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Published on: October 28, 2022
Ferrous sulfate reverses cerebral metabolic abnormality induced by minimal hepatic encephalopathy
Xue-Fei Liu1, Jing-Jing Lu1, Ying Li2
1Department of Radiology, Jinshan Hospital, Fudan University, Shanghai, 201508, China.
Abstract:
Orally administered ferrous iron was previously reported to significantly improve the cognition and locomotion of patients with minimal hepatic encephalopathy (MHE). However, the metabolic mechanisms of the therapeutic effect of ferrous iron are unknown. In this study, MHE was induced in rats by partial portal vein ligation (PPVL), and was treated with ferrous sulfate. The Morris water maze was used to evaluate the cognitive condition of the rats. The metabolites observed by NMR and validated by liquid chromatography-mass spectrometry were defined as the key affected metabolites. The enzyme activities and trace element contents in the rat brains were also investigated. The Mn content was found to be increased but the ferrous iron content decreased in the cortex and striatum in MHE. Decreased oxoglutarate dehydrogenase activity and increased glutamine synthetase (GS) and pyruvate carboxylase (PC) activity were observed in the cortex of MHE rats. Decreased pyruvate dehydrogenase activity and increased GS and PC activity were observed in the striatum of MHE rats. The levels of BCAAs and taurine were significantly decreased, and the contents of GABA, lactate, arginine, aspartate, carnosine, citrulline, cysteine, glutamate, glutamine, glycine, methionine, ornithine, proline, threonine and tyrosine were significantly increased. These metabolic abnormalities described above were restored after treatment with ferrous sulfate. Pathway enrichment analysis suggested that urea cycle, aspartate metabolism, arginine and proline metabolism, glycine and serine metabolism, and glutamate metabolism were the major metabolic abnormalities in MHE rats, but these processes could be restored and cognitive impairment could be improved by ferrous sulfate administration.
Insights
Ferrous iron supplementation improves cognition in minimal hepatic encephalopathy (MHE) by restoring brain metabolism. This study reveals key metabolic pathways affected in MHE and how iron treatment reverses these changes.
Area of Science:
- Neuroscience
- Biochemistry
- Metabolomics
Background:
- Minimal hepatic encephalopathy (MHE) is associated with cognitive and motor deficits.
- The therapeutic mechanisms of ferrous iron in MHE remain largely unknown.
- Previous studies suggest oral ferrous iron improves MHE symptoms.
Purpose of the Study:
- To elucidate the metabolic mechanisms underlying the therapeutic effects of ferrous iron in MHE.
- To investigate the impact of ferrous iron on brain metabolites and enzyme activities in an MHE rat model.
Main Methods:
- Minimal hepatic encephalopathy (MHE) induced in rats via partial portal vein ligation (PPVL).
- Cognitive function assessed using the Morris water maze.
- Brain metabolites analyzed by NMR and liquid chromatography-mass spectrometry.
- Enzyme activities and trace element levels in rat brains were measured.
Main Results:
- MHE rats showed altered brain manganese and iron levels, with decreased enzyme activities (oxoglutarate dehydrogenase, pyruvate dehydrogenase) and increased activities (glutamine synthetase, pyruvate carboxylase).
- Significant alterations in brain amino acid profiles, including decreased branched-chain amino acids (BCAAs) and taurine, and increased levels of GABA, lactate, and various amino acids were observed.
- Ferrous sulfate treatment restored these metabolic abnormalities and improved cognitive function in MHE rats.
Conclusions:
- Ferrous iron administration effectively reverses MHE-associated metabolic dysregulation in the brain.
- Key affected pathways include the urea cycle and amino acid metabolism (aspartate, arginine-proline, glycine-serine, glutamate).
- Restoration of these metabolic pathways by ferrous iron contributes to the improvement of cognitive impairment in MHE.

