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Cancer Cells Turn Fat Factories: SOX9 Fuels Colorectal Cancer Spread Through Lipid Rewiring

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October 6, 2026
in Health
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Cancer Cells Turn Fat Factories: SOX9 Fuels Colorectal Cancer Spread Through Lipid Rewiring

Cancer Cells Turn Fat Factories: SOX9 Fuels Colorectal Cancer Spread Through Lipid Rewiring

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Colorectal cancer remains one of the most common and deadly malignancies worldwide, and the majority of deaths from the disease are caused not by the primary tumor itself but by its spread to distant organs. A new study published in the Journal of Translational Medicine has now uncovered a molecular mechanism that helps explain how colorectal cancer cells acquire the ability to migrate, invade and colonize the lungs. The research, led by Hao Wang and Xiaoyan Liang of The First Affiliated Hospital of Chongqing Medical University, identifies a transcriptional circuit in which the protein SOX9 switches on fat-producing machinery inside cancer cells, flooding them with newly synthesized lipids that appear to power the metastatic process.

The central player in the study is SOX9, short for SRY-box transcription factor 9. Transcription factors are proteins that bind to specific DNA sequences and control whether nearby genes are read into messenger RNA, and SOX9 is well known for its roles in embryonic development and tissue stem cell maintenance. In cancer, SOX9 has previously been implicated in tumor growth and progression, but its involvement in the metabolic transformation of metastatic colorectal cancer cells had remained largely unexplored. The new work positions SOX9 as a direct regulator of de novo lipogenesis, the process by which cells manufacture fatty acids from scratch rather than importing them from the bloodstream.

To dissect this relationship, the researchers combined several complementary approaches. They performed integrated transcriptomic and targeted lipidomic analyses, comparing the gene expression profiles and lipid compositions of cells with and without elevated SOX9. The transcriptomic data revealed changes in the expression of genes involved in fatty acid synthesis, while the lipidomic measurements showed that SOX9 overexpression increased the abundance of fatty acids and other lipid species within the cells. This convergence of genomic and metabolomic evidence provided the first indication that SOX9 overexpression drives fatty acid synthesis and lipid accumulation in colorectal cancer cells.

The team then verified these findings using an arsenal of imaging and analytical techniques. Nile Red staining, a fluorescent dye that preferentially labels neutral lipids, revealed increased lipid content in SOX9-overexpressing cells. Flow cytometry allowed the researchers to quantify lipid accumulation across large cell populations, confirming that the effect was consistent rather than confined to a few cells. Transmission electron microscopy provided ultrastructural evidence, visualizing the intracellular lipid deposits at nanometer resolution. Finally, Nanolive label-free lipid droplet imaging captured the dynamics of lipid storage structures inside living cells. Together, these methods demonstrated that SOX9 overexpression dramatically enhances intracellular lipid deposition, effectively transforming colorectal cancer cells into lipid-storing factories.

The clinical relevance of these observations became apparent when the researchers examined human tissue samples. SOX9 was found to be upregulated in colorectal cancer tissues compared with healthy tissue, and its expression was further enriched in metastatic lesions, the colonies of cancer cells that have established themselves in distant organs. Importantly, patients whose tumors showed high SOX9 levels had poorer outcomes, suggesting that the transcription factor is not merely a bystander in disease progression but a marker, and likely a driver, of aggressive disease.

Functional experiments cemented the link between SOX9-driven lipid production and metastatic behavior. In laboratory assays, cells with elevated SOX9 showed markedly increased migration and invasion, the two cellular behaviors that precede and enable metastatic spread. The team also performed lung metastatic colonization assays in animal models, which measure the ability of circulating cancer cells to seed and grow tumors in the lung. SOX9 overexpression promoted lung metastatic colonization, demonstrating that the lipid-reprogramming effect translates into real metastatic capacity in vivo.

