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Bartter syndrome.

Abstract

PURPOSE OF REVIEW: This review describes recent advances in our understanding of the genetic heterogeneity, pathophysiology and treatment of Bartter syndrome, a group of autosomal recessive disorders that are characterized by markedly reduced or absent salt transport by the thick ascending limb of Henle. Consequently, individuals with Bartter syndrome exhibit renal salt wasting and lowered blood pressure, hypokalemic metabolic alkalosis and hypercalciuria with a variable risk of renal stones. RECENT FINDINGS: Previously, three genes (SLC12A2, the sodium-potassium-chloride co-transporter; KCNJ1, the ROMK potassium ion channel; ClC-Kb, the basolateral chloride ion channel) had been identified as causing antenatal and 'classic' Bartter syndrome. Two additional genes have now been identified. Barttin is a beta-subunit that is required for the trafficking of CLC-K (both ClC-Ka and ClC-Kb) channels to the plasma membrane in both the thick ascending limb and the marginal cells in the scala media of the inner ear that secrete potassium ion-rich endolymph. Loss-of-function mutations in barttin thus cause Bartter syndrome with sensorineural deafness. In addition, severe gain-of-function mutations in the extracellular calcium ion-sensing receptor can result in a Bartter phenotype because activation of this G protein-coupled receptor inhibits salt transport in the thick ascending limb (a furosemide-like effect). SUMMARY: Five genes have been identified as causing Bartter syndrome (types I-V), with the unifying pathophysiology being the loss of salt transport by the thick ascending limb. Phenotypic differences in Bartter types I-V relate to the specific physiological roles of the individual genes in the kidney and other organ systems.

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BibTeXRIS

Steven C Hebert. 2003. Bartter syndrome.. https://doi.org/10.1097/00041552-200309000-00008

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Threading through the mizmaze of Bartter syndrome.

The story, described here in detail, started in 1962 with the publication of a seminal paper by Frederic Bartter et al. in the December issue of the American Journal of Medicine. The authors reported two pediatric patients with hitherto undescribed features, namely growth and developmental delay associated with hypokalemic alkalosis and normal blood pressure despite high aldosterone production. It soon became clear that this condition was not so exceptional. The syndrome named after Bartter was actually identified in children as well as in adults, females as well as males and in all five continents. It took almost four decades to clarify the exact nature of the disease. Bartter disease is an autosomal recessive disorder with four genotypes and mainly two phenotypes. Moreover, there are acquired secondary forms of Bartter syndrome as well as pseudo-Bartter syndromes. The history demonstrates the power of genetics but also illustrates the fundamental and irreplaceable contributions from nephrologists and renal physiologists.

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