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4-香豆酸辅酶 A 连接酶 4CL4 通过根生长扩大参与水稻磷的获取和根际微生物的招募。

Involvement of the 4-coumarate:coenzyme A ligase 4CL4 in rice phosphorus acquisition and rhizosphere microbe recruitment via root growth enlargement.

机构信息

State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing, 210008, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Planta. 2023 May 24;258(1):7. doi: 10.1007/s00425-023-04158-4.

Abstract

The 4-coumarate:coenzyme A ligase 4CL4 is involved in enhancing rice P acquisition and use in acid soil by enlarging root growth and boosting functional rhizosphere microbe recruitment. Rice (Oryza sativa L.) cannot easily acquire phosphorus (P) from acid soil, where root growth is inhibited and soil P is fixed. The combination of roots and rhizosphere microbiota is critical for plant P acquisition and soil P mobilization, but the associated molecular mechanism in rice is unclear. 4CL4/RAL1 encodes a 4-coumarate:coenzyme A ligase related to lignin biosynthesis in rice, and its dysfunction results in a small rice root system. In this study, soil culture and hydroponic experiments were conducted to examine the role of RAL1 in regulating rice P acquisition, fertilizer P use, and rhizosphere microbes in acid soil. Disruption of RAL1 markedly decreased root growth. Mutant rice plants exhibited decreased shoot growth, shoot P accumulation, and fertilizer P use efficiency when grown in soil-but not under hydroponic conditions, where all P is soluble and available for plants. Mutant ral1 and wild-type rice rhizospheres had distinct bacterial and fungal community structures, and wild-type rice recruited some genotype-specific microbial taxa associated with P solubilization. Our results highlight the function of 4CL4/RAL1 in enhancing rice P acquisition and use in acid soil, namely by enlarging root growth and boosting functional rhizosphere microbe recruitment. These findings can inform breeding strategies to improve P use efficiency through host genetic manipulation of root growth and rhizosphere microbiota.

摘要

4-香豆酸:辅酶 A 连接酶 4CL4 通过扩大根系生长和促进功能根际微生物的招募来增强水稻在酸性土壤中对磷的获取和利用。水稻在酸性土壤中不易获取磷,因为这种土壤会抑制根系生长并固定土壤中的磷。根和根际微生物群对于植物获取磷和土壤磷的动员至关重要,但水稻中相关的分子机制尚不清楚。4CL4/RAL1 编码一个与水稻木质素生物合成有关的 4-香豆酸:辅酶 A 连接酶,其功能障碍会导致水稻根系较小。在本研究中,通过土壤培养和水培实验来检验 RAL1 在调节水稻磷获取、肥料磷利用和酸性土壤根际微生物中的作用。RAL1 的破坏显著降低了根系生长。与在土壤中生长的情况相比,突变体水稻植株在水培条件下的地上部生长、地上部磷积累和肥料磷利用效率降低,因为在水培条件下所有磷都是可溶的且可供植物利用。突变体 ral1 和野生型水稻的根际具有不同的细菌和真菌群落结构,野生型水稻招募了一些与磷溶解有关的特定基因型的微生物类群。我们的结果强调了 4CL4/RAL1 在增强水稻在酸性土壤中对磷的获取和利用的功能,即通过扩大根系生长和促进功能根际微生物的招募。这些发现可以为通过宿主对根生长和根际微生物群的遗传操作来改善磷利用效率的育种策略提供信息。

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