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A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background

Nephrotic syndrome is characterized by severe proteinuria, hypoalbuminaemia, edema and hyperlipidaemia. Genetic studies of nephrotic syndrome have led to the identification of proteins playing a crucial role in slit diaphragm signaling, regulation of actin cytoskeleton dynamics and cell-matrix inter...

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Autores principales: Falcone, Sara, Nicol, Thomas, Blease, Andrew, Randles, Michael J., Angus, Elizabeth, Page, Anton, Tam, Frederick W.K., Pusey, Charles D., Lennon, Rachel, Potter, Paul K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8883398/
https://www.ncbi.nlm.nih.gov/pubmed/34774562
http://dx.doi.org/10.1016/j.kint.2021.10.031
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author Falcone, Sara
Nicol, Thomas
Blease, Andrew
Randles, Michael J.
Angus, Elizabeth
Page, Anton
Tam, Frederick W.K.
Pusey, Charles D.
Lennon, Rachel
Potter, Paul K.
author_facet Falcone, Sara
Nicol, Thomas
Blease, Andrew
Randles, Michael J.
Angus, Elizabeth
Page, Anton
Tam, Frederick W.K.
Pusey, Charles D.
Lennon, Rachel
Potter, Paul K.
author_sort Falcone, Sara
collection PubMed
description Nephrotic syndrome is characterized by severe proteinuria, hypoalbuminaemia, edema and hyperlipidaemia. Genetic studies of nephrotic syndrome have led to the identification of proteins playing a crucial role in slit diaphragm signaling, regulation of actin cytoskeleton dynamics and cell-matrix interactions. The laminin α5 chain is essential for embryonic development and, in association with laminin β2 and laminin γ1, is a major component of the glomerular basement membrane, a critical component of the glomerular filtration barrier. Mutations in LAMA5 were recently identified in children with nephrotic syndrome. Here, we have identified a novel missense mutation (E884G) in the uncharacterized L4a domain of LAMA5 where homozygous mice develop nephrotic syndrome with severe proteinuria with histological and ultrastructural changes in the glomerulus mimicking the progression seen in most patients. The levels of LAMA5 are reduced in vivo and the assembly of the laminin 521 heterotrimer significantly reduced in vitro. Proteomic analysis of the glomerular extracellular fraction revealed changes in the matrix composition. Importantly, the genetic background of the mice had a significant effect on aspects of disease progression from proteinuria to changes in podocyte morphology. Thus, our novel model will provide insights into pathologic mechanisms of nephrotic syndrome and pathways that influence the response to a dysfunctional glomerular basement membrane that may be important in a range of kidney diseases.
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spelling pubmed-88833982022-03-02 A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background Falcone, Sara Nicol, Thomas Blease, Andrew Randles, Michael J. Angus, Elizabeth Page, Anton Tam, Frederick W.K. Pusey, Charles D. Lennon, Rachel Potter, Paul K. Kidney Int Basic Research Nephrotic syndrome is characterized by severe proteinuria, hypoalbuminaemia, edema and hyperlipidaemia. Genetic studies of nephrotic syndrome have led to the identification of proteins playing a crucial role in slit diaphragm signaling, regulation of actin cytoskeleton dynamics and cell-matrix interactions. The laminin α5 chain is essential for embryonic development and, in association with laminin β2 and laminin γ1, is a major component of the glomerular basement membrane, a critical component of the glomerular filtration barrier. Mutations in LAMA5 were recently identified in children with nephrotic syndrome. Here, we have identified a novel missense mutation (E884G) in the uncharacterized L4a domain of LAMA5 where homozygous mice develop nephrotic syndrome with severe proteinuria with histological and ultrastructural changes in the glomerulus mimicking the progression seen in most patients. The levels of LAMA5 are reduced in vivo and the assembly of the laminin 521 heterotrimer significantly reduced in vitro. Proteomic analysis of the glomerular extracellular fraction revealed changes in the matrix composition. Importantly, the genetic background of the mice had a significant effect on aspects of disease progression from proteinuria to changes in podocyte morphology. Thus, our novel model will provide insights into pathologic mechanisms of nephrotic syndrome and pathways that influence the response to a dysfunctional glomerular basement membrane that may be important in a range of kidney diseases. Elsevier 2022-03 /pmc/articles/PMC8883398/ /pubmed/34774562 http://dx.doi.org/10.1016/j.kint.2021.10.031 Text en © 2021 International Society of Nephrology. Published by Elsevier Inc. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Basic Research
Falcone, Sara
Nicol, Thomas
Blease, Andrew
Randles, Michael J.
Angus, Elizabeth
Page, Anton
Tam, Frederick W.K.
Pusey, Charles D.
Lennon, Rachel
Potter, Paul K.
A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title_full A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title_fullStr A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title_full_unstemmed A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title_short A novel model of nephrotic syndrome results from a point mutation in Lama5 and is modified by genetic background
title_sort novel model of nephrotic syndrome results from a point mutation in lama5 and is modified by genetic background
topic Basic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8883398/
https://www.ncbi.nlm.nih.gov/pubmed/34774562
http://dx.doi.org/10.1016/j.kint.2021.10.031
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