Great progress has been made in our understanding of floral organ identity determination and its regulatory network in many species; however, the quantitative genetic basis of floral organ number variation is far less well understood for species-specific traits from the perspective of population variation. Here, using a tree peony ( Andrews, Paeoniaceae) cultivar population as a model, the phenotypic polymorphism and genetic variation based on genome-wide association studies (GWAS) and expression quantitative trait locus (eQTL) analysis were analyzed. Based on 24 phenotypic traits of 271 representative cultivars, the transcript profiles of 119 cultivars were obtained, which indicated abundant genetic variation in tree peony. In total, 86 GWAS-related -eQTLs and 3188 -eQTL gene pairs were found to be associated with the numbers of petals, stamens, and carpels. In addition, 19 floral organ number-related hub genes with 121 -eQTLs were obtained by weighted gene co-expression network analysis, among which five hub genes belonging to the ABCE genes of the MADS-box family and their spatial-temporal co-expression and regulatory network were constructed. These results not only help our understanding of the genetic basis of floral organ number variation during domestication, but also pave the way to studying the quantitative genetics and evolution of flower organ number and their regulatory network within populations.
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http://dx.doi.org/10.1093/hr/uhad110 | DOI Listing |
J Plant Res
December 2024
Instituto de Pesquisas Jardim Botânico Do Rio de Janeiro (JBRJ), Diretoria de Pesquisa Científica, Rio de Janeiro, RJ, 22460-030, Brazil.
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View Article and Find Full Text PDFJ Exp Bot
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National Key Laboratory of Crop Genetic Improvement, Huazhong Agricultural University, Wuhan 430070, China.
Phosphorus (P) is an essential macronutrient for the growth and yield of crops. However, there is limited understanding of the regulatory mechanisms of phosphate (Pi) homeostasis, and its impact on growth, development, and yield-related traits in Brassica napus. Here, we identified four NITROGEN LIMITATION ADAPATATION1 (BnaNLA1) genes in B.
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View Article and Find Full Text PDFJ Plant Physiol
December 2024
College of Landscape Architecture and Art, Henan Agricultural University, 450002, Zhengzhou, China. Electronic address:
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View Article and Find Full Text PDFPlant Cell Physiol
December 2024
Institute of Plant Science and Resources, Okayama University, Kurashiki, 710-0046, Japan.
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