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1.
王毅  周旭  许宰铣  王娟 《微生物学报》2014,54(7):770-777
【目的】探索药用地衣长松萝(Usnea longissima Ach)聚酮化合物的生物合成基因簇,克隆聚酮合酶(PKS)基因并分析其功能。【方法】以长松萝地衣型真菌为材料,通过巢氏PCR获得聚酮合酶基因片段和原位杂交筛选基因组文库获得聚酮合酶基因及相邻基因簇。并对获得聚酮合酶进行分子系统进化分析和基因表达分析。【结果】获得药用地衣长松萝中的编码聚酮合酶基因UlPKS5的全长序列以及相邻修饰基因β-内酰胺酶和脱水酶。聚酮合酶UlPKS5含有酮体合成酶(KS),酰基转移酶(AT),产物模板(PT)以及酰基载体蛋白(ACP)结构域。分子系统进化分析显示UlPKS5属于非还原型聚酮合酶中第五组,与蒽醌类化合物生物合成相关。通过半定量RT-PCR分析表明山梨醇(10%)和蔗糖(2%和10%)能够强烈诱导UlPKS5基因表达。【结论】聚酮合酶(UlPKS5)及相邻修饰基因β-内酰胺酶和脱水酶与长松萝中蒽醌类化合物生物合成相关。  相似文献   

2.
真菌苯二酚内酯类聚酮化合物具有抗癌和调节免疫系统等重要的生物活性,其生物合成是近年来的研究热点。介绍了苯二酚内酯的双聚酮合酶协作合成机制和组合生物合成,并以几种真菌苯二酚内酯生物合成途径为例,综述了相关的研究进展,以期为研究者提供参考。  相似文献   

3.
原晓龙  华梅  陈剑  王娟  杨宇明  王毅 《广西植物》2018,38(9):1146-1154
为了研究牛樟芝中PKS基因与化合物之间的关系,该研究通过对牛樟芝基因组分析获得牛樟芝聚酮合酶基因,以此序列为模板设计含有起始密码子和终止密码子的特异引物并以牛樟芝c DNA为模板克隆获得一个高度还原型PKS(HR-PKS)基因全长,命名为AcPKS2;对AcPKS2基因进行生物信息学分析,并比较该基因在不同培养基上的表达量。结果表明:AcPKS2全长7 842 bp,有24个内含子,其外显子共编码2 613个氨基酸,该蛋白的相对分子质量为293.5 kDa,理论等电点pI为5.78。用CDD分析其结构域显示,该基因属于HR-PKS,其结构域组织排列为KS-AT-DH-MT-ER-KR-ACP-TE,8个结构域其活性位点分别为β-酮基合成酶(DTACSSSL)、酰基转移酶(GHSIGETA)、脱水酶(RNDGSTSPL)、甲基转移酶(SFDIITAFDV)、烯酰还原酶(HAGVSSPAA)、酮基还原酶(GSPGQANYTAA)、酰基转移酶(YGLDSLTSVRL)、硫酯酶(KQPNGPY)。系统发育树显示AcPKS2与其他化合物未知的HR-PKS蛋白聚为一支,结构域和系统进化树分析显示该基因可能编码一种新的含TE结构域高度还原型聚酮合酶;表达分析结果显示葡萄糖和果糖能够诱导该基因的表达。  相似文献   

4.
为了解牛樟芝中聚酮化合物的生物合成机理及聚酮合酶基因功能,从牛樟芝基因组挖掘并克隆得到一个部分还原型PKS(PR-PKS)基因(AcPKS3),并对其进行生物信息学分析及表达谱分析。结果显示,AcPKS3(GenBank登录号:MG988206)DNA全长8 286 bp,有22个内含子,其外显子共编码2 285个氨基酸;结构域依次为KS-AT-KR-ACP-SDR,各结构域的活性保守位点为β-酮基合成酶(DTACSS)、酰基转移酶(GHSAGETA)、酮基还原酶(YLLVGGIG)、酰基转移酶(YGLDSITSA)、短链醇脱氢酶与NAD(P)H结合的N端保守序列(ITGTTGSFG)及活性保守位点(YTESK);AcPKS3与6-甲基水杨酸合成酶的亲缘关系较近;不同碳源中葡萄糖,不同氮源中牛肉浸粉、酪蛋白胨、土豆蛋白胨可促进AcPKS3基因表达。本研究为牛樟芝聚酮合酶功能研究及牛樟芝基因资源利用提供参考。  相似文献   

