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Journal of Lipid Research|April 21, 2011
Alteration of negatively charged residues in the 89 to 99 domain of apoA-I affects lipid homeostasis and maturation of HDLAndreas K Kateifides, Irina N Gorshkova, Adelina Duka, et al.Biochemistry|August 20, 2003
Molecular mechanisms of type III hyperlipoproteinemia: The contribution of the carboxy-terminal domain of ApoE can account for the dyslipidemia that is associated with the E2/E2 phenotypeKyriakos E Kypreos, Xiaoping Li, Ko Willems van Dijk, et al.The Journal of Biological Chemistry|June 8, 2007
Inflammatory signaling pathways regulating ApoE gene expression in macrophagesAnca V Gafencu, Marius R Robciuc, Elena Fuior, et al.Biochemistry|January 25, 2006
Structure and stability of apolipoprotein a-I in solution and in discoidal high-density lipoprotein probed by double charge ablation and deletion mutationIrina N Gorshkova, Tong Liu, Horng-Yuan Kan, et al.Biochemistry|August 11, 2004
Substitutions of glutamate 110 and 111 in the middle helix 4 of human apolipoprotein A-I (apoA-I) by alanine affect the structure and in vitro functions of apoA-I and induce severe hypertriglyceridemia in apoA-I-deficient miceAngeliki Chroni, Horng-Yuan Kan, Kyriakos E Kypreos, et al.Annals of Medicine|April 11, 2008
Discrete roles of apoA-I and apoE in the biogenesis of HDL species: lessons learned from gene transfer studies in different mouse modelsVassilis I Zannis, Georgios Koukos, Konstantinos Drosatos, et al.Biochemistry|April 28, 2004
Contribution of the hormone-response elements of the proximal ApoA-I promoter, ApoCIII enhancer, and C/EBP binding site of the proximal ApoA-I promoter to the hepatic and intestinal expression of the ApoA-I and ApoCIII genes in transgenic miceHorng-Yuan Kan, Spiros Georgopoulos, Markella Zanni, et al.The Journal of Biological Chemistry|December 19, 2002
The central helices of ApoA-I can promote ATP-binding cassette transporter A1 (ABCA1)-mediated lipid efflux. Amino acid residues 220-231 of the wild-type ApoA-I are required for lipid efflux in vitro and high density lipoprotein formation in vivoAngeliki Chroni, Tong Liu, Irina Gorshkova, et al.Journal of Immunology (Baltimore, Md. : 1950)|April 15, 2015
High-density lipoprotein attenuates Th1 and th17 autoimmune responses by modulating dendritic cell maturation and functionIoanna Tiniakou, Elias Drakos, Vaios Sinatkas, et al.The Journal of Biological Chemistry|August 30, 2011
Inhibition of c-Jun-N-terminal kinase increases cardiac peroxisome proliferator-activated receptor alpha expression and fatty acid oxidation and prevents lipopolysaccharide-induced heart dysfunctionKonstantinos Drosatos, Zoi Drosatos-Tampakaki, Raffay Khan, et al.Pageof 7