Abstract
Prophase I of male meiosis during early spermatogenesis involves dynamic chromosome segregation processes, including synapsis, meiotic recombination and cohesion. Genetic defects in the genes that participate in these processes consistently cause reproduction failure in mice. To identify candidate genes responsible for infertility in humans, we performed gene expression profiling of mouse spermatogenic cells undergoing meiotic prophase I. Cell fractions enriched in spermatogonia, leptotene/zygotene spermatocytes or pachytene spermatocytes from developing mouse testis were separately isolated by density gradient sedimentation and subjected to microarray analysis. A total of 726 genes were identified that were upregulated in leptotene/zygotene spermatocytes. To evaluate the screening efficiency for meiosis-specific genes, we randomly selected 12 genes from this gene set and characterized each gene product using reverse transcription (RT)-PCR of RNA from gonadal tissues, in situ hybridization on testicular tissue sections and subcellular localization analysis of the encoded protein. Four of the 12 genes were confirmed as genes expressed in meiotic stage and 2 of these 4 genes were novel, previously uncharacterized genes. Among the three confirmation methods that were used, RT-PCR appeared to be the most efficient method for further screening. These 726 candidates for human infertility genes might serve as a useful resource for next-generation sequencing combined with exon capture by microarray.
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References
de Kretser, D. M. Male infertility. Lancet 349, 787–790 (1997).
Matzuk, M. M. & Lamb, D. J. The biology of infertility: research advances and clinical challenges. Nat. Med. 14, 1197–1213 (2008).
Sanderson, M. L., Hassold, T. J. & Carrell, D. T. Proteins involved in meiotic recombination: a role in male infertility? Syst. Biol. Reprod. Med. 54, 57–74 (2008).
Miyamoto, T., Hasuike, S., Yogev, L., Maduro, M. R., Ishikawa, M., Westphal, H. et al. Azoospermia in patients heterozygous for a mutation in SYCP3. Lancet 362, 1714–1719 (2003).
Christensen, G. L., Ivanov, I. P., Atkins, J. F., Mielnik, A., Schlegel, P. N. & Carrell, D. T. Screening the SPO11 and EIF5A2 genes in a population of infertile men. Fertil. Steril. 84, 758–760 (2005).
Mandon-Pépin, B., Touraine, P., Kuttenn, F., Derbois, C., Rouxel, A., Matsuda, F. et al. Genetic investigation of four meiotic genes in women with premature ovarian failure. Eur. J. Endocrinol. 158, 107–115 (2008).
Stouffs, K., Lissens, W., Tournaye, H., Van Steirteghem, A. & Liebaers, I. SYCP3 mutations are uncommon in patients with azoospermia. Fertil. Steril. 84, 1019–1020 (2005).
Westerveld, G. H., Repping, S., Lombardi, M. P. & van der Veen, F. Mutations in the chromosome pairing gene FKBP6 are not a common cause of non-obstructive azoospermia. Mol. Hum. Reprod. 11, 673–675 (2005).
Mori, T., Kurahashi, H., Shinka, T., Nakahori, Y., Taniguchi, M., Toda, T. et al. Candidate genes for male factor infertility—validation. Fertil. Steril. 86, 1553–1554 (2006).
Miyamato, T., Sato, H., Yogev, L., Kleiman, S., Namiki, M., Koh, E. et al. Is a genetic defect in Fkbp6 a common cause of azoospermia in humans? Cell Mol. Biol. Lett. 11, 557–569 (2006).
Zhang, W., Zhang, S., Xiao, C., Yang, Y. & Zhoucun, A. Mutation screening of the FKBP6 gene and its association study with spermatogenic impairment in idiopathic infertile men. Reproduction 133, 511–516 (2007).
MartÃnez, J., Bonache, S., Carvajal, A., Bassas, L. & Larriba, S. Mutations of SYCP3 are rare in infertile Spanish men with meiotic arrest. Fertil. Steril. 88, 988–989 (2007).
Zhang, W., Yang, Y., Su, D., Ma, Y. & Zhang, S. Absence of the H2AX mutations in idiopathic infertile men with spermatogenic impairment. Syst. Biol. Reprod. Med. 54, 93–95 (2008).
Griffin, J., Emery, B. R., Christensen, G. L. & Carrell, D. T. Analysis of the meiotic recombination gene REC8 for sequence variations in a population with severe male factor infertility. Syst. Biol. Reprod. Med. 54, 163–165 (2008).
Chu, S., DeRisi, J., Eisen, M., Mulholland, J., Botstein, D., Brown, P. O. et al. The transcriptional program of sporulation in budding yeast. Science 282, 699–705 (1998).
Primig, M., Williams, R. M., Winzeler, E. A., Tevzadze, G. G., Conway, A. R., Hwang, S. Y. et al. The core meiotic transcriptome in budding yeasts. Nat. Genet. 26, 415–423 (2000).
Sha, J., Zhou, Z., Li, J., Yin, L., Yang, H., Hu, G. et al. Identification of testis development and spermatogenesis-related genes in human and mouse testes using cDNA arrays. Mol. Hum. Reprod. 8, 511–517 (2002).
Pang, A. L., Taylor, H. C., Johnson, W., Alexander, S., Chen, Y., Su, Y. A. et al. Identification of differentially expressed genes in mouse spermatogenesis. J. Androl. 24, 899–911 (2003).
