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Updated: May 3, 2026

The Colon-26 Carcinoma Tumor-bearing Mouse as a Model for the Study of Cancer Cachexia
Published on: November 30, 2016
C26 cancer-induced muscle wasting is IKKβ-dependent and NF-kappaB-independent
Evangeline W Cornwell1, Azadeh Mirbod1, Chia-Ling Wu1
1Department of Health Sciences, Boston University, Boston, Massachusetts, United States of America.
Abstract:
Existing data suggest that NF-kappaB signaling is a key regulator of cancer-induced skeletal muscle wasting. However, identification of the components of this signaling pathway and of the NF-κB transcription factors that regulate wasting is far from complete. In muscles of C26 tumor bearing mice, overexpression of dominant negative (d.n.) IKKβ blocked muscle wasting by 69% and the IκBα-super repressor blocked wasting by 41%. In contrast, overexpression of d.n. IKKα or d.n. NIK did not block C26-induced wasting. Surprisingly, overexpression of d.n. p65 or d.n. c-Rel did not significantly affect muscle wasting. Genome-wide mRNA expression arrays showed upregulation of many genes previously implicated in muscle atrophy. To test if these upregulated genes were direct targets of NF-κB transcription factors, we compared genome-wide p65 binding to DNA in control and cachectic muscle using ChIP-sequencing. Bioinformatic analysis of ChIP-sequencing data from control and C26 muscles showed very little p65 binding to genes in cachexia and little to suggest that upregulated p65 binding influences the gene expression associated with muscle based cachexia. The p65 ChIP-seq data are consistent with our finding of no significant change in protein binding to an NF-κB oligonucleotide in a gel shift assay, no activation of a NF-κB-dependent reporter, and no effect of d.n.p65 overexpression in muscles of tumor bearing mice. Taken together, these data support the idea that although inhibition of IκBα, and particularly IKKβ, blocks cancer-induced wasting, the alternative NF-κB signaling pathway is not required. In addition, the downstream NF-κB transcription factors, p65 and c-Rel do not appear to regulate the transcriptional changes induced by the C26 tumor. These data are consistent with the growing body of literature showing that there are NF-κB-independent substrates of IKKβ and IκBα that regulate physiological processes.
Insights
Inhibiting IKKβ blocks cancer-induced muscle wasting, but the NF-κB pathway, including p65 and c-Rel, is not required for this process or associated gene expression changes.
Area of Science:
- Molecular biology
- Cell signaling
- Cancer research
Background:
- Nuclear factor-kappa B (NF-κB) signaling is implicated in cancer-induced skeletal muscle wasting.
- Key components and transcription factors regulating this pathway in muscle atrophy remain incompletely identified.
Purpose of the Study:
- To investigate the role of specific NF-κB signaling components and transcription factors in C26 tumor-induced muscle wasting.
- To determine if NF-κB transcription factors directly regulate gene expression changes associated with cancer cachexia.
Main Methods:
- Overexpression of dominant-negative inhibitors of IKKα, IKKβ, NIK, p65, and c-Rel in C26 tumor-bearing mice.
- Genome-wide mRNA expression profiling to identify upregulated genes in atrophied muscle.
- Chromatin immunoprecipitation sequencing (ChIP-sequencing) to assess p65 binding to DNA in vivo.
Main Results:
- Inhibition of IKKβ (dominant-negative) significantly blocked muscle wasting (69%), while IκBα-super repressor showed a 41% blockage.
- Dominant-negative IKKα, NIK, p65, or c-Rel did not significantly affect muscle wasting.
- ChIP-sequencing revealed minimal p65 binding to genes in cachectic muscle, suggesting limited direct transcriptional regulation by p65.
Conclusions:
- While IKKβ and IκBα inhibition mitigates cancer-induced muscle wasting, the canonical NF-κB pathway involving p65 and c-Rel is not essential.
- NF-κB-independent mechanisms likely mediate the transcriptional changes observed in cancer cachexia.
- These findings highlight potential NF-κB-independent targets of IKKβ and IκBα in regulating physiological processes.
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