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PMID: 9711445 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Genetics of hypertension. Therapeutic implications.

Drugs ·Vol. 56 ·No. 2 ·1998-08-00 ·Pages 203-14

O'Byrne S, Caulfield M

Abstract

Essential hypertension affects approximately 20% of the adult population, and has a multifactorial origin arising from an interaction between susceptibility genes and environmental factors. The understanding of the molecular basis of essential hypertension may provide us with new and more specific pharmacological agents, and perhaps the ability to individualise treatment and maximise the reduction in risk of morbidity and mortality from cardiovascular disease. Hypertension due to single gene abnormalities is very rare; however, it follows a Mendelian model of inheritance and therefore can be identified successfully using family linkage studies. Since clear Mendelian models of inheritance cannot readily be assigned in essential hypertension as there may be variable penetrance of susceptibility genes, other studies with designs based on affected sibling pairs, family-based association studies and case-control studies have been performed. The renin-angiotensin system (RAS) plays an integral part in the control of blood pressure, and genetic polymorphisms within this system and their effect on the response to antihypertensive therapy are now being studied. Polymorphisms of the angiotensin converting enzyme (ACE) gene, although associated with left ventricular hypertrophy, do not appear to have a clear association with hypertension. Studies on the association of genotype with response to antihypertensive therapy are less consistent for genetic polymorphisms of the RAS. Although some of the results are positive, patient numbers have been small in the studies completed to date. Genetic polymorphisms of the adrenergic receptors have been associated with blood pressure variation in African-Americans, White Americans and African-Caribbeans. A beta 2-adrenoceptor polymorphisms exhibits agonist-mediated receptor downregulation which may lead to enhanced peripheral vasoconstriction. Therapeutic studies have not yet been completed on patients with this genotype. A further polymorphism of the alpha-adducin gene has been associated with essential hypertension. This may influence blood pressure response to sodium loading/depletion and response to long term treatment with a thiazide diuretic, but further studies are needed to clarify this. Antisense oligonucleotides targeted against genes of the RAS, e.g. angiotensinogen and the angiotensin type 1 receptor, are being modified to improve targeting and thereby reduce toxicity. However, gene therapy is unlikely to replace pharmacological therapy in the foreseeable future. The immediate goal should be to enhance our understanding of the genetic nature of essential hypertension based on the interaction of genetic makeup with the environment, with a view to individualising antihypertensive therapy.

