Structural Basis of PML-RARA Oncoprotein Targeting by Arsenic Unravels a Cysteine Rheostat Controlling PML Body Assembly and Function

Author:

Bercier Pierre12ORCID,Wang Qian Qian345ORCID,Zang Ning46ORCID,Zhang Jie46ORCID,Yang Chang345ORCID,Maimaitiyiming Yasen345ORCID,Abou-Ghali Majdouline12ORCID,Berthier Caroline1ORCID,Wu Chengchen12ORCID,Niwa-Kawakita Michiko12ORCID,Dirami Thassadite12ORCID,Geoffroy Marie-Claude12ORCID,Ferhi Omar12ORCID,Quentin Samuel2ORCID,Benhenda Shirine2ORCID,Ogra Yasumitsu7ORCID,Gueroui Zoher8ORCID,Zhou Chun46ORCID,Naranmandura Hua34ORCID,de Thé Hugues129ORCID,Lallemand-Breitenbach Valérie12ORCID

Affiliation:

1. 1Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS, INSERM, Université PSL, Paris, France.

2. 2GenCellDis, Inserm U944, CNRS UMR7212, Université Paris Cité, Paris, France.

3. 3Department of Hematology of First Affiliated Hospital, School of Medicine, Zhejiang University, Hangzhou, China.

4. 4Public Health, School of Medicine and Department of Toxicology, Zhejiang University, Hangzhou, China.

5. 5College of Pharma­ceutical Sciences, Zhejiang University, Hangzhou, China.

6. 6Department of Pathology, Sir Run Run Shaw Hospital, Zhejiang University School of Medicine, Hangzhou, China.

7. 7Graduate School of Pharmaceutical Sciences, Chiba University, Chiba, Japan.

8. 8Department of Chemistry, École Normale Supérieure, PSL University, Sorbonne Université, CNRS, Paris, France.

9. 9Hematology Laboratory, Hôpital St Louis, AP/HP, Paris, France.

Abstract

Abstract PML nuclear bodies (NB) are disrupted in PML-RARA–driven acute promyelocytic leukemia (APL). Arsenic trioxide (ATO) cures 70% of patients with APL, driving PML-RARA degradation and NB reformation. In non-APL cells, arsenic binding onto PML also amplifies NB formation. Yet, the actual molecular mechanism(s) involved remain(s) elusive. Here, we establish that PML NBs display some features of liquid–liquid phase separation and that ATO induces a gel-like transition. PML B-box-2 structure reveals an alpha helix driving B2 trimerization and positioning a cysteine trio to form an ideal arsenic-binding pocket. Altering either of the latter impedes ATO-driven NB assembly, PML sumoylation, and PML-RARA degradation, mechanistically explaining clinical ATO resistance. This B2 trimer and the C213 trio create an oxidation-sensitive rheostat that controls PML NB assembly dynamics and downstream signaling in both basal state and during stress response. These findings identify the structural basis for arsenic targeting of PML that could pave the way to novel cancer drugs. Significance: Arsenic curative effects in APL rely on PML targeting. We report a PML B-box-2 structure that drives trimer assembly, positioning a cysteine trio to form an arsenic-binding pocket, which is disrupted in resistant patients. Identification of this ROS-sensitive triad controlling PML dynamics and functions could yield novel drugs. See related commentary by Salomoni, p. 2505. This article is featured in Selected Articles from This Issue, p. 2489

Funder

Institut National de la Santé et de la Recherche Médicale

Institut des sciences biologiques

Collège de France

Alliance Nationale pour les Sciences de la Vie et de la Santé

Fondation du Collège de France

European Research Council

Sjöbergstiftelsen

National Natural Science Foundation of China

Zhejiang University Student Science and Technology Innovation Activity Plan

Fondation ARC pour la Recherche sur le Cancer

Publisher

American Association for Cancer Research (AACR)

Subject

Oncology

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