Standardized In Vitro Models of Human Adipose Tissue Reveal Metabolic Flexibility in Brown Adipocyte Thermogenesis

Author:

Cero Cheryl1,Shu Weiguo2,Reese Amy L3,Douglas Diana2,Maddox Michael24,Singh Ajeet P3,Ali Sahara L1,Zhu Alexander R1,Katz Jacqueline M1,Pierce Anne E1,Long Kelly T1,Nilubol Naris5,Cypess Raymond H6,Jacobs Jonathan L3,Tian Fang2,Cypess Aaron M1ORCID

Affiliation:

1. Diabetes, Endocrinology, and Obesity Branch, National Institute of Diabetes and Digestive and Kidney Diseases, National Institutes of Health , Bethesda, MD 20892 , USA

2. American Type Culture Collection, Cell Biology R&D , 217 Perry Parkway, Gaithersburg, MD 20877 , USA

3. American Type Culture Collection, Sequencing and Bioinformatics Center , 10801 University Blvd, Manassas, VA 20110 , USA

4. Vita Therapeutics Current Affiliation: , 801 W. Baltimore Street, Suite 301, Baltimore, MD 21201 , USA

5. Surgical Oncology Program, Center for Cancer Research, NCI, NIH , 10 Center Drive, Room 4-5952, Bethesda, MD 20892 , USA

6. American Type Culture Collection , 10801 University Blvd, Manassas, VA 20110 , USA

Abstract

Abstract Functional human brown and white adipose tissue (BAT and WAT) are vital for thermoregulation and nutritional homeostasis, while obesity and other stressors lead, respectively, to cold intolerance and metabolic disease. Understanding BAT and WAT physiology and dysfunction necessitates clinical trials complemented by mechanistic experiments at the cellular level. These require standardized in vitro models, currently lacking, that establish references for gene expression and function. We generated and characterized a pair of immortalized, clonal human brown (hBA) and white (hWA) preadipocytes derived from the perirenal and subcutaneous depots, respectively, of a 40-year-old male individual. Cells were immortalized with hTERT and confirmed to be of a mesenchymal, nonhematopoietic lineage based on fluorescence-activated cell sorting and DNA barcoding. Functional assessments showed that the hWA and hBA phenocopied primary adipocytes in terms of adrenergic signaling, lipolysis, and thermogenesis. Compared to hWA, hBA were metabolically distinct, with higher rates of glucose uptake and lactate metabolism, and greater basal, maximal, and nonmitochondrial respiration, providing a mechanistic explanation for the association between obesity and BAT dysfunction. The hBA also responded to the stress of maximal respiration by using both endogenous and exogenous fatty acids. In contrast to certain mouse models, hBA adrenergic thermogenesis was mediated by several mechanisms, not principally via uncoupling protein 1 (UCP1). Transcriptomics via RNA-seq were consistent with the functional studies and established a molecular signature for each cell type before and after differentiation. These standardized cells are anticipated to become a common resource for future physiological, pharmacological, and genetic studies of human adipocytes.

Publisher

The Endocrine Society

Subject

Endocrinology

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