Fabry disease is a lysosomal storage disorder resulting from impaired alpha-galactosidase A (α-Gal A) enzyme activity due to mutations in the GLA gene. Currently, powerful diagnostic tools and in vivo research models to study Fabry disease are missing, which is a major obstacle for further improvements in diagnosis and therapy. Here, we explore the utility of urine-derived primary cells of Fabry disease patients. Viable cells were isolated and cultured from fresh urine void. The obtained cell culture, modeling the renal epithelium, is characterized by patient-specific information. We demonstrate that this non-invasive source of patient cells provides an adequate cellular in vivo model as cells exhibit decreased α-Gal A enzyme activity and concomitant globotriaosylceramide accumulation. Subsequent quantitative proteomic analyses revealed dysregulation of endosomal and lysosomal proteins indicating an involvement of the Coordinated Lysosomal Expression and Regulation (CLEAR) network in the disease pathology. This proteomic pattern resembled data from our previously described human podocyte model of Fabry disease. Taken together, the employment of urine-derived primary cells of Fabry disease patients might have diagnostic and prognostic implications in the future. Our findings pave the way towards a more detailed understanding of pathophysiological mechanisms and may allow the development of future tailored therapeutic strategies.
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http://dx.doi.org/10.1038/s41598-018-29240-w | DOI Listing |
JIMD Rep
January 2025
Division of Genetics and Metabolism, Department of Pediatrics University of Minnesota Minneapolis Minnesota USA.
Fabry disease is an X-linked lysosomal disease caused by variants in the gene. Although Fabry disease is X-linked, gene variants in females can exhibit a wide range of symptoms, challenging the traditional view of Fabry as an X-linked recessive disease. A family is presented here with a 36-year-old female who is symptomatic with chronic kidney disease and her oligosymptomatic 70-year-old father, both of whom have a heterozygous and hemizygous GLA pathogenic variant, respectively, c.
View Article and Find Full Text PDFJ Inherit Metab Dis
January 2025
Department of Life Sciences, Manchester Metropolitan University, Manchester, UK.
There are currently at least 70 characterised lysosomal storage diseases (LSD) resultant from inherited single-gene defects. Of these, at least 30 present with central nervous system (CNS) neurodegeneration and overlapping aetiology. Substrate accumulation and dysfunctional neuronal lysosomes are common denominator, but how variants in 30 different genes converge on this central cellular phenotype is unclear.
View Article and Find Full Text PDFHeart
January 2025
Internal Medicine, Virginia Commonwealth University, Richmond, Virginia, USA.
Int J Cardiol
January 2025
Department of Cardiology, The First Affiliated Hospital of Soochow University, Suzhou, China. Electronic address:
Aims: The study was designed to investigate the characteristics of atrial ventricular coupling and left atrial (LA) function impairment in patients with Fabry disease (FD), especially those in the early stages of the condition.
Methods: A total of 65 patients with Fabry disease who completed echocardiographic examinations from January 2018 to May 2024 were ultimately included. Among them, 25 patients with FD did not have left ventricular (LV) hypertrophy (LVH).
Biosens Bioelectron
January 2025
Institute of Physics, College of Natural Sciences, University of Rzeszow, Rzeszow, Poland.
Fabry disease (FD) is a rare disorder resulting from a genetic mutation characterized by the accumulation of sphingolipids in various cells throughout the human body, leading to progressive and irreversible organ damage, particularly in males. Genetically-determined deficiency or reduced activity of the enzyme (alpha - Galactosidase; α-Gal) leads to the accumulation of sphingolipids in the lysosomes of various cell types, including the heart, kidneys, skin, eyes, central nervous system, and digestive system, triggering damage, leading to the failure of vital organs, and resulting in progressive disability and premature death. FD diagnostics currently depend on costly and time-intensive genetic tests and enzymatic analysis, often leading to delayed or inaccurate diagnoses, which contribute to rapid disease progression.
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