Human SAMD9 is a poxvirus-activatable anticodon nuclease inhibiting codon-specific protein synthesis

Author:

Zhang Fushun1ORCID,Ji Quanquan2ORCID,Chaturvedi Juhi3ORCID,Morales Marisol1ORCID,Mao Yuanhui2ORCID,Meng Xiangzhi1,Dong Leiming2ORCID,Deng Junpeng3,Qian Shu-Bing2ORCID,Xiang Yan1ORCID

Affiliation:

1. Department of Microbiology, Immunology and Molecular Genetics, University of Texas Health Science Center at San Antonio, 7703 Floyd Curl Drive, San Antonio, TX 78229, USA.

2. Division of Nutritional Sciences, Cornell University, Ithaca, NY 14853, USA.

3. Department of Biochemistry and Molecular Biology, Oklahoma State University, 246 Noble Research Center, Stillwater, OK 74078, USA.

Abstract

As a defense strategy against viruses or competitors, some microbes use anticodon nucleases (ACNases) to deplete essential tRNAs, effectively halting global protein synthesis. However, this mechanism has not been observed in multicellular eukaryotes. Here, we report that human SAMD9 is an ACNase that specifically cleaves phenylalanine tRNA (tRNA Phe ), resulting in codon-specific ribosomal pausing and stress signaling. While SAMD9 ACNase activity is normally latent in cells, it can be activated by poxvirus infection or rendered constitutively active by SAMD9 mutations associated with various human disorders, revealing tRNA Phe depletion as an antiviral mechanism and a pathogenic condition in SAMD9 disorders. We identified the N-terminal effector domain of SAMD9 as the ACNase, with substrate specificity primarily determined by a eukaryotic tRNA Phe –specific 2′- O -methylation at the wobble position, making virtually all eukaryotic tRNA Phe susceptible to SAMD9 cleavage. Notably, the structure and substrate specificity of SAMD9 ACNase differ from known microbial ACNases, suggesting convergent evolution of a common immune defense strategy targeting tRNAs.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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