Gapless genome assembly of azalea and multi-omics investigation into divergence between two species with distinct flower color

Author:

Nie Shuai1,Zhao Shi-Wei1,Shi Tian-Le1,Zhao Wei2,Zhang Ren-Gang3,Tian Xue-Chan1,Guo Jing-Fang1,Yan Xue-Mei1,Bao Yu-Tao1,Li Zhi-Chao1,Kong Lei1,Ma Hai-Yao1,Chen Zhao-Yang1,Liu Hui1,El-Kassaby Yousry A4,Porth Ilga5,Yang Fu-Sheng67,Mao Jian-Feng1

Affiliation:

1. Beijing Forestry University National Engineering Research Center of Tree Breeding and Ecological Restoration, Beijing Advanced Innovation Center for Tree Breeding by Molecular Design, Key Laboratory of Genetics and Breeding in Forest Trees and Ornamental Plants, Ministry of Education, College of Biological Sciences and Technology, , Beijing 100083, China

2. Umeå University Department of Ecology and Environmental Science, Umeå Plant Science Centre, , SE-901 87 Umeå, Sweden

3. Ori (Shandong) Gene Science and Technology Co., Ltd Department of Bioinformatics, ., Weifang 261322, China

4. University of British Columbia Department of Forest and Conservation Sciences, Faculty of Forestry, , Vancouver, BC, V6T 1Z4, Canada

5. Université Laval Départment des Sciences du Bois et de la Forêt, Faculté de Foresterie, de Géographie et Géomatique, , Québec, QC, G1V 0A6, Canada

6. Chinese Academy of Sciences State Key Laboratory of Systematic and Evolutionary Botany, Institute of Botany, , Beijing 100093, China

7. University of Chinese Academy of Sciences , Beijing 100049, China

Abstract

Abstract The genus Rhododendron (Ericaceae), with more than 1000 species highly diverse in flower color, is providing distinct ornamental values and a model system for flower color studies. Here, we investigated the divergence between two parental species with different flower color widely used for azalea breeding. Gapless genome assembly was generated for the yellow-flowered azalea, Rhododendron molle. Comparative genomics found recent proliferation of long terminal repeat retrotransposons (LTR-RTs), especially Gypsy, has resulted in a 125 Mb (19%) genome size increase in species-specific regions, and a significant amount of dispersed gene duplicates (13 402) and pseudogenes (17 437). Metabolomic assessment revealed that yellow flower coloration is attributed to the dynamic changes of carotenoids/flavonols biosynthesis and chlorophyll degradation. Time-ordered gene co-expression networks (TO-GCNs) and the comparison confirmed the metabolome and uncovered the specific gene regulatory changes underpinning the distinct flower pigmentation. B3 and ERF TFs were found dominating the gene regulation of carotenoids/flavonols characterized pigmentation in R. molle, while WRKY, ERF, WD40, C2H2, and NAC TFs collectively regulated the anthocyanins characterized pigmentation in the red-flowered R simsii. This study employed a multi-omics strategy in disentangling the complex divergence between two important azaleas and provided references for further functional genetics and molecular breeding.

Publisher

Oxford University Press (OUP)

Subject

Horticulture,Plant Science,Genetics,Biochemistry,Biotechnology

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