5.
摘要:【目的】研究红色红曲菌(Monascus ruber) M7中控制红曲色素合成的聚酮合酶基因(pksPT)的功能。【方法】对M7 中pksPT进行了生物信息学分析;借助农杆菌介导的红曲菌转化技术敲除M7中pksPT,获得pksPT缺失突变体(ΔpksPT),比较M7和ΔpksPT菌落形态、产孢能力、生长速度、色素和桔霉素产量的差异。【结果】pksPT全长8687 bp,编码蛋白含有2690个氨基酸,属于非还原Ⅲ型聚酮合酶,包括β-酮酯酰基合成酶(KS)、酰基载体蛋白(ACP)、酰基转移酶(AT)和甲基转移酶(ME)四种结构域,组合形式为KS-AT-ACPACP-ME。ΔpksPT的分析结果显示,pksPT的敲除不影响其产分生孢子和闭囊壳的能力;ΔpksPT不能产生任何一种红曲色素;其生长速度明显快于野生菌株M7;桔霉素产量较M7 提高了2.8倍。【结论】pksPT是M7中控制红曲色素合成的关键基因,红曲色素的合成显著影响红曲菌产桔霉素能力和生长速度。  相似文献   

6.
【目的】探讨非还原型聚酮合酶(non-reducing polyketide synthase, NR-Pks)的碳甲基化程序差异的原因。【方法】以红色红曲菌(Monascus ruber) M7中红曲色素和桔霉素的NR-Pks为研究对象,采用生物信息学方法和AlphaFold 2软件,分析了这两种NR-Pks及其各结构域的序列和结构差异。再基于分子对接等技术,比较了它们的碳甲基转移酶结构域(C-methyltransferase domain,CMeT)分别与其他结构域及其中间产物的结合特征。【结果】两种NR-Pks各结构域的序列和结构相似性高,但其整体结构差异大,表明碳甲基化差异可能源于结构域互作差异。进一步分析发现,桔霉素Pks的CMeT比红曲色素Pks的更容易结合携带底物的酰基载体蛋白结构域(acylcarrier protein,ACP),使其中间产物更容易受到CMeT催化。CMeT和β-酮酰基合成酶结构域(β-ketosynthase domain, KS)相比,与甲基受体底物的结合自由能更低。【结论】NR-Pks中的CMeT能通过与KS竞争,从而影响其产物的碳甲基化程度。...  相似文献   

7.
真菌芳香聚酮化合物是由真菌非还原聚酮合酶(NR-PKSs)催化形成的具有广泛生物活性的一类天然产物。大部分内源真菌菌株存在难培养、致病性或产率低等问题,从根本上限制了真菌芳香聚酮化合物的开发和应用。随着合成生物学和代谢工程的发展,很多具有生物活性的聚酮产物实现了在工业微生物(如酿酒酵母、构巢曲霉等)中的异源生产,相关研究逐渐成为热点。从合成途径解析与挖掘、底盘细胞的构建与改造等方面综述了近年来真菌芳香聚酮化合物的合成生物学研究进展,为未来真菌芳香聚酮化合物人工代谢途径的高效构建和实现工业化生产奠定基础。  相似文献   

8.
I型聚酮合酶(PKSI)的模块型分子结构组织方式非常适合于组合生物合成研究.结构域和模块通过二级组织方式构成了PKSI的催化单元,其它结构多肽则作为“支架”.在“支架”上对结构域和模块两个水平进行突变、替换、插入、缺失等基因操作形成重组PKS,可以理性设计并获得复杂多样的新活性或高活性的聚酮化合物.利用PKSI进行组合生物合成以期获得新聚酮化合物的研究迄今已有约25年,但是目前仍不能够对PKS进行完美的理性设计,快速合成目标活性的新聚酮化合物.PKS中的酰基转移酶结构域的研究在PKS的组合生物合成研究中一直发挥着重要作用.本文结合本课题组的研究基础,对AT结构域的结构、功能及在组合生物合成研究中的最新研究成果作以分析总结.  相似文献   

