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Updated: Jan 29, 2026

Orthotopic Mouse Model of Colorectal Cancer
Published on: December 4, 2007
SIAH2-WNK1 Signaling Drives Glycolytic Metabolism and Therapeutic Resistance in Colorectal Cancer
Kee-Thai Kiu1,2, Cheng-Ying Chu3,4, Yi-Chiao Cheng5
1Division of Colorectal Surgery, Department of Surgery, Taipei Medical University Shuang-Ho Hospital, New Taipei City 235, Taiwan.
Abstract:
Colorectal cancer (CRC) progression and therapy resistance are driven in part by metabolic reprogramming and the persistence of cancer stem-like cells (CSCs). The seven in absentia homolog 2 (SIAH2)/with-no-lysine kinase 1 (WNK1) signaling axis has emerged as a potential regulator of these processes, yet its functional role in CRC metabolism and tumor-stroma crosstalk remains incompletely understood. Integrated analyses of The Cancer Genome Atlas-Colon Adenocarcinoma (TCGA-COAD) and Gene Expression Omnibus (GEO, GSE17538) datasets revealed significant upregulation of SIAH2 and WNK1 in CRC tissues, with strong positive correlations to glycolysis- and hypoxia-associated genes, including PFKP, LDHA, BPGM, ADH1A, ADH1B, and HIF-1α. Single-cell and clinical profiling further demonstrated preferential enrichment of SIAH2 in undifferentiated, stem-like tumor cell populations. Functional studies across multiple CRC cell lines showed that SIAH2 silencing suppressed proliferation, clonogenic growth, tumor sphere formation, and cell-cycle progression, whereas SIAH2 overexpression exerted opposite effects. Seahorse extracellular flux analyses established that SIAH2 promotes glycolytic capacity and metabolic flexibility. At the protein level, SIAH2 regulated glycolytic enzymes and WNK1/hypoxia-inducible factor-1α (HIF-1α) signaling, effects that were amplified by cancer-associated fibroblast (CAF)-derived conditioned medium. CAF exposure enhanced SIAH2 expression, CSC spheroid growth, and resistance to fluorouracil, leucovorin, and oxaliplatin (FOLFOX) chemotherapy, whereas SIAH2 depletion effectively abrogated these effects. Collectively, these findings identify the SIAH2/WNK1 axis as a central metabolic regulator linking glycolysis, CSC maintenance, and microenvironment-driven therapy resistance in CRC, highlighting its potential as a therapeutic target.
Insights
The SIAH2/WNK1 pathway drives colorectal cancer (CRC) progression by boosting glycolysis and cancer stem cells (CSCs). Targeting this axis may overcome therapy resistance, offering new treatment strategies for CRC patients.
Area of Science:
- Oncology
- Molecular Biology
- Metabolism
Background:
- Colorectal cancer (CRC) progression and therapy resistance involve metabolic reprogramming and cancer stem-like cells (CSCs).
- The seven in absentia homolog 2 (SIAH2)/with-no-lysine kinase 1 (WNK1) signaling axis is implicated but its role in CRC metabolism and tumor-stroma interactions is unclear.
Purpose of the Study:
- To investigate the functional role of the SIAH2/WNK1 axis in colorectal cancer metabolism, CSC maintenance, and therapy resistance.
- To explore the SIAH2/WNK1 axis's involvement in tumor-stroma crosstalk and its potential as a therapeutic target.
Main Methods:
- Integrated analysis of TCGA-COAD and GEO (GSE17538) datasets for gene expression.
- Single-cell and clinical profiling.
- Functional studies in CRC cell lines (gene silencing/overexpression), Seahorse extracellular flux analysis, and protein-level analysis.
- Assessment of effects of cancer-associated fibroblast (CAF)-derived conditioned medium and FOLFOX chemotherapy.
Main Results:
- SIAH2 and WNK1 are upregulated in CRC and correlate with glycolysis and hypoxia genes (PFKP, LDHA, HIF-1α).
- SIAH2 is enriched in stem-like CRC cells, promoting proliferation, clonogenicity, and cell-cycle progression.
- SIAH2 enhances glycolytic capacity, metabolic flexibility, and regulates WNK1/HIF-1α signaling.
- CAF-conditioned medium amplifies SIAH2 effects, increasing CSC growth and FOLFOX resistance, which SIAH2 depletion abrogates.
Conclusions:
- The SIAH2/WNK1 axis is a key regulator of CRC metabolism, linking glycolysis, CSC maintenance, and microenvironment-induced therapy resistance.
- Targeting the SIAH2/WNK1 pathway presents a promising therapeutic strategy for overcoming CRC treatment resistance.
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