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Coordinated Transcriptional and Catabolic Programs Support Iron-Dependent Adaptation to RAS-MAPK Pathway Inhibition
Mirunalini Ravichandran1,2, Jingjie Hu1,2, Charles Cai3
1Department of Anatomy, University of California, San Francisco, San Francisco, California.
Abstract:
The mechanisms underlying metabolic adaptation of pancreatic ductal adenocarcinoma (PDA) cells to pharmacologic inhibition of RAS-MAPK signaling are largely unknown. Using transcriptome and chromatin immunoprecipitation profiling of PDA cells treated with the MEK inhibitor (MEKi) trametinib, we identify transcriptional antagonism between c-MYC and the master transcription factors for lysosome gene expression, the MiT/TFE proteins. Under baseline conditions, c-MYC and MiT/TFE factors compete for binding to lysosome gene promoters to fine-tune gene expression. Treatment of PDA cells or patient organoids with MEKi leads to c-MYC downregulation and increased MiT/TFE-dependent lysosome biogenesis. Quantitative proteomics of immunopurified lysosomes uncovered reliance on ferritinophagy, the selective degradation of the iron storage complex ferritin, in MEKi-treated cells. Ferritinophagy promotes mitochondrial iron-sulfur cluster protein synthesis and enhanced mitochondrial respiration. Accordingly, suppressing iron utilization sensitizes PDA cells to MEKi, highlighting a critical and targetable reliance on lysosome-dependent iron supply during adaptation to KRAS-MAPK inhibition.
Significance:
Reduced c-MYC levels following MAPK pathway suppression facilitate the upregulation of autophagy and lysosome biogenesis. Increased autophagy-lysosome activity is required for increased ferritinophagy-mediated iron supply, which supports mitochondrial respiration under therapy stress. Disruption of ferritinophagy synergizes with KRAS-MAPK inhibition and blocks PDA growth, thus highlighting a key targetable metabolic dependency. See related commentary by Jain and Amaravadi, p. 2023. See related article by Santana-Codina et al., p. 2180. This article is highlighted in the In This Issue feature, p. 2007.
Insights
Pancreatic cancer cells adapt to MEK inhibitors by increasing lysosome production, which supports iron supply for respiration. Targeting this ferritinophagy pathway synergizes with MEK inhibition to block tumor growth.
Area of Science:
- Cancer Biology
- Metabolic Adaptation
- Molecular Mechanisms
Background:
- Pancreatic ductal adenocarcinoma (PDA) exhibits complex metabolic adaptations to therapy.
- Mechanisms of PDA adaptation to RAS-MAPK signaling inhibition are poorly understood.
Purpose of the Study:
- To elucidate the metabolic adaptations of PDA cells to MEK inhibition.
- To identify novel therapeutic targets for PDA.
Main Methods:
- Transcriptome and chromatin immunoprecipitation profiling.
- Quantitative proteomics of immunopurified lysosomes.
- Treatment of PDA cells and patient-derived organoids with MEK inhibitor (MEKi).
Main Results:
- MEKi treatment downregulates c-MYC, leading to increased MiT/TFE-dependent lysosome biogenesis.
- MEKi-treated cells exhibit reliance on ferritinophagy for iron supply.
- Ferritinophagy supports mitochondrial respiration and iron-sulfur cluster protein synthesis.
- Suppression of iron utilization sensitizes PDA cells to MEKi.
Conclusions:
- PDA cells adapt to MEK inhibition via enhanced lysosome-dependent iron supply through ferritinophagy.
- Targeting ferritinophagy synergizes with MEK inhibition, blocking PDA growth.
- This highlights a critical, targetable metabolic dependency in PDA.
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