In Vivo Gene Transfer and Gene Modulation in Hypertension Research
- 1 December 1996
- journal article
- review article
- Published by Wolters Kluwer Health in Hypertension
- Vol. 28 (6), 1132-1137
- https://doi.org/10.1161/01.hyp.28.6.1132
Abstract
Transgenic technologies and homologous recombination approaches have been useful for studying the roles of specific genes in systemic hypertension. Recently, we and others have introduced the use of in vivo gene transfer to study the effects of local gene overexpression or inactivation in hypertension. Using in vivo gene transfer for the blood vessel, we have documented the direct hypertrophic action of local angiotensin and the growth-inhibitory effect of nitric oxide. In vivo gene transfer is also an effective method for discovering the unknown functions of a newly cloned gene. Using this approach, we identified the in vivo growth-inhibitory action of the angiotensin II type 2 receptor. In addition, we have developed a novel strategy using transcriptional factor “decoy” oligonucleotides to regulate the interaction of cis - and trans -acting factors involved in the modulation of gene expression in vivo. Thus, the decoy approach can “switch” on or off specific genes in selective tissues in vivo, thereby influencing local gene expression and tissue function. For example, using decoy oligonucleotides, we have “turned on” renin gene expression in the rat liver, in which it is usually not expressed, resulting in increased hepatic and plasma renin levels. Thus, in vivo gene transfer technology provides us with a new tool for in vivo characterization of genes involved in hypertension that has potential application in human therapy.Keywords
This publication has 28 references indexed in Scilit:
- Role of Transcriptional cis -Elements, Angiotensinogen Gene–Activating Elements, of Angiotensinogen Gene in Blood Pressure RegulationHypertension, 1996
- Behavioural and cardiovascular effects of disrupting the angiotensin II type-2 receptor gene in miceNature, 1995
- Effects on blood pressure and exploratory behaviour of mice lacking angiotensin II type-2 receptorNature, 1995
- In vivo identification of a negative regulatory element in the mouse renin gene using direct gene transfer.Journal of Clinical Investigation, 1995
- The angiotensin AT2-receptor mediates inhibition of cell proliferation in coronary endothelial cells.Journal of Clinical Investigation, 1995
- Gene Therapy for Vascular Smooth Muscle Cell Proliferation After Arterial InjuryScience, 1994
- Distinct nuclear proteins competing for an overlapping sequence of cyclic adenosine monophosphate and negative regulatory elements regulate tissue-specific mouse renin gene expression.Journal of Clinical Investigation, 1993
- Fulminant hypertension in transgenic rats harbouring the mouse Ren-2 geneNature, 1990
- Recombinant Gene Expression in Vivo Within Endothelial Cells of the Arterial WallScience, 1989
- Nitric oxide-generating vasodilators and 8-bromo-cyclic guanosine monophosphate inhibit mitogenesis and proliferation of cultured rat vascular smooth muscle cells.Journal of Clinical Investigation, 1989