The jojoba genome reveals wide divergence of the sex chromosomes in a dioecious plant

被引:12
作者
Al-Dossary, Othman [1 ,2 ]
Alsubaie, Bader [1 ,2 ]
Kharabian-Masouleh, Ardashir [1 ]
Al-Mssallem, Ibrahim [2 ]
Furtado, Agnelo [1 ]
Henry, Robert J. [1 ,3 ]
机构
[1] Univ Queensland, Queensland Alliance Agr & Food Innovat, Brisbane, Qld 4072, Australia
[2] King Faisal Univ, Coll Agr & Food Sci, Al Hufuf 36362, Saudi Arabia
[3] Univ Queensland, ARC Ctr Excellence Plant Success Nat & Agr, Brisbane, Qld 4072, Australia
关键词
sex chromosomes; sexual dimorphism; dioecious plants; jojoba; Simmondsia chinensis; GENETIC DIVERSITY; EVOLUTION; IDENTIFICATION; MARKER; GENERATION; ADAPTATION; GENOTYPES; INSIGHTS; ECOLOGY; LOCI;
D O I
10.1111/tpj.15509
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Most flowering plants are hermaphrodites, but around 6% of species are dioecious, having separate male and female plants. Sex chromosomes and some sex-specific genes have been reported in plants, but the genome sequences have not been compared. We now report the genome sequence of male and female jojoba (Simmondsia chinensis) plants, revealing a very large difference in the sex chromosomes. The male genome assembly was 832 Mb and the female 822 Mb. This was explained by the large size differences in the Y chromosome (37.6 Mb) compared with the X chromosome (26.9 Mb). Relative to the X chromosome, the Y chromosome had two large insertions each of more than 5 Mb containing more than 400 genes. Many of the genes in the chromosome-specific regions were novel. These male-specific regions included many flowering-related and stress response genes. Smaller insertions found only in the X chromosome totalled 877 kb. The wide divergence of the sex chromosomes suggests a long period of adaptation to diverging sex-specific roles. Male and female plants may have evolved to accommodate factors such as differing reproductive resource allocation requirements under the stress of the desert environment in which the plants are found. The sex-determining regions accumulate genes beneficial to each sex. This has required the evolution of many more novel sex-specific genes than has been reported for other organisms. This suggest that dioecious plants provide a novel source of genes for manipulation of reproductive performance and environmental adaptation in crops.
引用
收藏
页码:1283 / 1294
页数:12
相关论文
共 78 条
  • [21] Sex Determination by Two Y-Linked Genes in Garden Asparagus
    Harkess, Alex
    Huang, Kun
    van der Hulst, Ron
    Tissen, Bart
    Caplan, Jeffrey L.
    Koppula, Aakash
    Batish, Mona
    Meyers, Blake C.
    Leebens-Mack, Jim
    [J]. PLANT CELL, 2020, 32 (06) : 1790 - 1796
  • [22] Genetic diversity analysis among male and female Jojoba genotypes employing gene targetedmolecular markers, start codon targeted (SCoT) polymorphism and CAAT box-derived polymorphism (CBDP) markers
    Heikrujam, Monika
    Kumar, Jatin
    Agrawal, Veena
    [J]. META GENE, 2015, 5 : 90 - 97
  • [23] Review on different mechanisms of sex determination and sex-linked molecular markers in dioecious crops: a current update
    Heikrujam, Monika
    Sharma, Kuldeep
    Prasad, Manoj
    Agrawal, Veena
    [J]. EUPHYTICA, 2015, 201 (02) : 161 - 194
  • [24] Validation of male sex-specific UBC-8071200 ISSR marker and its conversion into sequence tagged sites marker in Jojoba: a high precision oil yielding dioecious shrub
    Heikrujam, Monika
    Sharma, Kuldeep
    Kumar, Jatin
    Agrawal, Veena
    [J]. PLANT BREEDING, 2014, 133 (05) : 666 - 671
  • [25] Generation and validation of unique male sex-specific sequence tagged sites (STS) marker from diverse genotypes of dioecious Jojoba-Simmondsia chinensis (Link) Schneider
    Heikrujam, Monika
    Sharma, Kuldeep
    Kumar, Jatin
    Agrawal, Veena
    [J]. EUPHYTICA, 2014, 199 (03) : 363 - 372
  • [26] Impact of Repetitive Elements on the Y Chromosome Formation in Plants
    Hobza, Roman
    Cegan, Radim
    Jesionek, Wojciech
    Kejnovsky, Eduard
    Vyskot, Boris
    Kubat, Zdenek
    [J]. GENES, 2017, 8 (11):
  • [27] Hosseini FS, 2011, AFR J BIOTECHNOL, V10, P470
  • [28] Hultine KR, 2016, NAT PLANTS, V2, DOI [10.1038/NPLANTS.2016.109, 10.1038/nplants.2016.109]
  • [29] Humann JL, 2019, METHODS MOL BIOL, V1962, P29, DOI 10.1007/978-1-4939-9173-0_3
  • [30] Inoti, 2018, J AGR SCI TECHNOLOGY, V8, P320