Protein-Protein Interactions of Seryl-tRNA Synthetases with Emphasis on Human Counterparts and Their Connection to Health and Disease

被引:2
作者
Dulic, Morana [1 ]
Godinic-Mikulcic, Vlatka [1 ,2 ]
Kekez, Mario [1 ,3 ]
Evic, Valentina [1 ]
Rokov-Plavec, Jasmina [1 ]
机构
[1] Univ Zagreb, Fac Sci, Dept Chem, Div Biochem, Zagreb 10000, Croatia
[2] Miroslav Krleza Inst Lexicog, Zagreb 10000, Croatia
[3] A&B Doo, Zagreb 10000, Croatia
来源
LIFE-BASEL | 2024年 / 14卷 / 01期
关键词
aminoacyl-tRNA synthetase; seryl-tRNA synthetase; SARS1; translation; tRNA channeling; protein-protein interaction; VEGFA; angiogenesis; senescence; telomere; AMINOACYL-TRANSFER-RNA; CRYSTAL-STRUCTURE; NONCANONICAL FUNCTION; TERNARY COMPLEX; BREAST-CANCER; C-MYC; RECOGNITION; ANGIOGENESIS; HYPOXIA; REVEALS;
D O I
10.3390/life14010124
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Seryl-tRNA synthetases (SerRSs), members of the aminoacyl-tRNA synthetase family, interact with diverse proteins, enabling SerRSs to enhance their role in the translation of the genetic message or to perform alternative functions in cellular processes beyond translation. Atypical archaeal SerRS interacts with arginyl-tRNA synthetase and proteins of the ribosomal P-stalk to optimize translation through tRNA channeling. The complex between yeast SerRS and peroxin Pex21p provides a connection between translation and peroxisome function. The partnership between Arabidopsis SerRS and BEN1 indicates a link between translation and brassinosteroid metabolism and may be relevant in plant stress response mechanisms. In Drosophila, the unusual heterodimeric mitochondrial SerRS coordinates mitochondrial translation and replication via interaction with LON protease. Evolutionarily conserved interactions of yeast and human SerRSs with m(3)C32 tRNA methyltransferases indicate coordination between tRNA modification and aminoacylation in the cytosol and mitochondria. Human cytosolic SerRS is a cellular hub protein connecting translation to vascular development, angiogenesis, lipogenesis, and telomere maintenance. When translocated to the nucleus, SerRS acts as a master negative regulator of VEGFA gene expression. SerRS alone or in complex with YY1 and SIRT2 competes with activating transcription factors NF kappa B1 and c-Myc, resulting in balanced VEGFA expression important for proper vascular development and angiogenesis. In hypoxia, SerRS phosphorylation diminishes its binding to the VEGFA promoter, while the lack of nutrients triggers SerRS glycosylation, reducing its nuclear localization. Additionally, SerRS binds telomeric DNA and cooperates with the shelterin protein POT1 to regulate telomere length and cellular senescence. As an antitumor and antiangiogenic factor, human cytosolic SerRS appears to be a promising drug target and therapeutic agent for treating cancer, cardiovascular diseases, and possibly obesity and aging.
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页数:23
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