Diabetes Impairs the Vascular Recruitment of Normal Stem Cells by Oxidant Damage, Reversed by Increases in pAMPK, Heme Oxygenase-1, and Adiponectin

Author:

Sambuceti Gianmario12,Morbelli Silvia1,Vanella Luca3,Kusmic Claudia4,Marini Cecilia4,Massollo Michela1,Augeri Carla1,Corselli Mirko5,Ghersi Chiara1,Chiavarina Barbara5,Rodella Luigi F.6,L'Abbate Antonio7,Drummond George3,Abraham Nader G.3,Frassoni Francesco5

Affiliation:

1. Department of Internal Medicine, Nuclear Medicine, University of Genoa, S. Martino Hospital, Genoa, Italy

2. Advanced Biotechnology Center, Genoa, Italy

3. Departments of Medicine and Pharmacology, New York Medical College, Valhalla, New York, USA

4. CNR Institute of Bioimages and Molecular Physiology, Milan, Genoa Section, Italy

5. Centro Cellule Staminali e Terapia Cellulare, S. Martino Hospital, Genoa, Italy

6. Department of Biomedical Science, University of Brescia, Brescia, Italy

7. Scuola Superiore Sant'Anna, Pisa, Italy

Abstract

Abstract Background Atherosclerosis progression is accelerated in diabetes mellitus (DM) by either direct endothelial damage or reduced availability and function of endothelial progenitor cells (EPCs). Both alterations are related to increased oxidant damage. Aim We examined if DM specifically impairs vascular signaling, thereby reducing the recruitment of normal EPCs, and if increases in antioxidant levels by induction of heme oxygenase-1 (HO-1) can reverse this condition. Methods Control and diabetic rats were treated with the HO-1 inducer cobalt protoporphyrin (CoPP) once a week for 3 weeks. Eight weeks after the development of diabetes, EPCs harvested from the aorta of syngenic inbred normal rats and labeled with technetium-99m-exametazime were infused via the femoral vein to estimate their blood clearance and aortic recruitment. Circulating endothelial cells (CECs) and the aortic expression of thrombomodulin (TM), CD31, and endothelial nitric oxide synthase (eNOS) were used to measure endothelial damage. Results DM reduced blood clearance and aortic recruitment of EPCs. Both parameters were returned to control levels by CoPP treatment without affecting EPC kinetics in normal animals. These abnormalities of EPCs in DM were paralleled by reduced serum adiponectin levels, increased numbers of CECs, reduced endothelial expression of phosphorylated eNOS, and reduced levels of TM, CD31, and phosphorylated AMP-activated protein kinase (pAMPK). CoPP treatment restored all of these parameters to normal levels. Conclusion Type II DM and its related oxidant damage hamper the interaction between the vascular wall and normal EPCs by mechanisms that are, at least partially, reversed by the induction of HO-1 gene expression, adiponectin, and pAMPK levels. STEM CELLS  2009;27:399–407

Funder

National Institutes of Health

CNR Medical Department and Cardiopulmonary project

Scuola Sant'Anna

University of Genoa

Compagnia di San Paolo Torino

Progetto CARIGE Cellule Staminali

Progetto CARIGE (Microcircolo e diabete), Regione Liguria

Ministero della Salute

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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