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Biomedical subjects

Jacques Genest

Publications and source records attributed to Jacques Genest.

At least 19 recordsLinked to original sources

Predictors of aortic stenosis in homozygous familial hypercholesterolemia: A study from the Canadian HoFH registry.

BACKGROUND: Homozygous familial hypercholesterolemia (HoFH) is a rare genetic disease of low-density lipoprotein cholesterol (LDL-C) metabolism. This disease is associated with a major risk of both atherosclerotic cardiovascular disease and aortic stenosis (AS). The predictors of AS in this population are not well established. OBJECTIVE: To investigate the univariable and multivariable predictors of AS in patients from the Canadian HoFH registry. METHODS: Individuals from the Canadian HoFH registry were included in this retrospective longitudinal study. Clinical data were obtained from the treating physicians using a standardized questionnaire. Cox proportional hazards models were used to investigate the predictors of AS. The observed lifetime risk of AS was calculated using Kaplan-Meier estimates. RESULTS: Among the 67 patients with HoFH, 25 (37%) developed AS. The mean age at baseline was 22 ± 17 years and women represented 57% of the cohort. The independent predictors of AS were the baseline LDL-C (hazard ratio [HR] 1.22 [1.09-1.35], P = .0003) as well as the presence of at least 1 null genetic variant (HR 3.73 [1.41-9.86], P = .008). Having a baseline LDL-C value above 13 mmol/L was associated with an observed lifelong risk of developing AS approaching 100% within this cohort, whereas having a value below this threshold was associated with a risk of 27% (P = .0002). CONCLUSION: This is the first systematic evaluation within a national HoFH registry to report the univariable and multivariable predictors of AS in patients with HoFH. An external validation of our results in an international cohort of HoFH is warranted.

Aortic stenosis↗

A novel nonsense apolipoprotein A-I mutation (apoA-I(E136X)) causes low HDL cholesterol in French Canadians.

The molecular causes of severe high-density lipoprotein cholesterol (HDL-C) deficiency was examined in a group of 54 unrelated French Canadian subjects. The lecithin:cholesterol acyl transferase (LCAT) and apolipoprotein (apo) A-I gene were analyzed in all probands by direct DNA sequencing. While no LCAT mutation was detected, a novel nonsense apoA-I mutation (E136X) was found in 3/54 probands. Genetic analysis of two kindreds showed a strong co-segregation of the apoA-I locus with the low HDL-C trait. The E136X mutation was detected in families by MaeI restriction digestion. E136X carriers (n=17) had marked HDL-C deficiency; among the nine carriers > or = 35 years old, five men had developed premature coronary artery disease (CAD). A peptide of apparent molecular weight of 14 kDa was identified in fresh plasma, the HDL fractions and lipoprotein deficient plasma from the three probands but not in normal controls (n=3), suggesting that the mutant apoA-I peptide is secreted and binds lipids. The mutation was not observed in an additional 210 chromosomes from unrelated subjects of French Canadian descent, < 60 years of age, with CAD and low HDL-C levels. We conclude that apoA-I (E136X) is a cause of HDL-C deficiency in the French Canadian population and is associated with premature CAD.

Adolescent↗

Biogenesis and speciation of nascent apoA-I-containing particles in various cell lines.

It is generally thought that the large heterogeneity of human HDL confers antiatherogenic properties; however, the mechanisms governing HDL biogenesis and speciation are complex and poorly understood. Here, we show that incubation of exogenous apolipoprotein A-I (apoA-I) with fibroblasts, CaCo-2, or CHO-overexpressing ABCA1 cells generates only alpha-nascent apolipoprotein A-I-containing particles (alpha-LpA-I) with diameters of 8-20 nm, whereas human umbilical vein endothelial cells and ABCA1 mutant (Q597R) cells were unable to form such particles. Interestingly, incubation of exogenous apoA-I with either HepG2 or macrophages generates both alpha-LpA-I and prebeta1-LpA-I. Furthermore, glyburide inhibits almost completely the formation of alpha-LpA-I but not prebeta1-LpA-I. Similarly, endogenously secreted HepG2 apoA-I was found to be associated with both prebeta1-LpA-I and alpha-LpA-I; by contrast, CaCo-2 cells secreted only alpha-LpA-I. To determine whether alpha-LpA-I generated by fibroblasts is a good substrate for LCAT, isolated alpha-LpA-I as well as reconstituted HDL [r(HDL)] was reacted with LCAT. Although both particles had similar V(max) (8.4 vs. 8.2 nmol cholesteryl ester/h/microg LCAT, respectively), the K(m) value was increased 2-fold for alpha-LpA-I compared with r(HDL) (1.2 vs. 0.7 microM apoA-I). These results demonstrate that 1) ABCA1 is required for the formation of alpha-LpA-I but not prebeta1-LpA-I; and 2) alpha-LpA-I interacts efficiently with LCAT. Thus, our study provides direct evidence for a new link between specific cell lines and the speciation of nascent HDL that occurs by both ABCA1-dependent and -independent pathways.

