Aug 2026· Frontiers in Molecular Biosciences· Vol 13· 0 citations· 31 references
Medicine
TL;DR
The convergence of the metabolic profiles of drug-sensitive and drug-resistant animals suggests that the systemic effects of chronic epilepsy and phenobarbital treatment dominate the serum metabolome, potentially masking subtle molecular signatures associated with drug resistance.
Abstract
Introduction Temporal lobe epilepsy is associated with systemic metabolic alterations that may evolve during disease progression and in response to pharmacological treatment. This study employed a longitudinal 1H NMR-based metabolomics approach to characterize the serum metabolic profile of a chronic pilocarpine-induced rat model of temporal lobe epilepsy. Methods Serum samples were collected longitudinally to identify phase-specific metabolic signatures. Following phenobarbital administration, animals were classified as drug-sensitive or drug-resistant according to their treatment response. The resulting metabolic profiles were investigated using multivariate and univariate statistical analyses. Results The analysis revealed progressive systemic metabolic remodeling characterized by extensive alterations in lipid-related signals and significant increases in the ketone bodies 3-hydroxybutyrate and acetoacetate, as well as in glutamine. Following phenobarbital treatment, OPLS-DA showed a strong metabolic similarity between the drug-sensitive and drug-resistant groups, which occupied nearly identical metabolic spaces. Nevertheless, after stratification, creatine emerged as the only significantly different metabolite between responders and non-responders (p = 0.001). Discussion The convergence of the metabolic profiles of drug-sensitive and drug-resistant animals suggests that the systemic effects of chronic epilepsy and phenobarbital treatment dominate the serum metabolome, potentially masking subtle molecular signatures associated with drug resistance. Creatine represents a notable exception and warrants further investigation as a potential marker distinguishing responders from non-responders.
PTZ-induced kindling was associated with marked plasma metabolic alterations involving amino acid-, tryptophan-, and lipid-related pathways, which supports the broader relevance of metabolic dysregulation to epilepsy, while the mechanistic roles and biomarker potential of individual metabolites require independent vali...
Juan Ren, Fu-Li Wang, Zi-Jian Li et al.· Frontiers in Neuroscience· 0 citations
Dynamic metabolic profiling for monitoring treatment response and characterizing metabolic alterations associated with disease relapse is found to support the potential of dynamic metabolic profiling for monitoring treatment response and characterizing metabolic alterations associated with disease relapse.
Rong Hu, Si-Wen Deng, Hai-Shan Yi et al.· Analytical Chemistry· 0 citations
Sleep disorders are common and significantly impact metabolic regulation, but the overarching blood metabolomic characteristics and how drugs for these disorders affect metabolism have not been adequately described. Blood plasma from three distinct cohorts-healthy individuals, sleep disorder patients (SDP), and those u...
Anwar Abdurahman, Ailiyaer Yasheng, Aikelidan Abulajiang et al.· Frontiers in Pharmacology· 0 citations
Despite advances in epilepsy management, the exact causes of epilepsy remain unclear, and diagnostic biomarkers are still lacking. Besides, about one-third of cases involve drug-resistant epilepsy (DRE).
This study employed untargeted metabolomics to identify potential metabolic signatures in the sera of ped...
Eman Y. Abu-rish, Reem H. Almalki, Amira T. Masri et al.· Frontiers in Pediatrics· 0 citations
Background
Epilepsy is a neurological disorder with heterogeneous anti-seizure medication responses and a lack of peripheral biomarkers for diagnosis and drug resistance assessment. This study aims to explore metabolic alterations and candidate metabolite panels associated with epilepsy and anti-seizure medication resp...
Zi-Jian Li, Zhen Liang, Juan Ren et al.· Frontiers in Molecular Biosc...· 0 citations
Temporal lobe epilepsy (TLE) is linked to progressive alterations in brain network dynamics, leading to behavioral comorbidities and emergence of drug resistance; yet the underlying mechanistic and synaptic substrates remain incompletely understood. Here, we performed longitudinal phase-specific characterization of net...
Giulia Urone, Nicolò Ricciardi, M. Scordino et al.· Experimental Neurology· 0 citations
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