Navneet Thakur, Neha Bhardwaj, Sudesh Kumar Yadav, Ankit Saneja
Vorinostat, a hydroxamic acid-based histone deacetylase (HDAC) inhibitor approved for cutaneous T-cell lymphoma, exhibits broad-spectrum anticancer activity. However, its clinical application is limited by poor permeability and rapid metabolism, which result in a short half-life and consequently poor therapeutic efficacy. To address these constraints, we synthesized a series of lipid-vorinostat conjugates (3a-d) through acylation of vorinostat with short-chain fatty acid chloride derivatives (2a-d). The chemical structures and purity of the conjugates (3a-d) were confirmed using NMR, HRMS, and HPLC analyses. Among these derivatives, compound 3d (3,5,5-Trimethylhexanoyl-Vorinostat) demonstrated improved cytotoxicity against A549 and 4T1 carcinoma cells. Mechanistic insight revealed that the compound 3d induced higher levels of caspase-3/7 activation, reactive oxygen species (ROS) generation, and mitochondrial membrane potential (MMP) loss compared with vorinostat, suggesting enhanced apoptosis. The cell scratch assay demonstrated that 3d markedly inhibited cell migration as compared with vorinostat. Furthermore, in silico ADMET profiling predicted enhanced membrane permeability of the compound 3d as compared to vorinostat. The in vitro plasma stability revealed time-dependent hydrolysis of compound 3d to release active vorinostat, supporting its prodrug behavior. Collectively, these findings suggest lipid conjugation as a promising prodrug strategy to modulate the biological and physicochemical properties of vorinostat.