PT - JOURNAL ARTICLE AU - Devanshi Jain AU - Cem Meydan AU - Julian Lange AU - Corentin Claeys Bouuaert AU - Christopher E. Mason AU - Kathryn V. Anderson AU - Scott Keeney TI - <em>rahu</em> is a mutant allele of <em>Dnmt3c</em>, encoding a DNA methyltransferase required for meiosis and transposon repression in the mouse male germline AID - 10.1101/121822 DP - 2017 Jan 01 TA - bioRxiv PG - 121822 4099 - http://biorxiv.org/content/early/2017/03/29/121822.short 4100 - http://biorxiv.org/content/early/2017/03/29/121822.full AB - Transcriptional silencing by heritable cytosine-5 methylation is an ancient strategy to repress transposable elements. It was previously thought that mammals possess four DNA methyltransferase paralogs—Dnmt1, Dnmt3a, Dnmt3b and Dnmt3l—that establish and maintain cytosine-5 methylation. Here we identify a fifth paralog, Dnmt3c, that is essential for retrotransposon methylation and repression in the mouse male germline. From a phenotype-based forward genetics screen, we isolated a mutant mouse called ‘rahu’, which displays severe defects in double-strand-break repair and homologous chromosome synapsis during male meiosis, resulting in sterility. rahu is an allele of a transcription unit (Gm14490, renamed Dnmt3c) that was previously mis-annotated as a Dnmt3-family pseudogene. Dnmt3c encodes a catalytically active cytosine methyltransferase, and rahu mutants harbor a non-synonymous mutation of a conserved residue within one of its cytosine methyltransferase motifs, similar to a mutation in human DNMT3B observed in patients with immunodeficiency, centromeric instability and facial anomalies syndrome. The rahu mutation lies at a potential dimerization interface and near the potential DNA binding interface, but it does not eliminate methyltransferase activity of recombinant protein in vitro, suggesting that it compromises protein-protein and/or protein-DNA interactions required for normal DNMT3C function in vivo. rahu mutant males fail to establish normal methylation within retrotransposon sequences in the germline and accumulate higher levels of transposon-derived transcripts and proteins, particularly from distinct L1 and ERVK retrotransposon families. Phylogenetic analysis indicates that Dnmt3c arose during rodent evolution by tandem duplication of Dnmt3b, after the divergence of the Dipodoidea and Muroidea superfamilies. These findings provide insight into the evolutionary dynamics and functional specialization of the transposon suppression machinery critical for mammalian sexual reproduction.Author Summary Half our genomes are made up of transposons, mobile elements that pose a constant threat to genome stability. As a defense strategy, genomes methylate transposon sequences, thereby preventing their expression and restraining their mobility. We have generated a mutant mouse, called ‘rahu’, that fails to methylate transposons in germ cells, suffers an increase in transposon expression and, as a result, is sterile. rahu mice carry a mutation in a new gene, Dnmt3c, which appeared during rodent evolution through gene duplication 45–55 million years ago and is an essential component of the germline defense system against transposons in male mice.