ATP Binding Cassette Transporter 1↗

ESI-MS quantitation of increased sphingomyelin in Niemann-Pick disease type B HDL.

HDLs have been proposed to have antiatherogenic properties because of their role in reverse cholesterol transport as lipid acceptors. To elucidate the phospholipid profile of these particles, we used electrospray ionization mass spectrometry to examine the phosphatidylcholine (PC) and sphingomyelin (SM) composition of HDLs purified from plasma and nascently generated in vitro from fibroblasts. We also quantitatively compared the phospholipids present in these lipoproteins between normal and Niemann-Pick disease type B (NPD-B) subjects characterized by sphingomyelinase (SMase) deficiency. We demonstrated that plasma HDLs from NPD-B were significantly enriched in SM by an average of 28%, particularly the palmitoyl SM (with an increase of 95%), which accounted for approximately 25-44% of total SM molecular species. Similarly, we observed an increase of approximately 63% in total SM levels in nascent HDLs prepared from NPD-B fibroblasts. Although PC levels in nascent HDLs were comparable between control and NPD-B cells, there was a 95% increase in total PC levels similar to that of SM in plasma HDLs extracted from NPD-B subjects. These data provide insight into the structure of HDLs and identify potential new roles for SMase in lipoprotein metabolism.

Carbon↗

Structural modification of plasma HDL by phospholipids promotes efficient ABCA1-mediated cholesterol release.

It has been suggested that ABCA1 interacts preferentially with lipid-poor apolipoprotein A-I (apoA-I). Here, we show that treatment of plasma with dimyristoyl phosphatidylcholine (DMPC) multilamellar vesicles generates prebeta(1)-apoA-I-containing lipoproteins (LpA-I)-like particles similar to those of native plasma. Isolated prebeta(1)-LpA-I-like particles inhibited the binding of (125)I-apoA-I to ABCA1 more efficiently than HDL(3) (IC(50) = 2.20 +/- 0.35 vs. 37.60 +/- 4.78 microg/ml). We next investigated the ability of DMPC-treated plasma to promote phospholipid and unesterified (free) cholesterol efflux from J774 macrophages stimulated or not with cAMP. At 2 mg DMPC/ml plasma, both phospholipid and free cholesterol efflux were increased ( approximately 50% and 40%, respectively) in cAMP-stimulated cells compared with unstimulated cells. Similarly, both phospholipid and free cholesterol efflux to either isolated native prebeta(1)-LpA-I and prebeta(1)-LpA-I-like particles were increased significantly in stimulated cells. Furthermore, glyburide significantly inhibited phospholipid and free cholesterol efflux to DMPC-treated plasma. Removal of apoA-I-containing lipoproteins from normolipidemic plasma drastically reduced free cholesterol efflux mediated by DMPC-treated plasma. Finally, treatment of Tangier disease plasma with DMPC affected the amount of neither prebeta(1)-LpA-I nor free cholesterol efflux. These results indicate that DMPC enrichment of normal plasma resulted in the redistribution of apoA-I from alpha-HDL to prebeta-HDL, allowing for more efficient ABCA1-mediated cellular lipid release. Increasing the plasma prebeta(1)-LpA-I level by either pharmacological agents or direct infusions might prevent foam cell formation and reduce atherosclerotic vascular disease.

ATP Binding Cassette Transporter 1↗

Reaching recommended lipid and blood pressure targets with amlodipine/atorvastatin combination in patients with coronary heart disease.

