ApoB100 remodeling and stiffened cholesteryl ester core raise LDL aggregation in familial hypercholesterolemia

Maria Teresa La Chica Lhoëst1, Andrea Martínez2, Eduardo Garcia1

  • 1Experimental Pathology Department, Institute of Biomedical Research of Barcelona (IIBB)-Spanish National Research Council (CSIC), Barcelona, Spain; Cardiovascular Area, Biomedical Research Institute Sant Pau (IIB Sant Pau), Barcelona, Spain; Cardiovascular Area, Institut de Recerca de l'Hospital Santa Creu i Sant Pau, Institut d'Investigacions Biomèdiques IIB Sant Pau, Barcelona, Spain; Biochemistry Department, Universitat Autònoma de Barcelona, Barcelona, Spain.

Journal of Lipid Research
|November 18, 2024
PubMed

Insights

Familial hypercholesterolemia (FH) patients have smaller LDL particles prone to aggregation due to altered lipid composition and ApoB100 structure. This increased LDL aggregation contributes to cardiovascular risk in FH.

Area of Science:

  • Biochemistry
  • Cardiovascular Science
  • Lipid Metabolism

Background:

  • Familial hypercholesterolemia (FH) patients face significant residual cardiovascular risk.
  • LDL particle aggregation is an emerging cardiovascular risk factor.

Purpose of the Study:

  • To investigate LDL aggregation and its link to lipid composition and biophysical properties in FH patients versus controls.
  • To explore potential therapeutic targets within LDL structure.

Main Methods:

  • LDL aggregation assessed by particle size changes post-sphingomyelinase exposure using dynamic light scattering.
  • LDL lipid composition analyzed biochemically.
  • LDL biophysical properties examined using differential scanning calorimetry and Fourier transform infrared spectroscopy.

Main Results:

  • FH patients' LDL particles were smaller and aggregated more readily.
  • FH LDL showed a higher cholesteryl ester (CE)/ApoB100 ratio and a more ordered CE core.
  • ApoB100 in FH LDL had more stable alpha-helices, correlating with increased aggregation.

Conclusions:

  • Smaller LDL particles with a more ordered CE core and specific ApoB100 structural changes promote aggregation in FH.
  • ApoB100 conformation represents a potential therapeutic target to mitigate cardiovascular risk in FH.

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