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Updated: Jan 24, 2026

Assessing Cardiomyocyte Subtypes Following Transcription Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts
Published on: March 22, 2017
Metabolic reprogramming and Notch activity distinguish between non-small cell lung cancer subtypes
Katherine Sellers1,2, Thaddeus D Allen3,4, Michael Bousamra5,6
1The Francis Crick Institute, London, UK.
Background:
Previous studies suggested that the metabolism is differently reprogrammed in the major subtypes of non-small cell lung cancer (NSCLC), squamous cell carcinomas (SCC) and adenocarcinomas (AdC). However, a comprehensive analysis of this differential metabolic reprogramming is lacking.
Methods:
Publicly available gene expression data from human lung cancer samples and cell lines were analysed. Stable isotope resolved metabolomics were performed on SCC and ADC tumours in human patients and in freshly resected tumour slices.
Results:
Analysis of multiple transcriptomics data from human samples identified a SCC-distinguishing enzyme gene signature. SCC tumours from patients infused with [U-13C]-glucose and SCC tissue slices incubated with stable isotope tracers demonstrated differential glucose and glutamine catabolism compared to AdCs or non-cancerous lung, confirming increased activity through pathways defined by the SCC metabolic gene signature. Furthermore, the upregulation of Notch target genes was a distinguishing feature of SCCs, which correlated with the metabolic signature. Notch and MYC-driven murine lung tumours recapitulated the SCC-distinguishing metabolic reprogramming. However, the differences between SCCs and AdCs disappear in established cell lines in 2D culture.
Conclusions:
Our data emphasise the importance of studying lung cancer metabolism in vivo. They also highlight potential targets for therapeutic intervention in SCC patients including differentially expressed enzymes that catalyse reactions in glycolysis, glutamine catabolism, serine, nucleotide and glutathione biosynthesis.
Insights
Metabolic reprogramming differs between squamous cell carcinoma (SCC) and adenocarcinoma (AdC) non-small cell lung cancer (NSCLC) subtypes. This study reveals key metabolic pathways and potential therapeutic targets specific to SCC in vivo.
Area of Science:
- Oncology
- Metabolomics
- Molecular Biology
Background:
- Non-small cell lung cancer (NSCLC) comprises major subtypes: squamous cell carcinoma (SCC) and adenocarcinoma (AdC).
- Previous research indicated distinct metabolic reprogramming in these NSCLC subtypes, but a comprehensive analysis was missing.
Purpose of the Study:
- To comprehensively analyze the differential metabolic reprogramming between SCC and AdC subtypes of NSCLC.
- To identify specific metabolic pathways and potential therapeutic targets in SCC.
Main Methods:
- Analysis of publicly available gene expression data from human lung cancer samples and cell lines.
- Stable isotope resolved metabolomics on human SCC and AdC tumors and resected tissue slices.
- In vivo and in vitro studies using stable isotope tracers and murine lung tumor models.
Main Results:
- A SCC-distinguishing enzyme gene signature was identified using transcriptomics data.
- SCC tumors showed differential glucose and glutamine catabolism compared to AdCs, confirming the metabolic gene signature.
- Upregulation of Notch target genes correlated with the metabolic signature in SCCs, and this reprogramming was recapitulated in Notch and MYC-driven murine models.
- Differences between SCCs and AdCs were lost in established 2D cell cultures.
Conclusions:
- Studying lung cancer metabolism in vivo is crucial for understanding subtype-specific differences.
- Identified differentially expressed enzymes in glycolysis, glutamine catabolism, and biosynthesis pathways present potential therapeutic targets for SCC patients.
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