4.7 Article

Mechanistic Insights into the Activation of Lecithin-Cholesterol Acyltransferase in Therapeutic Nanodiscs Composed of Apolipoprotein A-I Mimetic Peptides and Phospholipids

期刊

MOLECULAR PHARMACEUTICS
卷 19, 期 11, 页码 4135-4148

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.molpharmaceut.2c00540

关键词

acyltransferase; reverse cholesterol transport; apolipoprotein mimetics; high-density lipoprotein (HDL); molecular dynamics simulation; electron microscopy imaging

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This study combines coarse-grained molecular dynamics simulations with complementary experiments to gain mechanistic insight into how apoA-I mimetic peptide 22A and its variants tune LCAT activity in peptide-lipid nanodiscs. Results show that peptide 22A forms transient antiparallel dimers at the rim of nanodiscs, and the removal of C-terminal lysine K22 decreases dimerization tendency and LCAT activity. Furthermore, simulations reveal that LCAT localizes preferentially to the rim of nanodiscs in a manner that shields important domains from water phase, and the conformation of LCAT in the rim affects its activity.
The mechanistic details behind the activation of lecithin??? cholesterol acyltransferase (LCAT) by apolipoprotein A-I (apoA-I) and its mimetic peptides are still enigmatic. Resolving the fundamental principles behind LCAT activation will facilitate the design of advanced HDL-mimetic therapeutic nanodiscs for LCAT deficiencies and coronary heart disease and for several targeted drug delivery applications. Here, we have combined coarse-grained molecular dynamics simulations with comple-mentary experiments to gain mechanistic insight into how apoA-Imimetic peptide 22A and its variants tune LCAT activity in peptide-lipid nanodiscs. Our results highlight that peptide 22A forms transient antiparallel dimers in the rim of nanodiscs. The dimerization tendency considerably decreases with the removal of C-terminal lysine K22, which has also been shown to reduce the cholesterol esterification activity of LCAT. In addition, our simulations revealed that LCAT prefers to localize to the rim of nanodiscs in a manner that shields the membrane-binding domain (MBD), ??A?????A???, and the lid amino acids from the water phase, following previous experimental evidence. Meanwhile, the location and conformation of LCAT in the rim of nanodiscs are spatially more restricted when the active site covering the lid of LCAT is in the open form. The average location and spatial dimensions of LCAT in its open form were highly compatible with the electron microscopy images. All peptide 22A variants studied here had a specific interaction site in the open LCAT structure flanked by the lid and MBD domain. The bound peptides showed different tendencies to form antiparallel dimers and, interestingly, the temporal binding site occupancies of the peptide variants affected their in vitro ability to promote LCAT-mediated cholesterol esterification. Superscript/Subscript Available

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