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A thumbwheel mechanism for APOA1 activation of LCAT activity in HDL
Allison L Cooke1, Jamie Morris1, John T Melchior1
1Departments of Pathology and Laboratory Medicine University of Cincinnati, Cincinnati, OH 45237.
Insights
Apolipoprotein A1 (APOA1) in HDL particles can adopt different structures, impacting its function. A specific 5/2 helical registry impairs LCAT activity, suggesting a novel mechanism for HDL protein activation.
Area of Science:
- Biochemistry
- Structural Biology
- Cardiovascular Science
Background:
- Apolipoprotein A1 (APOA1) is crucial for HDL's cardioprotective functions, partly by activating lecithin-cholesterol acyltransferase (LCAT).
- APOA1 forms a specific structure on nascent HDL, with potential for different orientations affecting function.
Purpose of the Study:
- To investigate the functional impact of different APOA1 helical registries during HDL formation.
- To determine how APOA1 structural changes influence LCAT activity and cholesterol efflux.
Main Methods:
- Engineered APOA1 with cysteine residues to create disulfide bonds, locking specific helical registries (5/5 and 5/2).
- Assessed cholesterol efflux from macrophages and LCAT cholesteryl esterification activity in engineered HDL particles.
Main Results:
- APOA1 adopted both 5/5 and 5/2 helical registries during HDL formation.
- Both registries supported cholesterol efflux, but the 5/2 registry significantly impaired LCAT activity.
- LCAT binding was similar across registries, suggesting a mechanism beyond simple binding.
Conclusions:
- APOA1 helical registry influences LCAT activity, with the 5/2 registry being less effective.
- A proposed thumbwheel-like mechanism involving multiple APOA1 helices is required for full LCAT activation.
- Structural plasticity of APOA1 is key to modulating HDL function and associated protein activities.
Abstract:
APOA1 is the most abundant protein in HDL. It modulates interactions that affect HDL's cardioprotective functions, in part via its activation of the enzyme, LCAT. On nascent discoidal HDL, APOA1 comprises 10 α-helical repeats arranged in an anti-parallel stacked-ring structure that encapsulates a lipid bilayer. Previous chemical cross-linking studies suggested that these APOA1 rings can adopt at least two different orientations, or registries, with respect to each other; however, the functional impact of these structural changes is unknown. Here, we placed cysteine residues at locations predicted to form disulfide bonds in each orientation and then measured APOA1's ability to adopt the two registries during HDL particle formation. We found that most APOA1 oriented with the fifth helix of one molecule across from fifth helix of the other (5/5 helical registry), but a fraction adopted a 5/2 registry. Engineered HDLs that were locked in 5/5 or 5/2 registries by disulfide bonds equally promoted cholesterol efflux from macrophages, indicating functional particles. However, unlike the 5/5 registry or the WT, the 5/2 registry impaired LCAT cholesteryl esterification activity (P < 0.001), despite LCAT binding equally to all particles. Chemical cross-linking studies suggest that full LCAT activity requires a hybrid epitope composed of helices 5-7 on one APOA1 molecule and helices 3-4 on the other. Thus, APOA1 may use a reciprocating thumbwheel-like mechanism to activate HDL-remodeling proteins.
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