Structure-activity relationship and bioactivity studies of neurotrophic trans-banglene
Khyati Gohil1, M Zain H Kazmi1, Florence J Williams2
1Department of Chemistry, University of Alberta, Edmonton, AB, T6G 2G2, Canada.
Abstract:
The synthesis and bioactivity of neurotrophic banglenes and derivatives is described, establishing a structure-activity relationship which enables future mechanistic studies. Neuritogenesis assays indicate that (-) trans-banglene is the active enantiomer. Assays performed with and without NGF protein suggest that neurotrophic activity and potentiation of NGF activity by (-) trans-banglene might be distinct unassociated processes. Interestingly, (-) trans-banglene potentiation of NGF-induced neuritogenesis is unaffected by the presence of Erk1/2, Akt and Pkc inhibitors.
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