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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
Skeletal muscle function during the progression of cancer cachexia in the male ApcMin/+ mouse
Brandon N VanderVeen1, Justin P Hardee1, Dennis K Fix1
1Integrative Muscle Biology Laboratory, University of South Carolina , Columbia, South Carolina.
Abstract:
While cancer-induced skeletal muscle wasting has been widely investigated, the drivers of cancer-induced muscle functional decrements are only beginning to be understood. Decreased muscle function impacts cancer patient quality of life and health status, and several potential therapeutics have failed in clinical trials due to a lack of functional improvement. Furthermore, systemic inflammation and intrinsic inflammatory signaling's role in the cachectic disruption of muscle function requires further investigation. We examined skeletal muscle functional properties during cancer cachexia and determined their relationship to systemic and intrinsic cachexia indices. Male ApcMin/+ (MIN) mice were stratified by percent body weight loss into weight stable (WS; <5% loss) or cachectic (CX; >5% loss). Age-matched C57BL/6 littermates served as controls. Tibialis anterior (TA) twitch properties, tetanic force, and fatigability were examined in situ. TA protein and mRNA expression were examined in the nonstimulated leg. CX decreased muscle mass, tetanic force (Po), and specific tetanic force (sPo). Whole body and muscle fatigability were increased in WS and CX. CX had slower contraction rates, +dP/d t and -dP/d t, which were inversely associated with muscle signal transducer and activator of transcription 3 ( STAT3) and p65 activation. STAT3 and p65 activation were also inversely associated with Po. However, STAT3 was not related to sPo or fatigue. Muscle suppressor of cytokine signaling 3 mRNA expression was negatively associated with TA weight, Po, and sPo but not fatigue. Our study demonstrates that multiple functional deficits that occur with cancer cachexia are associated with increased muscle inflammatory signaling. Notably, muscle fatigability is increased in the MIN mouse before cachexia development. NEW & NOTEWORTHY Recent studies have identified decrements in skeletal muscle function during cachexia. We have extended these studies by directly relating decrements in muscle function to established cachexia indices. Our results demonstrate that a slow-fatigable contractile phenotype is developed during the progression of cachexia that coincides with increased muscle inflammatory signaling. Furthermore, regression analysis identified predictors of cancer-induced muscle dysfunction. Last, we report the novel finding that whole body and muscle fatigability were increased before cachexia development.
Insights
Cancer cachexia causes muscle dysfunction, including increased fatigability even before weight loss. Muscle inflammatory signaling is linked to these functional deficits, impacting patient quality of life.
Area of Science:
- Oncology
- Physiology
- Molecular Biology
Background:
- Cancer cachexia significantly impairs skeletal muscle function, affecting patient quality of life.
- Understanding the drivers of muscle functional decrements is crucial, as therapeutics have shown limited success.
- The roles of systemic and intrinsic inflammation in cachexia-related muscle dysfunction require further investigation.
Purpose of the Study:
- To examine skeletal muscle functional properties during cancer cachexia.
- To determine the relationship between muscle function and systemic/intrinsic cachexia indices.
- To identify predictors of cancer-induced muscle dysfunction.
Main Methods:
- Male ApcMin/+ mice were stratified into weight-stable (<5% body weight loss) or cachectic (>5% body weight loss) groups.
- Age-matched controls were used. In situ analysis of tibialis anterior (TA) muscle assessed twitch properties, tetanic force, and fatigability.
- TA protein and mRNA expression were analyzed, focusing on inflammatory signaling pathways like STAT3 and p65.
Main Results:
- Cachexia decreased muscle mass, tetanic force (Po), and specific tetanic force (sPo).
- Both weight-stable and cachectic mice exhibited increased whole body and muscle fatigability.
- Slower muscle contraction rates in cachectic mice were inversely associated with STAT3 and p65 activation, which also correlated inversely with Po.
Conclusions:
- Cancer cachexia induces multiple skeletal muscle functional deficits linked to increased muscle inflammatory signaling.
- Muscle fatigability is an early indicator, increasing before overt cachexia development.
- Inflammatory pathways, including STAT3, play a role in cancer-induced muscle dysfunction, though not uniformly across all functional parameters.

