Critical Approaches to Sex Determination in Sea Turtles
133
130. Marshall Graves, J.A. The rise and fall of SRY. Trends Genet. 18, 259–264. 2002.
131. da Silva, S.M. et al. SOX9 expression during gonadal development implies a conserved role for the gene in testis differentiation in mammals and birds. Nat. Genet.
14, 62–67. 1996.
132. Kent, J. et al. A male-specific role for SOX9 in vertebrate sex determination. Development 122, 2813–2822. 1996.
133. Moreno-Mendoza, N., Harley, V.R., and Merchant-Larios, H. Differential expression
of SOX9 in gonads of the sea turtle Lepidochelys olivacea at male- or femalepromoting temperatures. J. Exp. Zool. 284, 705–710. 1999.
134. Moreno-Mendoza, N., Harley, V.R., and Merchant-Larios, H. Temperature regulates
SOX9 expression in cultured gonads of Lepidochelys olivacea, a species with temperature sex determination. Dev. Biol. 229, 319–326. 2001.
135. Torres-Maldonado, L. et al. Timing of SOX9 downregulation and female sex determination in gonads of the sea turtle Lepidochelys olivacea. J. Exp. Zool. 290,
498–503. 2001.
136. Western, P.S. et al. Temperature-dependent sex determination in the American alligator: AMH precedes SOX9 expression. Dev. Dyn. 216, 411–419. 1999.
137. Raymond, C. et al. A region of human chromosome 9p required for testis development
contains two genes related to known sexual regulators. Hum. Mol. Genet. 8, 989–996.
1999.
138. Smith, C.A. and Sinclair, A.H. Sex determination in the chicken embryo. J. Exp. Zool.
290, 691–699. 2001.
139. Raymond, C.S. et al. DMRT1, a gene related to worm and fly sexual regulators, is
required for mammalian testis differentiation. Genes Dev. 14, 2587–2595. 2000.
140. Kettlewell, J., Raymond, C., and Zarkower, D. Temperature-dependent expression of
turtle Dmrt1 prior to sexual differentiation. Genesis 26, 174–178. 2000.
141. Cate, R.L. et al. Isolation of the bovine and human genes for müllerian inhibiting
substance and expression of the human gene in animal cells. Cell 45, 685–698. 1986.
142. Wibbels, T. and LeBoeuf, R.D. Development of a müllerian-inhibiting hormone
sexing technique in sea turtles. In: Proceedings of the 17th Annual Sea Turtle Symposium, NOAA Technical Publications, 1998.
143. Honda, S. et al. Ad4BP regulating steroidogenic P450 genes is a member of steroid
hormone receptor superfamily. J. Biol. Chem. 268, 7494–7502. 1993.
144. Lynch, J.P. et al. Steroidogenic factor-1, an orphan nuclear receptor, regulates the
expression of the rat aromatase gene in gonadal tissues. Mol. Endocrinol. 7, 776–786.
1993.
145. Luo, X., Ikeda, Y., and Parker, K.L. A cell-specific nuclear receptor is essential for
adrenal and gonadal development and sexual differentiation. Cell 77, 481–490. 1994.
146. Ingraham, H.A. et al. The nuclear receptor SF-1 acts at multiple levels of the reproductive axis. Genes Dev. 8, 2302–2312. 1994.
147. Parker, K.L. and Schimmer, B.P. Steroidogenic factor 1: a key determinant of endocrine development and function. Endocr. Rev. 18, 361–377. 1997.
148. Shen, W. et al. Nuclear receptor steroidogenic factor-1 regulates the müllerian inhibiting substance gene: a link to the sex determination cascade. Cell 77, 651–661. 1994.
149. Hatano, O. et al. Sex-dependent expression of a transcription factor, Ad4BP, regulating
steroidogenic P-450 genes in the gonads during prenatal and postnatal rat development. Development 120, 2787–2797. 1994.
150. Ikeda, Y. et al. Developmental expression of mouse steroidogenic factor-1, an essential
regulator, of the steroid, hydroxylases. Mol. Endocrinol. 8, 654–662. 1994.
1123 book.book Page 133 Monday, November 11, 2002 11:11 AM
Précédent

- 186/510

Suivant