Literature DB >> 34153130

Perinatal exposure to nicotine alters spermatozoal DNA methylation near genes controlling nicotine action.

Ali Altıntaş1, Jie Liu2, Odile Fabre1, Tsai-Der Chuang2, Ying Wang2, Reiko Sakurai2, Galal Nazih Chehabi1, Romain Barrès1, Virender K Rehan2.   

Abstract

Perinatal smoke/nicotine exposure alters lung development and causes asthma in exposed offspring, transmitted transgenerationally. The mechanism underlying the transgenerational inheritance of perinatal smoke/nicotine-induced asthma remains unknown, but germline epigenetic modulations may play a role. Using a well-established rat model of perinatal nicotine-induced asthma, we determined the DNA methylation pattern of spermatozoa of F1 rats exposed perinatally to nicotine in F0 gestation. To identify differentially methylated regions (DMRs), reduced representation bisulfite sequencing was performed on spermatozoa of F1 litters. The top regulated gene body and promoter DMRs were tested for lung gene expression levels, and key proteins involved in lung development and repair were determined. The overall CpG methylation in F1 sperms across gene bodies, promoters, 5'-UTRs, exons, introns, and 3'-UTRs was not affected by nicotine exposure. However, the methylation levels were different between the different genomic regions. Eighty one CpG sites, 16 gene bodies, and 3 promoter regions were differentially methylated. Gene enrichment analysis of DMRs revealed pathways involved in oxidative stress, nicotine response, alveolar and brain development, and cellular signaling. Among the DMRs, Dio1 and Nmu were the most hypermethylated and hypomethylated genes, respectively. Gene expression analysis showed that the mRNA expression and DNA methylation were incongruous. Key proteins involved in lung development and repair were significantly different (FDR < 0.05) between the nicotine and placebo-treated groups. Our data show that DNA methylation is remodeled in offspring spermatozoa upon perinatal nicotine exposure. These epigenetic alterations may play a role in transgenerational inheritance of perinatal smoke/nicotine induced asthma.
© 2021 Federation of American Societies for Experimental Biology.

Entities:  

Keywords:  DNA methylation; epigenetic inheritance; lung development; smoking; spermatozoa

Mesh:

Substances:

Year:  2021        PMID: 34153130      PMCID: PMC9231556          DOI: 10.1096/fj.202100215R

Source DB:  PubMed          Journal:  FASEB J        ISSN: 0892-6638            Impact factor:   5.834


  63 in total

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2.  Perinatal Exposure to Nicotine Alters Sperm RNA Profiles in Rats.

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