Literature DB >> 34145222

A chromosome-level genome assembly of rugged rose (Rosa rugosa) provides insights into its evolution, ecology, and floral characteristics.

Fei Chen1, Liyao Su1, Shuaiya Hu1, Jia-Yu Xue1,2, Hui Liu1, Guanhua Liu1, Yifan Jiang1, Jianke Du1, Yushan Qiao1, Yannan Fan3,4, Huan Liu3,4, Qi Yang5, Wenjie Lu5, Zhu-Qing Shao6, Jian Zhang7, Liangsheng Zhang8, Feng Chen9, Zong-Ming Max Cheng10.   

Abstract

Rosa rugosa, commonly known as rugged rose, is a perennial ornamental shrub. It produces beautiful flowers with a mild fragrance and colorful seed pods. Unlike many other cultivated roses, R. rugosa adapts to a wide range of habitat types and harsh environmental conditions such as salinity, alkaline, shade, drought, high humidity, and frigid temperatures. Here, we produced and analyzed a high-quality genome sequence for R. rugosa to understand its ecology, floral characteristics and evolution. PacBio HiFi reads were initially used to construct the draft genome of R. rugosa, and then Hi-C sequencing was applied to assemble the contigs into 7 chromosomes. We obtained a 382.6 Mb genome encoding 39,704 protein-coding genes. The genome of R. rugosa appears to be conserved with no additional whole-genome duplication after the gamma whole-genome triplication (WGT), which occurred ~100 million years ago in the ancestor of core eudicots. Based on a comparative analysis of the high-quality genome assembly of R. rugosa and other high-quality Rosaceae genomes, we found a unique large inverted segment in the Chinese rose R. chinensis and a retroposition in strawberry caused by post-WGT events. We also found that floral development- and stress response signaling-related gene modules were retained after the WGT. Two MADS-box genes involved in floral development and the stress-related transcription factors DREB2A-INTERACTING PROTEIN 2 (DRIP2) and PEPTIDE TRANSPORTER 3 (PTR3) were found to be positively selected in evolution, which may have contributed to the unique ability of this plant to adapt to harsh environments. In summary, the high-quality genome sequence of R. rugosa provides a map for genetic studies and molecular breeding of this plant and enables comparative genomic studies of Rosa in the near future.

Entities:  

Year:  2021        PMID: 34145222     DOI: 10.1038/s41438-021-00594-z

Source DB:  PubMed          Journal:  Hortic Res        ISSN: 2052-7276            Impact factor:   6.793


  49 in total

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2.  Invasion of Rosa rugosa induced changes in soil nutrients and microbial communities of coastal sand dunes.

Authors:  Anna M Stefanowicz; Szymon Zubek; Małgorzata Stanek; Irena M Grześ; Elżbieta Rożej-Pabijan; Janusz Błaszkowski; Marcin W Woch
Journal:  Sci Total Environ       Date:  2019-04-28       Impact factor: 7.963

3.  The antioxidant effect of Rosa rugosa.

Authors:  Dehen Altiner; Hasan Kiliçgün
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Review 4.  The Sequenced Angiosperm Genomes and Genome Databases.

Authors:  Fei Chen; Wei Dong; Jiawei Zhang; Xinyue Guo; Junhao Chen; Zhengjia Wang; Zhenguo Lin; Haibao Tang; Liangsheng Zhang
Journal:  Front Plant Sci       Date:  2018-04-13       Impact factor: 5.753

5.  Genome structure of Rosa multiflora, a wild ancestor of cultivated roses.

Authors:  Noriko Nakamura; Hideki Hirakawa; Shusei Sato; Shungo Otagaki; Shogo Matsumoto; Satoshi Tabata; Yoshikazu Tanaka
Journal:  DNA Res       Date:  2018-04-01       Impact factor: 4.458

Review 6.  Genome sequences of horticultural plants: past, present, and future.

Authors:  Fei Chen; Yunfeng Song; Xiaojiang Li; Junhao Chen; Lan Mo; Xingtan Zhang; Zhenguo Lin; Liangsheng Zhang
Journal:  Hortic Res       Date:  2019-10-08       Impact factor: 6.793

7.  The water lily genome and the early evolution of flowering plants.

Authors:  Liangsheng Zhang; Fei Chen; Xingtan Zhang; Zhen Li; Yiyong Zhao; Rolf Lohaus; Xiaojun Chang; Wei Dong; Simon Y W Ho; Xing Liu; Aixia Song; Junhao Chen; Wenlei Guo; Zhengjia Wang; Yingyu Zhuang; Haifeng Wang; Xuequn Chen; Juan Hu; Yanhui Liu; Yuan Qin; Kai Wang; Shanshan Dong; Yang Liu; Shouzhou Zhang; Xianxian Yu; Qian Wu; Liangsheng Wang; Xueqing Yan; Yuannian Jiao; Hongzhi Kong; Xiaofan Zhou; Cuiwei Yu; Yuchu Chen; Fan Li; Jihua Wang; Wei Chen; Xinlu Chen; Qidong Jia; Chi Zhang; Yifan Jiang; Wanbo Zhang; Guanhua Liu; Jianyu Fu; Feng Chen; Hong Ma; Yves Van de Peer; Haibao Tang
Journal:  Nature       Date:  2019-12-18       Impact factor: 49.962