The effects of combined atorvastatin and amlodipine on blood pressure (BP) and low-density lipoprotein (LDL) cholesterol levels were investigated in 134 patients with documented coronary heart disease treated for 1 year. BP at baseline was 128 +/- 15/79 +/- 9 mm Hg and was controlled by the treating physician; no calcium channel blockers were allowed. Baseline means for plasma cholesterol were 6.4 +/- 1.1 mmol/L (147 +/- 39 mg/dl), triglycerides 2.0 +/- 0.9 mmol/L (177 +/- 88 mg/dl), LDL cholesterol 4.4 +/- 1.0 mmol/L (170 +/- 39 mg/dl), and high-density lipoprotein cholesterol 1.2 +/- 0.3 mmol/L (46 +/- 12 mg/dl). Patients were all given atorvastatin 10 mg, then increased to 80 mg if the LDL cholesterol was <2.5 mmol/L (100 mg/dl). At 3 months, patients were randomized to amlodipine 10 mg or placebo. Plasma LDL cholesterol was decreased by 50%, and the LDL cholesterol target of <2.5 mmol/L was achieved in 81% of the patients. BP targets were achieved in 69% of the atorvastatin + placebo group, versus 96% in the atorvastatin + amlodipine group (p = 0.0002). With use of combination atorvastatin + amlodipine at doses ranging from 10 to 80 mg and 5 to 10 mg, respectively, recommended therapeutic goals were reached in most select subjects with coronary artery disease who were concomitantly receiving aspirin and antihypertensive therapy.

Amlodipine↗

Genetic lipoprotein disorders and coronary atherosclerosis.

Familial lipoprotein disorders are seen frequently in subjects with premature coronary artery disease. The genetic basis for several dyslipoproteinemias has been elucidated in the past two decades. The majority of lipoprotein disorders result from a combination of polygenic predisposition and poor lifestyle habits, including physical inactivity, increased visceral adipose tissue, increased caloric intake, and cigarette smoking. Monogenic disorders are seen in approximately 5% of premature coronary artery disease cases, and this prevalence is higher in populations with the Founder effect. Unraveling the genetic basis of many lipoprotein disorders has allowed fundamental discoveries in molecular cellular physiology and has paved the way for novel therapeutic approaches.

Coronary Artery Disease↗

Conversion from cyclosporine microemulsion to tacrolimus-based immunoprophylaxis improves cholesterol profile in heart transplant recipients with treated but persistent dyslipidemia: the Canadian multicentre randomized trial of tacrolimus vs cyclosporine microemulsion.

BACKGROUND: Tacrolimus improves lipid profile in renal and liver transplant recipients. The impact of conversion from cyclosporine microemulsion (Neoral) to tacrolimus (Prograf) in a large randomized study of stable heart transplant recipients with treated but persistent mild dyslipidemia is reported. METHODS: One hundred twenty-nine long-term (>or=12 months) cyclosporine microemulsion-treated heart transplant recipients with low-density lipoprotein cholesterol >2.5 mmol/liter and/or a total cholesterol/high-density lipoprotein cholesterol ratio >4 were recruited for the study. Complete lipid profile was assessed before (baseline) and after 6 months of treatment with either cyclosporine microemulsion maintenance (n=64) or tacrolimus conversion (n=65). RESULTS: At 6 months, tacrolimus-converted patients exhibited a greater decrease in total cholesterol (from 5.51 +/- 0.16 to 4.88 +/- 1.22 mmol/liter [tacrolimus], vs 5.61 +/- 1.36 to 5.38 +/- 0.87 mmol/liter [cyclosporine]; p = 0.0078). This decrease in cholesterol was caused largely by a decrease in low-density lipoprotein cholesterol (-0.41 +/- 0.54 [tacrolimus] vs -0.13 +/- 0.55 [cyclosporine]; p=0.0018). There were no changes in high-density lipoprotein cholesterol and triglyceride levels, but apolipoprotein B therapy was reduced in tacrolimus-converted vs cyclosporine-maintained patients (p=0.0003). By 6 months, 23.7% of tacrolimus- vs 6.7% of cyclosporine-treated patients met the target lipid levels for high-risk patients (p=0.0094). Conversion from cyclosporine to tacrolimus resulted in decreases in blood urea nitrogen, creatinine, and uric acid without any changes in glucose, HbA(1C), and insulin levels. CONCLUSIONS: Conversion from cyclosporine microemulsion- to tacrolimus-based immunoprophylaxis resulted in decreased cholesterol, apolipoprotein B, urea, creatinine, and uric acid without any clinically evident perturbation of glucose metabolism in stable heart transplant recipients with treated but persistent mild dyslipidemia.

Adult↗

Cellular physiology of cholesterol efflux in vascular endothelial cells.

