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Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction

Retention of flesh texture attributes during cold storage is critical for the long‐term maintenance of fruit quality. The genetic variations determining flesh firmness and crispness retainability are not well understood. The objectives of this study are to identify gene markers based on quantitative...

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Autores principales: Wu, Bei, Shen, Fei, Wang, Xuan, Zheng, Wen Yan, Xiao, Chen, Deng, Yang, Wang, Ting, Yu Huang, Zhen, Zhou, Qian, Wang, Yi, Wu, Ting, Feng Xu, Xue, Hai Han, Zhen, Zhong Zhang, Xin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131039/
https://www.ncbi.nlm.nih.gov/pubmed/33319456
http://dx.doi.org/10.1111/pbi.13527
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author Wu, Bei
Shen, Fei
Wang, Xuan
Zheng, Wen Yan
Xiao, Chen
Deng, Yang
Wang, Ting
Yu Huang, Zhen
Zhou, Qian
Wang, Yi
Wu, Ting
Feng Xu, Xue
Hai Han, Zhen
Zhong Zhang, Xin
author_facet Wu, Bei
Shen, Fei
Wang, Xuan
Zheng, Wen Yan
Xiao, Chen
Deng, Yang
Wang, Ting
Yu Huang, Zhen
Zhou, Qian
Wang, Yi
Wu, Ting
Feng Xu, Xue
Hai Han, Zhen
Zhong Zhang, Xin
author_sort Wu, Bei
collection PubMed
description Retention of flesh texture attributes during cold storage is critical for the long‐term maintenance of fruit quality. The genetic variations determining flesh firmness and crispness retainability are not well understood. The objectives of this study are to identify gene markers based on quantitative trait loci (QTLs) and to develop genomics‐assisted prediction (GAP) models for apple flesh firmness and crispness retainability. Phenotype data of 2664 hybrids derived from three Malus domestica cultivars and a M. asiatica cultivar were collected in 2016 and 2017. The phenotype segregated considerably with high broad‐sense heritability of 83.85% and 83.64% for flesh firmness and crispness retainability, respectively. Fifty‐six candidate genes were predicted from the 62 QTLs identified using bulked segregant analysis and RNA‐seq. The genotype effects of the markers designed on each candidate gene were estimated. The genomics‐predicted values were obtained using pyramiding marker genotype effects and overall mean phenotype values. Fivefold cross‐validation revealed that the prediction accuracy was 0.5541 and 0.6018 for retainability of flesh firmness and crispness, respectively. An 8‐bp deletion in the MdERF3 promoter disrupted MdDOF5.3 binding, reduced MdERF3 expression, relieved the inhibition on MdPGLR3, MdPME2, and MdACO4 expression, and ultimately decreased flesh firmness and crispness retainability. A 3‐bp deletion in the MdERF118 promoter decreased its expression by disrupting the binding of MdRAVL1, which increased MdPGLR3 and MdACO4 expression and reduced flesh firmness and crispness retainability. These results provide insights regarding the genetic variation network regulating flesh firmness and crispness retainability, and the GAP models can assist in apple breeding.
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spelling pubmed-81310392021-05-21 Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction Wu, Bei Shen, Fei Wang, Xuan Zheng, Wen Yan Xiao, Chen Deng, Yang Wang, Ting Yu Huang, Zhen Zhou, Qian Wang, Yi Wu, Ting Feng Xu, Xue Hai Han, Zhen Zhong Zhang, Xin Plant Biotechnol J Research Articles Retention of flesh texture attributes during cold storage is critical for the long‐term maintenance of fruit quality. The genetic variations determining flesh firmness and crispness retainability are not well understood. The objectives of this study are to identify gene markers based on quantitative trait loci (QTLs) and to develop genomics‐assisted prediction (GAP) models for apple flesh firmness and crispness retainability. Phenotype data of 2664 hybrids derived from three Malus domestica cultivars and a M. asiatica cultivar were collected in 2016 and 2017. The phenotype segregated considerably with high broad‐sense heritability of 83.85% and 83.64% for flesh firmness and crispness retainability, respectively. Fifty‐six candidate genes were predicted from the 62 QTLs identified using bulked segregant analysis and RNA‐seq. The genotype effects of the markers designed on each candidate gene were estimated. The genomics‐predicted values were obtained using pyramiding marker genotype effects and overall mean phenotype values. Fivefold cross‐validation revealed that the prediction accuracy was 0.5541 and 0.6018 for retainability of flesh firmness and crispness, respectively. An 8‐bp deletion in the MdERF3 promoter disrupted MdDOF5.3 binding, reduced MdERF3 expression, relieved the inhibition on MdPGLR3, MdPME2, and MdACO4 expression, and ultimately decreased flesh firmness and crispness retainability. A 3‐bp deletion in the MdERF118 promoter decreased its expression by disrupting the binding of MdRAVL1, which increased MdPGLR3 and MdACO4 expression and reduced flesh firmness and crispness retainability. These results provide insights regarding the genetic variation network regulating flesh firmness and crispness retainability, and the GAP models can assist in apple breeding. John Wiley and Sons Inc. 2021-01-06 2021-05 /pmc/articles/PMC8131039/ /pubmed/33319456 http://dx.doi.org/10.1111/pbi.13527 Text en © 2020 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Wu, Bei
Shen, Fei
Wang, Xuan
Zheng, Wen Yan
Xiao, Chen
Deng, Yang
Wang, Ting
Yu Huang, Zhen
Zhou, Qian
Wang, Yi
Wu, Ting
Feng Xu, Xue
Hai Han, Zhen
Zhong Zhang, Xin
Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title_full Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title_fullStr Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title_full_unstemmed Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title_short Role of MdERF3 and MdERF118 natural variations in apple flesh firmness/crispness retainability and development of QTL‐based genomics‐assisted prediction
title_sort role of mderf3 and mderf118 natural variations in apple flesh firmness/crispness retainability and development of qtl‐based genomics‐assisted prediction
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8131039/
https://www.ncbi.nlm.nih.gov/pubmed/33319456
http://dx.doi.org/10.1111/pbi.13527
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