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      Quilomicronemia familiar Translated title: Familial chylomicronemia

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          Abstract

          Resumen La quilomicronemia familiar es una condición en que una mutación genética altera la capacidad de metabolizar los triglicéridos que viajan en las lipoproteínas, causando elevación extrema de triglicéridos plasmáticos y complicaciones asociadas. La complicación más frecuente es la pancreatitis, que puede llevar a falla multiorgánica o insuficiencia pancreática. La quilomicronemia familiar también afecta la calidad de vida, las relaciones sociales y el desarrollo profesional. El gen más frecuentemente afectado en la quilomicronemia familiar es el de lipoproteína lipasa-1 (LPL), enzima que hidroliza triglicéridos circulantes para su captación tisular. Mutaciones en genes (como APOC2, APOAV, LMF-1, GPIHBP-1) que codifican para proteínas que regulan la maduración, transporte o polimerización de lipoproteína lipasa-1, también pueden estar involucradas. Sin embargo, en cerca del 30% de los pacientes no se encuentra la variante causal. La quilomicronemia familiar debe sospecharse en casos de hipertrigliceridemia extrema, resistente al tratamiento convencional, o que se acompaña de xantomas eruptivos, lipemia retinalis o dolor abdominal. La disponibilidad de escalas de riesgo y pruebas genéticas deben promover la detección oportuna. La nutrición se basa en una dieta muy baja en grasa con adecuada suplencia de vitaminas liposolubles y ácidos grasos esenciales, además de evitar el consumo de alcohol. Si bien el tratamiento farmacológico incluye fibratos y ácidos grasos omega 3, el enfoque actual privilegia agentes biotecnológicos dirigidos a los defectos moleculares propios de la enfermedad. Ello incluye un oligonucleótido antisentido dirigido contra apoC-III (volanesorsen), un anticuerpo monoclonal contra la proteína similar a angiopoietina tipo 3 (evinacumab), y otros compuestos en desarrollo.

          Translated abstract

          Abstract Familial chylomicronemia is a disease in which a genetic mutation affects the ability of the organism to metabolize triglycerides bound to lipoproteins, causing extremely high plasma triglycerides and associated consequences. The most frequent complication is acute pancreatitis, which may lead to multiorganic failure or pancreatic insufficiency. Familial chylomicronemia also exerts a profound negative impact on quality of life, social relationships and professional development. The gene most frequently affected is lipoprotein lipase-1 gene (LPL), the enzyme in charge of hydrolyzing circulating triglycerides for tissue uptake. Mutations in other genes regulating maturation, transport or polymerization (eg. APOC2, APOAV, LMF-1, GPIHBP-1) of lipoprotein lipase-1, may also be involved. However, in about 30% of patients the causal variant is not identified. Familial chylomicronemia should be suspected in patients with severe hypertriglyceridemia with poor response to conventional treatment, or accompanied by eruptive xanthomas, lipemia retinalis or abdominal pain. The availability of risk scores and genetic tests should facilitate its opportune detection and management. Nutritional therapy is based on a very-low-fat diet with adequate supply of lipid-soluble vitamins and essential fatty acids, plus avoidance of alcohol consumption. Current pharmacological treatment may include fibrates and omega-3 fatty acids but prioritizes biotechnological agents targeting the molecular disturbances of the disease. These include an antisense oligonucleotide against apoC-III (volanesorsen), a monoclonal antibody against angiopoietin-like protein-3 (evinacumab), and other agents currently in development.

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          Most cited references57

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          Short- and medium-chain fatty acids in energy metabolism: the cellular perspective.

          Short- and medium-chain fatty acids (SCFAs and MCFAs), independently of their cellular signaling functions, are important substrates of the energy metabolism and anabolic processes in mammals. SCFAs are mostly generated by colonic bacteria and are predominantly metabolized by enterocytes and liver, whereas MCFAs arise mostly from dietary triglycerides, among them milk and dairy products. A common feature of SCFAs and MCFAs is their carnitine-independent uptake and intramitochondrial activation to acyl-CoA thioesters. Contrary to long-chain fatty acids, the cellular metabolism of SCFAs and MCFAs depends to a lesser extent on fatty acid-binding proteins. SCFAs and MCFAs modulate tissue metabolism of carbohydrates and lipids, as manifested by a mostly inhibitory effect on glycolysis and stimulation of lipogenesis or gluconeogenesis. SCFAs and MCFAs exert no or only weak protonophoric and lytic activities in mitochondria and do not significantly impair the electron transport in the respiratory chain. SCFAs and MCFAs modulate mitochondrial energy production by two mechanisms: they provide reducing equivalents to the respiratory chain and partly decrease efficacy of oxidative ATP synthesis.
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            Cardiovascular and Metabolic Effects of ANGPTL3 Antisense Oligonucleotides.

