BOTRYOID POLLEN 1 regulates ROS-triggered PCD and pollen wall development by controlling UDP-sugar homeostasis in rice

Author:

Chen Huiqiong12ORCID,Zhang Shuqing1ORCID,Li Ruiqi1ORCID,Peng Guoqing1ORCID,Chen Weipan1ORCID,Rautengarten Carsten3ORCID,Liu Minglong1ORCID,Zhu Liya1ORCID,Xiao Yueping1ORCID,Song Fengshun4ORCID,Ni Jinlong4ORCID,Huang Jilei1ORCID,Wu Aimin5ORCID,Liu Zhenlan1ORCID,Zhuang Chuxiong1ORCID,Heazlewood Joshua L3ORCID,Xie Yongyao1ORCID,Chu Zhizhan1ORCID,Zhou Hai1ORCID

Affiliation:

1. State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, Guangdong Laboratory for Lingnan Modern Agriculture College of Life Sciences, South China Agricultural University , Guangzhou 510642 , China

2. Institute of Fruit Tree Research, Guangdong Academy of Agricultural Sciences, Key Laboratory of South Subtropical Fruit Biology and Genetic Resource Utilization, Ministry of Agriculture and Rural Affairs, Guangdong Provincial Key Laboratory of Tropical and Subtropical Fruit Tree Research , Guangzhou 510640 , China

3. School of BioSciences, The University of Melbourne , Parkville, VIC 3010 , Australia

4. Key Laboratory of Rice Genetics Breeding of Anhui Province, Rice Research Institute, Anhui Academy of Agricultural Sciences , Hefei 230001 , China

5. State Key Laboratory for Conservation and Utilization of Subtropical Agro-bioresources, College of Forestry and Landscape Architecture, South China Agricultural University , Guangzhou 510642 , China

Abstract

AbstractUridine diphosphate (UDP)-sugars are important metabolites involved in the biosynthesis of polysaccharides and may be important signaling molecules. UDP-glucose 4-epimerase (UGE) catalyzes the interconversion between UDP-Glc and UDP-Gal, whose biological function in rice (Oryza sativa) fertility is poorly understood. Here, we identify and characterize the botryoid pollen 1 (bp1) mutant and show that BP1 encodes a UGE that regulates UDP-sugar homeostasis, thereby controlling the development of rice anthers. The loss of BP1 function led to massive accumulation of UDP-Glc and imbalance of other UDP-sugars. We determined that the higher levels of UDP-Glc and its derivatives in bp1 may induce the expression of NADPH oxidase genes, resulting in a premature accumulation of reactive oxygen species (ROS), thereby advancing programmed cell death (PCD) of anther walls but delaying the end of tapetal degradation. The accumulation of UDP-Glc as metabolites resulted in an abnormal degradation of callose, producing an adhesive microspore. Furthermore, the UDP-sugar metabolism pathway is not only involved in the formation of intine but also in the formation of the initial framework for extine. Our results reveal how UDP-sugars regulate anther development and provide new clues for cellular ROS accumulation and PCD triggered by UDP-Glc as a signaling molecule.

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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