Literature DB >> 21540125

Epigenetics, spermatogenesis and male infertility.

Singh Rajender1, Kelsey Avery, Ashok Agarwal.   

Abstract

Epigenetic modifications characterized by DNA methylation, histone modifications, and chromatin remodeling are important regulators in a number of biological processes, including spermatogenesis. Several genes in the testes are regulated through epigenetic mechanisms, indicating a direct influence of epigenetic mechanisms on the process of spermatogenesis. In the present article, we have provided a comprehensive review of the epigenetic processes in the testes, correlation of epigenetic aberrations with male infertility, impact of environmental factors on the epigenome and male fertility, and significance of epigenetic changes/aberrations in assisted reproduction. The literature review suggested a significant impact of epigenetic aberrations (epimutations) on spermatogenesis, and this could lead to male infertility. Epimutations (often hypermethylation) in several genes, namely MTHFR, PAX8, NTF3, SFN, HRAS, JHM2DA, IGF2, H19, RASGRF1, GTL2, PLAG1, D1RAS3, MEST, KCNQ1, LIT1, and SNRPN, have been reported in association with poor semen parameters or male infertility. Environmental toxins/drugs may affect fertility via epigenetic modifications. For example, 5-aza-2'-deoxycytidine, an anticancer agent, causes a decrease in global DNA methylation that leads to altered sperm morphology, decreased sperm motility, decreased fertilization capacity, and decreased embryo survival. Similarly, Endocrine disruptors, such as methoxychlor (an estrogenic pesticide) and vinclozolin (an anti-androgenic fungicide) have been found by experiments on animals to affect epigenetic modifications that may cause spermatogenic defects in subsequent generations. Assisted reproduction procedures that have been considered rather safe, are now being implicated in inducing epigenetic changes that could affect fertility in subsequent generations. Techniques such as intracytoplasmic sperm injection (ICSI) and round spermatid injection (ROSI) may increase the incidence of imprinting disorders and adversely affect embryonic development by using immature spermatozoa that may not have established proper imprints or global methylation. Epigenetic changes, in contrast to genetic aberrations, may be less deleterious because they are potentially reversible. Further research could identify certain drugs capable of reversing epigenetic changes.
Copyright © 2011 Elsevier B.V. All rights reserved.

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Year:  2011        PMID: 21540125     DOI: 10.1016/j.mrrev.2011.04.002

Source DB:  PubMed          Journal:  Mutat Res        ISSN: 0027-5107            Impact factor:   2.433


  69 in total

1.  The RNase III enzyme DROSHA is essential for microRNA production and spermatogenesis.

Authors:  Qiuxia Wu; Rui Song; Nicole Ortogero; Huili Zheng; Ryan Evanoff; Chris L Small; Michael D Griswold; Satoshi H Namekawa; Helene Royo; James M Turner; Wei Yan
Journal:  J Biol Chem       Date:  2012-06-04       Impact factor: 5.157

Review 2.  Environmental epigenetics and effects on male fertility.

Authors:  Carlos Guerrero-Bosagna; Michael K Skinner
Journal:  Adv Exp Med Biol       Date:  2014       Impact factor: 2.622

3.  Conceptual shifts needed to understand the dynamic interactions of genes, environment, epigenetics, social processes, and behavioral choices.

Authors:  Fatimah L C Jackson; Mihai D Niculescu; Robert T Jackson
Journal:  Am J Public Health       Date:  2013-08-08       Impact factor: 9.308

4.  Aberrant DNA methylation at Igf2-H19 imprinting control region in spermatozoa upon neonatal exposure to bisphenol A and its association with post implantation loss.

Authors:  Tanvi Doshi; Criselle D'souza; Geeta Vanage
Journal:  Mol Biol Rep       Date:  2013-05-08       Impact factor: 2.316

Review 5.  Sperm DNA integrity assays: diagnostic and prognostic challenges and implications in management of infertility.

Authors:  Monis Bilal Shamsi; Syed Nazar Imam; Rima Dada
Journal:  J Assist Reprod Genet       Date:  2011-09-09       Impact factor: 3.412

Review 6.  Regulation of spermatogenesis by small non-coding RNAs: role of the germ granule.

Authors:  Sara de Mateo; Paolo Sassone-Corsi
Journal:  Semin Cell Dev Biol       Date:  2014-04-19       Impact factor: 7.727

7.  Characterization of BRD4 during mammalian postmeiotic sperm development.

Authors:  Jessica M Bryant; Greg Donahue; Xiaoshi Wang; Mirella Meyer-Ficca; Lacey J Luense; Angela H Weller; Marisa S Bartolomei; Gerd A Blobel; Ralph G Meyer; Benjamin A Garcia; Shelley L Berger
Journal:  Mol Cell Biol       Date:  2015-02-17       Impact factor: 4.272

Review 8.  Specific changes in the expression of imprinted genes in prostate cancer--implications for cancer progression and epigenetic regulation.

Authors:  Teodora Ribarska; Klaus-Marius Bastian; Annemarie Koch; Wolfgang A Schulz
Journal:  Asian J Androl       Date:  2012-02-27       Impact factor: 3.285

Review 9.  The use of genomics, proteomics, and metabolomics in identifying biomarkers of male infertility.

Authors:  Jason R Kovac; Alexander W Pastuszak; Dolores J Lamb
Journal:  Fertil Steril       Date:  2013-02-15       Impact factor: 7.329

10.  DNA methylation in spermatogenesis and male infertility.

Authors:  Xiangrong Cui; Xuan Jing; Xueqing Wu; Meiqin Yan; Qiang Li; Yan Shen; Zhenqiang Wang
Journal:  Exp Ther Med       Date:  2016-08-04       Impact factor: 2.447

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