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The Colon-26 Carcinoma Tumor-bearing Mouse as a Model for the Study of Cancer Cachexia
Published on: November 30, 2016
Cancer cachexia-induced muscle atrophy: evidence for alterations in microRNAs important for muscle size
David E Lee1, Jacob L Brown1, Megan E Rosa-Caldwell1
1Integrative Muscle Metabolism Laboratory, University of Arkansas, Fayetteville, Arkansas.
Abstract:
Muscle atrophy is a hallmark of cancer cachexia resulting in impaired function and quality of life and cachexia is the immediate cause of death for 20-40% of cancer patients. Multiple microRNAs (miRNAs) have been identified as being involved in muscle development and atrophy; however, less is known specifically on miRNAs in cancer cachexia. The purpose of this investigation was to examine the miRNA profile of skeletal muscle atrophy induced by cancer cachexia to uncover potential miRNAs involved with this catabolic condition. Phosphate-buffered saline (PBS) or Lewis lung carcinoma cells (LLC) were injected into C57BL/6J mice at 8 wk of age. LLC animals were allowed to develop tumors for 4 wk to induce cachexia. Tibialis anterior muscles were extracted and processed to isolate small RNAs, which were used for miRNA sequencing. Sequencing results were assembled with mature miRNAs, and functions of miRNAs were analyzed by Ingenuity Pathway Analysis. LLC animals developed tumors that contributed to significantly smaller tibialis anterior muscles (18.5%) and muscle cross-sectional area (40%) compared with PBS. We found 371 miRNAs to be present in the muscle above background levels. Of these, nine miRNAs were found to be differentially expressed. Significantly altered groups of miRNAs were categorized into primary functionalities including cancer, cell-to-cell signaling, and cellular development among others. Gene network analysis predicted specific alterations of factors contributing to muscle size including Akt, FOXO3, and others. These results create a foundation for future research into the sufficiency of targeting these genes to attenuate muscle loss in cancer cachexia.
Insights
Cancer cachexia causes muscle atrophy, impairing patients. This study identified nine key microRNAs (miRNAs) involved in muscle wasting, offering potential targets to combat cancer-related muscle loss.
Area of Science:
- Oncology
- Molecular Biology
- Muscle Physiology
Background:
- Cancer cachexia is a severe condition characterized by muscle atrophy, significantly impacting patient function and survival.
- MicroRNAs (miRNAs) play roles in muscle regulation, but their specific involvement in cancer cachexia-induced muscle atrophy remains underexplored.
Purpose of the Study:
- To investigate the microRNA (miRNA) profile of skeletal muscle during cancer cachexia.
- To identify specific miRNAs implicated in the catabolic processes leading to muscle wasting in cancer patients.
Main Methods:
- Lewis lung carcinoma (LLC) cells were used to induce cachexia in C57BL/6J mice over 4 weeks.
- Tibialis anterior muscles were harvested for small RNA isolation and subsequent miRNA sequencing.
- Ingenuity Pathway Analysis was employed to analyze miRNA functions and predict gene network alterations.
Main Results:
- Mice with LLC tumors exhibited significant reductions in tibialis anterior muscle mass (18.5%) and cross-sectional area (40%) compared to controls.
- Out of 371 detected miRNAs, nine were found to be differentially expressed in cachectic muscle.
- Altered miRNAs were associated with cancer, cell signaling, and cellular development pathways, with predicted impacts on Akt and FOXO3.
Conclusions:
- This study reveals a distinct miRNA signature associated with cancer cachexia-induced muscle atrophy.
- The identified differentially expressed miRNAs and predicted gene targets provide a foundation for developing novel therapeutic strategies.
- Targeting these specific miRNAs or their downstream effectors may offer a means to attenuate muscle loss in cancer cachexia.
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