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l(f)r(sh)g2018-05-09 01:40
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ժҪ˺̈́(dng)ėlԱ谱,ǴԄ(dng)ֳٺֳ(x)кSx֮һ,оCţcѳMl(f)켰ƼغϳɷP(gun),wC(j)воԴԴԇ(yn)(dng),mRNA͵ˮƽzy(c)ϳP(gun)Iøװpø(CDO)ׁÓø(CSD)D(zhun)\(yn)w(TAUT)X-w-ѳSеı_(d)ͨ^(gu)ţιԇ(yn),zy(c)ጦ(du)ͬl(f)ڴֳطڵӰw⼚(x)B(yng)g(sh),zy(c)ţጦ(du)wB(yng)X(x)w(x)ѳ(x)طڼP(gun)ӱ_(d)Ӱͨ^(gu)wB(yng)ݺĸ(x)zy(c)ጦ(du)ݰl(f)ĸ(x)졢ܾѵӰ,̽ӑጦ(du)ֳC(j)õӰ푼ܙC(j),ڞţŮԼԄ(dng)ֳеđ(yng)ṩՓ(j)оY(ji)£1.ɹ¡˴X-w-ѳSCSDľa^(q),XCDOľa^(q),ѳCDOȫL(zhng)мX-w-ѳSTAUTȫL(zhng),cKлĺо^ͬԴ(96%)X-w-ѳSҲCSDCDOTAUTױ_(d)CDOCSDTAUTҪֲ݃(ni)Ĥg|(zh)(x)Y(ji)Xwѳͨ^(gu)CSDͨ·ϳ,D(zhun)\(yn)Դ2.ţጦ(du)ͬl(f)ڴټጷż(GnRH)(PRL)Sw(LH)ƶ(E2)ͪ(P)ķھһĴ̼,(du)ݴ̼(FSH)ڵӰ푲@Y(ji)ͨ^(gu)X-w-ѳS(li){(dio)شԴֳC(j)ܡ3.ܴM(jn)wB(yng)X(x)GnRHٴw(x)PRLLHѳ(ni)Ĥ(x)Tw(x)E2Pķ߃(ni)Ĥ(x)дSww(LHR)3-u(li)̴Óø(3p-HSD)17p-u(li)̴Óø(17P-HSD) mRNAı_(d),w(x)дݴ̼w(FSHR)CYP-19A-1 mRNAı_(d)Y(ji)ͨ^(gu)ѳFSHRLHRĔ(sh),M(jn)ԼغϳP(gun)Iøı_(d)(li)M(jn)Ƽصĺϳɺͷڡ4.ɴM(jn)xwB(yng)ֱL(zhng)E2ķጦ(du)xwB(yng)ĸ(x)MγܾѾдM(jn)Y(ji)ܴM(jn)ݰl(f)ĸ(x)ܾԇ(yn)Y(ji),X-w-ѳSϳţ,ҾЌԴD(zhun)\(yn)ͨ^(gu)(qing)X-w-ѳSĹ܁(li){(dio)شֳC(j)
[Abstract]:Taurine is one of the most abundant free amino acids in the gonads and germ cells of female animals. Studies have shown that taurine is closely related to ovarian tissue maturation and estrogen synthesis and secretion, but its mechanism is not clear. In this study, the expression of cysteine dioxygenase (cysteine dioxygenase), cysteine decarboxylase (cysteine decarboxylase) and taurine transporter (taurine) in hypothalamus-pituitary-ovary axis was detected from mRNA and protein levels in female rats. The effects of taurine on the secretion of reproductive hormones in rats with different estrous cycles were tested by taurine feeding test, and the effects of taurine on rat hypothalamic and pituitary cells in vitro were detected by cell culture technique in vitro. The effects of taurine on follicle development, oocyte maturation, fertilization and cleavage were examined by in vitro culture of follicles and oocytes. The effect of taurine on female reproductive function and its possible mechanism were discussed in order to provide theoretical basis for the application of taurine in female and female animal reproduction. The results are as follows: 1. The coding region sequence of CSD gene on hypothalamus-pituitary-ovary axis, the coding region sequence of CDO gene in hypothalamus, the full-length sequence of CDO gene in ovary and the full-length sequence of TAUT gene on hypothalamus-pituitary-ovary axis were cloned successfully. Moreover, the nucleotide sequence and amino acid sequence of the gene in the liver had a high homology rate of more than 96%, and the expression of CSD- CDOTAUT protein on the hypothalamus-pituitary-ovary axis was mainly distributed in the interstitial layer of the follicular intima. The results showed that the hypothalamus, pituitary and ovary could synthesize taurine via CSD pathway and have the ability of transporting exogenous taurine into cells. Taurine stimulated the secretion of gonadotropin releasing hormone (GnRH), prolactin (PRL), luteinizing hormone (LH), estradiol (E 2) and progesterone (P) in rats with different estrus cycle, but had no obvious effect on follicle stimulating hormone (FSH) secretion. The results showed that taurine may regulate the reproductive function of female rats by acting on hypothalamus-pituitary-ovarian axis. Taurine could promote the secretion of GnRH in rat hypothalamic cells, PRL and LHin adenohypophysis cells, T, E 2 and P in granulosa cells. To increase the expression of luteinizing hormone receptor (LHR3 β -hydroxysteroid dehydrogenase 3p-HSD3) and 17p- hydroxysteroid dehydrogenase (17P-HSD) mRNA, and to increase the expression of follicle-stimulating hormone receptor (FSHR) and CYP-19A-1 mRNA in granulosa cells. The results showed that taurine could promote the synthesis and secretion of estrogen by increasing the number of FSHR and LHR in ovary and promoting the expression of key enzymes of sex hormone synthesis. Taurine could increase the diameter of follicle and secretion of E2 in vitro, and taurine could promote the formation of M
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