An arginine-to-histidine mutation in flavanone-3-hydroxylase results in pink strawberry fruits

Author:

Xu Pengbo1,Li Xinyu1,Fan Junmiao1,Tian Shuhua2ORCID,Cao Minghao13ORCID,Lin Anqi1,Gao Qinhua4ORCID,Xiao Kun15,Wang Chong1,Kuang Huiyun6,Lian Hongli1ORCID

Affiliation:

1. Shanghai Collaborative Innovation Center of Agri-Seeds, School of Agriculture and Biology, Shanghai Jiao Tong University , Shanghai 200240 , China

2. School of Advanced Agricultural Sciences, Peking University , Beijing 100871 , China

3. Department of Ecology, Lishui University , Lishui 323000 , China

4. Shanghai Key Laboratory of Protected Horticultural Technology, Forestry and Fruit Tree Research Institute, Shanghai Academy of Agricultural Sciences , Shanghai 201403 , China

5. College of Horticultural Science, Hebei Normal University of Science and Technology , Qinhuangdao 066004 , China

6. Crop Breeding and Cultivation Research Institute, Shanghai Academy of Agricultural Sciences 201403 , Shanghai , China

Abstract

Abstract Fruit color is a very important external commodity factor for consumers. Compared to the most typical red octoploid strawberry (Fragaria × ananassa), the pink strawberry often sells for a more expensive price and has a higher economic benefit due to its outstanding color. However, few studies have examined the molecular basis of pink-colored strawberry fruit. Through an EMS mutagenesis of woodland strawberry (Fragaria vesca), we identified a mutant with pink fruits and green petioles. Bulked-segregant analysis sequencing analysis and gene function verification confirmed that the responsible mutation resides in a gene encoding flavanone-3-hydroxylase (F3H) in the anthocyanin synthesis pathway. This nonsynonymous mutation results in an arginine-to-histidine change at position 130 of F3H. Molecular docking experiments showed that the arginine-to-histidine mutation results in a reduction of intermolecular force-hydrogen bonding between the F3H protein and its substrates. Enzymatic experiments showed a greatly reduced ability of the mutated F3H protein to catalyze the conversion of the substrates and hence a blockage of the anthocyanin synthesis pathway. The discovery of a key residue in the F3H gene controlling anthocyanin synthesis provides a clear target of modification for the molecular breeding of strawberry varieties with pink-colored fruits, which may be of great commercial value.

Funder

The National Natural Science Foundation of China

China Postdoctoral Science Foundation

Natural Science Foundation of Shanghai

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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