TRMT10A dysfunction perturbs codon translation of initiator methionine and glutamine and impairs brain functions in mice

Author:

Tresky Roland1,Miyamoto Yuta2,Nagayoshi Yu13,Yabuki Yasushi4,Araki Kimi5,Takahashi Yukie2,Komohara Yoshihiro6,Ge Huicong1,Nishiguchi Kayo13,Fukuda Takaichi2,Kaneko Hitomi1,Maeda Nobuko7,Matsuura Jin18,Iwasaki Shintaro910ORCID,Sakakida Kourin111,Shioda Norifumi4ORCID,Wei Fan-Yan12ORCID,Tomizawa Kazuhito1ORCID,Chujo Takeshi1ORCID

Affiliation:

1. Department of Molecular Physiology, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

2. Department of Anatomy and Neurobiology, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

3. Department of Nephrology, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

4. Department of Genomic Neurology, Institute of Molecular Embryology and Genetics, Kumamoto University , Kumamoto  860-0811 , Japan

5. Division of Developmental Genetics, Institute of Resource Development and Analysis, Kumamoto University , Kumamoto  860-0811 , Japan

6. Department of Cell Pathology, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

7. Department of Gastroenterology and Hepatology, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

8. Department of Neurosurgery, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

9. RNA Systems Biochemistry Laboratory, RIKEN Cluster for Pioneering Research , Saitama  351-0198 , Japan

10. Department of Computational Biology and Medical Sciences, Graduate School of Frontier Sciences, The University of Tokyo , Chiba  277-8561 , Japan

11. Department of Metabolic Medicine, Faculty of Life Sciences, Kumamoto University , Kumamoto  860-8556 , Japan

12. Department of Modomics Biology and Medicine, Institute of Development, Aging and Cancer, Tohoku University , Sendai  980-8575 , Japan

Abstract

Abstract In higher eukaryotes, tRNA methyltransferase 10A (TRMT10A) is responsible for N1-methylguanosine modification at position nine of various cytoplasmic tRNAs. Pathogenic mutations in TRMT10A cause intellectual disability, microcephaly, diabetes, and short stature in humans, and generate cytotoxic tRNA fragments in cultured cells; however, it is not clear how TRMT10A supports codon translation or brain functions. Here, we generated Trmt10a null mice and showed that tRNAGln(CUG) and initiator methionine tRNA levels were universally decreased in various tissues; the same was true in a human cell line lacking TRMT10A. Ribosome profiling of mouse brain revealed that dysfunction of TRMT10A causes ribosome slowdown at the Gln(CAG) codon and increases translation of Atf4 due to higher frequency of leaky scanning of its upstream open reading frames. Broadly speaking, translation of a subset of mRNAs, especially those for neuronal structures, is perturbed in the mutant brain. Despite not showing discernable defects in the pancreas, liver, or kidney, Trmt10a null mice showed lower body weight and smaller hippocampal postsynaptic densities, which is associated with defective synaptic plasticity and memory. Taken together, our study provides mechanistic insight into the roles of TRMT10A in the brain, and exemplifies the importance of universal tRNA modification during translation of specific codons.

Funder

Fusion Oriented REsearch for Disruptive Science and Technology

Japan Science and Technology Agency

Japan Society for the Promotion of Science

Takeda Science Foundation

Kumamoto University Center for Metabolic Regulation of Healthy Aging

Publisher

Oxford University Press (OUP)

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