Fine-Tuning Side Chain Substitutions: Impacts on the Lipophilicity-Solubility-Permeability Interplay in Macrocyclic Peptides.
1/5 보강
Macrocyclic drugs are promising for targeting undruggable proteins, including those in cancer.
APA
Deng Y, Bian H, et al. (2025). Fine-Tuning Side Chain Substitutions: Impacts on the Lipophilicity-Solubility-Permeability Interplay in Macrocyclic Peptides.. Marine drugs, 24(1). https://doi.org/10.3390/md24010013
MLA
Deng Y, et al.. "Fine-Tuning Side Chain Substitutions: Impacts on the Lipophilicity-Solubility-Permeability Interplay in Macrocyclic Peptides.." Marine drugs, vol. 24, no. 1, 2025.
PMID
41590710 ↗
Abstract 한글 요약
Macrocyclic drugs are promising for targeting undruggable proteins, including those in cancer. Our prior work identified BE-43547A (BE) as a selective inhibitor of pancreatic cancer stem cells in PANC-1 cultures, but its high lipophilicity limits clinical application. To address this, we designed derivatives retaining BE's backbone while modifying tail groups to improve its properties. A concise total synthesis enabled a versatile late-stage intermediate (compound ), serving as a platform for efficient diversification of BE analogs via modular click chemistry. This approach introduced a central triazole ring connected by flexible alkyl spacers. Key properties, including lipophilicity, solubility, and Caco-2 permeability, were experimentally determined. These derivatives exhibited reduced lipophilicity and improved solubility but unexpectedly lost cellular activity. Direct target engagement studies using MicroScale Thermophoresis (MST) revealed compound-dependent deactivation mechanisms: certain derivatives retained binding to eEF1A1 with only modestly reduced affinity (e.g., compound ), while others showed no detectable binding (e.g., compound ). Microsecond-scale molecular dynamics simulations and free-energy calculations showed that, for derivatives retaining target affinity, tail modifications disrupted the delicate balance of drug-membrane and drug-solvent interactions, resulting in substantially higher transmembrane free-energy penalties (>5 kcal/mol) compared to active compounds (<2 kcal/mol). These insights emphasize the need to simultaneously preserve both target engagement and optimal permeability when modifying side chains in cell-permeable macrocyclic peptides, positioning compound as a robust scaffold for future lead optimization. This work furnishes a blueprint for balancing drug-like properties with therapeutic potency in macrocyclic therapeutics.
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