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Updated: Aug 29, 2026

Light-mediated Reversible Modulation of the Mitogen-activated Protein Kinase Pathway during Cell Differentiation and Xenopus Embryonic Development
Published on: June 15, 2017
METTL18 is Required for Developmental, Metabolic, and Endocrine Regulation of Mammalian Growth
Fumiya Kasai1, Jun-Dal Kim1,2,3, Koichiro Kako1,4
1Life Science Center for Survival Dynamics, Tsukuba Advanced Research Alliance (TARA), University of Tsukuba, Ibaraki, Japan.
Abstract:
Histidine methylation is an evolutionarily conserved but poorly understood post-translational modification. METTL18 is known to catalyze histidine Nτ-methylation in vitro, yet its physiological functions in mammals remain unclear. Here we show that mouse METTL18 possesses conserved histidine Nτ-methyltransferase activity and that its genetic deletion results in widespread effects on developmental, metabolic, and endocrine function. Mettl18 knockout (KO) embryos exhibit impaired growth with disruption of the transferrin-transferrin receptor (Trf-Tfrc) axis, suggesting insufficient fetal iron handling. After birth, Mettl18 KO mice remain underweight and show reduced liver and white adipose tissue mass. Moreover, Mettl18 KO mice exhibit decreased plasma and liver triglycerides, elevated adiponectin and improved glucose tolerance, indicative of a coordinated shift toward an energy-conserving metabolic Trf-Tfrc state. Notably, METTL18 deficiency impairs IGF-1-mediated signaling and suppresses the TSH-T4 axis, two major endocrine pathways critical for postnatal growth. Taken together, our results indicate that METTL18 functions as a conserved histidine methyltransferase that contributes to fetal development, endocrine regulation, and systemic metabolism, thereby influencing organismal growth in mammals.
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