BACKGROUND: Of the cells that compose the atherosclerotic plaque, vascular endothelial cells are the most resistant to cholesterol accumulation. Cholesterol efflux pathways may play an important role in endothelial cholesterol homeostasis. METHODS AND RESULTS: We examined the global genetic response of endothelial cells to cholesterol and in particular the contribution of the cholesterol efflux proteins ATP-binding cassette transporter A1 (ABCA1), ATP-binding cassette transporter G1 (ABCG1), and scavenger receptor B-I (SR-BI) to endothelial cell cholesterol efflux. The ABCG1 gene is induced in endothelial cells by cholesterol, whereas ABCA1 is not. Using specific chemical inhibitors of ABC transporters and SR-BI, we have shown that neither ABC transporters nor SR-BI is required for apolipoprotein A-1-mediated endothelial cholesterol efflux. CONCLUSIONS: Endothelial cells may use nontraditional pathways for cholesterol efflux.

8-Bromo Cyclic Adenosine Monophosphate↗

Characterization of oligomeric human ATP binding cassette transporter A1. Potential implications for determining the structure of nascent high density lipoprotein particles.

The oligomeric structure of ABCA1 transporter and its function related to the biogenesis of nascent apoA-I-containing particles (LpA-I) were investigated. Using n-dodecylmaltoside and perfluoro-octanoic acid combined with non-denaturing gel, the majority of ABCA1 was found as a tetramer in ABCA1-induced human fibroblasts. Furthermore, using chemical cross-linking and SDS-PAGE, ABCA1 dimers but not the tetramers were found covalently linked. Oligomeric ABCA1 was present in isolated plasma membranes as well as in intracellular compartments. Interestingly, apoA-I was found to be associated with both dimeric and tetrameric, but not monomeric, forms of ABCA1. Neither apoA-I nor lipid molecules did affect ABCA1 oligomerization. Immunoprecipitation analysis showed that oligomeric ABCA1 did not contain other associated proteins. We next investigated the relationship between the oligomeric ABCA1 complex and the structure of LpA-I. Lipid-free apoA-I incubated with normal cells generated LpA-I with diameters between 9.5 and 20 nm. Subsequent isolation of LpA-I followed by cross-linking revealed the presence of four and eight apoA-I molecules per particle, whereas apoA-I incubated with ABCA1 mutant (Q597R) cells was unable to form such particles and remained in the monomeric form. These results demonstrate that: 1) ABCA1 exists as an oligomeric complex; and 2) ABCA1 oligomerization was independent of apoA-I binding and lipid molecules. The findings that the majority of ABCA1 exists as a tetramer that binds apoA-I, together with the observation that LpA-I contains at least four molecules of apoA-I per particle, support the concept that the homotetrameric ABCA1 complex constitutes the minimum functional unit required for the biogenesis of high density lipoprotein particles.

ATP Binding Cassette Transporter 1↗

Effect of fenofibrate-mediated increase in plasma homocysteine on the progression of coronary artery disease in type 2 diabetes mellitus.

The Diabetes Atherosclerosis Intervention Study (DAIS) examined the effects of fenofibrate or placebo on the progression of coronary artery disease (CAD) in 418 type 2 diabetic subjects with dyslipidemia. Fenofibrate use was associated with a 6% increase in high-density lipoprotein cholesterol, a 28% decrease in triglycerides, a 5% decrease in low-density lipoprotein cholesterol, and a 55% increase in plasma homocysteine (tHcy). The purpose of the present study was to determine whether this increase in tHcy in the fenofibrate group was associated with CAD progression or with clinical events. The increase in tHcy with fenofibrate (n = 207) was not related to changes in factors known to modulate tHcy levels (serum levels of Vitamin B(12), folate, or renal function). CAD was quantified by angiography at baseline and after a minimum of 3 years of therapy with fenofibrate or placebo. The primary end point was change in mean segment diameter (MSD), minimal lumen diameter, and percent stenosis. Baseline tHcy level was correlated with percent diameter stenosis (r = 0.111, p = 0.028). Baseline, but not end-of-study elevated tHcy levels, decreased the beneficial effect of fenofibrate. Unexpectedly, the final tHcy levels correlated negatively with CAD progression (r = -0.111, p = 0.031) in the overall group. In the fenofibrate group, there was no significant correlation between tHcy and minimal lumen diameter (r = -0.135, p = 0.069), or percent stenosis. An increase in tHcy levels was not correlated with adverse clinical events in the fenofibrate group. This analysis of the the DAIS reveals that the fenofibrate-mediated increase in tHcy levels does not attenuate the beneficial effects of fenofibrate on CAD progression or clinical events.