            Background Epidemiologic and genomewide association studies have linked loss-of-function variants in ANGPTL3, encoding angiopoietin-like 3, with low levels of plasma lipoproteins. Methods We evaluated antisense oligonucleotides (ASOs) targeting Angptl3 messenger RNA (mRNA) for effects on plasma lipid levels, triglyceride clearance, liver triglyceride content, insulin sensitivity, and atherosclerosis in mice. Subsequently, 44 human participants (with triglyceride levels of either 90 to 150 mg per deciliter [1.0 to 1.7 mmol per liter] or >150 mg per deciliter, depending on the dose group) were randomly assigned to receive subcutaneous injections of placebo or an antisense oligonucleotide targeting ANGPTL3 mRNA in a single dose (20, 40, or 80 mg) or multiple doses (10, 20, 40, or 60 mg per week for 6 weeks). The main end points were safety, side-effect profile, pharmacokinetic and pharmacodynamic measures, and changes in levels of lipids and lipoproteins. Results The treated mice had dose-dependent reductions in levels of hepatic Angptl3 mRNA, Angptl3 protein, triglycerides, and low-density lipoprotein (LDL) cholesterol, as well as reductions in liver triglyceride content and atherosclerosis progression and increases in insulin sensitivity. After 6 weeks of treatment, persons in the multiple-dose groups had reductions in levels of ANGPTL3 protein (reductions of 46.6 to 84.5% from baseline, P<0.01 for all doses vs. placebo) and in levels of triglycerides (reductions of 33.2 to 63.1%), LDL cholesterol (1.3 to 32.9%), very-low-density lipoprotein cholesterol (27.9 to 60.0%), non-high-density lipoprotein cholesterol (10.0 to 36.6%), apolipoprotein B (3.4 to 25.7%), and apolipoprotein C-III (18.9 to 58.8%). Three participants who received the antisense oligonucleotide and three who received placebo reported dizziness or headache. There were no serious adverse events. Conclusions Oligonucleotides targeting mouse Angptl3 retarded the progression of atherosclerosis and reduced levels of atherogenic lipoproteins in mice. Use of the same strategy to target human ANGPTL3 reduced levels of atherogenic lipoproteins in humans. (Funded by Ionis Pharmaceuticals; ClinicalTrials.gov number, NCT02709850 .).
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              Genetic and Pharmacologic Inactivation of ANGPTL3 and Cardiovascular Disease.

              Background Loss-of-function variants in the angiopoietin-like 3 gene (ANGPTL3) have been associated with decreased plasma levels of triglycerides, low-density lipoprotein (LDL) cholesterol, and high-density lipoprotein (HDL) cholesterol. It is not known whether such variants or therapeutic antagonism of ANGPTL3 are associated with a reduced risk of atherosclerotic cardiovascular disease. Methods We sequenced the exons of ANGPTL3 in 58,335 participants in the DiscovEHR human genetics study. We performed tests of association for loss-of-function variants in ANGPTL3 with lipid levels and with coronary artery disease in 13,102 case patients and 40,430 controls from the DiscovEHR study, with follow-up studies involving 23,317 case patients and 107,166 controls from four population studies. We also tested the effects of a human monoclonal antibody, evinacumab, against Angptl3 in dyslipidemic mice and against ANGPTL3 in healthy human volunteers with elevated levels of triglycerides or LDL cholesterol. Results In the DiscovEHR study, participants with heterozygous loss-of-function variants in ANGPTL3 had significantly lower serum levels of triglycerides, HDL cholesterol, and LDL cholesterol than participants without these variants. Loss-of-function variants were found in 0.33% of case patients with coronary artery disease and in 0.45% of controls (adjusted odds ratio, 0.59; 95% confidence interval, 0.41 to 0.85; P=0.004). These results were confirmed in the follow-up studies. In dyslipidemic mice, inhibition of Angptl3 with evinacumab resulted in a greater decrease in atherosclerotic lesion area and necrotic content than a control antibody. In humans, evinacumab caused a dose-dependent placebo-adjusted reduction in fasting triglyceride levels of up to 76% and LDL cholesterol levels of up to 23%. Conclusions Genetic and therapeutic antagonism of ANGPTL3 in humans and of Angptl3 in mice was associated with decreased levels of all three major lipid fractions and decreased odds of atherosclerotic cardiovascular disease. (Funded by Regeneron Pharmaceuticals and others; ClinicalTrials.gov number, NCT01749878 .).
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                Author and article information

                Journal
                medba
                Medicina (Buenos Aires)
                Medicina (B. Aires)
                Fundación Revista Medicina (Ciudad Autónoma de Buenos Aires, , Argentina )
                0025-7680
                1669-9106
                August 2020
                : 80
                : 4
                : 348-358
                Affiliations
                [2] orgnameFundación Santa Fe de Bogotá orgdiv1Sección de Endocrinología Colombia
                [1] Bogotá orgnameUniversidad de los Andes orgdiv1Facultad de Medicina Colombia
                Article
                S0025-76802020000600348 S0025-7680(20)08000400348
                d1f59707-9881-4302-96ba-0b1ca01938c6

                This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

                History
                : 27 August 2019
                : 22 April 2020
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 58, Pages: 11
                Product

                SciELO Argentina


                Volanesorsen,apoC-III,Dislipidemias,hipertrigliceridemia,Triglicéridos,Quilomicronemia,Dyslipidemias,Hypertriglyceridemia,Triglycerides,Chylomicronemia

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