ArticleKidney international reports2025
Lipidomics Unveils Critical Lipid Pathway Shifts in Alport Syndrome.
Article in Kidney international reports, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.
What it found
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Who cites it
5 citing papers in PubMed.
- Decoding the urinary metabolome of aromatic amino acid pathways in Alport syndrome.Analytical and bioanalytical chemistry · 2026Article
- Trans fatty acids alter renal health in TGFβ3 mice with fibrosis revealed by metabolomics and lipidomics.iScience · 2026Article
- Carnitine dysregulation in diabetic kidney disease: from pathogenic mechanism to precision biomarker.Journal of translational medicine · 2026Review
- The lipid-podocyte axis: emerging clues in membranous nephropathy pathogenesis.Frontiers in medicine · 2026Review
- Ectopic lipid deposition in kidney diseases: mechanisms in specific cell types and therapeutic strategies.Frontiers in endocrinology · 2026Review
Corrections and comments
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Authors and funding
12 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Introduction: Alport syndrome (AS) is a hereditary kidney disease from Methods: We sought to identify plasma and urine lipid alterations in autosomal dominant AS (ADAS) and X-linked AS (XLAS) compared with DKD and healthy controls. Using liquid chromatography coupled to mass spectrometry (MS), we annotated 580 and 203 lipid species in plasma and urine, respectively. Volcano plot and receiver operating characteristic (ROC) analyses (area under the curve [AUC] ≥ 0.80) were used to identify key lipids and highlight relevant lipotoxic pathways. Multivariate prediction of renal outcomes by specific lipid species was further performed. Results: Compared with controls, AS exhibited unbalanced sphingolipid (SL) catabolism, ceramide (Cer) overload, and impaired fatty acid (FA) β-oxidation, alongside phospholipid and cholesterol imbalances suggestive of compromised isoform A1 of adenosine triphosphate-binding cassette transporter (ABCA1)-mediated lipid efflux and mitochondrial dysfunction. Comparisons with DKD indicated a shared lipotoxic environment with Cer elevation and disrupted FA metabolism. However, disease-specific adaptations emerged, with severe ABCA1 dysfunction and marked phospholipid or cholesterol derangements in DKD, whereas AS showed pronounced sphingomyelin (SM) depletion. Key lipids identified included urinary hexosylceramide (HexCer) 18:0(3O)/24:0(2OH) and acylcarnitine (CAR) 12:0. These findings were supported by multivariate prediction of renal outcomes by specific lipid species. Conclusion: These findings demonstrate that AS involves distinct lipidomic disruptions and underscore shared lipotoxic mechanisms with DKD. This improved understanding of disease-specific lipid imbalances provides new potential therapeutic targets to mitigate podocyte injury and slow progression of AS.
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