replicated RNAseq experiment. A maximum likelihood phylogeny identified the subfamily affiliations of the ABC transporter sequences. Larval performance was equal on the atropine-scopolamine diet and the tomatine diet. For the latter we could identify a treatment-specific upregulation of five ABC transporters in the gut. No significant developmental difference was detected between larvae fed on nicotine or taxol. This was also mirrored in the upregulation of five ABC transporters when fed on either of the two diets. The highest number of differentially expressed genes was recorded in the gut samples in response to feeding on secondary metabolites. Our results are consistent with the expectation of a general detoxification response in a polyphagous herbivore. This is the first study to characterize the multigene family of ABC transporters and identify gene expression changes across different developmental stages and tissues, as well as the impact of secondary metabolites in the agricultural pest H. armigera.  相似文献   

15.
The human ATP-binding cassette (ABC) transporter superfamily.   总被引:2,自引:0,他引:2  
The transport of specific molecules across lipid membranes is an essential function of all living organisms and a large number of specific transporters have evolved to carry out this function. The largest transporter gene family is the ATP-binding cassette (ABC) transporter superfamily. These proteins translocate a wide variety of substrates including sugars, amino acids, metal ions, peptides, and proteins, and a large number of hydrophobic compounds and metabolites across extra- and intracellular membranes. ABC genes are essential for many processes in the cell, and mutations in these genes cause or contribute to several human genetic disorders including cystic fibrosis, neurological disease, retinal degeneration, cholesterol and bile transport defects, anemia, and drug response. Characterization of eukaryotic genomes has allowed the complete identification of all the ABC genes in the yeast Saccharomyces cerevisiae, Drosophila, and C. elegans genomes. To date, there are 48 characterized human ABC genes. The genes can be divided into seven distinct subfamilies, based on organization of domains and amino acid homology. Many ABC genes play a role in the maintenance of the lipid bilayer and in the transport of fatty acids and sterols within the body. Here, we review the current knowledge of the human ABC genes, their role in inherited disease, and understanding of the topology of these genes within the membrane.  相似文献   

16.
Flavonoids are a group of secondary metabolites widely distributed in plants that represent a huge portion of the soluble phenolics present in grapevine (Vitis vinifera L.). These compounds play different physiological roles and are often involved in protection against biotic and abiotic stress. Even if the flavonoid biosynthetic pathways have been largely characterized, the mechanisms of their transport and accumulation in cell wall and vacuole are still not completely understood. This review analyses the known mechanisms of flavonoid uptake and accumulation in grapevine, with reference to the transport models and membrane carrier proteins described in other plant species. The effect of different environmental factors on flavonoid biosynthesis and transporters is also discussed.Key words: ABC proteins, active transport, bilitranslocase, biotic and abiotic stress, flavonoid, secondary metabolites  相似文献   

17.
18.
A novel gene encoding a MDR-like ABC transporter protein was cloned from Catharanthus roseus, a medicinal plant with more than 120 kinds of secondary metabolites, through rapid amplification of cDNA ends (RACE). This gene (named as Crmdr1; GenBank accession no.: DQ660356) had a total length of 4395 bp with an open reading frame of 3801 bp, and encoded a predicted polypeptide of 1266 amino acids with a molecular weight of 137.1 kDa. The CrMDR1 protein shared 59.8, 62.5, 60.0 and 58.2% identity with other MDR proteins isolated from Arabidopsis thaliana (AAD31576), Coptis japonica (CjMDR), Gossypium hirsutum (GhMDR) and Triticum aestivum (TaMDR) at amino acid level, respectively. Southern blot analysis showed that Crmdr1 was a low-copy gene. Expression pattern analysis revealed that Crmdr1 constitutively expressed in the root, stem and leaf, but with lower expression in leaf. The domains analysis showed that CrMDR1 protein possessed two transmembrane domains (TMDs) and two nucleotide binding domains (NBDs) arranging in "TMD1-NBD1-TMD2-NBD2" direction, which is consistent with other MDR transporters. Within NBDs three characteristic motifs common to all ABC transporters, "Walker A", "Walker B" and C motif, were found. These results indicate that CrMDR1 is a MDR-like ABC transporter protein that may be involved in the transport and accumulation of secondary metabolites.  相似文献   

19.
ABC (ATP-binding cassette) proteins actively transport a wide variety of substrates, including peptides, amino acids, sugars, metals, drugs, vitamins and lipids, across extracellular and intracellular membranes. Of the 49 hum an ABC proteins, a significant number are known to mediate the extrusion of lipids from membranes or the flipping of membrane lipids across the bilayer to generate and maintain membrane lipid asymmetry. Typical lipid substrates include phospholipids, sterols, sphingolipids, bile acids and related lipid conjugates. Members of the ABCA subfamily of ABC transporters and other ABC proteins such as ABCB4, ABCG1 and ABCG5/8 implicated in lipid transport play important roles in diverse biological processes such as cell signalling, membrane lipid asymmetry, removal of potentially toxic compounds and metabolites, and apoptosis. The importance of these ABC lipid transporters in cell physiology is evident from the finding that mutations in the genes encoding many of these proteins are responsible for severe inherited diseases. For example, mutations in ABCA1 cause Tangier disease associated with defective efflux of cholesterol and phosphatidylcholine from the plasma membrane to the lipid acceptor protein apoA1 (apolipoprotein AI), mutations in ABCA3 cause neonatal surfactant deficiency associated with a loss in secretion of the lipid pulmonary surfactants from lungs of newborns, mutations in ABCA4 cause Stargardt macular degeneration, a retinal degenerative disease linked to the reduced clearance of retinoid compounds from photoreceptor cells, mutations in ABCA12 cause harlequin and lamellar ichthyosis, skin diseases associated with defective lipid trafficking in keratinocytes, and mutations in ABCB4 and ABCG5/ABCG8 are responsible for progressive intrafamilial hepatic disease and sitosterolaemia associated with defective phospholipid and sterol transport respectively. This chapter highlights the involvement of various mammalian ABC transporters in lipid transport in the context of their role in cell signalling, cellular homoeostasis, apoptosis and inherited disorders.  相似文献   

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