Genetic disruption of N-RasG12D palmitoylation perturbs hematopoiesis and prevents myeloid transformation in mice

Author:

Zambetti Noemi A.12,Firestone Ari J.12ORCID,Remsberg Jarrett R.3ORCID,Huang Benjamin J.12,Wong Jasmine C.12,Long Amanda M.1,Predovic Marina1,Suciu Radu M.3,Inguva Anagha1ORCID,Kogan Scott C.24ORCID,Haigis Kevin M.56,Cravatt Benjamin F.3,Shannon Kevin12ORCID

Affiliation:

1. Department of Pediatrics,

2. Helen Diller Family Comprehensive Cancer Center, University of California, San Francisco, San Francisco, CA;

3. Department of Chemistry, The Scripps Research Institute, La Jolla, CA;

4. Department of Laboratory Medicine, University of California, San Francisco, San Francisco, CA;

5. Cancer Research Institute, Beth Israel Deaconess Cancer Center, Boston, MA; and

6. Department of Medicine, Harvard University Medical School, Boston, MA

Abstract

Abstract Oncogenic RAS mutations pose substantial challenges for rational drug discovery. Sequence variations within the hypervariable region of Ras isoforms underlie differential posttranslational modification and subcellular trafficking, potentially resulting in selective vulnerabilities. Specifically, inhibiting the palmitoylation/depalmitoylation cycle is an appealing strategy for treating NRAS mutant cancers, particularly as normal tissues would retain K-Ras4b function for physiologic signaling. The role of endogenous N-RasG12D palmitoylation in signal transduction, hematopoietic differentiation, and myeloid transformation is unknown, and addressing these key questions will inform efforts to develop mechanism-based therapies. To evaluate the palmitoylation/depalmitoylation cycle as a candidate drug target in an in vivo disease-relevant model system, we introduced a C181S mutation into a conditional NrasG12D “knock-in” allele. The C181S second-site amino acid substitution abrogated myeloid transformation by NrasG12D, which was associated with mislocalization of the nonpalmitoylated N-Ras mutant protein, reduced Raf/MEK/ERK signaling, and alterations in hematopoietic stem and progenitor populations. Furthermore, hematologic malignancies arising in NrasG12D/G12D,C181S compound heterozygous mice invariably acquired revertant mutations that restored cysteine 181. Together, these studies validate the palmitoylation cycle as a promising therapeutic target in NRAS mutant cancers.

Publisher

American Society of Hematology

Subject

Cell Biology,Hematology,Immunology,Biochemistry

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