The lysine catabolite saccharopine impairs development by disrupting mitochondrial homeostasis

Author:

Zhou Junxiang123,Wang Xin2ORCID,Wang Min1,Chang Yuwei4,Zhang Fengxia4,Ban Zhaonan34,Tang Ruofeng13,Gan Qiwen13,Wu Shaohuan345,Guo Ye1,Zhang Qian13,Wang Fengyang13,Zhao Liyuan13,Jing Yudong1ORCID,Qian Wenfeng45,Wang Guodong4ORCID,Guo Weixiang1ORCID,Yang Chonglin12ORCID

Affiliation:

1. State Key Laboratory of Molecular Developmental Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China

2. State Key Laboratory of Natural Resource Conservation and Utilization in Yunnan and Center for Life Sciences, School of Life Sciences, Yunnan University, Kunming, China

3. Graduate University of Chinese Academy of Sciences, Beijing, China

4. State Key Laboratory of Plant Genomics, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China

5. Key Laboratory of Genetic Network Biology, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China

Abstract

Amino acid catabolism is frequently executed in mitochondria; however, it is largely unknown how aberrant amino acid metabolism affects mitochondria. Here we report the requirement for mitochondrial saccharopine degradation in mitochondrial homeostasis and animal development. In Caenorhbditis elegans, mutations in the saccharopine dehydrogenase (SDH) domain of the bi-functional enzyme α-aminoadipic semialdehyde synthase AASS-1 greatly elevate the lysine catabolic intermediate saccharopine, which causes mitochondrial damage by disrupting mitochondrial dynamics, leading to reduced adult animal growth. In mice, failure of mitochondrial saccharopine oxidation causes lethal mitochondrial damage in the liver, leading to postnatal developmental retardation and death. Importantly, genetic inactivation of genes that raise the mitochondrial saccharopine precursors lysine and α-ketoglutarate strongly suppresses SDH mutation-induced saccharopine accumulation and mitochondrial abnormalities in C. elegans. Thus, adequate saccharopine catabolism is essential for mitochondrial homeostasis. Our study provides mechanistic and therapeutic insights for understanding and treating hyperlysinemia II (saccharopinuria), an aminoacidopathy with severe developmental defects.

Funder

Global Youth Experts of China

National Basic Research Program of China

National Science Foundation of China

Interdisciplinary Innovation Team

Chinese Academy of Sciences

the Key Research Program of Frontier Sciences

Publisher

Rockefeller University Press

Subject

Cell Biology

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