Showing posts with label hypertension. Show all posts
Showing posts with label hypertension. Show all posts

Wednesday, August 14, 2013

Chloride: Queen of the Electrolytes


In June's edition of JASN Jacques et al. highlighted the emerging importance of the role of chloride in the pathogenesis of hypertension. Their group developed a mouse model that over expressed the protein pendrin in the aldosterone-sensitive region of the distal tubule. These mice developed hypertension that was attributed to increased NaCl absorption driven by over expression and increased activity of the pendrin chloride exchanger.
Pendrin was first described as a chloride channel in the kidney in the early 2000s. Pendrin is a chloride-bicarbonate exchange protein that facilitates the electroneutral movement of chloride to the intracellular space and bicarbonate to the extracellular space or urinary space. This channel is also found in the thyroid and inner ear and is the gene that causes Pendreds syndrom.
It is now widely accepted that the pressor effects of salt (NaCl) are dependent on Na as the major determinant of intravascular volume and thus hypertension. It has also been demonstrated that for Na to mediate a hypertensive effect, it needs to be in the form of NaCl (Berghoff and Geraci, Intern Med J 56:395-397). In their study, Berghoff and Geraci showed that subjects on a high NaCl diet but not on a high NaBicarbonate diet developed hypertension. These experiments have been reproduced in human and animal models. Interestingly, hypertensive and normotensive subjects switched from a NaCl diet to an equimolar NaBicarbonate diet experienced a decrease in blood pressure.
Pendrin is normally found in the type B Intercalated cells of the aldosterone region of the nephron. Recently published studies by the same group suggest that pendrin can also work in tandem with the Na-dependent chloride/bicarbonate exchanger (this is a different channel to pendrin and is also found in the CCD) resulting in electroneutral NaCl absorption and that this process is thiazide sensitive.

In JASNs June edition, the Jacques group showed that pendrin mediates chloride absorption distally and that this is the driving force for Na absorption distally either through the ENaC and/or Ndcbe channels. The significance of their findings are that 1) chloride is required for NaCl absorption in ‘salt sensitive’ hypertension and that 2) pendrin is the channel that facilitates the absorption of chloride.
On the basis of this paper and other papers showing similar findings with regard to Pendrin's role in NaCl balance the authors suggest their work solidifies the concept of chloride-sensitive hypertension.
It must be remembered that these studies don’t dispute that Na is primary in maintaining blood volume and driving hypertension. However, chloride absorption is a necessary requirement for the absorption of Na in the setting of a salt load causing hypertension. Thus, Chloride might be the queen and Na the king of extracellular solutes!
See these previous posts on Pendrin function in the kidney.

Posted by Andrew Malone

Wednesday, June 26, 2013

Electrolyte Channels and Aldosteronism

Over the past few years, it has become apparent that hyperaldosteronism is far commoner than was once suspected and screening of unselected patients with hypertension reveals that about 5-10% of patients have primary hyperaldosteronism. In patients with resistant hypertension, that percentage increases to 15-20%. About 30% of hyperaldosteronism is caused by aldosterone producing adrenal adenomas (APA). Most of the rest is related to bilateral adrenal hyperplasia with less than 5% of cases being familial. The secretion of aldosterone in adrenal cells is dependent on the intracellular calcium concentration and increases in response to higher plasma calcium. Entry of calcium into the cells is in turn dependent on voltage-gated membrane calcium channels (which allow calcium influx when the cells are depolarized) and a calcium ATPase which removes calcium from the cells. Under normal circumstances, adrenal cells are hyperpolarized thus keeping these calcium channels closed. Cell polarization is maintained by a combination of the action of the Na-K-ATPase (which exchanges 3 intracellular Na for 2 extracellular K) and membrane K channels lead to K loss from the cells.

Angiotensin II inhibits the Na-K-ATPase leading to cell depolarization, calcium influx into cells and aldosterone secretion. Similar effects are seen when cells are treated with oubain, a specific Na-K-ATPase inhibitor that also leads to hyperaldosteronism.

In 2011 in a seminal paper in Science, Choi et al reported finding somatic mutations in KCNJ5, a membrane potassium channel in patients with APA. These were identified by sequencing tissue from the tumors and comparing with the surrounding tissue. Subsequently, it has been found that about 30-40% of patients with APA have somatic mutations in KCNJ5. These mutations are believed to reduce the ion selectivity of the channels, allowing Na to move into the cell and reduce the resting membrane potential. A number of families have been identified with KCNJ5 mutations resulting in bilateral hyperplasia - now called Familial Hyperaldosteronism type III.

Recently, a paper was published in Nature Genetics which attempted to determine if there were other somatic mutations in patients with APA. In this study, they took KCNJ5-normal patients and sequenced the exons of the tumors and the surrounding tissue. There were very few mutations identified but 5/9 patients had mutations in ATP1A1, a component of the Na-K-ATPase or ATP2B3, a component of the calcium ATPase that removes calcium from adrenal cells. Follow-up targeted sequencing of 300 patients with APA revealed that about 7% had mutations in one of these two genes. Patients with these mutations had higher aldosterone levels, lower minimum potassium levels and higher systolic BP, all indicators of more severe disease. Notably, no families have been identified with these mutations. In vitro studies revealed that cells with these mutations have very low membrane potentials and it is speculated that if this was a germline mutation, it would likely not be compatible with life. This is a fascinating insight into how very small changes in electrolyte channels can have far-reaching consequences and shows a great progression from exome sequencing to the bench and to clinical investigation.



The images in this post are taken from the recent paper in Nature Genetics. One would wonder if somatic mutations explain some of the missing heritability that were are seeing in genetic studies of common diseases. See this previous post by Lisa on the genetic causes of hypertension.