Aged↗

Molecular interactions between apoE and ABCA1: impact on apoE lipidation.

Apolipoprotein E (apoE)/ABCA1 interactions were investigated in human intact fibroblasts induced with 22(R)-hydroxycholesterol and 9-cis-retinoic acid (stimulated cells). Here, we show that purified human plasma apoE3 forms a complex with ABCA1 in normal fibroblasts. Lipid-free apoE3 inhibited the binding of (125)I-apoA-I to ABCA1 more efficiently than reconstituted HDL particles (IC(50) = 2.5 +/- 0.4 microg/ml vs. 12.3 +/- 1.3 microg/ml). ApoE isoforms showed similar binding for ABCA1 and exhibited identical kinetics in their abilities to induce ABCA1-dependent cholesterol efflux. Mutation of ABCA1 associated with Tangier disease (C1477R) abolished both apoE3 binding and apoE3-mediated cholesterol efflux. Analysis of apoE3-containing particles generated during the incubation of lipid-free apoE3 with stimulated normal cells showed nascent apoE3/cholesterol/phospholipid complexes that exhibited prebeta-electrophoretic mobility with a particle size ranging from 9 to 15 nm, whereas lipid-free apoE3 incubated with ABCA1 mutant (C1477R) cells was unable to form such particles. These results demonstrate that 1). apoE association with lipids reduced its ability to interact with ABCA1; 2). apoE isoforms did not affect apoE binding to ABCA1; 3). apoE-mediated ABCA1-dependent cholesterol efflux was not affected by apoE isoforms in fibroblasts; and 4). the lipid translocase activity of ABCA1 generates apoE-containing high density-sized lipoprotein particles. Thus, ABCA1 is essential for the biogenesis of high density-sized lipoprotein containing only apoE particles in vivo.

ATP Binding Cassette Transporter 1↗

Is the decreased high-density lipoprotein cholesterol in the metabolic syndrome due to cellular lipid efflux defect?

The metabolic syndrome (MS) is associated with cardiovascular disease. The low high-density lipoprotein cholesterol (HDL-C) seen in the MS is associated with increased hepatic secretion of apolipoprotein B-containing lipoproteins. Patients with low HDL-C and abnormal cellular lipid efflux due to ABCA1 gene defects (Tangier disease) also have elevated plasma triglycerides. In the present study, we examined the cellular cholesterol and phospholipid efflux in patients with low HDL-C and features of the MS. Forty-four patients with a HDL-C below the fifth percentile for age and gender were selected. The MS was defined by a low HDL-C and at least two additional features: body mass index at least 30 kg/m(2), plasma triglycerides at least 150 mg/dl, fasting glucose at least 110 mg/dl, and blood pressure at least 130/85 mm Hg. Cellular lipid efflux was examined on fibroblasts obtained from study subjects, nine normal controls and six subjects with Tangier disease. In 22 patients identified with the MS, HDL-C was 21 +/- 7 mg/dl, triglyceride levels were 340 +/- 157 mg/dl, and cellular cholesterol and phospholipid efflux were 107 +/- 18% and 105 +/- 17% of controls, respectively. No patient with the MS and low HDL-C showed a cellular lipid efflux defect. We conclude that primary cellular lipid efflux defects do not contribute to the low HDL-C frequently encountered in the MS.

Adult↗

High-density lipoproteins: multifunctional vanguards of the cardiovascular system.

