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Two Arabidopsis Genes (IPMS1 and IPMS2) Encode Isopropylmalate Synthase the Branchpoint Step in the Biosynthesis of Leucine

机译:两个拟南芥基因(IPMS1和IPMS2)编码苹果酸异丙酯合酶亮氨酸生物合成中的分支步骤

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摘要

Heterologous expression of the Arabidopsis (Arabidopsis thaliana) IPMS1 (At1g18500) and IPMS2 (At1g74040) cDNAs in Escherichia coli yields isopropylmalate synthases (IPMSs; EC 2.3.3.13). These enzymes catalyze the first dedicated step in leucine (Leu) biosynthesis, an aldol-type condensation of acetyl-coenzyme A (CoA) and 2-oxoisovalerate yielding isopropylmalate. Most biochemical properties of IPMS1 and IPMS2 are similar: broad pH optimum around pH 8.5, Mg2+ as cofactor, feedback inhibition by Leu, Km for 2-oxoisovalerate of approximately 300 μm, and a Vmax of approximately 2 × 103 μmol min−1 g−1. However, IPMS1 and IPMS2 differ in their Km for acetyl-CoA (45 μm and 16 μm, respectively) and apparent quaternary structure (dimer and tetramer, respectively). A knockout insertion mutant for IPMS1 showed an increase in valine content but no changes in Leu content; two insertion mutants for IPMS2 did not show any changes in soluble amino acid content. Apparently, in planta each gene can adequately compensate for the absence of the other, consistent with available microarray and reverse transcription-polymerase chain reaction data that show that both genes are expressed in all organs at all developmental stages. Both encoded proteins accept 2-oxo acid substrates in vitro ranging in length from glyoxylate to 2-oxohexanoate, and catalyze at a low rate the condensation of acetyl-CoA and 4-methylthio-2-oxobutyrate, i.e. a reaction involved in glucosinolate chain elongation normally catalyzed by methylthioalkylmalate synthases. The evolutionary relationship between IPMS and methylthioalkylmalate synthase enzymes is discussed in view of their amino acid sequence identity (60%) and overlap in substrate specificity.
机译:拟南芥(Arabidopsis thaliana)IPMS1(At1g18500)和IPMS2(At1g74040)cDNA在大肠杆菌中的异源表达产生了异丙基苹果酸合酶(IPMSs; EC 2.3.3.13)。这些酶催化亮氨酸(Leu)生物合成的第一步,这是乙酰辅酶A(CoA)与2-氧代异戊酸的羟醛缩合反应,生成苹果酸异丙酯。 IPMS1和IPMS2的大多数生化特性相似:在pH 8.5左右的最适pH范围,作为辅助因子的Mg 2 + ,Leu,Km对2-氧代异戊酸的反馈抑制作用约为300μm,Vmax约为2×10 3 μmolmin -1 g -1 。但是,IPMS1和IPMS2在乙酰辅酶A的Km(分别为45μm和16μm)和表观四级结构(分别为二聚体和四聚体)方面有所不同。 IPMS1的基因敲除插入突变体显示缬氨酸含量增加,但Leu含量无变化。 IPMS2的两个插入突变体未显示可溶性氨基酸含量的任何变化。显然,在植物中,每个基因都可以充分补偿另一个基因的缺失,这与可用的微阵列和逆转录聚合酶链反应数据一致,这些数据表明两个基因在所有发育阶段均在所有器官中表达。两种编码蛋白在体外均接受长度范围从乙醛酸酯到2-氧己酸酯的2-氧代酸底物,并以较低的速率催化乙酰辅酶A和4-甲硫基-2-氧代丁酸酯的缩合,即涉及芥子油苷链延长的反应通常由甲基硫代烷基苹果酸合酶催化。考虑到IPMS和甲基硫代烷基苹果酸合酶之间的进化关系,考虑到它们的氨基酸序列同一性(60%)和底物特异性的重叠。

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