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本文引用的文献

1
C acid decarboxylases required for C photosynthesis are active in the mid-vein of the C species Arabidopsis thaliana, and are important in sugar and amino acid metabolism.C 光合作用所需的 C 酸脱羧酶在 C 种拟南芥的中脉中具有活性,并且在糖和氨基酸代谢中很重要。
Plant J. 2010 Jan;61(1):122-33. doi: 10.1111/j.1365-313X.2009.04040.x. Epub 2009 Oct 6.
2
Bacterial-type phosphoenolpyruvate carboxylase (PEPC) functions as a catalytic and regulatory subunit of the novel class-2 PEPC complex of vascular plants.细菌型磷酸烯醇式丙酮酸羧化酶(PEPC)作为维管植物新型2类PEPC复合体的催化和调节亚基发挥作用。
J Biol Chem. 2009 Sep 11;284(37):24797-805. doi: 10.1074/jbc.M109.022863. Epub 2009 Jul 15.
3
Nicotiana tabacum NADP-malic enzyme: cloning, characterization and analysis of biological role.烟草NADP - 苹果酸酶:克隆、特性鉴定及生物学作用分析
Plant Cell Physiol. 2008 Mar;49(3):469-80. doi: 10.1093/pcp/pcn022. Epub 2008 Feb 13.
4
Arabidopsis NAD-malic enzyme functions as a homodimer and heterodimer and has a major impact on nocturnal metabolism.拟南芥NAD-苹果酸酶以同二聚体和异二聚体形式发挥作用,对夜间代谢有重大影响。
Plant Physiol. 2008 Apr;146(4):1540-52. doi: 10.1104/pp.107.114975. Epub 2008 Jan 25.
5
Alteration of organic acid metabolism in Arabidopsis overexpressing the maize C4 NADP-malic enzyme causes accelerated senescence during extended darkness.过表达玉米C4型NADP-苹果酸酶的拟南芥中有机酸代谢的改变导致在长时间黑暗期间衰老加速。
Plant Physiol. 2007 Nov;145(3):640-52. doi: 10.1104/pp.107.104455. Epub 2007 Sep 20.
6
A heteromeric plastidic pyruvate kinase complex involved in seed oil biosynthesis in Arabidopsis.一种参与拟南芥种子油生物合成的异源质体丙酮酸激酶复合体。
Plant Cell. 2007 Jun;19(6):2006-22. doi: 10.1105/tpc.106.048629. Epub 2007 Jun 8.
7
Phosphoenolpyruvate metabolism in Jerusalem artichoke mitochondria.菊芋线粒体中磷酸烯醇丙酮酸的代谢
Biochim Biophys Acta. 2007 Apr;1767(4):281-94. doi: 10.1016/j.bbabio.2007.02.010. Epub 2007 Feb 23.
8
Expression of an NADP-malic enzyme gene in rice (Oryza sativa. L) is induced by environmental stresses; over-expression of the gene in Arabidopsis confers salt and osmotic stress tolerance.水稻(Oryza sativa. L)中一种NADP - 苹果酸酶基因的表达受环境胁迫诱导;该基因在拟南芥中的过表达赋予了其对盐胁迫和渗透胁迫的耐受性。
Plant Mol Biol. 2007 May;64(1-2):49-58. doi: 10.1007/s11103-007-9133-3. Epub 2007 Jan 24.
9
Malate- and pyruvate-dependent Fatty Acid synthesis in leucoplasts from developing castor endosperm.发育中的蓖麻胚乳白色体中依赖苹果酸和丙酮酸的脂肪酸合成
Plant Physiol. 1992 Apr;98(4):1233-8. doi: 10.1104/pp.98.4.1233.
10
Malic enzymes of higher plants: characteristics, regulation, and physiological function.高等植物中的苹果酸酶:特性、调节和生理功能。
Plant Physiol. 1989 Jun;90(2):367-71. doi: 10.1104/pp.90.2.367.

