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Updated: May 12, 2026

Trans-vivo Delayed Type Hypersensitivity Assay for Antigen Specific Regulation
Published on: May 2, 2013
Using network toxicology and molecular docking to identify core targets and pathways underlying tacrolimus-induced
Chao Liu1,2, Qian Chen1, Fu Yan1
1Department of Organ Transplantation, Affiliated Hospital of Guizhou Medical University, Guiyang, 550000, Guizhou Province, China.
Abstract:
Tacrolimus, the most commonly prescribed immunosuppressant following organ transplantation, is associated with various neurotoxic effects, notably tremor, which significantly impacts the quality of life of recipients. The precise mechanisms underlying tacrolimus-induced tremor remain unclear. To investigate this, we employed network toxicology and molecular docking methodologies to identify potential targets and pathways. The SMILES representation of tacrolimus was retrieved from the PubChem database, and toxicity predictions were performed using ProTox-3.0 and ADMETlab 3.0. Targets related to tacrolimus and tremor-associated diseases were identified from public databases. Protein-protein interaction networks and functional enrichment analyses were conducted using STRING and Cytoscape. Molecular docking studies were carried out with CB-Dock2. A total of 43 potential targets associated with tacrolimus exposure and tremor were identified, out of which five core targets were filtered through STRING and Cytoscape analyses: AKT1, GBA, SCN8A, SCN2A, and SCN4A. Functional enrichment analysis highlighted several critical pathways implicated in tacrolimus-induced tremor, including the Dopaminergic synapse, Parkinson's disease, Rap1 signaling pathway, Spinocerebellar ataxia, and Apoptosis. The results of molecular docking indicated that tacrolimus exhibits the strongest binding affinity toward SCN8A and SCN2A among the core targets. This study suggests that tacrolimus-induced tremor may be closely linked to parkinsonian tremor and provides a theoretical foundation for understanding the neurotoxic effects of tacrolimus. Given the limited research in network toxicology on the specific molecular mechanisms involved, further animal studies are warranted to elucidate these mechanisms in detail.
Insights
Tacrolimus, an immunosuppressant, can cause tremor. Network toxicology identified SCN8A and SCN2A as key targets, suggesting a link between tacrolimus-induced tremor and Parkinson's disease mechanisms.
Area of Science:
- Pharmacology
- Neuroscience
- Computational Biology
Background:
- Tacrolimus is a vital immunosuppressant post-transplantation.
- Neurotoxic side effects, particularly tremor, diminish recipient quality of life.
- The molecular mechanisms of tacrolimus-induced tremor are not fully understood.
Purpose of the Study:
- To elucidate the molecular targets and pathways involved in tacrolimus-induced tremor using network toxicology and molecular docking.
- To identify potential therapeutic strategies by understanding the underlying mechanisms.
Main Methods:
- Network toxicology approach integrating ProTox-3.0, ADMETlab 3.0, STRING, and Cytoscape.
- Molecular docking simulations using CB-Dock2.
- Analysis of protein-protein interactions and functional enrichment.
Main Results:
- Identified 43 potential targets, with five core targets: AKT1, GBA, SCN8A, SCN2A, and SCN4A.
- Highlighted key pathways including Dopaminergic synapse, Parkinson's disease, and Apoptosis.
- Molecular docking revealed strong binding affinity of tacrolimus to SCN8A and SCN2A.
Conclusions:
- Tacrolimus-induced tremor may be associated with parkinsonian tremor.
- The study provides a theoretical basis for tacrolimus neurotoxicity.
- Further animal studies are recommended to validate these findings.
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