Synthesis of β-Alanine From Isoleucine and Propionate Catabolism via Aminotransferases.

IF 2.3 3区 生物学 Q2 PLANT SCIENCES Plant Direct Pub Date : 2024-12-18 eCollection Date: 2024-12-01 DOI:10.1002/pld3.70030
Margo H Goldfarb, Joseph Boesel, Kai C Wilczewski-Shirai, Peter Reinhart, Trenton Scherger, Chloe Webb, Morgan Newlun, Kerry A Rouhier
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Abstract

In plants, the nonproteinogenic amino acid β-alanine plays a role in response to hypoxia, flooding, drought, heat, and heavy metal stress conditions. It is also a key intermediate in the synthesis of essential molecules including vitamin B5 and coenzyme A (CoA) through the condensation reaction with pantoate. While the syntheses of pantoate, vitamin B5, and CoA appear to be conserved across plants and bacteria, the synthesis of β-alanine is not. Bacteria and fungi use aspartate, whereas plants can use uracil, spermidine, or propionate to synthesize β-alanine. Given that these three precursors can be formed from the metabolism of glutamine, arginine, isoleucine, and valine, the synthesis of β-alanine could be linked to numerous pathways. Studies of valine catabolism in Arabidopsis suggested that some branched-chain amino acids could in fact serve as precursors for the synthesis of β-alanine. Using GC-MS and isotopically labeled isoleucine and propionate, we linked their metabolism to the synthesis of β-alanine via a proposed transamination of malonate semialdehyde. We then identified three aminotransferases that each catalyzed this final reversible transamination reaction. These results affirm our hypothesis that isoleucine metabolism is also linked to the synthesis of β-alanine via the transamination of metabolic intermediates.

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异亮氨酸和丙酸通过转氨酶分解代谢合成β-丙氨酸。
在植物中,非蛋白氨基酸β-丙氨酸在缺氧、洪水、干旱、高温和重金属胁迫条件下发挥作用。它也是通过与泛酸盐缩合反应合成维生素B5和辅酶a (CoA)等必需分子的关键中间体。虽然泛酸盐、维生素B5和辅酶a的合成在植物和细菌中似乎是保守的,但β-丙氨酸的合成却不是。细菌和真菌使用天冬氨酸,而植物可以使用尿嘧啶、亚精胺或丙酸合成β-丙氨酸。鉴于这三种前体可以通过谷氨酰胺、精氨酸、异亮氨酸和缬氨酸的代谢形成,β-丙氨酸的合成可能与许多途径有关。拟南芥中缬氨酸分解代谢的研究表明,一些支链氨基酸实际上可以作为β-丙氨酸合成的前体。通过GC-MS和同位素标记异亮氨酸和丙酸,我们将它们的代谢与丙二酸半醛的转氨化合成β-丙氨酸联系起来。然后我们确定了三种转氨酶,每一种都催化了这个最终可逆的转氨化反应。这些结果证实了我们的假设,即异亮氨酸代谢也通过代谢中间体的转氨化与β-丙氨酸的合成有关。
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来源期刊
Plant Direct
Plant Direct Environmental Science-Ecology
CiteScore
5.00
自引率
3.30%
发文量
101
审稿时长
14 weeks
期刊介绍: Plant Direct is a monthly, sound science journal for the plant sciences that gives prompt and equal consideration to papers reporting work dealing with a variety of subjects. Topics include but are not limited to genetics, biochemistry, development, cell biology, biotic stress, abiotic stress, genomics, phenomics, bioinformatics, physiology, molecular biology, and evolution. A collaborative journal launched by the American Society of Plant Biologists, the Society for Experimental Biology and Wiley, Plant Direct publishes papers submitted directly to the journal as well as those referred from a select group of the societies’ journals.
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