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Polyphenols as novel NPC1L1 inhibitors: A computational study of natural cholesterol uptake blockers
Shashank Rao Padubidri1, Shakiba Shah2, Nasri Thaha1
1Department of Bioinformatics, Manipal School of Life Sciences, Manipal Academy of Higher Education, Manipal, 576104, India.
Abstract:
Niemann-Pick C1-Like 1 (NPC1L1) is the primary intestinal transporter responsible for dietary cholesterol absorption and a validated therapeutic target for hypercholesterolemia; however, the long-term use of the FDA-approved inhibitor ezetimibe is limited by its adverse effects, motivating the search for safer alternatives. In this study, an integrated in silico strategy combining molecular docking, lipid-embedded all-atom molecular dynamics simulations, principal component analysis, and MM/PBSA binding free-energy calculations was employed to evaluate plant-derived polyphenols as potential NPC1L1 inhibitors under physiologically relevant conditions. Four compounds, cis-resveratroloside, eriodictyol-7-O-glucoside, luteolin-7-O-glucoside, and 3,4-dicaffeoylquinic acid, exhibited superior binding affinity toward the NPC1L1 neck region compared to ezetimibe. Unlike ezetimibe, which occupied the deep binding cleft, these polyphenols preferentially localized to the upper-mid channel region and formed conserved π-π interactions with Phe1101/Tyr1102 and hydrogen bonds with Gln873/Leu877. Molecular dynamics analyses revealed enhanced complex stability, favorable binding energetics, and pronounced modulation of lipid-protein interactions near the TM7-TM8 loop, a critical cholesterol transport domain; notably, luteolin-7-O-glucoside and 3,4-dicaffeoylquinic acid displayed high lipid occupancy in this region, suggesting a steric blockade mechanism that may impede cholesterol internalization. Collectively, these findings provide molecular-level evidence that selected plant-derived polyphenols inhibit NPC1L1 via mechanisms distinct from ezetimibe, highlighting their potential as safer, next-generation cholesterol absorption inhibitors.
Insights
Plant-derived polyphenols show promise as safer alternatives to ezetimibe for inhibiting cholesterol absorption. These compounds target Niemann-Pick C1-Like 1 (NPC1L1) through unique mechanisms, potentially leading to new hypercholesterolemia treatments.
Area of Science:
- Biochemistry and Molecular Biology
- Pharmacology
- Computational Chemistry
Background:
- Niemann-Pick C1-Like 1 (NPC1L1) is a key protein for dietary cholesterol absorption and a target for hypercholesterolemia.
- Ezetimibe, an FDA-approved NPC1L1 inhibitor, has limitations due to adverse effects, necessitating research into safer alternatives.
Purpose of the Study:
- To computationally evaluate plant-derived polyphenols as potential inhibitors of NPC1L1.
- To elucidate the molecular mechanisms by which these polyphenols interact with NPC1L1.
Main Methods:
- Integrated in silico strategy: molecular docking, all-atom molecular dynamics simulations, principal component analysis, and MM/PBSA binding free-energy calculations.
- Physiologically relevant conditions were simulated to assess binding affinities and interactions.
Main Results:
- Four polyphenols (cis-resveratroloside, eriodictyol-7-O-glucoside, luteolin-7-O-glucoside, 3,4-dicaffeoylquinic acid) showed superior binding affinity to NPC1L1 compared to ezetimibe.
- Polyphenols bound to the upper-mid channel region, forming distinct interactions (π-π, hydrogen bonds) with NPC1L1 residues.
- Molecular dynamics revealed enhanced complex stability and modulation of lipid-protein interactions, with luteolin-7-O-glucoside and 3,4-dicaffeoylquinic acid potentially blocking cholesterol internalization.
Conclusions:
- Selected plant-derived polyphenols inhibit NPC1L1 through mechanisms distinct from ezetimibe.
- These polyphenols represent potential candidates for next-generation cholesterol absorption inhibitors with improved safety profiles.
