ArticleBiochemistry2012
Apolipoprotein C-I binds more strongly to phospholipid/triolein/water than triolein/water interfaces: a possible model for inhibiting cholesterol ester transfer protein activity and triacylglycerol-rich lipoprotein uptake.
Article in Biochemistry, 2012. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 14 papers.
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Who cites it
14 citing papers in PubMed, 20 citations in OpenAlex.
- CLSTN3B promotes lipid droplet maturation and lipid storage in mouse adipocytes.Nature communications · 2024Article
- The Endogenous Inhibitor of CETP, apoC1, Remains Ineffective In Vivo after Correction of Hyperglycemia in People with Type 1 Diabetes.Metabolites · 2024Article
- CLSTN3B enhances adipocyte lipid droplet structure and function via endoplasmic reticulum contact.bioRxiv : the preprint server for biology · 2024Article
- Lipoprotein Lipase Activity Does Not Differ in the Serum Environment of Vegans and Omnivores.Nutrients · 2023Article
- Apolipoprotein C1: Its Pleiotropic Effects in Lipid Metabolism and Beyond.International journal of molecular sciences · 2019Review
- Dual binding motifs underpin the hierarchical association of perilipins1-3 with lipid droplets.Molecular biology of the cell · 2019Article
- Mechanism and Determinants of Amphipathic Helix-Containing Protein Targeting to Lipid Droplets.Developmental cell · 2018Article
- A Pressure-dependent Model for the Regulation of Lipoprotein Lipase by Apolipoprotein C-II.The Journal of biological chemistry · 2015Article
- Surface behavior of apolipoprotein A-I and its deletion mutants at model lipoprotein interfaces.Journal of lipid research · 2014Article
- The biophysics and cell biology of lipid droplets.Nature reviews. Molecular cell biology · 2013Review
- Apolipoproteins C-I and C-III inhibit lipoprotein lipase activity by displacement of the enzyme from lipid droplets.The Journal of biological chemistry · 2013Article
- Changes in helical content or net charge of apolipoprotein C-I alter its affinity for lipid/water interfaces.Journal of lipid research · 2013Article
- Interfacial properties of high-density lipoprotein-like lipid droplets with different lipid and apolipoprotein A-I compositions.Biophysical journal · 2013Article
- Testosterone replacement in hypogonadal men alters the HDL proteome but not HDL cholesterol efflux capacity.Journal of lipid research · 2012Article
Corrections and comments
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Authors and funding
3 authors at 1 institution in 1 country.
Funding
Abstract
Apolipoprotein C-I (apoC-I) is an important constituent of high-density lipoprotein (HDL) and is involved in the accumulation of cholesterol ester in nascent HDL via inhibition of cholesterol ester transfer protein and potential activation of lecithin:cholesterol acyltransferase (LCAT). As the smallest exchangeable apolipoprotein (57 residues), apoC-I transfers between lipoproteins via a lipid-binding motif of two amphipathic α-helices (AαHs), spanning residues 7-29 and 38-52. To understand apoC-I's behavior at hydrophobic lipoprotein surfaces, oil drop tensiometry was used to compare the binding to triolein/water (TO/W) and palmitoyloleoylphosphatidylcholine/triolein/water (POPC/TO/W) interfaces. When apoC-I binds to either interface, the surface tension (γ) decreases by ~16-18 mN/m. ApoC-I can be exchanged at both interfaces, desorbing upon compression and readsorbing on expansion. The maximal surface pressures at which apoC-I begins to desorb (Π(max)) were 16.8 and 20.7 mN/m at TO/W and POPC/TO/W interfaces, respectively. This suggests that apoC-I interacts with POPC to increase its affinity for the interface. ApoC-I is more elastic on POPC/TO/W than TO/W interfaces, marked by higher values of the elasticity modulus (ε) on oscillations. At POPC/TO/W interfaces containing an increasing POPC:TO ratio, the pressure at which apoC-I begins to be ejected increases as the phospholipid surface concentration increases. The observed increase in apoC-I interface affinity due to higher degrees of apoC-I-POPC interactions may explain how apoC-I can displace larger apolipoproteins, such as apoE, from lipoproteins. These interactions allow apoC-I to remain bound to the interface at higher Π values, offering insight into apoC-I's rearrangement on triacylglycerol-rich lipoproteins as they undergo Π changes during lipoprotein maturation by plasma factors such as lipoprotein lipase.
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Registered trials
Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.