Miyake Yuko, Sakai Yoichi, Kuniyoshi Hisato
Department of Bioresource Science, Graduate School of Biosphere Science, Hiroshima University, Kagamiyama 1-4-4, Higashi-Hiroshima 739-8528, Japan.
Zoolog Sci. 2012 Oct;29(10):690-701. doi: 10.2108/zsj.29.690.
The genes folliculogenesis specific basic helix-loop-helix (facor in the germline alpha, Figla) and doublesex and mab-3 related transcription factor 1 (Dmrt1) are female- and male-specific genes that play key roles in sex differentiation. To obtain a better understanding of the molecular mechanisms underlying female-to-male sex change, we cloned the cDNAs of these genes from an ovary and a testis of the protogynus wrasse, Halichoeres poecilopterus. This fish has two isoforms of Dmrt1, Dmrt1a and Dmrt1b, caused by an alternative splicing. The Dmrt1b has an insertion of three nucleotides (CAG) in the open reading frame. Figla and Dmrt1 displayed gonadal-specific expression and abundant in the ovaries and in the testes, respectively. In particular, levels of Figla expression in the ovaries were higher in the spawning season than in the non-spawning season. Once sex change began, Figla mRNA decreased and Dmrt1 mRNA increased with progression of oocyte degeneration and spermatogenesis. These expression levels were maintained until the completion of the sex change. Low Figla and high Dmrt1 were also observed in testes of primary males, which functioned as a gonochoristic male throughout its life span in this wrasse. The results of this study suggest that these genes may regulate the gonadal transition from ovary to testis by the same mechanism as that of formation and maintenance of the primary testis in H. poecilopterus.
卵泡发生特异性碱性螺旋-环-螺旋基因(生殖系α因子,Figla)和双性与mab-3相关转录因子1(Dmrt1)是分别在雌性和雄性中特异性表达的基因,在性别分化中起关键作用。为了更好地理解雌性向雄性转变的分子机制,我们从雌性先熟的裂唇鱼(Halichoeres poecilopterus)的卵巢和精巢中克隆了这些基因的cDNA。这种鱼的Dmrt1有两种异构体,即Dmrt1a和Dmrt1b,是由可变剪接产生的。Dmrt1b在开放阅读框中有三个核苷酸(CAG)的插入。Figla和Dmrt1在性腺中特异性表达,分别在卵巢和精巢中大量表达。特别是,卵巢中Figla的表达水平在产卵季节高于非产卵季节。一旦性别转变开始,随着卵母细胞退化和精子发生的进行,Figla mRNA减少,Dmrt1 mRNA增加。这些表达水平一直维持到性别转变完成。在初级雄鱼的精巢中也观察到低水平的Figla和高水平的Dmrt1,在这种裂唇鱼中,初级雄鱼在其整个生命周期中都作为雌雄异体的雄性发挥作用。本研究结果表明,这些基因可能通过与裂唇鱼初级精巢形成和维持相同的机制来调节性腺从卵巢向精巢的转变。