SelO functions as a tumor suppressor through AMPylating Cdk5rap3

Cell fate is governed by signaling pathways involving diverse protein modifications. However, how protein AMPylation mediates signal transduction in mammalian cells remains largely unexplored. We demonstrate that the protein adenylyltransferase, SELENOO (SelO), is induced by chemotherapy, and has clinical relevance in cancer. In mice, SelO knockout facilitates primary tumor development and metastasis. In cancer cells, the cytosolic fraction of SelO suppresses cell proliferation and migration. Mechanistically, SelO AMPylates CDK5 regulatory subunit-associated protein 3 (Cdk5rap3) at T328, enhancing its interaction with ARF. The interaction competitively reduces ARF associated with the SUMOylation enzyme UBC9, reducing ARF-mediated SUMO1 modifications of Mdm2 and Slug. Concurrently, the strengthened Cdk5rap3-ARF affinity decreases Cdk5rap3 associated with PPM1D, impairing the ability of PPM1D to dephosphorylate Mdm2. These effects collectively lead to destabilization of Mdm2 and Slug proteins, suppressing their downstream pathways relating to cell proliferation and TGF-β-mediated migration. These findings reveal a role for protein AMPylation in cell signaling and cancer progression.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-14
DOI
https://doi.org/10.1073/pnas.2617361123
Primary Topic
Bone and Dental Protein Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

SelO functions as a tumor suppressor through AMPylating Cdk5rap3

Qiujing Yu, Yeyi Li, Yuan Fu, Xue Lü et al.
Proceedings of the National Academy of Sciences
Bone and Dental Protein Studies
article

SelO functions as a tumor suppressor through AMPylating Cdk5rap3

Qiujing Yu, Yeyi Li, Yuan Fu, Xue Lü, Ting Wang, Jie Shen, Jie Wu, Li Wu, Teng Zhang, Chunda Chen, Yixiao Zhao, Wenqiang Xie, Lu Chen
article en

Abstract

Cell fate is governed by signaling pathways involving diverse protein modifications. However, how protein AMPylation mediates signal transduction in mammalian cells remains largely unexplored. We demonstrate that the protein adenylyltransferase, SELENOO (SelO), is induced by chemotherapy, and has clinical relevance in cancer. In mice, SelO knockout facilitates primary tumor development and metastasis. In cancer cells, the cytosolic fraction of SelO suppresses cell proliferation and migration. Mechanistically, SelO AMPylates CDK5 regulatory subunit-associated protein 3 (Cdk5rap3) at T328, enhancing its interaction with ARF. The interaction competitively reduces ARF associated with the SUMOylation enzyme UBC9, reducing ARF-mediated SUMO1 modifications of Mdm2 and Slug. Concurrently, the strengthened Cdk5rap3-ARF affinity decreases Cdk5rap3 associated with PPM1D, impairing the ability of PPM1D to dephosphorylate Mdm2. These effects collectively lead to destabilization of Mdm2 and Slug proteins, suppressing their downstream pathways relating to cell proliferation and TGF-β-mediated migration. These findings reveal a role for protein AMPylation in cell signaling and cancer progression.

Proceedings of the National Academy of SciencesVol. 123(38)
University of Electronic Science and Technology of China (CN), Tianjin Medical University Cancer Institute and Hospital (CN), Sichuan Provincial Hospital of Traditional Chinese Medicine (CN), Tianjin Institute of Industrial Biotechnology (CN), Tianjin Medical University (CN), East China Normal University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 10%
Bone and Dental Protein Studies
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