MeSH Terms
Antihypertensive Agents/therapeutic use Calmodulin-Binding Proteins/genetics GTP-Binding Proteins/genetics Genetic Therapy Genotype Humans Hypertension/drug therapy,genetics Peptidyl-Dipeptidase A/genetics Polymorphism, Genetic Receptors, Angiotensin/genetics Renin-Angiotensin System/genetics
Chemicals
Antihypertensive Agents Calmodulin-Binding Proteins Receptors, Angiotensin adducin Peptidyl-Dipeptidase A GTP-Binding Proteins
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
O'Byrne S
Department of Clinical Pharmacology, St Bartholomew's, London, England.
Caulfield M
References (48)
48 references, click to expand
  1. Human hypertension caused by mutations in the kidney isozyme of 11 beta-hydroxysteroid dehydrogenase.
    Nat Genet. 1995 Aug;10(4):394-9 PMID: 7670488
  2. Complex trait genetics: new methods yield a result for essential hypertension.
    J Clin Invest. 1996 May 1;97(9):1997-8 PMID: 8621786
  3. Renin-angiotensin system gene polymorphisms influence blood pressure and the response to angiotensin converting enzyme inhibition.
    J Hypertens. 1995 Dec;13(12 Pt 2):1602-9 PMID: 8903618
  4. Angiotensin I-converting enzyme genotypes and angiotensin II receptors. Response to therapy.
    Hypertension. 1996 Jul;28(1):98-103 PMID: 8675271
  5. Absence of linkage between the angiotensin converting enzyme locus and human essential hypertension.
    Nat Genet. 1992 Apr;1(1):72-5 PMID: 1338766
  6. Haplotypes of angiotensinogen in essential hypertension.
    Am J Hum Genet. 1997 Jun;60(6):1448-60 PMID: 9199566
  7. Polymorphisms of alpha-adducin and salt sensitivity in patients with essential hypertension.
    Lancet. 1997 May 10;349(9062):1353-7 PMID: 9149697
  8. A chimaeric 11 beta-hydroxylase/aldosterone synthase gene causes glucocorticoid-remediable aldosteronism and human hypertension.
    Nature. 1992 Jan 16;355(6357):262-5 PMID: 1731223
  9. Association of hypertension with beta2- and alpha2c10-adrenergic receptor genotype.
    Hypertension. 1996 Jun;27(6):1210-5 PMID: 8641726
  10. Essential hypertension in African Caribbeans associates with a variant of the beta2-adrenoceptor.
    Hypertension. 1997 Oct;30(4):773-6 PMID: 9336371
  11. Antisense inhibition and adeno-associated viral vector delivery for reducing hypertension.
    Hypertension. 1997 Jan;29(1 Pt 2):177-87 PMID: 9039099
  12. Genes, disease and medicine.
    Br J Clin Pharmacol. 1996 Dec;42(6):683-95 PMID: 8971423
  13. Two point mutations within the adducin genes are involved in blood pressure variation.
    Proc Natl Acad Sci U S A. 1994 Apr 26;91(9):3999-4003 PMID: 8171025
  14. Genetic dissection of complex traits.
    Science. 1994 Sep 30;265(5181):2037-48 PMID: 8091226
  15. Hypertension in the syndrome of apparent mineralocorticoid excess due to mutation of the 11 beta-hydroxysteroid dehydrogenase type 2 gene.
    Lancet. 1996 Jan 13;347(8994):88-91 PMID: 8538347
  16. Liddle's syndrome: heritable human hypertension caused by mutations in the beta subunit of the epithelial sodium channel.
    Cell. 1994 Nov 4;79(3):407-14 PMID: 7954808
  17. Extreme discordant sib pairs for mapping quantitative trait loci in humans.
    Science. 1995 Jun 16;268(5217):1584-9 PMID: 7777857
  18. Molecular basis of human hypertension: role of angiotensinogen.
    Cell. 1992 Oct 2;71(1):169-80 PMID: 1394429
  19. Membrane sodium-proton exchange and primary hypertension.
    Hypertension. 1993 May;21(5):607-17 PMID: 8387960
  20. Attenuation of isoproterenol-mediated vasodilatation in blacks.
    N Engl J Med. 1995 Jul 20;333(3):155-60 PMID: 7791817
  21. The causes of essential hypertension.
    Br J Clin Pharmacol. 1996 Jul;42(1):21-7 PMID: 8807140
  22. Influence of angiotensin-converting enzyme and angiotensin II type 1 receptor gene polymorphisms on aortic stiffness in normotensive and hypertensive patients.
    Circulation. 1996 Aug 15;94(4):698-703 PMID: 8772690
  23. Linkage of the angiotensinogen gene to essential hypertension.
    N Engl J Med. 1994 Jun 9;330(23):1629-33 PMID: 8177268
  24. Relationship between the angiotensin converting enzyme gene polymorphism and the effects of enalapril on left ventricular hypertrophy and impaired diastolic filling in essential hypertension: M-mode and pulsed Doppler echocardiographic studies.
