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A. Ramamoorthy

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Open access Aug 2026

Molecular mechanisms governing peptide nanodisc assembly and stability.

Apolipoprotein A-I mimetic 4F, an 18-residue amphipathic α-helix, can self-assemble with lipids to form peptide nanodiscs, yet the molecular determinants governing their assembly and stability remain poorly understood. Here, using coarse-grained molecular dynamics (CG-MD), we capture the de novo formation of 4F nanodiscs with DMPC and reveal a multistep assembly pathway involving nucleation, fusion, and ellipse-to-disc maturation. All-atom back-mapping shows that the nanodisc rim is structurally heterogeneous and stabilized by aromatic-acyl interactions, Lys headgroup anchoring, and inter-peptide electrostatic contacts. Lipid composition and temperature critically regulate nanodisc integrity: DMPC supports continuous peptide belts and long-term stability, whereas DPPC below its main phase transition temperature suppresses fusion and yields fragmented, non-uniform rims. These findings validate the ability of CG-MD to resolve nanodisc assembly mechanisms. Experimental measurements corroborate the simulations, demonstrating that 4F nanodiscs exhibit lower thermal resilience than MSP nanodiscs while retaining structural integrity at moderate temperatures. As a functional benchmark, MSP nanodiscs suppress the amyloid-binding thioflavin-T fluorescence signal associated with Aβ (1-40) fibrillar assembly, consistent with our previously reported findings for 4F nanodiscs and supporting the ability of amphipathic nanodisc rims to delay Aβ (1-40) aggregation. Together, these results establish a mechanistic framework and design principles for single-helix peptide nanodiscs and delineate the conditions under which they converge with or diverge from MSP-based scaffolds.

Bikash R. Sahoo, B. Krishnarjuna, Thirupathi Ravula et al. · 0 citations
Review Open access Aug 2026

Nanodiscs for drug delivery.

Lipid nanodiscs have emerged as a versatile and promising tool for drug delivery due to their biocompatibility, structural flexibility, and ability to mimic native cell membrane environments. These nanoscale assemblies, composed of lipid bilayers stabilized by scaffold amphipathic proteins, peptides, synthetic polymers, or saponins, offer a stable membrane mimetic system for encapsulating hydrophobic drugs and membrane proteins. Ongoing research continues to expand the diversity of nanodisc formulations, each with distinct advantages and limitations. Their tunable size, surface functionality, dynamic lipid exchange, and ability to incorporate various lipids and membrane components make them suitable for targeted delivery and controlled drug release under physiological conditions. Recent advances underscore their potential in cancer therapy, antimicrobial delivery, and vaccine development, areas where conventional carriers often fall short. This review discusses the recent developments of lipid nanodiscs for drug delivery, focusing on design strategies, functionalization methods, and key challenges for potential clinical translation.

Thirupathi Ravula, C. Obi, A. Ramamoorthy · 0 citations