Genome sequence of Apostasia ramifera provides insights into the adaptive evolution in orchids

被引:13
|
作者
Zhang, Weixiong [1 ]
Zhang, Guoqiang [2 ]
Zeng, Peng [1 ,3 ]
Zhang, Yongqiang [2 ,3 ,4 ,5 ,6 ]
Hu, Hao [1 ]
Liu, Zhongjian [6 ]
Cai, Jing [7 ]
机构
[1] Univ Macau, Inst Chinese Med Sci, State Key Lab Qual Res Chinese Med, Macau 999078, Peoples R China
[2] Natl Forestry & Grassland Ad Orchid Conservat & U, Key Lab, Shenzhen 518114, Peoples R China
[3] Shenzhen Key Lab Orchid Conservat & Utilizat, Shenzhen 518114, Peoples R China
[4] Nat Orchid Conservat Ctr China, Shenzhen 518114, Peoples R China
[5] Orchid Conservat & Res Ctr Shenzhen, Shenzhen 518114, Peoples R China
[6] Fujian Agr & Forestry Univ, Key Lab NFGA Orchid Conservat & Utilizat, Fuzhou 350002, Peoples R China
[7] Northwestern Polytech Univ, Schl Ecol & Environm, Xian 710129, Peoples R China
关键词
Orchidaceae; Apostasia ramifera; Comparative genomics; Adaptive evolution; MADS-BOX GENES; PHYLOGENETIC ANALYSIS; TRANSCRIPTION FACTORS; ARABIDOPSIS; INFERENCE; TOOL; ARCHITECTURE; PREDICTION; ALIGNMENT; DATABASE;
D O I
10.1186/s12864-021-07852-3
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
BackgroundThe Orchidaceae family is one of the most diverse among flowering plants and serves as an important research model for plant evolution, especially "evo-devo" study on floral organs. Recently, sequencing of several orchid genomes has greatly improved our understanding of the genetic basis of orchid biology. To date, however, most sequenced genomes are from the Epidendroideae subfamily. To better elucidate orchid evolution, greater attention should be paid to other orchid lineages, especially basal lineages such as Apostasioideae.ResultsHere, we present a genome sequence of Apostasia ramifera, a terrestrial orchid species from the Apostasioideae subfamily. The genomes of A. ramifera and other orchids were compared to explore the genetic basis underlying orchid species richness. Genome-based population dynamics revealed a continuous decrease in population size over the last 100 000 years in all studied orchids, although the epiphytic orchids generally showed larger effective population size than the terrestrial orchids over most of that period. We also found more genes of the terpene synthase gene family, resistant gene family, and LOX1/LOX5 homologs in the epiphytic orchids.ConclusionsThis study provides new insights into the adaptive evolution of orchids. The A. ramifera genome sequence reported here should be a helpful resource for future research on orchid biology.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Genome sequence of Apostasia ramifera provides insights into the adaptive evolution in orchids
    Weixiong Zhang
    Guoqiang Zhang
    Peng Zeng
    Yongqiang Zhang
    Hao Hu
    Zhongjian Liu
    Jing Cai
    BMC Genomics, 22
  • [2] The Apostasia genome and the evolution of orchids
    Guo-Qiang Zhang
    Ke-Wei Liu
    Zhen Li
    Rolf Lohaus
    Yu-Yun Hsiao
    Shan-Ce Niu
    Jie-Yu Wang
    Yao-Cheng Lin
    Qing Xu
    Li-Jun Chen
    Kouki Yoshida
    Sumire Fujiwara
    Zhi-Wen Wang
    Yong-Qiang Zhang
    Nobutaka Mitsuda
    Meina Wang
    Guo-Hui Liu
    Lorenzo Pecoraro
    Hui-Xia Huang
    Xin-Ju Xiao
    Min Lin
    Xin-Yi Wu
    Wan-Lin Wu
    You-Yi Chen
    Song-Bin Chang
    Shingo Sakamoto
    Masaru Ohme-Takagi
    Masafumi Yagi
    Si-Jin Zeng
    Ching-Yu Shen
    Chuan-Ming Yeh
    Yi-Bo Luo
    Wen-Chieh Tsai
    Yves Van de Peer
    Zhong-Jian Liu
    Nature, 2017, 549 : 379 - 383
  • [3] The Apostasia genome and the evolution of orchids
    Zhang, Guo-Qiang
    Liu, Ke-Wei
    Li, Zhen
    Lohaus, Rolf
    Hsiao, Yu-Yun
    Niu, Shan-Ce
    Wang, Jie-Yu
    Lin, Yao-Cheng
    Xu, Qing
    Chen, Li-Jun
    Yoshida, Kouki
    Fujiwara, Sumire
    Wang, Zhi-Wen
    Zhang, Yong-Qiang
    Mitsuda, Nobutaka
    Wang, Meina
    Liu, Guo-Hui
    Pecoraro, Lorenzo
    Huang, Hui-Xia
    Xiao, Xin-Ju
    Lin, Min
    Wu, Xin-Yi
    Wu, Wan-Lin
    Chen, You-Yi
    Chang, Song-Bin
    Sakamoto, Shingo
