Urine metabolomics insight into acute kidney injury point to oxidative stress disruptions in energy generation and H2S availability
- 4 October 2017
- journal article
- research article
- Published by Springer Nature in Journal of Molecular Medicine
- Vol. 95 (12), 1399-1409
- https://doi.org/10.1007/s00109-017-1594-5
Abstract
Acute kidney injury (AKI) is one of the main complications in acute care medicine and a risk factor for chronic kidney disease (CKD). AKI incidence has increased; however, its diagnosis has limitations and physiopathological mechanisms are underexplored. We investigated urine samples, aiming to identify major metabolite changes during human AKI evolution. Metabolic signatures found were further explored for a potential link to severity of injury. Twenty-four control subjects and 38 hospitalized patients with AKI were recruited and urine samples were collected at the time of diagnosis, during follow-up and at discharge. Nuclear magnetic resonance (NMR) was used in a first discovery phase for identifying potential metabolic differences. Target metabolites of interest were confirmed by liquid chromatography-mass spectrometry (LC-MS/MS) in an independent group. Underlying metabolic defects were further explored by kidney transcriptomics of murine toxic AKI. Urinary 2-hydroxybutyric acid, pantothenic acid, and hippuric acid were significantly downregulated and urinary N-acetylneuraminic acid, phosphoethanolamine, and serine were upregulated during AKI. Hippuric acid, phosphoethanolamine, and serine showed further downregulation/upregulation depending on the metabolite in acute tubular necrosis (ATN) AKI compared to prerenal AKI. Kidney transcriptomics disclosed decreased expression of cystathionase, cystathionine-β-synthase, and ethanolamine-phosphate cytidylyltransferase, and increased N-acetylneuraminate synthase as the potentially underlying cause of changes in urinary metabolites. A urinary metabolite panel identified AKI patients and provided insight into intrarenal events. A urine fingerprint made up of six metabolites may be related to pathophysiological changes in oxidative stress, energy generation, and H2S availability associated with AKI. The urinary metabolome reflects AKI evolution and severity of injury. Kidney transcriptomics revealed enzymatic expression changes. Enzymatic expression changes may be the potentially underlying cause of changes in urine metabolites. Identified metabolite changes link oxidative stress, energy generation, and H2S availability to AKI.Funding Information
- Instituto de Salud Carlos III
- Fundacion SEN/SENEFRO
- Fundación Conchita Rábago de Jiménez Díaz
This publication has 43 references indexed in Scilit:
- Acute kidney injury: an increasing global concernThe Lancet, 2013
- Traditional Urinary Biomarkers in the Assessment of Hospital-Acquired AKIClinical Journal of the American Society of Nephrology, 2012
- MetaboHunter: an automatic approach for identification of metabolites from 1H-NMR spectra of complex mixturesBMC Bioinformatics, 2011
- Discovery of early-stage biomarkers for diabetic kidney disease using ms-based metabolomics (FinnDiane study)Metabolomics, 2011
- Toxicodynamic effects of ciclosporin are reflected by metabolite profiles in the urine of healthy individuals after a single doseBritish Journal of Clinical Pharmacology, 2010
- TWEAK Activates the Non-Canonical NFκB Pathway in Murine Renal Tubular Cells: Modulation of CCL21PLOS ONE, 2010
- Long-term Risk of Mortality and Other Adverse Outcomes After Acute Kidney Injury: A Systematic Review and Meta-analysisAmerican Journal of Kidney Diseases, 2009
- Protein biomarker discovery and validation: the long and uncertain path to clinical utilityNature Biotechnology, 2006
- Hospital-acquired renal insufficiencyAmerican Journal of Kidney Diseases, 2002
- 'Metabonomics': understanding the metabolic responses of living systems to pathophysiological stimuli via multivariate statistical analysis of biological NMR spectroscopic dataXenobiotica, 1999