    J Hypertens. 1996 Dec;14 (12 ):1403-8 PMID: 8986921
  25. The angiotensin I converting enzyme gene and predisposition to high blood pressure.
    Hypertension. 1993 Apr;21(4):455-60 PMID: 8384602
  26. Multilocus linkage of familial hyperkalaemia and hypertension, pseudohypoaldosteronism type II, to chromosomes 1q31-42 and 17p11-q21.
    Nat Genet. 1997 Jun;16(2):202-5 PMID: 9171836
  27. Association of a polymorphism of the angiotensin I-converting enzyme gene with essential hypertension.
    Biochem Biophys Res Commun. 1992 Apr 15;184(1):9-15 PMID: 1314601
  28. The angiotensinogen T235 variant and the use of antihypertensive drugs in a population-based cohort.
    Hypertension. 1997 Feb;29(2):628-33 PMID: 9040449
  29. Prediction of patient responses to antihypertensive drugs using genetic polymorphisms: investigation of renin-angiotensin system genes.
    J Hypertens. 1996 Feb;14(2):259-62 PMID: 8728305
  30. Association of a human G-protein beta3 subunit variant with hypertension.
    Nat Genet. 1998 Jan;18(1):45-8 PMID: 9425898
  31. Linkage of the angiotensinogen gene locus to human essential hypertension in African Caribbeans.
    J Clin Invest. 1995 Aug;96(2):687-92 PMID: 7635961
  32. A nucleotide substitution in the promoter of human angiotensinogen is associated with essential hypertension and affects basal transcription in vitro.
    J Clin Invest. 1997 Apr 1;99(7):1786-97 PMID: 9120024
  33. Polymorphism of the angiotensin I converting enzyme gene is apparently not related to high blood pressure: Dutch Hypertension and Offspring Study.
    J Hypertens. 1993 Apr;11(4):345-8 PMID: 8390500
  34. Susceptibility to human type 1 diabetes at IDDM2 is determined by tandem repeat variation at the insulin gene minisatellite locus.
    Nat Genet. 1995 Mar;9(3):284-92 PMID: 7773291
  35. Transient decrease in high blood pressure by in vivo transfer of antisense oligodeoxynucleotides against rat angiotensinogen.
    Hypertension. 1995 Jul;26(1):131-6 PMID: 7541778
  36. Angiotensin II type 1 receptor gene polymorphisms in human essential hypertension.
    Hypertension. 1994 Jul;24(1):63-9 PMID: 8021009
  37. Molecular genetics of human blood pressure variation.
    Science. 1996 May 3;272(5262):676-80 PMID: 8614826
  38. Prolonged reduction of high blood pressure with an in vivo, nonpathogenic, adeno-associated viral vector delivery of AT1-R mRNA antisense.
    Hypertension. 1997 Jan;29(1 Pt 2):374-80 PMID: 9039130
  39. Hypertension and severe hyperkalaemia associated with suppression of renin and aldosterone and completely reversed by dietary sodium restriction.
    Australas Ann Med. 1970 Nov;19(4):287-94 PMID: 5490655
  40. Essential hypertension and 5' upstream core promoter region of human angiotensinogen gene.
    Hypertension. 1997 Dec;30(6):1325-30 PMID: 9403548
  41. Hypertension-associated point mutations in the adducin alpha and beta subunits affect actin cytoskeleton and ion transport.
    J Clin Invest. 1996 Jun 15;97(12):2815-22 PMID: 8675693
  42. Genetic analysis of type 1 diabetes using whole genome approaches.
    Proc Natl Acad Sci U S A. 1995 Sep 12;92(19):8560-5 PMID: 7567975
  43. Influence of the angiotensin II type 1 receptor gene polymorphism on the effects of perindopril and nitrendipine on arterial stiffness in hypertensive individuals.
    Hypertension. 1996 Dec;28(6):1081-4 PMID: 8952600
  44. Chromosome-specific microsatellite sets for fluorescence-based, semi-automated genome mapping.
    Nat Genet. 1994 Jul;7(3):390-5 PMID: 7920657
  45. Hypertension, increased aldosterone secretion and low plasma renin activity relieved by dexamethasone.
    Can Med Assoc J. 1966 Nov 26;95(22):1109-19 PMID: 4288576
  46. Blood pressure and the M235T polymorphism of the angiotensinogen gene.
    Hypertension. 1996 Nov;28(5):907-11 PMID: 8901843
  47. Genetic susceptibility for human familial essential hypertension in a region of homology with blood pressure linkage on rat chromosome 10.
    Hum Mol Genet. 1997 Nov;6(12):2077-85 PMID: 9328471
  48. Inherited forms of mineralocorticoid hypertension.
    Hypertension. 1996 Dec;28(6):927-36 PMID: 8952579
Article Info
Journal
Drugs
Abbr.
Drugs
ISSN
0012-6667
Published
1998-08-00
Pages
203-14
Language
English
Region
New Zealand
NLM ID
7600076
Subset
IM
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