首页> 外文学位 >An investigation into plant type III polyketide synthases: A styrylpyrone synthase from Equisetum hyemale and anther-specific chalcone synthase-like enzymes from Physcomitrella patens and Arabidopsis thaliana.
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An investigation into plant type III polyketide synthases: A styrylpyrone synthase from Equisetum hyemale and anther-specific chalcone synthase-like enzymes from Physcomitrella patens and Arabidopsis thaliana.

机译:植物III型聚酮化合物合酶的研究:马齿Equi的苯乙烯基吡喃酮合酶和帕氏假单胞菌和拟南芥的花药特异性查尔酮合酶样酶。

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摘要

Type III polyketide synthases (PKSs) produce secondary metabolites that playa variety of roles in plants. Three new type III PKS have been investigated: a putative styrylpyrone synthase (SPS) from Equisetum hyemale and anther-specific alkylpyrone synthases from Physcomitrella patens and Arabadopsis thaliana.;Anther-specific chalcone synthase (CHS)-like (ASCL) enzymes are type III PKSs which are essential for the development of fertile pollen in male plants, although the functional role of ASCLs is poorly understood. ASCLs are related to, but phylogenetically distinct, from CHS enzymes. ASCL enzymes are highly expressed during structural development of pollen, indicating that ASCLs may be involved in the biosynthesis of sporopollenin in the exine, the outer layer of the pollen cell wall. In this study, an ASCL enzyme from A. thaliana and a primitive ASCL homologue from the moss P. patens were characterized. Despite the distant evolutionary relationship between these plants, the A. thaliana and P. patens ASCL enzymes exhibited a conserved activity, with unusually broad substrate specificity and a somewhat different cyclization strategy as compared to typical plant type III PKSs. In vitro, the ASCL enzymes generated alkylpyrone products, although this may not occur in vivo. A. thaliana dihydroflavonol 4-reductase-like 1 (AthDRL1), another enzyme involved in sporopollenin biosynthesis, was also examined to determine if AthDRL1 and ASCLs function together in this pathway. It appears that AthDRL1 may act on the product of the ASCLs. The fundamental importance of ASCL enzymes to pollen and spore development in plants is highlighted by the evolutionary relationship and conserved activity of ASCLs.;SPS has unusual cyclization and condensation activity for a type III PKS, which makes it a promising target for investigation of the control mechanisms for these activities in type III PKSs. A better understanding of this could be applied to similar antibiotic-producing type I PKS systems, which may be useful in engineering these systems to generate novel products. In this study, a putative SPS from E. hyemale was identified, cloned and partially characterized. However, the cloned enzyme did not exclusively exhibit SPS activity in vitro. Therefore, further study is needed before the mechanism can be elucidated.
机译:III型聚酮化合物合酶(PKS)产生次生代谢产物,在植物中起多种作用。已经研究了三种新的III型PKS:来自马贼木的推定的苯乙烯基吡喃酮合酶(SPS)和来自Physcomitrella patens和拟南芥的花药特异性烷基吡喃酮合酶;类花药特异性查尔酮合酶(CHS)(ASCL)酶是III型尽管对ASCLs的功能作用了解得很少,但PKSs对于雄性植物中可育花粉的发育至关重要。 ASCL与CHS酶相关,但在系统发育上不同。在花粉的结构发育过程中,ASCL酶高表达,表明ASCLs可能参与花粉细胞壁外层的外壁中孢粉的生物合成。在这项研究中,表征了拟南芥的ASCL酶和苔藓假单胞菌的原始ASCL同源物。尽管这些植物之间有很远的进化关系,但与典型的III型植物PKS相比,拟南芥和彭定氏ASCL酶表现出保守的活性,具有异常宽的底物特异性和略微不同的环化策略。在体外,ASCL酶产生烷基吡喃酮产物,尽管在体内可能不会发生。还检查了拟南芥二氢黄酮醇4-还原酶样1(AthDRL1),它是参与孢粉蛋白生物合成的另一种酶,以确定AthDRL1和ASCL在该途径中是否一起起作用。看来AthDRL1可能作用于ASCL的产品。 ASCL的进化关系和保守活性突显了ASCL酶对植物花粉和孢子发育的根本重要性。SPS对III型PKS具有异常的环化和缩合活性,这使其成为研究对照的有希望的目标III型PKS中进行这些活动的机制。对此的更好理解可应用于类似的抗生素生产型I PKS系统,这可能对工程改造这些系统以产生新产品有用。在这项研究中,确定,克隆和部分表征推定的猪大肠杆菌。但是,克隆的酶在体外并不仅具有SPS活性。因此,在阐明该机制之前需要进一步研究。

著录项

  • 作者

    Colpitts, Che Caswell.;

  • 作者单位

    The University of Regina (Canada).;

  • 授予单位 The University of Regina (Canada).;
  • 学科 Chemistry Biochemistry.;Biology Botany.;Biology Molecular.
  • 学位 M.Sc.
  • 年度 2009
  • 页码 92 p.
  • 总页数 92
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:31

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