Wu, S. M., Baxendale, V., Chen, Y., Pang, A. L., Stitely, T., Munson, P. J. et al. Analysis of mouse germ-cell transcriptome at different stages of spermatogenesis by SAGE: biological significance. Genomics 84, 971–981 (2004).
Schultz, N., Hamra, F. K. & Garbers, D. L. A multitude of genes expressed solely in meiotic or postmeiotic spermatogenic cells offers a myriad of contraceptive targets. Proc. Natl Acad. Sci. USA 100, 12201–12206 (2003).
Rossi, P., Dolci, S., Sette, C., Capolunghi, F., Pellegrini, M., Loiarro, M. et al. Analysis of the gene expression profile of mouse male meiotic germ cells. Gene Expr. Patterns 4, 267–281 (2004).
Schlecht, U., Demougin, P., Koch, R., Hermida, L., Wiederkehr, C., Descombes, P. et al. Expression profiling of mammalian male meiosis and gametogenesis identifies novel candidate genes for roles in the regulation of fertility. Mol. Biol. Cell 15, 1031–1043 (2004).
Pang, A. L., Johnson, W., Ravindranath, N., Dym, M., Rennert, O. M. & Chan, W. Y. Expression profiling of purified male germ cells: stage-specific expression patterns related to meiosis and postmeiotic development. Physiol. Genomics 24, 75–85 (2006).
van Pelt, A. M., Morena, A. R., van Dissel-Emiliani, F. M., Boitani, C., Gaemers, I. C., de rooij, D. G. et al. Isolation of the synchronized A spermatogonia from adult vitamin A-deficient rat testes. Biol. Reprod. 55, 439–444 (1996).
Brazma, A., Hingamp, P., Quackenbush, J., Sherlock, G., Spellman, P., Stoeckert, C. et al. Minimum information about a microarray experiment (MIAME)-toward standards for microarray data. Nat. Genet. 29, 365–371 (2001).
Schlecht, U. & Primig, M. Mining meiosis and gametogenesis with DNA microarrays. Reproduction 125, 447–456 (2003).
Bellve, A. R., Millette, C. F., Bhatnagar, Y. M. & O’Brien, D. A. Dissociation of the mouse testis and characterization of isolated spermatogenic cells. J. Histochem. Cytochem. 25, 480–494 (1977).
Dym, M., Jia, M.C., Dirami, G., Price, J. M., Rabin, S. J., Mocchetti, I. et al. Expression of c-kit receptor and its autophosphorylation in immature rat type A spermatogonia. Biol. Reprod. 52, 8–19 (1995).
Liang, G., Zhang, X. D., Wang, L. J., Sha, Y. S., Zhang, J. C., Miao, S. Y. et al. Identification of differentially expressed genes of primary spermatocyte against round spermatid isolated from human testis using the laser capture microdissection technique. Cell Res. 14, 507–512 (2004).
Johnston, D. S., Wright, W. W., Dicandeloro, P., Wilson, E., Kopf, G. S. & Jelinsky, S. A. Stage-specific gene expression is a fundamental characteristic of rat spermatogenic cells and Sertoli cells. Proc. Natl Acad. Sci. USA 105, 8315–8320 (2008).
Shima, J. E., McLean, D. J., McCarrey, J. R. & Griswold, M. D. The murine testicular transcriptome: characterizing gene expression in the testis during the progression of spermatogenesis. Biol. Reprod. 71, 319–330 (2004).
Kierszenbaum, A. L. & Tres, L. L. RNA transcription and chromatin structure during meiotic and postmeiotic stages of spermatogenesis. Fed. Proc. 37, 2512–2516 (1978).
Lin, Y. H., Lin, Y. M., Teng, Y. N., Hsieh, T. Y., Lin, Y. S. & Kuo, P. L. Identification of ten novel genes involved in human spermatogenesis by microarray analysis of testicular tissue. Fertil. Steril. 86, 1650–1658 (2006).
Nogués, C., Fernández, C., Rajmil, O. & Templado, C. Baseline expression profile of meiotic-specific genes in healthy fertile males. Fertil. Steril. 92, 578–582 (2009).
Okada, H., Tajima, A., Shichiri, K., Tanaka, A., Tanaka, K. & Inoue, I. Genome-wide expression of azoospermia testes demonstrates a specific profile and implicates ART3 in genetic susceptibility. PLoS Genet 4, e26 (2008).
Ng, S. B., Turner, E. H., Robertson, P. D., Flygare, S. D., Bigham, A. W., Lee, C. et al. Targeted capture and massively parallel sequencing of 12 human exomes. Nature 461, 272–276 (2009).
Bolor, H., Mori, T., Nishiyama, S., Ito, Y., Hosoba, E., Inagaki, H. et al. Mutations of the SYCP3 gene in women with recurrent pregnancy loss. Am. J. Hum. Genet. 84, 14–20 (2009).
Acknowledgements
We thank Dr Masutaka Tokuda for helpful discussions, and Miss Eriko Hosoba and Dr Hiroki Kano for technical assistance. This study was supported by a grant-in-aid for Scientific Research from the Ministry of Education, Culture, Sports, Science, and Technology of Japan (to HK).
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Kogo, H., Kowa-Sugiyama, H., Yamada, K. et al. Screening of genes involved in chromosome segregation during meiosis I: toward the identification of genes responsible for infertility in humans. J Hum Genet 55, 293–299 (2010). https://doi.org/10.1038/jhg.2010.26
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DOI: https://doi.org/10.1038/jhg.2010.26
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