8.  The complete chloroplast genome of candidate new species from Rosa rugosa in Korea (Rosaceae).

Authors:  Yongsung Kim; Kyeong-In Heo; Suhwan Nam; Hong Xi; Sangtae Lee; Jongsun Park
Journal:  Mitochondrial DNA B Resour       Date:  2019-07-12       Impact factor: 0.658

9.  The Rosa genome provides new insights into the domestication of modern roses.

Authors:  Olivier Raymond; Jérôme Gouzy; Jérémy Just; Hélène Badouin; Marion Verdenaud; Arnaud Lemainque; Philippe Vergne; Sandrine Moja; Nathalie Choisne; Caroline Pont; Sébastien Carrère; Jean-Claude Caissard; Arnaud Couloux; Ludovic Cottret; Jean-Marc Aury; Judit Szécsi; David Latrasse; Mohammed-Amin Madoui; Léa François; Xiaopeng Fu; Shu-Hua Yang; Annick Dubois; Florence Piola; Antoine Larrieu; Magali Perez; Karine Labadie; Lauriane Perrier; Benjamin Govetto; Yoan Labrousse; Priscilla Villand; Claudia Bardoux; Véronique Boltz; Céline Lopez-Roques; Pascal Heitzler; Teva Vernoux; Michiel Vandenbussche; Hadi Quesneville; Adnane Boualem; Abdelhafid Bendahmane; Chang Liu; Manuel Le Bris; Jérôme Salse; Sylvie Baudino; Moussa Benhamed; Patrick Wincker; Mohammed Bendahmane
Journal:  Nat Genet       Date:  2018-04-30       Impact factor: 38.330

10.  A high-quality genome sequence of Rosa chinensis to elucidate ornamental traits.

Authors:  L Hibrand Saint-Oyant; T Ruttink; L Hamama; I Kirov; D Lakhwani; N N Zhou; P M Bourke; N Daccord; L Leus; D Schulz; H Van de Geest; T Hesselink; K Van Laere; K Debray; S Balzergue; T Thouroude; A Chastellier; J Jeauffre; L Voisine; S Gaillard; T J A Borm; P Arens; R E Voorrips; C Maliepaard; E Neu; M Linde; M C Le Paslier; A Bérard; R Bounon; J Clotault; N Choisne; H Quesneville; K Kawamura; S Aubourg; S Sakr; M J M Smulders; E Schijlen; E Bucher; T Debener; J De Riek; F Foucher
Journal:  Nat Plants       Date:  2018-06-11       Impact factor: 15.793

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  7 in total

1.  Complex and reticulate origin of edible roses (Rosa, Rosaceae) in China.

Authors:  Wei-Hua Cui; Xin-Yu Du; Mi-Cai Zhong; Wei Fang; Zhi-Quan Suo; Dan Wang; Xue Dong; Xiao-Dong Jiang; Jin-Yong Hu
Journal:  Hortic Res       Date:  2022-01-05       Impact factor: 6.793

2.  The chromosome-level genome of Gypsophila paniculata reveals the molecular mechanism of floral development and ethylene insensitivity.

Authors:  Fan Li; Yuan Gao; Chunlian Jin; Xiaohui Wen; Huaiting Geng; Ying Cheng; Haoyue Qu; Xing Liu; Shan Feng; Fan Zhang; Jiwei Ruan; Chunmei Yang; Liangsheng Zhang; Jihua Wang
Journal:  Hortic Res       Date:  2022-08-24       Impact factor: 7.291

3.  Comprehensive Genome-Wide Analysis of Histone Acetylation Genes in Roses and Expression Analyses in Response to Heat Stress.

Authors:  Quanshu Wu; Qiuyue Huang; Huilin Guan; Xiaoni Zhang; Manzhu Bao; Mohammed Bendahmane; Xiaopeng Fu
Journal:  Genes (Basel)       Date:  2022-05-30       Impact factor: 4.141

4.  Effect of Developmental Stages on Genes Involved in Middle and Downstream Pathway of Volatile Terpene Biosynthesis in Rose Petals.

Authors:  Ying Kong; Huan Wang; Lixin Lang; Xiaoying Dou; Jinrong Bai
Journal:  Genes (Basel)       Date:  2022-06-30       Impact factor: 4.141

5.  Transcriptome and chemical analyses revealed the mechanism of flower color formation in Rosa rugosa.

Authors:  Yiting Wang; Shaopeng Li; Ziqi Zhu; Zongda Xu; Shuai Qi; Shutang Xing; Yunyan Yu; Qikui Wu
Journal:  Front Plant Sci       Date:  2022-09-23       Impact factor: 6.627

6.  The identification of the Rosa S-locus provides new insights into the breeding and wild origins of continuous-flowering roses.

Authors:  Koji Kawamura; Yoshihiro Ueda; Shogo Matsumoto; Takanori Horibe; Shungo Otagaki; Li Wang; Guoliang Wang; Laurence Hibrand-Saint Oyant; Fabrice Foucher; Marcus Linde; Thomas Debener
Journal:  Hortic Res       Date:  2022-02-28       Impact factor: 7.291

7.  Cool-Warm Temperature Stratification and Simulated Bird Digestion Optimize Removal of Dormancy in Rosa rugosa Seeds.

Authors:  Peng Gao; Jie Dong; Sihan Wang; Wuhua Zhang; Tao Yang; Jinzhu Zhang; Daidi Che
Journal:  Front Plant Sci       Date:  2022-01-17       Impact factor: 5.753

  7 in total

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