The plasma level of high-density lipoprotein (HDL)-cholesterol is inversely correlated with coronary artery disease, the leading cause of death worldwide. HDL particles are thought to mediate the uptake of peripheral cholesterol and, through exchange of core lipids with other lipoproteins or selective uptake by specific receptors, return this cholesterol to the liver for bile acid secretion or hormone synthesis in steroidogenic tissues. HDL particles also act on vascular processes by modulating vasomotor function, thrombosis, cell-adhesion molecule expression, platelet function, nitric oxide release, endothelial cell apoptosis and proliferation. Many of these effects involve signal transduction pathways and gene transcription. Several genetic disorders of HDLs have been characterized at the molecular level. The study of naturally occurring mutations has considerably enhanced understanding of the role of HDL particles. Some mutations causing HDL deficiency are associated with premature coronary artery disease, while others, paradoxically, may be associated with longevity. Modulation of HDL metabolism for therapeutic purposes must take into account, not only the cholesterol content of a particle but its lipid (especially phospholipid) composition, apolipoprotein content, size and charge. Current therapeutic strategies include the use of peroxisome proliferating activator receptor-alpha agonists (fibrates) that increase apolipoprotein AI production and increase lipoprotein lipase activity, statins that have a small effect on HDL-cholesterol but markedly reduce low-density lipoprotein-cholesterol, the cholesterol/HDL-cholesterol ratio and niacin that increases HDL-cholesterol. Potential therapeutic targets include inhibition of cholesteryl ester transfer protein, modulating the ATP-binding cassette A1 transporter, and decreasing HDL uptake by scavenger receptor-B1. Novel therapies include injection of purified apolipoprotien AI and short peptides taken orally, mimicking some of the biological effects of apolipoprotein AI.

Cardiovascular System↗

Preventive cardiology: move over low density lipoprotein cholesterol, hello C-reactive protein?

The inflammatory marker C-reactive protein (CRP) is a highly promising cardiovascular risk factor. The data associating high sensitivity CRP (hsCRP) to atherosclerotic vascular disease, especially coronary artery disease, are strong, consistent and have been tested across many populations. Multivariate analysis shows that hsCRP has an independent predictive value to the prediction of coronary artery disease along with the conventional cardiovascular risk factors such as sex, age, cigarette smoking, blood pressure, diabetes, elevated total cholesterol (or low density lipoprotein cholesterol) and high density lipoprotein cholesterol. Retrospective analysis of published clinical trials show that individuals with elevated hsCRP benefit from the use of acetylsalicylic acid and/or the statin class of medication. Before implementing a public health policy that includes the measurement and clinical decision-making algorithm using hsCRP, several conditions must be met. Among them, a better understanding of the biology of CRP, an indepth scrutiny at the link between hsCRP levels, the metabolic syndrome, and abdominal obesity and finally, clinical trials, currently underway that will test the hypothesis that patients with elevated levels of hsCRP but a normal low density lipoprotein-cholesterol benefit from a pharmacological intervention for cardiovascular prevention in a primary prevention setting.

Antihypertensive Agents↗

Apolipoprotein A-I activates cellular cAMP signaling through the ABCA1 transporter.

It has been suggested that the signal transduction pathway initiated by apoA-I activates key proteins involved in cellular lipid efflux. We investigated apoA-I-mediated cAMP signaling in cultured human fibroblasts induced with (22R)-hydroxycholesterol and 9-cis-retinoic acid (stimulated cells). Treatment of stimulated fibroblasts with apoA-I for short periods of time (<or=45 min) increased ATP binding cassette A1 (ABCA1) phosphorylation in a concentration-dependent manner. Concomitantly, apoA-I increased the intracellular level of cAMP in a concentration- and time-dependent manner. The maximal cAMP level was reached within 10 min at 10 microg/ml apoA-I representing a 1-fold increase. The ability of apoA-I to mediate cAMP production was only observed in stimulated fibroblasts. Furthermore, overexpression of ABCA1 in Chinese hamster ovary cells resulted in a 1.5-fold increase in apoA-I-mediated cAMP accumulation as compared with untransfected cells. In contrast, forskolin increased cAMP production significantly in unstimulated fibroblasts as well as in untransfected Chinese hamster ovary cells. Pharmacological inhibition of protein kinase A (H89) completely blocked apoA-I-mediated ABCA1 phosphorylation. Naturally occurring mutations of ABCA1 associated with Tangier disease (C1477R, 2203X, and 2145X) severely reduced apoA-I-mediated cAMP production, ABCA1 phosphorylation, (125)I-apoA-I binding, and lipid efflux, without affecting forskolin-mediated cAMP elevation. In contrast, the protein kinase A catalytic subunit was able to phosphorylate ABCA1 similarly from mutant and normal cell lines in vitro. Together, our results indicate that apoA-I activates ABCA1 phosphorylation through the cAMP/protein kinase A-dependent pathway, apoA-I-mediated cAMP production required high level expression of functional ABCA1, and Tangier disease mutants have defective apoA-I-mediated cAMP signaling. These findings suggest that apoA-I may activate cAMP signaling through G protein-coupled ABCA1 transporter.

ATP Binding Cassette Transporter 1↗