Myo-inositol oxygenase CgMIOX3 alleviates S-RNase-induced inhibition of incompatible pollen tubes in pummelo

Author:

Xu Qiang1ORCID,Liu Chenchen1,Zhang Zhezhong1,Cao Zonghong1,Liang Mei1ORCID,Ye Changning1,Lin Zongcheng12ORCID,Deng Xiuxin12ORCID,Ye Junli1ORCID,Bosch Maurice3ORCID,Chai Lijun1ORCID

Affiliation:

1. National Key Laboratory for Germplasm Innovation and Utilization of Horticultural Crops, College of Horticulture and Forestry Science, Huazhong Agricultural University , Wuhan, 430070 , China

2. Hubei Hongshan Laboratory , Wuhan, 430070 , China

3. Institute of Biological, Environmental and Rural Sciences (IBERS), Aberystwyth University , Gogerddan, Aberystwyth, SY23 3EB , UK

Abstract

Abstract Pummelo (Citrus grandis L. Osbeck) exhibits S-RNase-based self-incompatibility (SI), during which S-RNase cytotoxicity inhibits pollen tubes in an S-haplotype-specific manner. The entry of S-RNase into self-pollen tubes triggers a series of reactions. However, these reactions are still poorly understood in pummelo. In the present study, we used S-RNases as baits to screen a pummelo pollen cDNA library and characterized a myo-inositol oxygenase (CgMIOX3) that physically interacts with S-RNases. CgMIOX3 is highly expressed in pummelo pollen tubes, and its downregulation leads to a reduction in pollen tube growth. Upon entering pollen tubes, S-RNases increase the expression of CgMIOX3 and enhance its activity by directly binding to it in an S-haplotype-independent manner. CgMIOX3 improves pollen tube growth under oxidative stress through ascorbic acid (AsA) accumulation and increases the length of self-pollen tubes. Furthermore, over-expression of CgMIOX3 increases the relative length of self-pollen tubes growing in the style of petunia (Petunia hybrida). This study provides intriguing insights into the pumelo SI system, revealing a regulatory mechanism mediated by CgMIOX3 that plays an important role in the resistance of pollen tubes to S-RNase cytotoxicity.

Funder

National Natural Science Foundation of China

Key-Area Research and Development Program of Guangdong Province

China Agriculture Research System

Publisher

Oxford University Press (OUP)

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