Perhaps the most therapeutically significant result came from the rescue experiments. When the researchers inhibited fatty acid synthase, commonly abbreviated FASN, the enzyme that catalyzes the final steps of fatty acid synthesis, the pro-metastatic effects of SOX9 were significantly attenuated. Migration, invasion and lung colonization all declined when the fat-production line was shut down, even in cells still overexpressing SOX9. This result indicates that FASN sits downstream of SOX9 in the pathway and that the lipid synthesis it drives is not incidental but functionally required for SOX9 to promote metastasis. In principle, this makes the SOX9-FASN axis a metabolic vulnerability that could be targeted with drugs designed to starve metastatic cells of their lipid supply.

Mechanistically, the study went beyond correlation to show how SOX9 controls FASN in the first place. Using CUT&Tag sequencing, a technique that maps where a protein of interest binds across the genome, the researchers identified SOX9 occupancy at sites near the FASN promoter, the regulatory DNA region that controls how strongly the FASN gene is transcribed. This genomic binding evidence was complemented by luciferase reporter assays, in which the FASN promoter was fused to a light-producing reporter gene. When SOX9 was present, reporter activity increased, demonstrating that SOX9 can directly stimulate FASN promoter activity. Further reporter analyses using mutated promoter sequences supported a sequence-dependent mode of regulation, meaning SOX9 requires specific DNA motifs in the proximal FASN promoter to exert its effect, a hallmark of genuine direct transcriptional control rather than an indirect effect mediated through other genes.

The significance of this work lies in how it connects two major themes in modern cancer biology: transcriptional dysregulation and metabolic reprogramming. Cancer cells are known to rewire their metabolism to support rapid growth, survival under stress and dissemination, and increased lipid synthesis has emerged as a recurring feature of aggressive tumors. Lipids are not merely building blocks for new membranes in dividing cells; they also serve as signaling molecules, energy reserves and components of the machinery cells use to change shape and move through tissue. By showing that a developmental transcription factor can impose a lipogenic program on colorectal cancer cells and that this program is required for metastatic colonization, the study offers a coherent explanation for how metabolic flexibility and metastatic competence are coupled at the level of gene regulation.

The findings also suggest practical directions for future research and treatment development. Because FASN inhibition can rescue the metastatic phenotypes induced by SOX9, drugs targeting fatty acid synthase, some of which have already entered clinical evaluation for other cancers, could potentially benefit colorectal cancer patients whose tumors show high SOX9 expression. SOX9 itself, as a transcription factor, has historically been considered a difficult drug target, but its downstream metabolic dependencies offer an alternative point of attack. The study also raises the possibility that SOX9 expression levels could serve as a biomarker to identify patients at high risk of metastasis who might be candidates for metabolic therapies. As with all preclinical research, the results will need to be validated in larger clinical cohorts and tested in appropriately designed trials before they change patient care, but the identification of a defined SOX9-FASN lipid metabolic axis gives researchers a concrete molecular handle on one of the deadliest phases of colorectal cancer.

Subject of Research: SOX9-mediated regulation of lipid metabolism and metastasis in colorectal cancer

Article Title: SOX9 reprograms lipid metabolism via FASN to promote metastasis in colorectal cancer

Article References: Wang, H., Wei, L., Xiang, X., Li, J., Wang, Y., Jiang, Z., Li, X., Li, Y., Pan, Y., & Liang, X. (2026). SOX9 reprograms lipid metabolism via FASN to promote metastasis in colorectal cancer. Journal of Translational Medicine. https://doi.org/10.1186/s12967-026-09055-4

Image Credits: AI Generated

DOI: 10.1186/s12967-026-09055-4

Keywords: colorectal cancer, SOX9, FASN, lipid metabolism, metastasis, fatty acid synthesis, de novo lipogenesis, transcription factors, cancer metabolism, CUT&Tag, lung metastasis, Journal of Translational Medicine

News Source: Nathaniel Bowman. (October 6, 2026). Cancer Cells Turn Fat Factories: SOX9 Fuels Colorectal Cancer Spread Through Lipid Rewiring. Scienmag.

Tags: cancer metabolismColorectal cancerCUT&Tagde novo lipogenesisFASNfatty acid synthesisJournal of Translational Medicinelipid metabolismlung metastasisMetastasisSox9transcription factors
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