Population structure and genetic diversity in Eucalyptus pellita based on SNP markers

被引:4
作者
Wang, Chubiao [1 ]
Lan, Jun [2 ]
Wang, Jianzhong [2 ]
He, Wenliang [1 ]
Lu, Wanhong [1 ]
Lin, Yan [1 ]
Luo, Jianzhong [1 ]
机构
[1] Chinese Acad Forestry, Res Inst Fast Growing Trees, Zhanjiang, Peoples R China
[2] Forestry Sci Res Inst, Guangxi Dongmen Forest Farm, Fusui, Peoples R China
来源
FRONTIERS IN PLANT SCIENCE | 2023年 / 14卷
基金
国家重点研发计划;
关键词
Eucalyptus pellita; single nucleotide polymorphism; population structure; genetic diversity; population differentiation; MORPHOLOGICAL ANALYSIS; MATING SYSTEM; GENOME; CONSERVATION; COMPLEX; GROWTH; TREE; DIFFERENTIATION; DOMESTICATION; POLYMORPHISMS;
D O I
10.3389/fpls.2023.1278427
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Eucalyptus pellita has the characteristics of rapid growth and high resistance. However, there is little research on molecular breeding of E. pellita, which is essential to shortening breeding life and selecting quality varieties. Therefore, a crucial step before selective breeding can be carried out to increase the wood quality of E. pellita is identifying genetic diversity and population structure using single nucleotide polymorphism (SNP) markers. In this study, the genetic diversity of 1st generation 196 E. pellita families from 23 geographically defined was assessed using 1,677,732 SNP markers identified by whole genome resequencing. SNP annotation showed that the ratio of non-synonymous to synonymous coding mutations was 0.83. Principal component analysis (PCA), phylogenetic tree, and population structure analysis permitted the families to be categorized into three groups, one of which (G2) contains most of the Indonesian (IDN) and Papua New Guinea (PNG) families. Genetic relationship analysis showed that IDN was closely related to PNG. Genetic diversity analysis showed that He, PIC, I, and H mean values were 0.2502, 0.2027, 0.3815, and 0.2680, respectively. PCA analysis classified various provenances in QLD into two categories (G1 and G3). The genetic diversity of G3 was higher than that of G2. The results of genetic differentiation (Fst) showed that PNG region was divided into two groups (PNG1 and PNG2), the Fst (0.172) between QLD and PNG2 region was higher than QLD and PNG1, and the Fst (0.024) between IDN and PNG1 is smaller than IDN and PNG2. A Mantel test revealed a positive correlation between the genetic and geographic distance of E. pellita. This study has a certain reference value for genetic identification, germplasm preservation, and breeding of E. pellita. Also, it provides a basis for subsequent association analysis to explore excellent alleles and introduction.
引用
收藏
页数:14
相关论文
共 50 条
[31]   Population structure and genetic diversity of watermelon (Citrullus lanatus) based on SNP of chloroplast genome [J].
Haonan Cui ;
Zhuo Ding ;
Qianglong Zhu ;
Yue Wu ;
Peng Gao .
3 Biotech, 2020, 10
[32]   GENETIC DIVERSITY OF ADVANCED GENERATION BREEDING POPULATION OF EUCALYPTUS UROPHYLLA IN CHINA [J].
Lu, W. H. ;
Qi, J. ;
Lan, J. ;
Luo, J. Z. .
JOURNAL OF TROPICAL FOREST SCIENCE, 2018, 30 (03) :320-329
[33]   Dynamics of genetic diversity and population structure of Eucalyptus urophylla from Indonesian Islands using SNP data [J].
de Silva, Dandara Yasmim Bonfim Oliveira ;
Rosa, Joao Ricardo Bachega Feijo ;
de Souza, Izabel Christina Gava ;
Nunes, Maria Paula Barion Alves ;
Benatti, Thiago Romanos ;
Fernandes, Aline Cristina Miranda ;
de Matos, Jose Wilacildo ;
Oda, Shinitiro ;
Beerli, Peter ;
Tambarussi, Evandro Vagner .
CONSERVATION GENETICS, 2025, 26 (03) :561-572
[34]   Elucidating SNP-Based Population Structure and Genetic Diversity of Bruguiera gymnorhiza (L.) Savigny in Thailand [J].
Ruang-areerate, Panthita ;
Sonthirod, Chutima ;
Sangsrakru, Duangjai ;
Waiyamitra, Pitchaporn ;
Maknual, Chatree ;
Wanthongchai, Poonsri ;
Chomriang, Pranom ;
Pootakham, Wirulda ;
Tangphatsornruang, Sithichoke .
FORESTS, 2023, 14 (04)
[35]   Genotyping-by-sequencing derived SNP markers reveal genetic diversity and population structure of Dactylis glomerata germplasm [J].
Altaf, Muhammad Tanveer ;
Cavagnaro, Pablo Federico ;
Kokten, Kagan ;
Ali, Amjad ;
Morales, Andres ;
Tatar, Muhammed ;
Bedir, Mehmet ;
Nadeem, Muhammad Azhar ;
Aasim, Muhammad ;
Celiktas, Nafiz ;
Mansoor, Sheikh ;
Baloch, Faheem Shehzad .
FRONTIERS IN PLANT SCIENCE, 2025, 16
[36]   Exploring the genetic diversity and population structure of an ancient hexaploid wheat species Triticum sphaerococcum using SNP markers [J].
Mazumder, Amit Kumar ;
Budhlakoti, Neeraj ;
Kumar, Manjeet ;
Pradhan, Anjan Kumar ;
Kumar, Sundeep ;
Babu, Prashanth ;
Yadav, Rajbir ;
Gaikwad, Kiran B. .
BMC PLANT BIOLOGY, 2024, 24 (01)
[37]   Genetic diversity and population structure of modern wheat (Triticum aestivum L.) cultivars in Henan Province of China based on SNP markers [J].
Tang, Wenjing ;
Dong, Zhongdong ;
Gao, Lifeng ;
Wang, Xicheng ;
Li, Tianbao ;
Sun, Congwei ;
Chu, Zongli ;
Cui, Dangqun .
BMC PLANT BIOLOGY, 2023, 23 (01)
[38]   Genetic Diversity, Population Structure, and Linkage Disequilibrium of an Association-Mapping Panel Revealed by Genome-Wide SNP Markers in Sesame [J].
Cui, Chengqi ;
Mei, Hongxian ;
Liu, Yanyang ;
Zhang, Haiyang ;
Zheng, Yongzhan .
FRONTIERS IN PLANT SCIENCE, 2017, 8
[39]   Genetic diversity and population structure of modern wheat (Triticum aestivum L.) cultivars in Henan Province of China based on SNP markers [J].
Wenjing Tang ;
Zhongdong Dong ;
Lifeng Gao ;
Xicheng Wang ;
Tianbao Li ;
Congwei Sun ;
Zongli Chu ;
Dangqun Cui .
BMC Plant Biology, 23
[40]   Characterising a Eucalyptus cladocalyx breeding population using SNP markers [J].
Bush, David ;
Thumma, Bala .
TREE GENETICS & GENOMES, 2013, 9 (03) :741-752