4.6 Article

LAZY2 controls rice tiller angle through regulating starch biosynthesis in gravity-sensing cells

Journal

NEW PHYTOLOGIST
Volume 231, Issue 3, Pages 1073-1087

Publisher

WILEY
DOI: 10.1111/nph.17426

Keywords

auxin; LAZY2; rice; shoot gravitropism; tiller angle

Categories

Funding

  1. National Natural Science Foundation of China [91935301]
  2. National Key Research and Development Program of China [2016YFD0101801]
  3. Strategic Priority Research Program 'Molecular Mechanism of Plant Growth and Development' of CAS [XDB27010100]
  4. Top Talents Program 'One Case One Discussion (Yishiyiyi)' from Shandong Province

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This study identified the rice tiller angle-related gene LA2 and revealed its mechanism of regulating tiller angle. LA2 mainly regulates tiller angle by controlling starch biosynthesis in rice shoot gravity-sensing cells. LA2 acts upstream of LA1 to mediate lateral auxin transport, thereby regulating shoot gravitropism and tiller angle.
Rice (Oryza sativa) tiller angle is a key component for achieving ideal plant architecture and higher grain yield. However, the molecular mechanism underlying rice tiller angle remains elusive. We characterized a novel rice tiller angle mutant lazy2 (la2) and isolated the causative gene LA2 through map-based cloning. Biochemical, molecular and genetic studies were conducted to elucidate the LA2-involved tiller angle regulatory mechanism. The la2 mutant shows large tiller angle with impaired shoot gravitropism and defective asymmetric distribution of auxin. We found that starch granules in amyloplasts are completely lost in the gravity-sensing leaf sheath base cells of la2, whereas the seed development is not affected. LA2 encodes a novel chloroplastic protein that can interact with the starch biosynthetic enzyme Oryza sativa plastidic phosphoglucomutase (OspPGM) to regulate starch biosynthesis in rice shoot gravity-sensing cells. Genetic analysis showed that LA2 regulates shoot gravitropism and tiller angle by acting upstream of LA1 to mediate lateral auxin transport. Our studies revealed that LA2 acts as a novel regulator of rice tiller angle by specifically regulating starch biosynthesis in gravity-sensing cells, and established the framework of the starch-statolith-dependent rice tiller angle regulatory pathway, providing new insights into the rice tiller angle regulatory network.

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