Calreticulin mutants as oncogenic rogue chaperones for TpoR and traffic-defective pathogenic TpoR mutants

Author:

Pecquet Christian123ORCID,Chachoua Ilyas12,Roy Anita12,Balligand Thomas123,Vertenoeil Gaëlle12,Leroy Emilie123,Albu Roxana-Irina12,Defour Jean-Philippe12ORCID,Nivarthi Harini4,Hug Eva5,Xu Erica5,Ould-Amer Yasmine12,Mouton Céline12,Colau Didier12,Vertommen Didier2,Shwe Myat Marlar12,Marty Caroline678,Plo Isabelle678,Vainchenker William678,Kralovics Robert49,Constantinescu Stefan N.123ORCID

Affiliation:

1. Ludwig Institute for Cancer Research Brussels, Brussels, Belgium;

2. Université catholique de Louvain and de Duve Institute, Brussels, Belgium;

3. Walloon Excellence in Life Sciences and Biotechnology, Brussels, Belgium;

4. CeMM Research Center for Molecular Medicine of the Austrian Academy of Sciences, Vienna, Austria;

5. MyeloPro Research and Diagnostics GmbH, Vienna, Austria;

6. INSERM, Unité Mixte de Recherche 1170, Institut Gustave Roussy, Villejuif, France;

7. Paris-Saclay, Unité Mixte de Recherche 1170, Institut Gustave Roussy, Villejuif, France;

8. Gustave Roussy, Unité Mixte de Recherche 1170, Villejuif, France; and

9. Department of Laboratory Medicine, Medical University of Vienna, Vienna, Austria

Abstract

Abstract Calreticulin (CALR) +1 frameshift mutations in exon 9 are prevalent in myeloproliferative neoplasms. Mutant CALRs possess a new C-terminal sequence rich in positively charged amino acids, leading to activation of the thrombopoietin receptor (TpoR/MPL). We show that the new sequence endows the mutant CALR with rogue chaperone activity, stabilizing a dimeric state and transporting TpoR and mutants thereof to the cell surface in states that would not pass quality control; this function is absolutely required for oncogenic transformation. Mutant CALRs determine traffic via the secretory pathway of partially immature TpoR, as they protect N117-linked glycans from further processing in the Golgi apparatus. A number of engineered or disease-associated TpoRs such as TpoR/MPL R102P, which causes congenital thrombocytopenia, are rescued for traffic and function by mutant CALRs, which can also overcome endoplasmic reticulum retention signals on TpoR. In addition to requiring N-glycosylation of TpoR, mutant CALRs require a hydrophobic patch located in the extracellular domain of TpoR to induce TpoR thermal stability and initial intracellular activation, whereas full activation requires cell surface localization of TpoR. Thus, mutant CALRs are rogue chaperones for TpoR and traffic-defective TpoR mutants, a function required for the oncogenic effects.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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