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Obesity-induced tissue alterations resist weight loss: A mechanistic review
Lucio Della Guardia1, Andrew C Shin2
1Department of Biomedical Sciences for Health, Università degli Studi di Milano, Milano, Italy.
Abstract:
Interventions aimed at weight control often have limited effectiveness in combating obesity. This review explores how obesity-induced dysfunction in white (WAT) and brown adipose tissue (BAT), skeletal muscle, and the brain blunt weight loss, leading to retention of stored fat. In obesity, increased adrenergic stimulation and inflammation downregulate β-adrenoreceptors and impair catecholaminergic signalling in adipocytes. This disrupts adrenergic-mediated lipolysis, diminishing lipid oxidation in both white and brown adipocytes, lowering thermogenesis and blunting fat loss. Emerging evidence suggests that WAT fibrosis is associated with worse weight loss outcomes; indeed, limiting collagen and laminin-α4 deposition mitigates WAT accumulation, enhances browning, and protects against high-fat-diet-induced obesity. Obesity compromises mitochondrial oxidative capacity and lipid oxidation in skeletal muscle, impairing its ability to switch between glucose and lipid metabolism in response to varying nutrient levels and exercise. This dysfunctional phenotype in muscle is exacerbated in the presence of obesity-associated sarcopenia. Additionally, obesity suppresses sarcolipin-induced sarcoplasmic reticulum calcium ATPase (SERCA) activation, resulting in reduced oxidative capacity, diminished energy expenditure, and increased adiposity. In the hypothalamus, obesity and overnutrition impair insulin and leptin signalling. This blunts central satiety signals, favouring a shift in energy balance toward energy conservation and body fat retention. Moreover, both obese animals and humans demonstrate impaired dopaminergic signalling and diminished responses to nutrient intake in the striatum, which tend to persist after weight loss. This may result in enduring inclinations toward overeating and a sedentary lifestyle. Collectively, the tissue adaptations described pose significant challenges to effectively achieving and sustaining weight loss in obesity.
Insights
Obesity causes tissue dysfunction in fat, muscle, and brain, hindering weight loss by impairing fat burning and increasing energy conservation. These adaptations make sustained weight loss challenging.
Area of Science:
- Metabolic and Bariatric Surgery
- Obesity Medicine
- Physiology
Background:
- Weight control interventions often yield limited success in obesity management.
- Obesity induces dysfunction in key metabolic tissues, including adipose tissue, skeletal muscle, and the brain.
- These dysfunctions contribute to the difficulty in achieving and maintaining weight loss.
Purpose of the Study:
- To review the mechanisms by which obesity-induced tissue dysfunction impedes weight loss.
- To explore how alterations in white adipose tissue (WAT), brown adipose tissue (BAT), skeletal muscle, and brain function contribute to fat retention.
Main Methods:
- Review of existing literature on obesity-related physiological changes.
- Analysis of molecular and cellular adaptations in adipose tissue, skeletal muscle, and brain.
- Examination of signaling pathways involved in energy balance and metabolism.
Main Results:
- Obesity impairs adrenergic signaling and promotes WAT fibrosis, reducing lipolysis and thermogenesis.
- Skeletal muscle exhibits reduced oxidative capacity and impaired substrate utilization, exacerbated by sarcopenia.
- Hypothalamic and striatal signaling disruptions in obesity blunt satiety and promote overeating and sedentary behavior.
Conclusions:
- Obesity-induced dysfunction in WAT, BAT, skeletal muscle, and brain significantly hinders effective weight loss.
- Impaired lipolysis, reduced thermogenesis, compromised muscle metabolism, and altered brain signaling contribute to fat retention.
- Targeting these tissue-specific adaptations may offer novel strategies for obesity treatment.
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