拟南芥中通过亚基组合的差异和组织特异性 NAD-苹果酸酶。

Three different and tissue-specific NAD-malic enzymes generated by alternative subunit association in Arabidopsis thaliana.

机构信息

Centro de Estudios Fotosintéticos y Bioquímicos, Universidad Nacional de Rosario, Rosario, Argentina.

出版信息

J Biol Chem. 2010 Apr 16;285(16):11870-9. doi: 10.1074/jbc.M109.097477. Epub 2010 Feb 4.

DOI:10.1074/jbc.M109.097477
PMID:20133948
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2852924/
Abstract

The Arabidopsis thaliana genome contains two genes encoding the mitochondrial NAD-malic enzyme (NAD-ME), NAD-ME1 (At2g13560) and NAD-ME2 (At4g00570). The characterization of recombinant NAD-ME1 and -2 indicated that both enzymes assemble as active homodimers; however, a heterodimeric enzyme (NAD-MEH) can also be detected by electrophoretic studies. To analyze the metabolic contribution of each enzymatic entity, NAD-MEH was obtained by a co-expression-based recombinant approach, and its kinetic and regulatory properties were analyzed. The three NAD-MEs show similar kinetic properties, although they differ in the regulation by several metabolic effectors. In this regard, whereas fumarate activates NAD-ME1 and CoA activates NAD-ME2, both compounds act synergistically on NAD-MEH activity. The characterization of two chimeric enzymes between NAD-ME1 and -2 allowed specific domains of the primary structure, which are involved in the differential allosteric regulation, to be identified. NAD-ME1 and -2 subunits showed a distinct pattern of accumulation in the separate components of the floral organ. In sepals, the NAD-ME1 subunit is present at a slightly higher proportion than the NAD-ME2 subunit, and thus, NAD-MEH and NAD-ME1 act in concert in this tissue. On the other hand, NAD-ME2 is the only isoform present in anthers. In view of the different properties of NAD-ME1, -2, and -H, we suggest that mitochondrial NAD-ME activity may be regulated by varying native association in vivo, rendering enzymatic entities with distinct allosteric regulation to fulfill specific roles. The presence of three different NAD-ME entities, which originate by alternative associations of two subunits, is suggested to be a novel phenomenon unique to plant mitochondria.

摘要

拟南芥基因组包含两个编码线粒体 NAD-苹果酸酶(NAD-ME)的基因,NAD-ME1(At2g13560)和 NAD-ME2(At4g00570)。重组 NAD-ME1 和 -2 的特性表明,这两种酶均以活性同源二聚体组装;然而,电泳研究也可以检测到异源二聚体酶(NAD-MEH)。为了分析每种酶实体的代谢贡献,通过基于共表达的重组方法获得 NAD-MEH,并对其动力学和调节特性进行了分析。这三种 NAD-ME 具有相似的动力学特性,尽管它们在几种代谢效应物的调节方面存在差异。在这方面,延胡索酸盐激活 NAD-ME1,CoA 激活 NAD-ME2,而这两种化合物对 NAD-MEH 活性均具有协同作用。两种 NAD-ME1 和 -2 之间的嵌合酶的特性允许鉴定参与差异变构调节的一级结构的特定结构域。NAD-ME1 和 -2 亚基在花器官的单独成分中的积累模式明显不同。在萼片中,NAD-ME1 亚基的存在比例略高于 NAD-ME2 亚基,因此,NAD-MEH 和 NAD-ME1 在该组织中协同作用。另一方面,NAD-ME2 是花药中唯一存在的同工型。鉴于 NAD-ME1、-2 和 -H 的不同特性,我们建议线粒体 NAD-ME 活性可能通过体内的不同天然缔合进行调节,从而产生具有不同变构调节的酶实体以发挥特定作用。三种不同的 NAD-ME 实体的存在,它们由两个亚基的替代缔合产生,被认为是植物线粒体所特有的一种新现象。