MtPIN4 plays critical roles in amino acid biosynthesis and metabolism of seed in Medicago truncatula

SUMMARY The regulation of seed development is critical for determining crop yield. Auxins are vital phytohormones that play roles in various aspects of plant growth and development. However, its role in amino acid biosynthesis and metabolism in seeds is not fully understood. In this study, we identi...

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Veröffentlicht in:The Plant journal : for cell and molecular biology 2024-07, Vol.119 (2), p.689-704
Hauptverfasser: Jiang, Hongjiao, Xie, Lijun, Gu, Zhiqun, Mei, Hongyao, Wang, Haohao, Zhang, Jing, Wang, Minmin, Xu, Yiteng, Zhou, Chuanen, Han, Lu
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Sprache:eng
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Zusammenfassung:SUMMARY The regulation of seed development is critical for determining crop yield. Auxins are vital phytohormones that play roles in various aspects of plant growth and development. However, its role in amino acid biosynthesis and metabolism in seeds is not fully understood. In this study, we identified a mutant with small seeds through forward genetic screening in Medicago truncatula. The mutated gene encodes MtPIN4, an ortholog of PIN1. Using molecular approaches and integrative omics analyses, we discovered that auxin and amino acid content significantly decreased in mtpin4 seeds, highlighting the role of MtPIN4‐mediated auxin distribution in amino acid biosynthesis and metabolism. Furthermore, genetic analysis revealed that the three orthologs of PIN1 have specific and overlapping functions in various developmental processes in M. truncatula. Our findings emphasize the significance of MtPIN4 in seed development and offer insights into the molecular mechanisms governing the regulation of seed size in crops. This knowledge could be applied to enhance crop quality by targeted manipulation of seed protein regulatory pathways. Significance Statement Auxins play important roles in various aspects of plant growth and development. In Medicago truncatula, orthologs of PIN1‐mediated auxin transportation are involved in various developmental processes and amino acid biosynthesis and metabolism in seeds, which offers insights into the molecular mechanisms governing seed size regulation in crops.
ISSN:0960-7412
1365-313X
1365-313X
DOI:10.1111/tpj.16787