Glucocorticoid mediated inhibition of LKB1 mutant non-small cell lung cancers
Kenneth E Huffman1,2, Long Shan Li1,2, Ryan Carstens1,2
1Department of Internal Medicine, Hamon Center for Therapeutic Oncology Research, University of Texas Southwestern Medical Center, Dallas, TX, United States.
Abstract:
The glucocorticoid receptor (GR) is an important anti-cancer target in lymphoid cancers but has been understudied in solid tumors like lung cancer, although glucocorticoids are often given with chemotherapy regimens to mitigate side effects. Here, we identify a dexamethasone-GR mediated anti-cancer response in a subset of aggressive non-small cell lung cancers (NSCLCs) that harbor Serine/Threonine Kinase 11 (STK11/LKB1) mutations. High tumor expression of carbamoyl phosphate synthase 1 (CPS1) was strongly linked to the presence of LKB1 mutations, was the best predictor of NSCLC dexamethasone (DEX) sensitivity (p < 10-16) but was not mechanistically involved in DEX sensitivity. Subcutaneous, orthotopic and metastatic NSCLC xenografts, biomarker-selected, STK11/LKB1 mutant patient derived xenografts, and genetically engineered mouse models with KRAS/LKB1 mutant lung adenocarcinomas all showed marked in vivo anti-tumor responses with the glucocorticoid dexamethasone as a single agent or in combination with cisplatin. Mechanistically, GR activation triggers G1/S cell cycle arrest in LKB1 mutant NSCLCs by inducing the expression of the cyclin-dependent kinase inhibitor, CDKN1C/p57(Kip2). All findings were confirmed with functional genomic experiments including CRISPR knockouts and exogenous expression. Importantly, DEX-GR mediated cell cycle arrest did not interfere with NSCLC radiotherapy, or platinum response in vitro or with platinum response in vivo. While DEX induced LKB1 mutant NSCLCs in vitro exhibit markers of cellular senescence and demonstrate impaired migration, in vivo DEX treatment of a patient derived xenograft (PDX) STK11/LKB1 mutant model resulted in expression of apoptosis markers. These findings identify a previously unknown GR mediated therapeutic vulnerability in STK11/LKB1 mutant NSCLCs caused by induction of p57(Kip2) expression with both STK11 mutation and high expression of CPS1 as precision medicine biomarkers of this vulnerability.
Insights
Dexamethasone shows anti-cancer effects in STK11/LKB1-mutant non-small cell lung cancers by inducing cell cycle arrest. High carbamoyl phosphate synthase 1 expression predicts sensitivity, identifying a new therapeutic vulnerability.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Glucocorticoid receptor (GR) is an anti-cancer target in lymphoid cancers, but its role in solid tumors like lung cancer is understudied.
- Glucocorticoids are commonly used with chemotherapy to manage side effects in lung cancer patients.
Purpose of the Study:
- To investigate the anti-cancer effects of dexamethasone mediated by the glucocorticoid receptor in non-small cell lung cancer (NSCLC).
- To identify biomarkers predicting response to dexamethasone in NSCLC, particularly in tumors with STK11/LKB1 mutations.
Main Methods:
- Utilized subcutaneous, orthotopic, and metastatic NSCLC xenografts, patient-derived xenografts (PDXs), and genetically engineered mouse models.
- Employed functional genomic experiments, including CRISPR knockouts and exogenous expression, to confirm mechanistic findings.
- Assessed dexamethasone's impact on cell cycle, senescence, migration, apoptosis, and response to radiotherapy and platinum-based chemotherapy.
Main Results:
- Dexamethasone demonstrated significant anti-tumor responses in STK11/LKB1-mutant NSCLC models, both as a single agent and in combination with cisplatin.
- High tumor expression of carbamoyl phosphate synthase 1 (CPS1) was strongly linked to STK11/LKB1 mutations and predicted dexamethasone sensitivity.
- Mechanistically, dexamethasone-GR activation induced G1/S cell cycle arrest by upregulating CDKN1C/p57(Kip2) expression in LKB1-mutant NSCLCs.
Conclusions:
- Identified a dexamethasone-GR mediated therapeutic vulnerability in STK11/LKB1-mutant NSCLCs.
- STK11 mutation and high CPS1 expression serve as precision medicine biomarkers for this vulnerability.
- Dexamethasone-induced cell cycle arrest does not impede responses to radiotherapy or platinum chemotherapy.
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