胚乳
山梨醇
生物
生物化学
果糖
氧化还原
突变体
山梨醇脱氢酶
碳水化合物代谢
新陈代谢
碳水化合物
细胞生物学
氧化应激
二价
活性氧
脱氢酶
氧化磷酸化
淀粉
蔗糖
异柠檬酸脱氢酶
过氧化物酶体
作者
Nadia Mourad,Hardy Rolletschek,Matthias Langer,Maria Angélica Sanclemente,Michelle Saint-Fleur,Lily Herndon,Shan Wu,S. M. de Sousa,Jiahn‐Chou Guan,Karen E. Koch
标识
DOI:10.1093/plcell/koag293
摘要
Abstract Extreme low oxygen is typical of microenvironments inside developing grains, thus requiring metabolic adaptations to hypoxia. Potential contributions from sorbitol dehydrogenase (SDH) are tested here for maize (Zea mays) since the reversible reaction (fructose + NADH ↔ sorbitol + NAD+) can balance both redox state and metabolism during assimilate import into kernels. To do so, we developed and analyzed maize sdh1 mutants and over-expression lines. Dysfunction of Sdh1 decreased seed weight by 17%, impaired starch accumulation, and enhanced levels of glucose, fructose, and sucrose. Redox balance in the inner endosperm was also disrupted (NADH and NADPH levels rose) and adenylate energy charge (AEC) decreased. Moreover, genes responsive to oxidative stress were upregulated in mutant kernels. In contrast, Sdh1-OE lines rescued the small-grain phenotype without exceeding wild-type kernel size. Metabolite profiles of mutant and Sdh1-OE kernels revealed reciprocal levels for sucrose, hexoses, and key points of redox sensitivity and C/N balance. Results are distinct from the classical involvement of sorbitol in long distance transport (as in apples) and its contribution to desiccation tolerance in diverse species. Rather, our analyses support a two-fold contribution by an SDH-modulated sorbitol reservoir that 1) aids redox balance in the hypoxic endosperm by storing excess reductant and 2) minimizes fructose levels that can otherwise inhibit sucrose import, metabolism, and signaling pathways. Collective evidence reveals a previously unrecognized role for sorbitol and SDH in kernel-fill that integrates carbohydrate metabolism and redox balance in the low-oxygen endosperm of this developing grain.
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