Literature DB >> 23184391

Pathologic endothelial response and impaired function of circulating angiogenic cells in patients with Fabry disease.

Johan M Lorenzen1, Bernd Dietrich, Jan Fiedler, Virginija Jazbutyte, Felix Fleissner, Nicola Karpinski, Frank Weidemann, Christoph Wanner, Esther Asan, Massimiliano Caprio, Georg Ertl, Johann Bauersachs, Thomas Thum.   

Abstract

Fabry disease is an X-chromosomal recessive deficiency of the lysosomal hydrolase alpha-galactosidase A (alpha-Gal). This results in an accumulation of globotriaosylceramide (GL-3) in a variety of cells often with subsequent functional impairment. Here, the impact of Fabry disease on the biology of circulating angiogenic cells (CACs) and the endothelial response to transient ischemia was investigated. Untreated patients with Fabry disease (n = 26), patients after initiation of alpha-Gal enzyme replacement therapy (ERT) (n = 16) and healthy controls (n = 26) were investigated. Endothelial function was assessed by the EndoPAT2000 device. CAC numbers were assessed by flow-cytometry, CAC function by a modified Boyden chamber assay. Fabry patients showed a pathologic endothelial response, which normalized after ERT. CACs were increased in number, but functionally impaired. Immunofluorescence and electron microscopy identified an accumulation of GL-3 in Fabry CACs. ERT attenuated CAC dysfunction and improved markers of oxidative stress response in Fabry patients via a reduction in GL-3 accumulation in vitro and in vivo. Silencing of alpha-Gal in healthy CACs impaired their migratory capacity underlining a key role of this enzyme for CAC function. CAC supernatant as well as CACs from Fabry patients impaired angiogenesis and migratory capacity of HUVECs providing a mechanistic link between CAC and endothelial dysfunction. CAC adhesion to TNF-α pre-stimulated HUVECs and tube formation was impaired by alpha-Gal knockdown. Fabry patients show a dysfunction of CAC and a pathologic endothelial response. ERT improves CAC and endothelial function and thus may attenuate development of cardiovascular disease in the long term in this patient population.

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Year:  2012        PMID: 23184391     DOI: 10.1007/s00395-012-0311-3

Source DB:  PubMed          Journal:  Basic Res Cardiol        ISSN: 0300-8428            Impact factor:   17.165


  5 in total

1.  Imbalanced Production of Reactive Oxygen Species and Mitochondrial Antioxidant SOD2 in Fabry Disease-Specific Human Induced Pluripotent Stem Cell-Differentiated Vascular Endothelial Cells.

Authors:  Wei-Lien Tseng; Shih-Jie Chou; Huai-Chih Chiang; Mong-Lien Wang; Chian-Shiu Chien; Kuan-Hsuan Chen; Hsin-Bang Leu; Chien-Ying Wang; Yuh-Lih Chang; Yung-Yang Liu; Yuh-Jyh Jong; Shinn-Zong Lin; Shih-Hwa Chiou; Shing-Jong Lin; Wen-Chung Yu
Journal:  Cell Transplant       Date:  2016-12-06       Impact factor: 4.064

2.  Prevalence of Raynaud phenomenon and nailfold capillaroscopic abnormalities in Fabry disease: a cross-sectional study.

Authors:  Samuel Deshayes; Laurent Auboire; Roland Jaussaud; Olivier Lidove; Jean-Jacques Parienti; Nathalie Triclin; Bernard Imbert; Boris Bienvenu; Achille Aouba
Journal:  Medicine (Baltimore)       Date:  2015-05       Impact factor: 1.889

3.  Serum Bilirubin Levels and Promoter Variations in HMOX1 and UGT1A1 Genes in Patients with Fabry Disease.

Authors:  Alena Jirásková; Giulia Bortolussi; Gabriela Dostálová; Lenka Eremiášová; Lubor Golaň; Vilém Danzig; Aleš Linhart; Libor Vítek
Journal:  Oxid Med Cell Longev       Date:  2017-08-16       Impact factor: 6.543

4.  Endothelial Dysfunction in Fabry Disease Is Related to Glycocalyx Degradation.

Authors:  Solvey Pollmann; David Scharnetzki; Dominique Manikowski; Malte Lenders; Eva Brand
Journal:  Front Immunol       Date:  2021-11-30       Impact factor: 7.561

5.  Platelet and myeloid cell phenotypes in a rat model of Fabry disease.

Authors:  Adam J Kanack; Kazuhiro Aoki; Michael Tiemeyer; Nancy M Dahms
Journal:  FASEB J       Date:  2021-08       Impact factor: 5.834

  5 in total

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