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A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei

Biomass allocation plays a critical role in plant morphological formation and phenotypic plasticity, which greatly impact plant adaptability and competitiveness. While empirical studies on plant biomass allocation have focused on molecular biology and ecology approaches, detailed insight into the ge...

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Autores principales: Zhang, Miaomiao, Lu, Nan, Zhu, Tianqing, Yang, Guijuan, Qu, Guanzheng, Shi, Chaozhong, Fei, Yue, Liu, Bingyang, Ma, Wenjun, Wang, Junhui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8637733/
https://www.ncbi.nlm.nih.gov/pubmed/34868235
http://dx.doi.org/10.3389/fgene.2021.758209
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author Zhang, Miaomiao
Lu, Nan
Zhu, Tianqing
Yang, Guijuan
Qu, Guanzheng
Shi, Chaozhong
Fei, Yue
Liu, Bingyang
Ma, Wenjun
Wang, Junhui
author_facet Zhang, Miaomiao
Lu, Nan
Zhu, Tianqing
Yang, Guijuan
Qu, Guanzheng
Shi, Chaozhong
Fei, Yue
Liu, Bingyang
Ma, Wenjun
Wang, Junhui
author_sort Zhang, Miaomiao
collection PubMed
description Biomass allocation plays a critical role in plant morphological formation and phenotypic plasticity, which greatly impact plant adaptability and competitiveness. While empirical studies on plant biomass allocation have focused on molecular biology and ecology approaches, detailed insight into the genetic basis of biomass allocation between leaf and stem growth is still lacking. Herein, we constructed a bivariate mapping model to identify covariation QTLs governing carbon (C) allocation between the leaves and stem as well as the covariation of traits within and between organs in a full-sib mapping population of C. bungei. A total of 123 covQTLs were detected for 23 trait pairs, including six leaf traits (leaf length, width, area, perimeter, length/width ratio and petiole length) and five stem traits (height, diameter at breast height, wood density, stemwood volume and stemwood biomass). The candidate genes were further identified in tissue-specific gene expression data, which provided insights into the genetic architecture underlying C allocation for traits or organs. The key QTLs related to growth and biomass allocation, which included UVH1, CLPT2, GAD/SPL, COG1 and MTERF4, were characterised and verified via gene function annotation and expression profiling. The integration of a bivariate Quantitative trait locus mapping model and gene expression profiling will enable the elucidation of genetic architecture underlying biomass allocation and covariation growth, in turn providing a theoretical basis for forest molecular marker-assisted breeding with specific C allocation strategies for adaptation to heterogeneous environments.
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spelling pubmed-86377332021-12-03 A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei Zhang, Miaomiao Lu, Nan Zhu, Tianqing Yang, Guijuan Qu, Guanzheng Shi, Chaozhong Fei, Yue Liu, Bingyang Ma, Wenjun Wang, Junhui Front Genet Genetics Biomass allocation plays a critical role in plant morphological formation and phenotypic plasticity, which greatly impact plant adaptability and competitiveness. While empirical studies on plant biomass allocation have focused on molecular biology and ecology approaches, detailed insight into the genetic basis of biomass allocation between leaf and stem growth is still lacking. Herein, we constructed a bivariate mapping model to identify covariation QTLs governing carbon (C) allocation between the leaves and stem as well as the covariation of traits within and between organs in a full-sib mapping population of C. bungei. A total of 123 covQTLs were detected for 23 trait pairs, including six leaf traits (leaf length, width, area, perimeter, length/width ratio and petiole length) and five stem traits (height, diameter at breast height, wood density, stemwood volume and stemwood biomass). The candidate genes were further identified in tissue-specific gene expression data, which provided insights into the genetic architecture underlying C allocation for traits or organs. The key QTLs related to growth and biomass allocation, which included UVH1, CLPT2, GAD/SPL, COG1 and MTERF4, were characterised and verified via gene function annotation and expression profiling. The integration of a bivariate Quantitative trait locus mapping model and gene expression profiling will enable the elucidation of genetic architecture underlying biomass allocation and covariation growth, in turn providing a theoretical basis for forest molecular marker-assisted breeding with specific C allocation strategies for adaptation to heterogeneous environments. Frontiers Media S.A. 2021-11-18 /pmc/articles/PMC8637733/ /pubmed/34868235 http://dx.doi.org/10.3389/fgene.2021.758209 Text en Copyright © 2021 Zhang, Lu, Zhu, Yang, Qu, Shi, Fei, Liu, Ma and Wang. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Zhang, Miaomiao
Lu, Nan
Zhu, Tianqing
Yang, Guijuan
Qu, Guanzheng
Shi, Chaozhong
Fei, Yue
Liu, Bingyang
Ma, Wenjun
Wang, Junhui
A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title_full A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title_fullStr A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title_full_unstemmed A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title_short A Bivariate Mapping Model Identifies Major Covariation QTLs for Biomass Allocation Between Leaf and Stem Growth of Catalpa bungei
title_sort bivariate mapping model identifies major covariation qtls for biomass allocation between leaf and stem growth of catalpa bungei
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8637733/
https://www.ncbi.nlm.nih.gov/pubmed/34868235
http://dx.doi.org/10.3389/fgene.2021.758209
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