Adiponectin as a Link Between Type 2 Diabetes and Vascular NADPH Oxidase Activity in the Human Arterial Wall: The Regulatory Role of Perivascular Adipose Tissue

Author:

Antonopoulos Alexios S.1,Margaritis Marios1,Coutinho Patricia1,Shirodaria Cheerag1,Psarros Costas2,Herdman Laura1,Sanna Fabio1,De Silva Ravi3,Petrou Mario3,Sayeed Rana3,Krasopoulos George3,Lee Regent1,Digby Janet1,Reilly Svetlana1,Bakogiannis Constantinos2,Tousoulis Dimitris2,Kessler Benedikt4,Casadei Barbara1,Channon Keith M.1,Antoniades Charalambos1

Affiliation:

1. Cardiovascular Medicine Division, University of Oxford, Oxford, U.K.

2. 1st Department of Cardiology, Athens University Medical School, Athens, Greece

3. Department of Cardiac Surgery, John Radcliffe Hospital, Oxford, U.K.

4. Nuffield Department of Medicine, University of Oxford, Oxford, U.K.

Abstract

Oxidative stress plays a critical role in the vascular complications of type 2 diabetes. We examined the effect of type 2 diabetes on NADPH oxidase in human vessels and explored the mechanisms of this interaction. Segments of internal mammary arteries (IMAs) with their perivascular adipose tissue (PVAT) and thoracic adipose tissue were obtained from 386 patients undergoing coronary bypass surgery (127 with type 2 diabetes). Type 2 diabetes was strongly correlated with hypoadiponectinemia and increased vascular NADPH oxidase–derived superoxide anions (O2˙−). The genetic variability of the ADIPOQ gene and circulating adiponectin (but not interleukin-6) were independent predictors of NADPH oxidase–derived O2˙−. However, adiponectin expression in PVAT was positively correlated with vascular NADPH oxidase–derived O2˙−. Recombinant adiponectin directly inhibited NADPH oxidase in human arteries ex vivo by preventing the activation/membrane translocation of Rac1 and downregulating p22phox through a phosphoinositide 3-kinase/Akt-mediated mechanism. In ex vivo coincubation models of IMA/PVAT, the activation of arterial NADPH oxidase triggered a peroxisome proliferator–activated receptor-γ–mediated upregulation of the adiponectin gene in the neighboring PVAT via the release of vascular oxidation products. We demonstrate for the first time in humans that reduced adiponectin levels in individuals with type 2 diabetes stimulates vascular NADPH oxidase, while PVAT “senses” the increased NADPH oxidase activity in the underlying vessel and responds by upregulating adiponectin gene expression. This PVAT-vessel interaction is identified as a novel therapeutic target for the prevention of vascular complications of type 2 diabetes.

Funder

British Heart Foundation

European Society of Cardiology - Heart Failure Association

British Heart Foundation Centre of Research Excellence - Oxford

Publisher

American Diabetes Association

Subject

Endocrinology, Diabetes and Metabolism,Internal Medicine

Reference36 articles.

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