Improving obesity research: Unveiling metabolic pathways through a 3D In vitro model of adipocytes using 3T3-L1 cells.
Thayna Mendonca AvelinoMarta García-Arévalo ProvencioLuís Antonio PeroniRomênia Ramos DominguesFelipe Rafael TorresPaulo Sergio Lopes de OliveiraAdriana Franco Paes LemeAna Carolina Migliorini FigueiraPublished in: PloS one (2024)
Obesity, a burgeoning global health crisis, has tripled in prevalence over the past 45 years, necessitating innovative research methodologies. Adipocytes, which are responsible for energy storage, play a central role in obesity. However, most studies in this field rely on animal models or adipocyte monolayer cell cultures, which are limited in their ability to fully mimic the complex physiology of a living organism, or pose challenges in terms of cost, time consumption, and ethical considerations. These limitations prompt a shift towards alternative methodologies. In response, here we show a 3D in vitro model utilizing the 3T3-L1 cell line, aimed at faithfully replicating the metabolic intricacies of adipocytes in vivo. Using a workable cell line (3T3-L1), we produced adipocyte spheroids and differentiated them in presence and absence of TNF-α. Through a meticulous proteomic analysis, we compared the molecular profile of our adipose spheroids with that of adipose tissue from lean and obese C57BL/6J mice. This comparison demonstrated the model's efficacy in studying metabolic conditions, with TNF-α treated spheroids displaying a notable resemblance to obese white adipose tissue. Our findings underscore the model's simplicity, reproducibility, and cost-effectiveness, positioning it as a robust tool for authentically mimicking in vitro metabolic features of real adipose tissue. Notably, our model encapsulates key aspects of obesity, including insulin resistance and an obesity profile. This innovative approach has the potential to significantly impact the discovery of novel therapeutic interventions for metabolic syndrome and obesity. By providing a nuanced understanding of metabolic conditions, our 3D model stands as a transformative contribution to in vitro research, offering a pathway for the development of small molecules and biologics targeting these pervasive health issues in humans.
Keyphrases
- insulin resistance
- adipose tissue
- high fat diet induced
- metabolic syndrome
- high fat diet
- polycystic ovary syndrome
- type diabetes
- weight loss
- public health
- skeletal muscle
- global health
- rheumatoid arthritis
- healthcare
- mental health
- induced apoptosis
- mesenchymal stem cells
- uric acid
- cardiovascular risk factors
- stem cells
- cardiovascular disease
- oxidative stress
- small molecule
- weight gain
- climate change
- bariatric surgery
- single molecule
- high throughput
- risk assessment
- fatty acid