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3D Bioprinted White Adipose Model Forstudy of Cancer-associated Cachexia Induced Adipose Tissue Remodeling

Overview
Journal Biofabrication
Date 2022 May 3
PMID 35504266
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Abstract

Cancer-associated cachexia (CAC) is a complex metabolic and behavioral syndrome with multiple manifestations that involve systemic inflammation, weight loss, and adipose lipolysis. It impacts the quality of life of patients and is the direct cause of death in 20%-30% of cancer patients. The severity of fat loss and adipose tissue remodeling negatively correlate with patients' survival outcomes. To address the mechanism of fat loss and design potential approaches to prevent the process, it will be essential to understand CAC pathophysiology through white adipose tissue models. In the present study, an engineered human white adipose tissue (eWAT) model based on three-dimensional (3D) bioprinting was developed and induced with pancreatic cancer cell-conditioned medium (CM) to mimic the status of CAC. We found that the CM induction significantly increased the lipolysis and accumulation of the extracellular matrix (ECM). The 3D eWATs were further vascularized to study the influence of vascularization on lipolysis and CAC progression, which was largely unknown. Results demonstrated that CM induction improved the angiogenesis of vascularized eWATs (veWATs), and veWATs demonstrated decreased glycerol release but increasedexpression, compared to eWATs. Many unique inflammatory cytokines (IL-8, CXCL-1, GM-CSF, etc) from the CM were detected and supposed to contribute to eWAT lipolysis,up-regulation, and ECM development. In response to CM induction, eWATs also secreted inflammatory adipokines related to the metastatic ability of cancer, muscle atrophy, and vascularization (NGAL, CD54, IGFBP-2, etc). Our work demonstrated that the eWAT is a robust model for studying cachectic fat loss and the accompanying remodeling of adipose tissue. It is therefore a useful tool for future research exploring CAC physiologies and developing potential therapies.

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References
1.
Kuss M, Wu S, Wang Y, Untrauer J, Li W, Lim J . Prevascularization of 3D printed bone scaffolds by bioactive hydrogels and cell co-culture. J Biomed Mater Res B Appl Biomater. 2017; 106(5):1788-1798. PMC: 8011329. DOI: 10.1002/jbm.b.33994. View

2.
Yang F, Cohen R, Brey E . Optimization of Co-Culture Conditions for a Human Vascularized Adipose Tissue Model. Bioengineering (Basel). 2020; 7(3). PMC: 7552791. DOI: 10.3390/bioengineering7030114. View

3.
Abella V, Scotece M, Conde J, Gomez R, Lois A, Pino J . The potential of lipocalin-2/NGAL as biomarker for inflammatory and metabolic diseases. Biomarkers. 2015; 20(8):565-71. PMC: 4819811. DOI: 10.3109/1354750X.2015.1123354. View

4.
Aubin K, Safoine M, Proulx M, Audet-Casgrain M, Cote J, Tetu F . Characterization of In Vitro Engineered Human Adipose Tissues: Relevant Adipokine Secretion and Impact of TNF-α. PLoS One. 2015; 10(9):e0137612. PMC: 4569087. DOI: 10.1371/journal.pone.0137612. View

5.
Sun H, Wu W, Chen H, Xu Y, Yang Y, Chen J . Glutamine Deprivation Promotes the Generation and Mobilization of MDSCs by Enhancing Expression of G-CSF and GM-CSF. Front Immunol. 2021; 11:616367. PMC: 7884351. DOI: 10.3389/fimmu.2020.616367. View