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Disease-associated mutations in a bifunctional aminoacyl-tRNA synthetase gene elicit the integrated stress response

机译:双官能氨基酰基-TRNA合成酶基因中的病情相关突变引发了综合应力响应

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Aminoacyl-tRNA synthetases (ARSs) catalyze the charging of specific amino acids onto cognate tRNAs, an essential process for protein synthesis. Mutations in ARSs are frequently associated with a variety of human diseases. The human EPRS1 gene encodes a bifunctional glutamyl-prolyl-tRNA synthetase (EPRS) with two catalytic cores and appended domains that contribute to nontranslational functions. In this study, we report compound heterozygous mutations in EPRS1, which lead to amino acid substitutions P14R and E205G in two patients with diabetes and bone diseases. While neither mutation affects tRNA binding or association of EPRS with the multisynthetase complex, E205G in the glutamyl-tRNA synthetase (ERS) region of EPRS is defective in amino acid activation and tRNAGlu charging. The P14R mutation induces a conformational change and altered tRNA charging kinetics in vitro. We propose that the altered catalytic activity and conformational changes in the EPRS variants sensitize patient cells to stress, triggering an increased integrated stress response (ISR) that diminishes cell viability. Indeed, patient-derived cells expressing the compound heterozygous EPRS show heightened induction of the ISR, suggestive of disruptions in protein homeostasis. These results have important implications for understanding ARS-associated human disease mechanisms and development of new therapeutics.
机译:氨基酰基-TRNA合成酶(ARS)催化特定氨基酸的充电在同源TrNAS上,是蛋白质合成的必要方法。 ARSS中的突变经常与各种人类疾病有关。人EPRS1基因编码双官能谷氨酸 - 脯氨酰-TRNA合成酶(EPRS),其具有两种催化芯和有助于非译力功能的概率。在这项研究中,我们在EPRS1中报告了化合物杂合酶突变,这导致氨基酸取代P14R和E205G在两名糖尿病和骨病中。虽然任何突变都不会影响与多炔酶复合物的TRNA结合或EPRS关联,但EPRS的谷氨酸-TRNA合成酶(E205g在EPRS的氨基酸活化和TRNAGLU充电中有缺陷。 P14R突变在体外诱导构象变化和改变的TRNA充电动力学。我们提出,EPRS变体中改变的催化活性和构象变化使患者细胞敏化至应力,触发增加的综合应力响应(ISR),减少细胞活力。实际上,表达化合物的患者衍生的细胞杂合性EPRS显示ISR的诱导诱导蛋白质稳态的破坏。这些结果对了解ARS相关人类疾病机制和新治疗方法的发展具有重要意义。

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