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Research

Cell

Approved and reviewable research records from Cell.

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NAD+

NAD + hydrolysis catalyzed by SelO is required for mitochondrial homeostasis.

Xiaofan Jia, Teng Zhang, Chenxi Yang, Kaiyang Liu, Li Wu, Longfei Diao, Yuting Yang, Jie Wu, Yeyi Li, Weiyan Sun, Kai Zhang, Yuhui Jiang, Yuzheng Zhao, Xu Zhang, Peng Jiang, Yideng Jiang, Qiujing Yu, Song Xiang, Yuan Fu, Ting Wang · 2026

Source abstract

The regulation of nicotinamide adenine dinucleotide (NAD + ) is crucial for numerous life processes. However, the mechanisms leading to NAD + degradation in mitochondria remain insufficiently defined. Through in silico screening of potential NAD-binding proteins, we discovered a mitochondrial reaction in which NAD + is hydrolyzed to nicotinamide mononucleotide (NMN) and AMP by SELENOO (SelO), using Mn 2+ as cofactor. Catalysis depends on SelO's selenocysteine-serine-serine (CSS) C-terminal residues, particularly the selenocysteine 667. In addition to broad metabolic effects, this reaction plays a pronounced role in lipid utilization via SelO directly associating with fatty acid oxidation (FAO) enzymes, and it is conserved in both mammalian cells and bacteria. This reaction is responsive to elevated matrix pH, a signal of enhanced mitochondrial respiration, and protects mitochondria from sustained metabolic overactivation. These findings reveal a conserved mechanism for spatiotemporal NAD + regulation and highlight its physiological significance in both prokaryotes and eukaryotes.

Open source record