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Phospholipid Type Regulates Protein Corona Composition and Performance of Lipid Nanodiscs. | LitMetric

AI Article Synopsis

  • There’s growing interest in PEGylated lipid-based nanocarriers, with their interaction with plasma proteins being crucial for their effectiveness in drug delivery.
  • Discoid-shaped lipid nanodiscs (sNDs) were created from various phospholipids to study how these lipid compositions affect stability, interactions with serum proteins, and how they behave in the body.
  • Findings revealed that while all sNDs remained stable over time, the stability in blood varied, with certain compositions like POPG causing faster blood clearance, and the POPC-based nanodisc showing promise for targeted delivery to the brain due to higher apolipoprotein E adsorption.

Article Abstract

Over the years, there has been significant interest in PEGylated lipid-based nanocarriers within the drug delivery field. The inevitable interplay between the nanocarriers and plasma protein plays a pivotal role in their biological fate. Understanding the factors influencing lipid-based nanocarrier and protein corona interactions is of paramount importance in the design and clinical translation of these nanocarriers. Herein, discoid-shaped lipid nanodiscs (sNDs) composed of different phospholipids with varied lipid tails and head groups were fabricated. We investigated the impact of phospholipid components on the interaction between sNDs and serum proteins, particle stability, and biodistribution. The results showed that all of these lipid nanodiscs remained stable over a 15 day storage period, while their stability in the blood serum demonstrated significant differences. The sND composed of POPG exhibited the least stability due to its potent complement activation capability, resulting in rapid blood clearance. Furthermore, a negative correlation between the complement activation capability and serum stability was identified. Pharmacokinetic and biodistribution experiments indicated that phospholipid composition did not influence the capability of sNDs to evade the accelerated blood clearance phenomenon. Complement deposition on the sND was inversely associated with the area under the curve. Additionally, all lipid nanodiscs exhibited dominant adsorption of apolipoprotein. Remarkably, the POPC-based lipid nanodisc displayed a significantly higher deposition of apolipoprotein E, contributing to an obvious brain distribution, which provides a promising tool for brain-targeted drug delivery.

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Source
http://dx.doi.org/10.1021/acs.molpharmaceut.3c01084DOI Listing

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