The Key Laboratory of Mariculture, Ministry of Education, Ocean University of China, Qingdao, China.
Key Laboratory of Marine Ecology and Environmental Sciences, Institute of Oceanology, Chinese Academy of Sciences (CAS), Chinese Academy of Sciences (CAS), Qingdao, China.
BMC Genomics. 2022 May 23;23(1):391. doi: 10.1186/s12864-022-08632-3.
Sex determination mechanisms are complicated and diverse across taxonomic categories. Sea cucumber Apostichopus japonicus is a benthic echinoderm, which is the closest group of invertebrates to chordate, and important economic and ecologically aquaculture species in China. A. japonicus is dioecious, and no phenotypic differences between males and females can be detected before sexual maturation. Identification of sex determination locus will broaden knowledge about sex-determination mechanism in echinoderms, which allows for the identification of sex-linked markers and increases the efficiency of sea cucumber breeding industry.
Here, we integrated assembly of a novel chromosome-level genome and resequencing of female and male populations to investigate the sex determination mechanisms of A. japonicus. We built a chromosome-level genome assembly AJH1.0 using Hi-C technology. The assembly AJH1.0 consists of 23 chromosomes ranging from 22.4 to 60.4 Mb. To identify the sex-determination locus of A. japonicus, we conducted genome-wide association study (GWAS) and analyses of distribution characteristics of sex-specific SNPs and fixation index F. The GWAS analysis showed that multiple sex-associated loci were located on several chromosomes, including chromosome 4 (24.8%), followed by chromosome 9 (10.7%), chromosome 17 (10.4%), and chromosome 18 (14.1%). Furthermore, analyzing the homozygous and heterozygous genotypes of plenty of sex-specific SNPs in females and males confirmed that A. japonicus might have a XX/XY sex determination system. As a physical region of 10 Mb on chromosome 4 included the highest number of sex-specific SNPs and higher F values, this region was considered as the candidate sex determination region (SDR) in A. japonicus.
In the present study, we integrated genome-wide association study and analyses of sex-specific variations to investigate sex determination mechanisms. This will bring novel insights into gene regulation during primitive gonadogenesis and differentiation and identification of master sex determination gene in sea cucumber. In the sea cucumber industry, investigation of molecular mechanisms of sex determination will be helpful for artificial fertilization and precise breeding.
性别决定机制在分类学上是复杂多样的。海参是一种底栖棘皮动物,是最接近脊索动物的无脊椎动物群,也是中国重要的经济和生态水产养殖物种。Apostichopus japonicus 是雌雄异体的,在性成熟之前,雄性和雌性之间没有可检测到的表型差异。鉴定性别决定基因座将拓宽对棘皮动物性别决定机制的认识,这将有助于鉴定与性别相关的标记,并提高海参养殖产业的效率。
在这里,我们整合了新型染色体水平基因组的组装和雌性和雄性群体的重测序,以研究 A. japonicus 的性别决定机制。我们使用 Hi-C 技术构建了一个染色体水平的基因组组装 AJH1.0。组装的 AJH1.0 由 23 条染色体组成,范围从 22.4 到 60.4 Mb。为了鉴定 A. japonicus 的性别决定基因座,我们进行了全基因组关联研究(GWAS)和性别特异性 SNP 分布特征分析和固定指数 F。GWAS 分析表明,多个与性别相关的基因座位于多个染色体上,包括第 4 染色体(24.8%),其次是第 9 染色体(10.7%)、第 17 染色体(10.4%)和第 18 染色体(14.1%)。此外,分析大量雌性和雄性的性别特异性 SNP 的纯合和杂合基因型证实,A. japonicus 可能具有 XX/XY 性别决定系统。由于第 4 染色体上包含最高数量的性别特异性 SNP 和更高的 F 值的 10 Mb 物理区域,该区域被认为是 A. japonicus 的候选性别决定区域(SDR)。
在本研究中,我们整合了全基因组关联研究和性别特异性变异分析,以研究性别决定机制。这将为原始性腺发生和分化过程中的基因调控以及海参主要性别决定基因的鉴定带来新的见解。在海参产业中,研究性别决定的分子机制将有助于人工受精和精确繁殖。