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Live-Cell Invasive Phenotyping Uncovers ALK2 as a Therapeutic Target in LKB1-Mutant Lung Cancer
Junghui Koo1, Chang-Soo Seong1, Rebecca E Parker1,2
1Department of Hematology and Medical Oncology, Emory University School of Medicine, Atlanta, Georgia.
Abstract:
The acquisition of invasive properties is a prerequisite for tumor progression and metastasis. Molecular subtypes of KRAS-driven lung cancer exhibit distinct modes of invasion that contribute to unique growth properties and therapeutic susceptibilities. Despite this, preclinical strategies designed to exploit growth within the context of invasion are lacking. To address this, we designed an experimental system to screen for targetable signaling pathways linked to active early 3D invasion phenotypes in different molecular subtypes of KRAS-driven lung adenocarcinoma. Combined live-cell imaging of human bronchial epithelial cells in a 3D invasion matrix and transcriptomic profiling identified mutant LKB1-specific upregulation of BMP6. LKB1 loss increased BMP6 signaling, which induced the canonical iron regulatory hormone hepcidin. Intact LKB1 was necessary to maintain BMP6 signaling homeostasis and restrict ALK2/BMP6-fueled growth. Preclinical studies in a Kras/Lkb1-mutant syngeneic mouse model and in a xenograft model showed potent growth suppression by inhibiting the ALK2/BMP6 signaling axis with single-agent inhibitors that are currently in clinical trials. Lastly, BMP6 expression was elevated in tumors of patients with LKB1-mutant early-stage lung cancer. These results are consistent with those of a model in which LKB1 acts as a "brake" to iron-regulated growth and suggest that ALK2 inhibition can be used for patients with LKB1-mutant tumors. Significance: Three-dimensional invasion-linked gene expression analysis reveals a therapeutic vulnerability to inhibition of ALK2/BMP6 signaling in LKB1-mutant lung cancer that can be rapidly translated to the clinic.
Insights
Loss of LKB1 in KRAS-driven lung cancer promotes invasion via BMP6 signaling. Inhibiting the ALK2/BMP6 axis shows promise for treating LKB1-mutant lung tumors.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Tumor invasion and metastasis are critical for cancer progression.
- KRAS-driven lung cancer subtypes display diverse invasion patterns affecting growth and treatment response.
- Targeting invasion-linked growth vulnerabilities remains a challenge in preclinical models.
Purpose of the Study:
- To develop an experimental system for screening targetable signaling pathways associated with early 3D invasion in KRAS-driven lung adenocarcinoma subtypes.
- To identify specific molecular mechanisms driving invasion in different KRAS-mutant lung cancer subtypes.
Main Methods:
- Utilized live-cell imaging of bronchial epithelial cells in a 3D invasion matrix.
- Performed transcriptomic profiling to identify invasion-linked gene expression changes.
- Investigated the role of LKB1, BMP6, and ALK2 signaling in lung cancer models.
Main Results:
- Identified mutant LKB1-specific upregulation of BMP6, which drives hepcidin expression and iron-regulated growth.
- Demonstrated that intact LKB1 normally restricts ALK2/BMP6-fueled growth.
- Showed potent tumor growth suppression in preclinical models by inhibiting the ALK2/BMP6 axis using clinical-stage inhibitors.
- Observed elevated BMP6 expression in human LKB1-mutant lung tumors.
Conclusions:
- LKB1 functions as a regulator of iron-mediated growth in lung cancer.
- Inhibition of the ALK2/BMP6 signaling pathway represents a promising therapeutic strategy for LKB1-mutant lung cancer.
- This finding offers a rapidly translatable therapeutic vulnerability for patients with LKB1-mutant lung cancer.
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