Literature DB >> 1321848

Hypothesis for the molecular physiology of the Romano-Ward long QT syndrome.

G M Vincent.   

Abstract

OBJECTIVES: The aim of this review was to develop a hypothesis for the molecular pathophysiology of the inherited long QT syndrome.
BACKGROUND: The pathophysiology of the long QT syndrome is unknown. An abnormality of the sympathetic nervous system has been suspected because of the slow heart rates observed and the common precipitation of syncope by adrenergic stimulation (exercise or fright). The characteristic QT prolongation and torsade de pointes arrhythmias suggest a potassium ion (K+) abnormality. Recent findings from molecular biology and genetic linkage analysis studies provide a basis for a new hypothesis that unifies these clinical manifestations.
METHODS: Several recent studies regarding ras proteins were evaluated and correlated. Associations between ras proteins, G protein function and the known features of the long QT syndrome were identified. Based on these associations, a hypothesis for the molecular pathophysiology was developed.
RESULTS: The Romano-Ward long QT phenotype is linked to the Harvey ras-1 gene on chromosome 11 in many, but not all, families. Ras genes exhibit G protein properties, acting as intermediaries in transmembrane signaling pathways including K+ and beta-adrenergic channels. Mutation of ras p21 protein significantly reduces the G protein function of the ras protein, thereby interfering with signal transduction.
CONCLUSIONS: These various studies suggest that a mutation of the disease gene (not necessarily H-ras-1) alters the G protein function of the gene and interferes with delayed rectifier K+ and beta-receptor channel signaling. This hypothesis appears to explain and unify the several characteristic features of the long QT syndrome.

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Year:  1992        PMID: 1321848     DOI: 10.1016/0735-1097(92)90123-5

Source DB:  PubMed          Journal:  J Am Coll Cardiol        ISSN: 0735-1097            Impact factor:   24.094


  7 in total

1.  No evidence for linkage of long QT syndrome and chromosome 11p15.5 markers in a Chinese family: evidence for genetic heterogeneity.

Authors:  Y L Ko; S A Chen; T K Tang; J L Lin; C E Chiang; J J Chen; M S Teng; M S Chang; W P Lien; C W Wu
Journal:  Hum Genet       Date:  1994-10       Impact factor: 4.132

2.  Analysis of HLA and disease susceptibility: chromosome 6 genes and sex influence long-QT phenotype.

Authors:  L R Weitkamp; A J Moss; R A Lewis; W J Hall; J W MacCluer; P J Schwartz; E H Locati; D Tzivoni; G M Vincent; J L Robinson
Journal:  Am J Hum Genet       Date:  1994-12       Impact factor: 11.025

3.  Prenatal findings in patients with prolonged QT interval in the neonatal period.

Authors:  M Hofbeck; H Ulmer; E Beinder; E Sieber; H Singer
Journal:  Heart       Date:  1997-03       Impact factor: 5.994

4.  Molecular analysis at the Harvey Ras-1 gene in patients with long QT syndrome.

Authors:  E Schulze-Bahr; W Haverkamp; H Wiebusch; H Schulte; M Hördt; M Borggrefe; G Breithardt; G Assmann; H Funke
Journal:  J Mol Med (Berl)       Date:  1995-11       Impact factor: 4.599

5.  Relation between bradycardia dependent long QT syndrome and QT prolongation by disopyramide in humans.

Authors:  H Furushima; S Niwano; M Chinushi; K Ohhira; A Abe; Y Aizawa
Journal:  Heart       Date:  1998-01       Impact factor: 5.994

Review 6.  Molecular genetic aspects of the Romano-Ward long QT syndrome.

Authors:  J A Towbin
Journal:  Tex Heart Inst J       Date:  1994

7.  Drug-sensitized zebrafish screen identifies multiple genes, including GINS3, as regulators of myocardial repolarization.

Authors:  David J Milan; Albert M Kim; Jeffrey R Winterfield; Ian L Jones; Arne Pfeufer; Serena Sanna; Dan E Arking; Adam H Amsterdam; Khaled M Sabeh; John D Mably; David S Rosenbaum; Randall T Peterson; Aravinda Chakravarti; Stefan Kääb; Dan M Roden; Calum A MacRae
Journal:  Circulation       Date:  2009-08-03       Impact factor: 29.690

  7 in total

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