UMAMIT44 is a key player in glutamate export from Arabidopsis chloroplasts

Samantha Vivia The, James P Santiago, Clara Pappenberger, Ulrich Z Hammes, Mechthild Tegeder
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Abstract

Selective partitioning of amino acids among organelles, cells, tissues, and organs is essential for cellular metabolism and plant growth. Nitrogen assimilation into glutamine and glutamate and de novo biosynthesis of most protein amino acids occurs in chloroplasts; therefore, various transport mechanisms must exist to accommodate their directional efflux from the stroma to the cytosol and feed the amino acids into the extraplastidial metabolic and long-distance transport pathways. Yet, Arabidopsis (Arabidopsis thaliana) transporters functioning in plastidial export of amino acids remained undiscovered. Here, USUALLY MULTIPLE ACIDS MOVE IN AND OUT TRANSPORTER 44 (UMAMIT44) was identified and shown to function in glutamate export from Arabidopsis chloroplasts. UMAMIT44 controls glutamate homeostasis within and outside of chloroplasts and influences nitrogen partitioning from leaves to sinks. Glutamate imbalances in chloroplasts and leaves of umamit44 mutants impact cellular redox state, nitrogen and carbon metabolism, and amino acid and sucrose supply of growing sinks, leading to negative effects on plant growth. Nonetheless, the mutant lines adjust to some extent by upregulating alternative pathways for glutamate synthesis outside the plastids and by mitigating oxidative stress through the production of other amino acids and antioxidants. Overall, this study establishes that the role of UMAMIT44 in glutamate export from chloroplasts is vital for controlling nitrogen availability within source leaf cells and for sink nutrition, with impact on growth and seed yield.
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UMAMIT44 是拟南芥叶绿体输出谷氨酸的关键角色
氨基酸在细胞器、细胞、组织和器官之间的选择性分配是细胞代谢和植物生长所必需的。氮向谷氨酰胺和谷氨酸的同化以及大多数蛋白质氨基酸的重新生物合成发生在叶绿体中;因此,必须存在各种运输机制,以适应它们从基质到细胞质的定向外排,并将氨基酸送入胞外代谢和长距离运输途径。然而,拟南芥(拟南芥)转运蛋白在氨基酸的可塑性输出中仍未被发现。本研究发现,通常多种酸进出转运蛋白44 (UMAMIT44)在拟南芥叶绿体谷氨酸输出中起作用。UMAMIT44控制叶绿体内外谷氨酸的稳态,并影响从叶片到汇的氮分配。突变体umamit44叶绿体和叶片中谷氨酸失衡,影响细胞氧化还原状态、氮碳代谢、生长汇氨基酸和蔗糖供应,对植物生长产生负面影响。尽管如此,突变系在一定程度上通过上调质体外谷氨酸合成的替代途径以及通过产生其他氨基酸和抗氧化剂来减轻氧化应激来进行调节。总的来说,本研究表明,UMAMIT44在叶绿体谷氨酸输出中的作用对于控制源叶细胞内氮的有效性和库营养至关重要,并影响生长和种子产量。
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