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Endocrinology Vol. 139, No. 5 2571-2578
Copyright © 1998 by The Endocrine Society


ARTICLES

Expression of Growth Differentiation Factor-9 Messenger Ribonucleic Acid in Ovarian and Nonovarian Rodent and Human Tissues1

Susan L. Fitzpatrick, Deborah M. Sindoni, Paul J. Shughrue, Malcolm V. Lane, Istvan J. Merchenthaler and Donald E. Frail

Women’s Health Research Institute, Wyeth Ayerst Research, Radnor, Pennsylvania 19087

Address all correspondence and requests for reprints to: Dr. Susan Fitzpatrick, Women’s Health Research Institute, Wyeth Ayerst Research, 145 King of Prussia Road, Radnor, Pennsylvania 19087. E-mail: fitzpas2{at}war.wyeth.com

Growth differentiation factor-9 (GDF-9) is a member of the transforming growth factor-ß family that is reported to be expressed exclusively in the ovary, specifically in the oocyte. Female mice deficient in GDF-9 are infertile, suggesting that GDF-9 receptor agonists and antagonists may specifically modulate fertility. We now report that GDF-9 messenger RNA (mRNA) is expressed in nonovarian tissues in mice, rats, and humans. GDF-9 mRNA was detected in mouse and rat ovary, testis, and hypothalamus by Northern blot and RT-PCR analyses. The localization of GDF-9 mRNA specifically in oocytes of the mouse ovary was confirmed by in situ hybridization histochemistry. In mouse testis, although localization in Sertoli cell cytoplasm could not be ruled out, mRNA expression was observed in large pachytene spermatocytes and round spermatids. The expression of GDF-9 mRNA in human tissues was assessed by Northern blot and RT-PCR analyses. GDF-9 mRNA was observed in ovary and testis and, surprisingly, in diverse nongonadal tissues, including pituitary, uterus, and bone marrow. Therefore, GDF-9 mRNA expression in rodents is not exclusive to the ovary, but includes the testis and hypothalamus. Furthermore, human GDF-9 mRNA is expressed not only in the gonads, but also in several extragonadal tissues. The function and relevance of nongonadal GDF-9 mRNA are not known, but may affect strategies for contraception and fertility that are based on GDF-9 activity.




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