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bioRxiv · 10.1101/2020.06.30.180083

Human adipocyte differentiation and composition of disease relevant lipids are regulated by miR-221-3p

Abstract

MicroRNA-221-3p (miR-221-3p) is associated with both metabolic diseases and cancers. However, its role in terminal adipocyte differentiation, adipocyte lipid metabolism, and lipid signaling in human disease are uncharacterized. miR-221-3p or its inhibitor were transfected into differentiating or mature human adipocytes. Triglyceride (TG) content and adipogenic gene expression were monitored, global lipidome analysis was carried out, and mechanisms underlying the effects of miR-221-3p were investigated. Finally, cross-talk between miR-221-3p expressing adipocytes and MCF-7 breast carcinoma (BC) cells was studied, and miR-221-3p expression in tumor-proximal adipose biopsies from BC patients analyzed. miR-221-3p overexpression inhibited terminal differentiation of adipocytes, as judged from reduced TG storage and gene expression of the adipogenic markers SCD1, GLUT4, FAS, DGAT1/2, AP2, ATGL and AdipoQ. The signaling adaptor protein 14-3-3γ was identified as a potential mediator of the miR-221-3p effects. Importantly, miR-221-3p overexpression inhibited de novo lipogenesis but increased the concentrations of ceramides and sphingomyelins, while reducing diacylglycerols, concomitant with suppression of sphingomyelin phosphodiesterase, ATP citrate lyase, and acid ceramidase. miR-221-3p expression was elevated in tumor proximal adipose tissue from patients with invasive BC. Conditioned medium of miR-221-3p overexpressing adipocytes stimulated the invasion and proliferation of BC cells, while medium of the BC cells enhanced miR-221-3p expression in adipocytes. miR-221-3p plays a pivotal role in the terminal differentiation of white adipocytes and their lipid composition. Elevated miR-221-3p impairs adipocyte lipid storage and differentiation, and modifies their ceramide, sphingomyelin, and diacylglycerol content. These alterations are relevant for metabolic diseases but may also affect cancer progression.View Full Text

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BibTeXRIS

Ahonen, M. A., Asghar, M. Y., Parviainen, S. J., Liebisch, G., Höring, M., Leidenius, M., Fischer-Posovszky, P., Wabitsch, M., Mikkola, T. S., Törnquist, K., Savolainen-Peltonen, H., Haridas, P. A. N., Olkkonen, V. M.. 2020-07-02. Human adipocyte differentiation and composition of disease relevant lipids are regulated by miR-221-3p. https://doi.org/10.1101/2020.06.30.180083

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