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Updated: Feb 21, 2026

The Colon-26 Carcinoma Tumor-bearing Mouse as a Model for the Study of Cancer Cachexia
Published on: November 30, 2016
Differentially expressed alternatively spliced genes in skeletal muscle from cancer patients with cachexia
Ashok Narasimhan1, Russell Greiner2, Oliver F Bathe3
1Department of Laboratory Medicine and Pathology, University of Alberta, Edmonton, AB, T6G 1Z2, Canada.
Background:
Alternative splicing (AS) is a post-transcriptional gene regulatory mechanism that contributes to proteome diversity. Aberrant splicing mechanisms contribute to various cancers and muscle-related conditions such as Duchenne muscular dystrophy. However, dysregulation of AS in cancer cachexia (CC) remains unexplored. Our objectives were (i) to profile alternatively spliced genes (ASGs) on a genome-wide scale and (ii) to identify differentially expressed alternatively spliced genes (DASGs) associated with CC.
Methods:
Rectus abdominis muscle biopsies obtained from cancer patients were stratified into cachectic cases (n = 21, classified based on International consensus diagnostic framework for CC) and non-cachectic controls (n = 19, weight stable cancer patients). Human transcriptome array 2.0 was used for profiling ASGs using the total RNA isolated from muscle biopsies. Representative DASG signatures were validated using semi-quantitative RT-PCR.
Results:
We identified 8960 ASGs, of which 922 DASGs (772 up-regulated and 150 down-regulated) were identified at ≥1.4 fold-change and P < 0.05. Representative DASGs validated by semi-quantitative RT-PCR confirmed the primary findings from the human transcriptome arrays. Identified DASGs were associated with myogenesis, adipogenesis, protein ubiquitination, and inflammation. Up to 10% of the DASGs exhibited cassette exon (exon included or skipped) as a predominant form of AS event. We also observed other forms of AS events such as intron retention, alternate promoters.
Conclusions:
Overall, we have, for the first time, conducted global profiling of muscle tissue to identify DASGs associated with CC. The mechanistic roles of the identified DASGs in CC pathophysiology using model systems is warranted, as well as replication of findings in independent cohorts.
Insights
This study identifies novel alternatively spliced genes in muscle tissue linked to cancer cachexia (CC). These findings offer new insights into CC mechanisms and potential therapeutic targets, advancing our understanding of this complex condition.
Area of Science:
- Molecular Biology
- Genomics
- Cancer Research
Background:
- Alternative splicing (AS) is crucial for proteome diversity but its role in cancer cachexia (CC) is unknown.
- Aberrant splicing is implicated in cancers and muscle disorders like Duchenne muscular dystrophy.
- Investigating AS in CC is essential for understanding disease mechanisms.
Purpose of the Study:
- To comprehensively profile alternatively spliced genes (ASGs) in muscle tissue.
- To identify differentially expressed ASGs (DASGs) associated with cancer cachexia.
- To establish a molecular signature for CC.
Main Methods:
- Muscle biopsies from cachectic (n=21) and non-cachectic (n=19) cancer patients were analyzed.
- Human transcriptome array 2.0 was used for genome-wide ASG profiling.
- Key DASG signatures were validated using semi-quantitative RT-PCR.
Main Results:
- Identified 8960 ASGs, with 922 DASGs (772 up-regulated, 150 down-regulated) at fold-change ≥1.4 and P < 0.05.
- Validated DASGs are linked to myogenesis, adipogenesis, protein ubiquitination, and inflammation.
- Cassette exons were the predominant AS event, alongside intron retention and alternative promoters.
Conclusions:
- This study presents the first global profiling of muscle DASGs in cancer cachexia.
- Further research using model systems and independent cohorts is needed to elucidate DASG functions in CC pathophysiology.
- These findings pave the way for understanding CC mechanisms and developing targeted therapies.
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