aba -生长素级联调控作物根系角度对干旱的响应。

IF 8.1 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Current Biology Pub Date : 2025-01-08 DOI:10.1016/j.cub.2024.12.003
Yali Xiong, Xiaoyun Song, Poonam Mehra, Suhang Yu, Qiaoyi Li, Dilixiadanmu Tashenmaimaiti, Malcolm Bennett, Xiuzhen Kong, Rahul Bhosale, Guoqiang Huang
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引用次数: 0

摘要

通过控制作物根系结构(RSA)来增强抗旱性是应对粮食不安全挑战的一项关键战略。脱落酸(ABA)在抗旱性中起重要作用;然而,其调控RSA的分子机制,特别是在谷类作物中,仍不清楚。在这项研究中,我们报道了一个新的机制,ABA介导局部生长素的生物合成来调节根向地性反应,从而控制RSA对干旱的响应。在干旱条件下,野生型(WT)植株的根角比正常条件下陡,而ABA生物合成突变体(mhz4、mhz5、osaba1和osaba2)的冠根角明显变浅。向地性实验表明,与野生型植物相比,ABA生物合成突变体的向地性反应减弱。激素谱分析表明,mhz5突变体根尖生长素水平降低,外源生长素(萘乙酸[NAA])恢复了其根向地性缺陷。与此一致,mhz5的生长素报告分析显示,与WT植株相比,在向地性弯曲反应中,根表皮生长素梯度形成减少。此外,乙酰天冬氨酸,而非阿坝,能够拯救妥协gravitropic响应生长素生物合成的突变mhz10-1 /氨基酸色氨酸transferase2 (ostar2)。此外,玉米ABA生物合成的突变viviparous5 (vp5)也显示gravitropic缺陷和浅比WT植物的根角,由外部生长素恢复治疗。综上所述,我们认为aba诱导的生长素合成控制着根向地性机制,从而影响水稻、玉米和其他谷类作物的根角。
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ABA-auxin cascade regulates crop root angle in response to drought.

Enhancing drought resistance through the manipulation of root system architecture (RSA) in crops represents a crucial strategy for addressing food insecurity challenges. Abscisic acid (ABA) plays important roles in drought tolerance; yet, its molecular mechanisms in regulating RSA, especially in cereal crops, remain unclear. In this study, we report a new mechanism whereby ABA mediates local auxin biosynthesis to regulate root gravitropic response, thereby controlling the alteration of RSA in response to drought in cereal crops. Under drought conditions, wild-type (WT) plants displayed a steep root angle compared with normal conditions, while ABA biosynthetic mutants (mhz4, mhz5, osaba1, and osaba2) showed a significantly shallower crown root angle. Gravitropic assays revealed that ABA biosynthetic mutants have reduced gravitropic responses compared with WT plants. Hormone profiling analysis indicated that the mhz5 mutant has reduced auxin levels in root tips, and exogenous auxin (naphthaleneacetic acid [NAA]) application restored its root gravitropic defects. Consistently, auxin reporter analysis in mhz5 showed a reduced auxin gradient formation in root epidermis during gravitropic bending response compared with WT plants. Furthermore, NAA, rather than ABA, was able to rescue the compromised gravitropic response in the auxin biosynthetic mutant mhz10-1/tryptophan amino transferase2 (ostar2). Additionally, the maize ABA biosynthetic mutant viviparous5 (vp5) also showed gravitropic defects and a shallower seminal root angle than WT plants, which were restored by external auxin treatment. Collectively, we suggest that ABA-induced auxin synthesis governs the root gravitropic machinery, thereby influencing root angle in rice, maize, and possibly other cereal crops.

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来源期刊
Current Biology
Current Biology 生物-生化与分子生物学
CiteScore
11.80
自引率
2.20%
发文量
869
审稿时长
46 days
期刊介绍: Current Biology is a comprehensive journal that showcases original research in various disciplines of biology. It provides a platform for scientists to disseminate their groundbreaking findings and promotes interdisciplinary communication. The journal publishes articles of general interest, encompassing diverse fields of biology. Moreover, it offers accessible editorial pieces that are specifically designed to enlighten non-specialist readers.
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