Dissecting apple tree architecture into genetic, ontogenetic and environmental effects: QTL mapping

被引:0
|
作者
Vincent Segura
Charles-Eric Durel
Evelyne Costes
机构
[1] INRA,
[2] UMR DAP,undefined
[3] INRA–Montpellier SupAgro–CIRAD–Université Montpellier II,undefined
[4] Equipe Architecture et Fonctionnement des Espèces Fruitières,undefined
[5] INRA,undefined
[6] UMR GenHort,undefined
[7] INRA–INH–Université d’Angers,undefined
来源
Tree Genetics & Genomes | 2009年 / 5卷
关键词
Borkh.; Growth; Branching Repeated data; Mixed linear model;
D O I
暂无
中图分类号
学科分类号
摘要
The present study aimed to dissect tree architectural plasticity into genetic, ontogenetic and environmental effects over the first 4 years of growth of an apple F1 progeny by means of quantitative traits loci (QTL) mapping. Both growth and branching processes were phenotyped on the consecutive annual shoots of different axes within a tree. For each studied trait, predicted values (best linear unbiased predictors, BLUPs) of the genotypic (G) effect or its interaction with tree age (G×A) and climatic year (G×Y) were extracted from mixed linear models of repeated data. These BLUPs, which are independent from autocorrelations between repeated measurements, were used for QTL mapping. QTL detection power was improved by this two-step approach. For each architectural process, numerous QTLs were detected and some particularly interesting co-localised in common genomic regions, for internode lengthening, top diameter, and number and percentage of axillary shoots. When several QTLs were detected for a given trait, global models were estimated, which explained a maximum of 40% of the total variance for both internode length and top diameter and 28% for branching. QTLs detected for BLUPs of G×Y effects were interpreted as resulting from the interaction between genetic maximal potential of growth and climatic factors, while those for G×A effects were interpreted in relation to tree ontogeny. Most of the latter ones were found to be concomitant with key development stages during which the trait average started to decrease, but with different magnitudes depending on genotype.
引用
收藏
页码:165 / 179
页数:14
相关论文
共 50 条
  • [31] Dynamic and epistatic QTL mapping reveals the complex genetic architecture of waterlogging tolerance in chrysanthemum
    Jiangshuo Su
    Xincheng Yang
    Fei Zhang
    Shaofang Wu
    Siyi Xiong
    Liming Shi
    Zhiyong Guan
    Weimin Fang
    Fadi Chen
    Planta, 2018, 247 : 899 - 924
  • [32] Optimal pruning of apple and effects on tree architecture, productivity, and fruit quality
    Franzen, J. B.
    Hirst, P. M.
    XXIX INTERNATIONAL HORTICULTURAL CONGRESS ON HORTICULTURE: SUSTAINING LIVES, LIVELIHOODS AND LANDSCAPES: INTERNATIONAL SYMPOSIA ON THE PHYSIOLOGY OF PERENNIAL FRUIT CROPS AND PRODUCTION SYSTEMS AND MECHANISATION, PRECISION HORTICULTURE AND ROBOTICS, 2016, 1130 : 307 - 309
  • [33] Dynamic and epistatic QTL mapping reveals the complex genetic architecture of waterlogging tolerance in chrysanthemum
    Su, Jiangshuo
    Yang, Xincheng
    Zhang, Fei
    Wu, Shaofang
    Xiong, Siyi
    Shi, Liming
    Guan, Zhiyong
    Fang, Weimin
    Chen, Fadi
    PLANTA, 2018, 247 (04) : 899 - 924
  • [34] Genetic analysis and QTL mapping of aroma volatile compounds in the apple progeny 'Fuji' x 'Cripps Pink'
    Yang, Shunbo
    Yu, Jing
    Yang, Huijuan
    Zhao, Zhengyang
    FRONTIERS IN PLANT SCIENCE, 2023, 14
  • [35] The peach volatilome modularity is reflected at the genetic and environmental response levels in a QTL mapping population
    Gerardo Sánchez
    José Martínez
    José Romeu
    Jesús García
    Antonio J Monforte
    María L Badenes
    Antonio Granell
    BMC Plant Biology, 14
  • [36] The peach volatilome modularity is reflected at the genetic and environmental response levels in a QTL mapping population
    Sanchez, Gerardo
    Martinez, Jose
    Romeu, Jose
    Garcia, Jesus
    Monforte, Antonio J.
    Badenes, Maria L.
    Granell, Antonio
    BMC PLANT BIOLOGY, 2014, 14
  • [37] Simultaneous mapping of epistatic QTL in chickens reveals clusters of QTL pairs with similar genetic effects on growth
    Carlborg, R
    Hocking, PM
    Burt, DW
    Haley, CS
    GENETICAL RESEARCH, 2004, 83 (03) : 197 - 209
  • [38] High-Throughput Phenotyping and QTL Mapping Reveals the Genetic Architecture of Maize Plant Growth
    Zhang, Xuehai
    Huang, Chenglong
    Wu, Di
    Qiao, Feng
    Li, Wenqiang
    Duan, Lingfeng
    Wang, Ke
    Xiao, Yingjie
    Chen, Guoxing
    Liu, Qian
    Xiong, Lizhong
    Yang, Wanneng
    Yan, Jianbing
    PLANT PHYSIOLOGY, 2017, 173 (03) : 1554 - 1564
  • [39] Genetic and environmental effects influencing fruit colour and QTL analysis in raspberry
    Susan McCallum
    Mary Woodhead
    Christine A. Hackett
    Angzzas Kassim
    Alistair Paterson
    Julie Graham
    Theoretical and Applied Genetics, 2010, 121 : 611 - 627
  • [40] Integrating QTL mapping and transcriptomics to decipher the genetic architecture of sterol metabolism in Brassica napus L
    Xiong, Yiyi
    Lu, Guangyuan
    Li, Huaixin
    He, Jianjie
    Fan, Shipeng
    Yan, Shuxiang
    Zhang, Liangxiao
    Jia, Haibo
    Li, Maoteng
    HORTICULTURE RESEARCH, 2024, 11 (09)