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PMID: 22634577 Published · ppublish English Journal Article Review

Antisense oligonucleotides for the treatment of dyslipidaemia.

European heart journal ·Vol. 33 ·No. 12 ·2012-06-00 ·Pages 1451-8

Visser ME, Witztum JL, Stroes ES, Kastelein JJ

Abstract

Antisense oligonucleotides (ASOs) are short synthetic analogues of natural nucleic acids designed to specifically bind to a target messenger RNA (mRNA) by Watson-Crick hybridization, inducing selective degradation of the mRNA or prohibiting translation of the selected mRNA into protein. Antisense technology has the ability to inhibit unique targets with high specificity and can be used to inhibit synthesis of a wide range of proteins that could influence lipoprotein levels and other targets. A number of different classes of antisense agents are under development. To date, mipomersen, a 2'-O-methoxyethyl phosphorothioate 20-mer ASO, is the most advanced ASO in clinical development. It is a second-generation ASO developed to inhibit the synthesis of apolipoprotein B (apoB)-100 in the liver. In Phase 3 clinical trials, mipomersen has been shown to significantly reduce plasma low-density lipoprotein cholesterol (LDL-c) as well as other atherogenic apoB containing lipoproteins such as lipoprotein (a) [Lp(a)] and small-dense LDL particles. Although concerns have been raised because of an increase in intrahepatic triglyceride content, preliminary data from long-term studies suggest that with continued treatment, liver fat levels tend to stabilize or decline. Further studies are needed to evaluate potential clinical relevance of these changes. Proprotein convertase subtilisin/kexin-9 (PCSK9) is another promising novel target for lowering LDL-c by ASOs. Both second-generation ASOs and ASOs using locked nucleic acid technology have been developed to inhibit PCSK9 and are under clinical development. Other targets currently being addressed include apoC-III and apo(a) or Lp(a). By directly inhibiting the synthesis of specific proteins, ASO technology offers a promising new approach to influence the metabolism of lipids and to control lipoprotein levels. Its application to a wide variety of potential targets can be expected if these agents prove to be clinically safe and effective.

MeSH Terms
Animals Apolipoprotein B-100/drug effects,physiology Apolipoprotein C-III/drug effects,physiology Apoprotein(a)/drug effects,physiology Clinical Trials, Phase II as Topic Clinical Trials, Phase III as Topic Disease Models, Animal Dose-Response Relationship, Drug Double-Blind Method Dyslipidemias/therapy Haplorhini Humans Hypolipidemic Agents/administration & dosage,adverse effects,pharmacology Mice Oligonucleotides/administration & dosage,adverse effects,pharmacology Oligonucleotides, Antisense/pharmacology,therapeutic use Proprotein Convertase 9 Proprotein Convertases/drug effects Randomized Controlled Trials as Topic Serine Endopeptidases/drug effects
Chemicals
Apolipoprotein B-100 Apolipoprotein C-III Hypolipidemic Agents Oligonucleotides Oligonucleotides, Antisense mipomersen Apoprotein(a) PCSK9 protein, human Proprotein Convertase 9 Proprotein Convertases Serine Endopeptidases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Visser Maartje E
Department of Vascular Medicine, Academic Medical Center Amsterdam, Meibergdreef 9, Amsterdam, The Netherlands.
Witztum Joseph L
Stroes Erik S G
Kastelein John J P
Article Info
Journal
European heart journal
Abbr.
Eur Heart J
ISSN
1522-9645
Published
2012-06-00
Epub
2012-00-24
Pages
1451-8
Language
English
Region
England
NLM ID
8006263
Subset
IM
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