9.
真菌芳香聚酮化合物是由真菌非还原聚酮合酶(NR-PKSs)催化形成的具有广泛生物活性的一类天然产物。大部分内源真菌菌株存在难培养、致病性或产率低等问题,从根本上限制了真菌芳香聚酮化合物的开发和应用。随着合成生物学和代谢工程的发展,很多具有生物活性的聚酮产物实现了在工业微生物(如酿酒酵母、构巢曲霉等)中的异源生产,相关研究逐渐成为热点。从合成途径解析与挖掘、底盘细胞的构建与改造等方面综述了近年来真菌芳香聚酮化合物的合成生物学研究进展,为未来真菌芳香聚酮化合物人工代谢途径的高效构建和实现工业化生产奠定基础。  相似文献   

10.
酰基载体蛋白属于载体蛋白大家族,其三级结构非常保守。在细胞新陈代谢过程中,酰基载体蛋白关联各种大的蛋白复合体酶系,能够将酰基链从一个酶中心位点转运到另一个酶的中心位点,同时可作为各种天然产物的酰基供体,与脂肪酸合成酶途径和聚酮合酶途径息息相关。研究酰基载体蛋白的结构和功能,为指导现有的合成途径和重新设计新的合成途径来合成天然或非天然产物提供依据和基础。  相似文献   

11.
具有广泛生物活性的真菌聚酮化合物因具有复杂的化学结构,其生物合成途径一般包含多样且新颖的酶催化反应。文中主要综述了2013-2016年来源于还原性聚酮合成酶(HR-PKSs)、非还原性聚酮合成酶(NR-PKSs)、聚酮-非核糖体多肽合成酶(PKS-NRPSs)和还原性-非还原性聚酮合成酶(HR-NR PKSs)杂合型等四大类型的真菌聚酮类化合物的生物合成研究进展。众多真菌聚酮类化合物生物机理的阐明,为未来新型真菌聚酮类天然产物生物合成基因簇的挖掘、新结构化合物的发现及其类似物的研究提供了方向和理论基础。  相似文献   

12.
真菌聚酮合酶在代谢中可催化合成多种具有重要生物学活性的次级代谢物,所以真菌聚酮合酶正逐渐成为药学、食品科学和农学等领域的研究热点。本文综述了近五年来建立的几种分离真菌聚酮合酶基因的方法。这些方法解决了真菌中聚酮合酶基因簇难以分离的问题,为改造和利用真菌聚酮合酶以及发掘真菌聚酮化合物资源提供了强有力的手段。  相似文献   

13.
Fungal polyketides comprise a diverse group of secondary metabolites that play an important role for drug discovery, as pigments, and as mycotoxins. Their biosynthesis is governed by multidomain enzymes, so-called fungal type I polyketide synthases (PKS). Investigating the molecular basis of polyketide biosynthesis in fungi is of great importance for ecological and pharmacological reasons. In addition, cloning, functional analysis and expression of fungal PKS genes also set the basis for engineering the yet largely untapped biosynthetic potential.  相似文献   

14.
SEARCHPKS is a software for detection and analysis of polyketide synthase (PKS) domains in a polypeptide sequence. Modular polyketide synthases are unusually large multi-enzymatic multi-domain megasynthases, which are involved in the biosynthesis of pharmaceutically important natural products using an assembly-line mechanism. This program facilitates easy identification of various PKS domains and modules from a given polypeptide sequence. In addition, it also predicts the specificity of the potential acyltransferase domains for various starter and extender precursor units. SEARCHPKS is a user-friendly tool for correlating polyketide chemical structures with the organization of domains and modules in the corresponding modular polyketide synthases. This program also allows the user to extensively analyze and assess the sequence homology of various polyketide synthase domains, thus providing guidelines for carrying out domain and module swapping experiments. SEARCHPKS can also aid in identification of polyketide products made by PKS clusters found in newly sequenced genomes. The computational approach used in SEARCHPKS is based on a comprehensive analysis of various characterized clusters of modular polyketide synthases compiled in PKSDB, a database of modular polyketide synthases. SEARCHPKS can be accessed at http://www.nii.res.in/searchpks.html.  相似文献   

