Browse Articles

Article|08 Oct 2024|OPEN
Natural variation in MdNAC5 contributes to fruit firmness and ripening divergence in apple
Li Liu1,2 ,† , Yuanji Wang1 ,† , Jianhua Guo1 , Ziqi Han1 , Kaixuan Yu1 , Yaxiao Song1 , Hongfei Chen3 , Hua Gao1 , and Yazhou Yang1 , , Zhengyang Zhao,1 ,
1State Key Laboratory of Crop Stress Biology for Arid Areas, College of Horticulture, Northwest A&F University, Yangling 712100, Shaanxi, China
2College of Life Science, Northwest A&F University, Yangling 712100, Shaanxi, China
3Department of Ecology and Evolutionary Biology, Yale University, New Haven, CT 06520, USA
*Corresponding author. E-mail: gaohua@nwafu.edu.cn,yangyz@nwafu.edu.cn,zhaozy@nwafu.edu.cn
Both authors contributed equally to the study.

Horticulture Research 12,
Article number: uhae284 (2025)
doi: https://doi.org/10.1093/hr/uhae284
Views: 2610

Received: 13 Jul 2024
Accepted: 26 Sep 2024
Published online: 08 Oct 2024

Abstract

Fruit firmness is an important trait for characterizing the quality and value of apple. It also serves as an indicator of fruit maturity, as it is a complex trait regulated by multiple genes. Resequencing techniques can be employed to elucidate variations in such complex fruit traits. Here, the whole genomes of 294 F1 hybrids of ‘Fuji’ and ‘Cripp's Pink’ were resequenced, and a high-density binmap was constructed using 5014 bin markers with a total map distance of 2213.23 cM and an average map distance of 0.44 cM. Quantitative trait loci (QTLs) of traits related to fruit were mapped, and an A-T allele variant identified in the coding region of MdNAC5 was found to potentially regulate fruit firmness and ripening. The overexpression of MdNAC5A resulted in higher production of methionine and 1-aminocyclopropanecarboxylic acid compared to MdNAC5T, leading to reduced fruit firmness and accelerated ripening in apples and tomatoes. Furthermore, the activities of MdNAC5A and MdNAC5T were enhanced through their differential binding to the promoter regions of MdACS1 and MdERF3. Spatial variations in MdNAC5A and MdNAC5T caused changes in MdACS1 expression following their interaction with MdERF3. Ultimately, utilizing different MdNAC5 alleles offers a strategy to manipulate fruit firmness in apple breeding.