Bioinformatic Tools to Explore the Mechanisms and the Multitarget Recognition of Huperzine A in Alzheimer's and Parkinson's Diseases
Luis Antonio Ramirez-Contreras, Gabriela Camargo-Hernández, Sergio Sanchez-Enriquez, Jorge Manuel Silva-Jara, Salvador Hernández Estrada, Luis Alfonso Hernández Villaseñor, Luis Miguel Anaya EsparzaIntroduction:
Considering the shared physiological mechanisms between Alzheimer’s disease (AD) and Parkinson’s disease (PD), it is plausible that certain compounds may exert therapeutic effects on both neurological disorders. This study aimed to employ in silico techniques to investigate the pharmacological mechanisms of huperzine A (HA) as an alternative treatment for PD and AD.
Methods:
Molecular targets of HA and genes associated with AD and PD were identified from public databases. Gene Ontology analysis, metabolic pathway analysis, and protein-protein interaction (PPI) network construction were performed to identify shared molecular targets. Molecular docking was performed to assess HA affinity for hub proteins and to compare it with that of drugs used to treat AD and PD.
Results:
The results suggested that HA interacts with 77 molecular targets common to both diseases. Enrichment analysis revealed that proteins from these targets were involved in biological functions, such as serotonin and amine binding. Hub proteins (SRC, TP53, AKT1, and CASP3) were identified from the PPI network. Furthermore, molecular docking simulations showed favorable binding of HA to the hub proteins and adequate binding to the targets of standard drugs (MAOB and ACHE). On the other hand, molecular dynamics analyses were performed to compare the binding characteristics of HA with those of the control targets.
Discussion:
HA may modulate SRC, CASP3, and AKT1, suggesting a pleiotropic mechanism underlying the association between AD and PD. These computational findings provide a rational basis for experimental validation by modulating signaling pathways implicated in inflammatory processes and inhibiting enzymes involved in neurotransmitter degradation.
Conclusion:
This study contributes to the understanding of the neuroprotective activity of HA in AD and PD. However, further in vitro and in vivo investigations are required to confirm the dual therapeutic potential of HA in the treatment of AD and PD.