碳氮代谢非加性基因表达驱动三角杨生长杂种优势

IF 6 1区 生物学 Q1 PLANT SCIENCES
Jing Zhang, Weixi Zhang, Changjun Ding, Jun Zhao, Xuehui Su, Zhengsai Yuan, Yanguang Chu, Qinjun Huang, Xiaohua Su
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引用次数: 0

摘要

三角杨树是温带地区重要的工业用材和生态建设树种,其生长优势是选育的关键。然而,碳(C)-氮(N)代谢协调调节生长杂种优势的分子机制尚不清楚。高杂交种在生长性状和碳氮代谢关键酶方面表现出高亲本优势和中亲本优势。在杂交种中,基因表达模式主要偏向于母本。亲本对三角花生长杂种优势的贡献是分化,而不是绝对的母本或父本优势贡献。亲本基因以非加性方式显性动态遗传,以显性表达模式为主。共有44个与光合固碳、淀粉和蔗糖代谢、蔗糖转运、光呼吸和氮代谢相关的非加性基因通过协调C- n代谢来共同调节生长杂种优势。生长调节因子4与DELLA基因相互作用,通过加强这种协调来促进生长。此外,还鉴定了5个关键基因。简而言之,高杂交种的上述基因通过调节碳水化合物积累和酶活性来提高光合作用和氮利用率,同时降低呼吸能量消耗,从而为生长提供更多能量,促进生长杂种优势。本研究结果为深入认识树木杂种优势的遗传和分子调控机制及其在精密杂交育种中的应用提供了新的见解和理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-Additive Gene Expression in Carbon and Nitrogen Metabolism Drives Growth Heterosis in Populus deltoides.

Growth heterosis is crucial for Populus deltoides breeding, a key industrial-timber and ecological-construction tree species in temperate regions. However, the molecular mechanisms underlying carbon (C)-nitrogen (N) metabolism coordination in regulating growth heterosis remain unclear. Herein high-hybrids of P. deltoides exhibited high-parent heterosis and mid-parent heterosis in growth traits and key enzymes of C-N metabolism. In hybrids, gene expression patterns were mainly biased toward female parent. Parental contribution to growth heterosis in P. deltoides is differentiation, rather than absolute maternal or paternal dominance contributions. Parental genes were predominantly and dynamically inherited in a non-additive manner, mainly with dominant expression patterns. A total of 44 non-additive genes associated with photosynthetic C fixation, starch and sucrose metabolism, sucrose transport, photorespiration, and nitrogen metabolism coregulated growth heterosis by coordinating C-N metabolism. Growth-regulating factors 4 interacted with DELLA genes to promote growth by enhancing this coordination. Additionally, five critical genes were identified. Briefly, the above genes in high-hybrids improved photosynthesis and N utilisation by regulating carbohydrate accumulation and enzyme activity, while reducing respiratory energy consumption, thereby providing more energy for growth and promoting growth heterosis. Our findings offer new insights and theoretical basis for deep understanding genetic and molecular regulation mechanisms of tree heterosis and its application in precision hybrid breeding.

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来源期刊
Plant, Cell & Environment
Plant, Cell & Environment 生物-植物科学
CiteScore
13.30
自引率
4.10%
发文量
253
审稿时长
1.8 months
期刊介绍: Plant, Cell & Environment is a premier plant science journal, offering valuable insights into plant responses to their environment. Committed to publishing high-quality theoretical and experimental research, the journal covers a broad spectrum of factors, spanning from molecular to community levels. Researchers exploring various aspects of plant biology, physiology, and ecology contribute to the journal's comprehensive understanding of plant-environment interactions.
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