Abrogation of the G2/M checkpoint as a chemo sensitization approach for alkylating agents.

Chemotherapy Glioma Myt1 kinase alkylating agent mitosis

Journal

Neuro-oncology
ISSN: 1523-5866
Titre abrégé: Neuro Oncol
Pays: England
ID NLM: 100887420

Informations de publication

Date de publication:
22 Dec 2023
Historique:
received: 17 08 2023
medline: 23 12 2023
pubmed: 23 12 2023
entrez: 22 12 2023
Statut: aheadofprint

Résumé

The cell cycle is tightly regulated by checkpoints, playing a vital role in controlling its progression and timing. Cancer cells exploit the G2/M checkpoint, which serves as a resistance mechanism against genotoxic anti-cancer treatments, allowing for DNA repair prior to cell division. Manipulating cell cycle timing has emerged as a potential strategy to augment the effectiveness of DNA damage-based therapies. In this study, we conducted a forward genome wide CRISPR/Cas9 screening with repeated exposure to the alkylating agent temozolomide (TMZ) to investigate the mechanisms underlying tumor cell survival under genotoxic stress. Our findings revealed that canonical DNA repair pathways, including ATM/Fanconi and mismatch repair, determine cell fate under genotoxic stress. Notably, we identified the critical role of PKMYT1, in ensuring cell survival. Depletion of PKMYT1 led to overwhelming TMZ-induced cytotoxicity in cancer cells. Isobologram analysis demonstrated potent drug synergy between alkylating agents and a Myt1 kinase inhibitor, RP-6306. Mechanistically, inhibiting Myt1 forced G2/M-arrested cells into an unscheduled transition to the mitotic phase without complete resolution of DNA damage. This forced entry into mitosis, along with persistent DNA damage, resulted in severe mitotic abnormalities. Ultimately, these aberrations led to mitotic exit with substantial apoptosis. Preclinical animal studies demonstrated that the combination regimen involving TMZ and RP-6306 prolonged the overall survival of glioma-bearing mice. Collectively, our findings highlight the potential of targeting cell cycle timing through Myt1 inhibition as an effective strategy to enhance the efficacy of current standard cancer therapies, potentially leading to improved disease outcomes.

Sections du résumé

BACKGROUND BACKGROUND
The cell cycle is tightly regulated by checkpoints, playing a vital role in controlling its progression and timing. Cancer cells exploit the G2/M checkpoint, which serves as a resistance mechanism against genotoxic anti-cancer treatments, allowing for DNA repair prior to cell division. Manipulating cell cycle timing has emerged as a potential strategy to augment the effectiveness of DNA damage-based therapies.
METHODS METHODS
In this study, we conducted a forward genome wide CRISPR/Cas9 screening with repeated exposure to the alkylating agent temozolomide (TMZ) to investigate the mechanisms underlying tumor cell survival under genotoxic stress.
RESULTS RESULTS
Our findings revealed that canonical DNA repair pathways, including ATM/Fanconi and mismatch repair, determine cell fate under genotoxic stress. Notably, we identified the critical role of PKMYT1, in ensuring cell survival. Depletion of PKMYT1 led to overwhelming TMZ-induced cytotoxicity in cancer cells. Isobologram analysis demonstrated potent drug synergy between alkylating agents and a Myt1 kinase inhibitor, RP-6306. Mechanistically, inhibiting Myt1 forced G2/M-arrested cells into an unscheduled transition to the mitotic phase without complete resolution of DNA damage. This forced entry into mitosis, along with persistent DNA damage, resulted in severe mitotic abnormalities. Ultimately, these aberrations led to mitotic exit with substantial apoptosis. Preclinical animal studies demonstrated that the combination regimen involving TMZ and RP-6306 prolonged the overall survival of glioma-bearing mice.
CONCLUSION CONCLUSIONS
Collectively, our findings highlight the potential of targeting cell cycle timing through Myt1 inhibition as an effective strategy to enhance the efficacy of current standard cancer therapies, potentially leading to improved disease outcomes.

Identifiants

pubmed: 38134889
pii: 7491950
doi: 10.1093/neuonc/noad252
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Informations de copyright

Published by Oxford University Press on behalf of the Society for Neuro-Oncology 2023. This work is written by (a) US Government employee(s) and is in the public domain in the US.

Auteurs

Fengchao Lang (F)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

James A Cornwell (JA)

Laboratory of Cancer Biology and Genetics, Center for Cancer Research, National Cancer Institute, MD.

Karambir Kaur (K)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Omar Elmogazy (O)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Wei Zhang (W)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Meili Zhang (M)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Hua Song (H)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Zhonghe Sun (Z)

Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, MD.

Xiaolin Wu (X)

Cancer Research Technology Program, Frederick National Laboratory for Cancer Research, MD.

Mirit I Aladjem (MI)

Developmental Therapeutics Branch, Center for Cancer Research, National Cancer Institute, MD.

Michael Aregger (M)

Molecular Targets Program, Center for Cancer Research, National Cancer Institute, MD.

Steven D Cappell (SD)

Laboratory of Cancer Biology and Genetics, Center for Cancer Research, National Cancer Institute, MD.

Chunzhang Yang (C)

Neuro-Oncology Branch, Center for Cancer Research, National Cancer Institute, MD.

Classifications MeSH