15.
Yuzawa S  Kapur S  Cane DE  Khosla C 《Biochemistry》2012,51(18):3708-3710
The role of interdomain linkers in modular polyketide synthases is poorly understood. Analysis of the 6-deoxyerythronolide B synthase (DEBS) has yielded a model in which chain elongation is governed by interactions between the acyl carrier protein domain and the ketosynthase domain plus an adjacent linker. Alanine scanning mutagenesis of the conserved residues of this linker in DEBS module 3 led to the identification of the R513A mutant with a markedly reduced rate of chain elongation. Limited proteolysis supported a structural role for this Arg. Our findings highlight the importance of domain-linker interactions in assembly line polyketide biosynthesis.  相似文献   

16.
Fungal aromatic polyketides constitute a large family of bioactive natural products and are synthesized by the non-reducing group of iterative polyketide synthases (PKSs). Their diverse structures arise from selective enzymatic modifications of reactive, enzyme-bound poly-β-keto intermediates. How iterative PKSs control starter unit selection, polyketide chain initiation and elongation, intermediate folding and cyclization, selective redox or modification reactions during assembly, and product release are central mechanistic questions underlying iterative catalysis. This Review highlights recent insights into these questions, with a particular focus on the biosynthetic programming of fungal aromatic polyketides, and draws comparisons with the allied biosynthetic processes in bacteria.  相似文献   

17.
Ma SM  Tang Y 《The FEBS journal》2007,274(11):2854-2864
The biosynthesis of lovastatin in Aspergillus terreus requires two megasynthases. The lovastatin nonaketide synthase, LovB, synthesizes the intermediate dihydromonacolin L using nine malonyl-coenzyme A molecules, and is a reducing, iterative type I polyketide synthase. The iterative type I polyketide synthase is mechanistically different from bacterial type I polyketide synthases and animal fatty acid synthases. We have cloned the minimal polyketide synthase domains of LovB as standalone proteins and assayed their activities and substrate specificities. The didomain proteins ketosynthase-malonyl-coenzyme A:acyl carrier protein acyltransferase (KS-MAT) and acyl carrier protein-condensation (ACP-CON) domain were expressed solubly in Escherichia coli. The monodomains MAT, ACP and CON were also obtained as soluble proteins. The MAT domain can be readily labeled by [1,2-(14)C]malonyl-coenzyme A and can transfer the acyl group to both the cognate LovB ACP and heterologous ACPs from bacterial type I and type II polyketide synthases. Using the LovB ACP-CON didomain as an acyl acceptor, LovB MAT transferred malonyl and acetyl groups with k(cat)/K(m) values of 0.62 min(-1).mum(-1) and 0.032 min(-1).mum(-1), respectively. The LovB MAT domain was able to substitute the Streptomyces coelicolor FabD in supporting product turnover in a bacterial type II minimal polyketide synthase assay. The activity of the KS domain was assayed independently using a KS-MAT (S656A) mutant in which the MAT domain was inactivated. The KS domain displayed no activity towards acetyl groups, but was able to recognize malonyl groups in the absence of cerulenin. The relevance of these finding to the priming mechanism of fungal polyketide synthase is discussed.  相似文献   

18.
Iterative highly reducing polyketide synthases from filamentous fungi are the most complex and enigmatic type of polyketide synthase discovered to date. Here we uncover an unusual degree of programming by the hypothemycin highly reducing polyketide synthase, in which a single ketoreductase domain shows stereospecificity that is controlled by substrate length. Mapping of the structural domains responsible for this feature allowed for the biosynthesis of an unnatural diastereomer of the natural product dehydrozearalenol.  相似文献   

19.
The structure of the ketoreductase (KR) from the first module of the erythromycin synthase with NADPH bound was solved to 1.79 A resolution. The 51 kDa domain has two subdomains, each similar to a short-chain dehydrogenase/reductase (SDR) monomer. One subdomain has a truncated Rossmann fold and serves a purely structural role stabilizing the other subdomain, which catalyzes the reduction of the beta-carbonyl of a polyketide and possibly the epimerization of an alpha-substituent. The structure enabled us to define the domain boundaries of KR, the dehydratase (DH), and the enoylreductase (ER). It also constrains the three-dimensional organization of these domains within a module, revealing that KR does not make dimeric contacts across the 2-fold axis of the module. The quaternary structure elucidates how substrates are shuttled between the active sites of polyketide synthases (PKSs), as well as related fatty acid synthases (FASs), and suggests how domains can be swapped to make hybrid synthases that produce novel polyketides.  相似文献   

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