Understanding the amylose biosynthesis and regulation mechanisms in Tartary buckwheat by the endosperm transcriptome

胚乳 直链淀粉 淀粉 生物合成 淀粉合成酶 生物 基因 生物化学 转录组 食品科学 化学 植物 基因表达 支链淀粉
作者
Lei Wang,Yuanbin Mao,Shuyan Zhou,Linling Liu,Tao Wang,Chenglei Li,Huala Wu,Haixia Zhao,Anhu Wang,Shengchun Li,Qi Wu
出处
期刊:International Journal of Biological Macromolecules [Elsevier BV]
卷期号:279: 135275-135275 被引量:1
标识
DOI:10.1016/j.ijbiomac.2024.135275
摘要

Starch serves as a crucial energy source for both plants and humans, predominantly synthesized and stored in endosperms, tubers, rhizomes, and cotyledons. Given the significant role of amylose in determining the quality of starchy crops, optimizing its content has become a key objective in current crop breeding efforts. Tartary buckwheat, a dicotyledonous plant, notably accumulates high levels of amylose in its endosperm, surpassing common cereals like rice and maize. However, the mechanisms underlying amylose accumulation, distribution, and regulation in Tartary buckwheat remain unclear. Here, amylose content was determined across various tissues and organs of Tartary buckwheat, identifying with the endosperm as the primary site for its biosynthesis and accumulation. RNA sequencing analysis of endosperms from different developmental stages identified 35 genes potentially involved in starch biosynthesis, with 13 genes showing high endosperm-specific expression, suggesting crucial roles in starch biosynthesis. Additionally, the transcription factor FtNF-YB2, which was specifically highly expressed in the endosperm, was discovered to enhance amylose synthesis. Moreover, promoters with potential endosperm-specific activity were identified, advancing our understanding of amylose regulation. Additionally, this study also demonstrates that brassinosteroids (BR) positively influence amylose biosynthesis in Tartary buckwheat endosperm. These findings provide essential insights into the mechanisms of understanding amylose biosynthesis, accumulation and regulation in Tartary buckwheat, offering significant implications for future breeding strategies.
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