Mettl1-dependent m<sup>7</sup>G tRNA modification is essential for maintaining spermatogenesis and fertility in Drosophila melanogaster.

Kaneko, Shunya; Miyoshi, Keita; Tomuro, Kotaro; Terauchi, Makoto; Tanaka, Ryoya; Kondo, Shu; Tani, Naoki; Ishiguro, Kei-Ichiro et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

Modification of guanosine to N<sup>7</sup>-methylguanosine (m<sup>7</sup>G) in the variable loop region of tRNA is catalyzed by the METTL1/WDR4 heterodimer and stabilizes target tRNA. Here, we reveal essential functions of Mettl1 in Drosophila fertility. Knockout of Mettl1 (Mettl1-KO) causes no major effect on the development of non-gonadal tissues, but abolishes the production of elongated spermatids and mature sperm, which is fully rescued by expression of a Mettl1-transgene, but not a catalytic-dead Mettl1 transgene. This demonstrates that Mettl1-dependent m<sup>7</sup>G is required for spermatogenesis. Mettl1-KO results in a loss of m<sup>7</sup>G modification on a subset of tRNAs and decreased tRNA abundance. Ribosome profiling shows that Mettl1-KO led to ribosomes stalling at codons decoded by tRNAs that were reduced in abundance. Mettl1-KO also significantly reduces the translation efficiency of genes involved in elongated spermatid formation and sperm stability. Germ cell-specific expression of Mettl1 rescues disrupted m<sup>7</sup>G tRNA modification and tRNA abundance in Mettl1-KO testes but not in non-gonadal tissues. Ribosome stalling is much less detectable in non-gonadal tissues than in Mettl1-KO testes. These findings reveal a developmental role for m<sup>7</sup>G tRNA modification and indicate that m<sup>7</sup>G modification-dependent tRNA abundance differs among tissues.

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