    Ohme-Takagi, Masaru
    Yagi, Masafumi
    Zeng, Si-Jin
    Shen, Ching-Yu
    Yeh, Chuan-Ming
    Luo, Yi-Bo
    Tsai, Wen-Chieh
    Van de Peer, Yves
    Liu, Zhong-Jian
    NATURE, 2017, 549 (7672) : 379 - +
  • [4] Author Correction: The Apostasia genome and the evolution of orchids
    Guo-Qiang Zhang
    Ke-Wei Liu
    Zhen Li
    Rolf Lohaus
    Yu-Yun Hsiao
    Shan-Ce Niu
    Jie-Yu Wang
    Yao-Cheng Lin
    Qing Xu
    Li-Jun Chen
    Kouki Yoshida
    Sumire Fujiwara
    Zhi-Wen Wang
    Yong-Qiang Zhang
    Nobutaka Mitsuda
    Meina Wang
    Guo-Hui Liu
    Lorenzo Pecoraro
    Hui-Xia Huang
    Xin-Ju Xiao
    Min Lin
    Xin-Yi Wu
    Wan-Lin Wu
    You-Yi Chen
    Song-Bin Chang
    Shingo Sakamoto
    Masaru Ohme-Takagi
    Masafumi Yagi
    Si-Jin Zeng
    Ching-Yu Shen
    Chuan-Ming Yeh
    Yi-Bo Luo
    Wen-Chieh Tsai
    Yves Van de Peer
    Zhong-Jian Liu
    Nature, 2020, 583 (7818) : E30 - E30
  • [5] The complete chloroplast genome of an endangered species Apostasia ramifera (Orchidaceae)
    Zheng, Fang
    Chen, Jian-Bing
    Liu, Wei-Rong
    Wang, Meng
    MITOCHONDRIAL DNA PART B-RESOURCES, 2021, 6 (02): : 470 - 471
  • [6] The Apostasia genome and the evolution of orchids (vol 33, pg 631, 2020)
    Zhang, Guo-Qiang
    Liu, Ke-Wei
    Li, Zhen
    Lohaus, Rolf
    Hsiao, Yu-Yun
    Niu, Shan-Ce
    Wang, Jie-Yu
    Lin, Yao-Cheng
    Xu, Qing
    Chen, Li-Jun
    Yoshida, Kouki
    Fujiwara, Sumire
    Wang, Zhi-Wen
    Zhang, Yong-Qiang
    Mitsuda, Nobutaka
    Wang, Meina
    Liu, Guo-Hui
    Pecoraro, Lorenzo
    Huang, Hui-Xia
    Xiao, Xin-Ju
    Lin, Min
    Wu, Xin-Yi
    Wu, Wan-Lin
    Chen, You-Yi
    Chang, Song-Bin
    Sakamoto, Shingo
    Ohme-Takagi, Masaru
    Yagi, Masafumi
    Zeng, Si-Jin
    Shen, Ching-Yu
    Yeh, Chuan-Ming
    Luo, Yi-Bo
    Tsai, Wen-Chieh
    Van de Peer, Yves
    Liu, Zhong-Jian
    NATURE, 2020, 583 (7818) : E30 - E30
  • [8] The tomato genome sequence provides insights into fleshy fruit evolution
    Sato, Shusei
    Tabata, Satoshi
    Hirakawa, Hideki
    Asamizu, Erika
    Shirasawa, Kenta
    Isobe, Sachiko
    Kaneko, Takakazu
    Nakamura, Yasukazu
    Shibata, Daisuke
    Aoki, Koh
    Egholm, Michael
    Knight, James
    Bogden, Robert
    Li, Changbao
    Shuang, Yang
    Xu, Xun
    Pan, Shengkai
    Cheng, Shifeng
    Liu, Xin
    Ren, Yuanyuan
    Wang, Jun
    Albiero, Alessandro
    Dal Pero, Francesca
    Todesco, Sara
    Van Eck, Joyce
    Buels, Robert M.
    Bombarely, Aureliano
    Gosselin, Joseph R.
    Huang, Minyun
    Leto, Jonathan A.
    Menda, Naama
    Strickler, Susan
    Mao, Linyong
    Gao, Shan
    Tecle, Isaak Y.
    York, Thomas
    Zheng, Yi
    Vrebalov, Julia T.
    Lee, JeMin
    Zhong, Silin
    Mueller, Lukas A.
    Stiekema, Willem J.
    Ribeca, Paolo
    Alioto, Tyler
    Yang, Wencai
    Huang, Sanwen
    Du, Yongchen
    Zhang, Zhonghua
    Gao, Jianchang
    Guo, Yanmei
    NATURE, 2012, 485 (7400) : 635 - 641
  • [9] The Chrysosplenium sinicum genome provides insights into adaptive evolution of shade plants
    Liu, Shuo
    Wu, Zhihua
    Yang, Tiange
    Xu, Jindong
    Aishan, Saimire
    Qin, Erdai
    Ma, Kang
    Liu, Jiao
    Qin, Rui
    Wang, Jiangqing
    Tie, Jun
    Liu, Hong
    COMMUNICATIONS BIOLOGY, 2024, 7 (01)
  • [10] The Dendrobium catenatum Lindl. genome sequence provides insights into polysaccharide synthase, floral development and adaptive evolution
    Guo-Qiang Zhang
    Qing Xu
    Chao Bian
    Wen-Chieh Tsai
    Chuan-Ming Yeh
    Ke-Wei Liu
    Kouki Yoshida
    Liang-Sheng Zhang
    Song-Bin Chang
    Fei Chen
    Yu Shi
    Yong-Yu Su
    Yong-Qiang Zhang
    Li-Jun Chen
    Yayi Yin
    Min Lin
    Huixia Huang
    Hua Deng
    Zhi-Wen Wang
    Shi-Lin Zhu
    Xiang Zhao
    Cao Deng
    Shan-Ce Niu
    Jie Huang
    Meina Wang
    Guo-Hui Liu
    Hai-Jun Yang
    Xin-Ju Xiao
    Yu-Yun Hsiao
    Wan-Lin Wu
    You-Yi Chen
    Nobutaka Mitsuda
    Masaru Ohme-Takagi
    Yi-Bo Luo
    Yves Van de Peer
    Zhong-Jian Liu
    Scientific Reports, 6