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Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis
Proximal tubular epithelial cells are highly energy demanding. Their energy need is covered mostly from mitochondrial fatty acid oxidation. Whether derailments in fatty acid metabolism and mitochondrial dysfunction are forerunners of tubular damage has been suggested but is not entirely clear. Here...
Autores principales: | , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Diabetes Association
2019
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6425873/ https://www.ncbi.nlm.nih.gov/pubmed/30728184 http://dx.doi.org/10.2337/db18-0090 |
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author | Kruger, Claudia Nguyen, Trang-Tiffany Breaux, Chelsea Guillory, Alana Mangelli, Margaret Fridianto, Kevin T. Kovalik, Jean-Paul Burk, David H. Noland, Robert C. Mynatt, Randall Stadler, Krisztian |
author_facet | Kruger, Claudia Nguyen, Trang-Tiffany Breaux, Chelsea Guillory, Alana Mangelli, Margaret Fridianto, Kevin T. Kovalik, Jean-Paul Burk, David H. Noland, Robert C. Mynatt, Randall Stadler, Krisztian |
author_sort | Kruger, Claudia |
collection | PubMed |
description | Proximal tubular epithelial cells are highly energy demanding. Their energy need is covered mostly from mitochondrial fatty acid oxidation. Whether derailments in fatty acid metabolism and mitochondrial dysfunction are forerunners of tubular damage has been suggested but is not entirely clear. Here we modeled mitochondrial overload by creating mice lacking the enzyme carnitine acetyltransferase (CrAT) in the proximal tubules, thus limiting a primary mechanism to export carbons under conditions of substrate excess. Mice developed tubular disease and, interestingly, secondary glomerulosclerosis. This was accompanied by increased levels of apoptosis regulator and fibrosis markers, increased oxidative stress, and abnormal profiles of acylcarnitines and organic acids suggesting profound impairments in all major forms of nutrient metabolism. When mice with CrAT deletion were fed a high-fat diet, kidney disease was more severe and developed faster. Primary proximal tubular cells isolated from the knockout mice displayed energy deficit and impaired respiration before the onset of pathology, suggesting mitochondrial respiratory abnormalities as a potential underlying mechanism. Our findings support the hypothesis that derailments of mitochondrial energy metabolism may be causative to chronic kidney disease. Our results also suggest that tubular injury may be a primary event followed by secondary glomerulosclerosis, raising the possibility that focusing on normalizing tubular cell mitochondrial function and energy balance could be an important preventative strategy. |
format | Online Article Text |
id | pubmed-6425873 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | American Diabetes Association |
record_format | MEDLINE/PubMed |
spelling | pubmed-64258732020-04-01 Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis Kruger, Claudia Nguyen, Trang-Tiffany Breaux, Chelsea Guillory, Alana Mangelli, Margaret Fridianto, Kevin T. Kovalik, Jean-Paul Burk, David H. Noland, Robert C. Mynatt, Randall Stadler, Krisztian Diabetes Complications Proximal tubular epithelial cells are highly energy demanding. Their energy need is covered mostly from mitochondrial fatty acid oxidation. Whether derailments in fatty acid metabolism and mitochondrial dysfunction are forerunners of tubular damage has been suggested but is not entirely clear. Here we modeled mitochondrial overload by creating mice lacking the enzyme carnitine acetyltransferase (CrAT) in the proximal tubules, thus limiting a primary mechanism to export carbons under conditions of substrate excess. Mice developed tubular disease and, interestingly, secondary glomerulosclerosis. This was accompanied by increased levels of apoptosis regulator and fibrosis markers, increased oxidative stress, and abnormal profiles of acylcarnitines and organic acids suggesting profound impairments in all major forms of nutrient metabolism. When mice with CrAT deletion were fed a high-fat diet, kidney disease was more severe and developed faster. Primary proximal tubular cells isolated from the knockout mice displayed energy deficit and impaired respiration before the onset of pathology, suggesting mitochondrial respiratory abnormalities as a potential underlying mechanism. Our findings support the hypothesis that derailments of mitochondrial energy metabolism may be causative to chronic kidney disease. Our results also suggest that tubular injury may be a primary event followed by secondary glomerulosclerosis, raising the possibility that focusing on normalizing tubular cell mitochondrial function and energy balance could be an important preventative strategy. American Diabetes Association 2019-04 2019-02-06 /pmc/articles/PMC6425873/ /pubmed/30728184 http://dx.doi.org/10.2337/db18-0090 Text en © 2019 by the American Diabetes Association. http://www.diabetesjournals.org/content/licenseReaders may use this article as long as the work is properly cited, the use is educational and not for profit, and the work is not altered. More information is available at http://www.diabetesjournals.org/content/license. |
spellingShingle | Complications Kruger, Claudia Nguyen, Trang-Tiffany Breaux, Chelsea Guillory, Alana Mangelli, Margaret Fridianto, Kevin T. Kovalik, Jean-Paul Burk, David H. Noland, Robert C. Mynatt, Randall Stadler, Krisztian Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title | Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title_full | Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title_fullStr | Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title_full_unstemmed | Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title_short | Proximal Tubular Cell–Specific Ablation of Carnitine Acetyltransferase Causes Tubular Disease and Secondary Glomerulosclerosis |
title_sort | proximal tubular cell–specific ablation of carnitine acetyltransferase causes tubular disease and secondary glomerulosclerosis |
topic | Complications |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6425873/ https://www.ncbi.nlm.nih.gov/pubmed/30728184 http://dx.doi.org/10.2337/db18-0090 |
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