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Separate Locations of Urocortin and its Receptors in Mouse Testis: Function in Male Reproduction and the Relevant Mechanisms
Author(s) -
Jin Tao,
Min Lin,
Jiahao Sha,
Gregory Tan,
Tuck Wah Soong,
Shengnan Li
Publication year - 2007
Publication title -
cellular physiology and biochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.486
H-Index - 87
eISSN - 1421-9778
pISSN - 1015-8987
DOI - 10.1159/000100649
Subject(s) - urocortin , motility , immunostaining , medicine , biology , receptor , endocrinology , acrosome reaction , andrology , spermatogenesis , immunohistochemistry , microbiology and biotechnology , human fertilization , immunology , anatomy
Urocortin (UCN), a newly identified corticotrophin-releasing-factor (CRF) related peptide, has been demonstrated to play important roles in female reproductive system. However, few studies were reported about its effects on male reproduction. This study aimed to investigate the expression profile of UCN and CRF receptors (CRFR) in mouse testis and functions of UCN in male reproduction. Expression of UCN and CRFR mRNA was detected by RT-PCR. Localization of UCN peptide was determined by immunohistochemistry and double-immunostaining. We found that both UCN mRNA and peptide were obviously expressed in mature spermatozoa, whereas CRFR1 and CRFR2 were expressed respectively in spermatocytes and spermatogonia. Double-immunostaining results showed that UCN expression decreased with acrosome reaction (AR) proceeding. UCN significantly inhibited AR initiated by progesterone with chlortetracycline staining and decreased spermatozoa motility concentration-dependently. Pre-incubation of spermatozoa with astressin, a CRFR antagonist, did not affect these inhibitions. In addition, flow cytometry showed that UCN concentration-dependently decreased intracellular Ca(2+) [Ca(2+)](i) in spermatozoa. In summary, UCN located in mouse spermatozoa and exerted inhibitory effects on male reproductive functions including motility and AR. UCN's inhibition on [Ca(2+)](i) via T-type calcium channels might be responsible for these effects.

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