Aquaporin 2: Difference between revisions

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== Further reading ==
== Further reading ==
{{refbegin|33em}}
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* {{cite journal | vauthors = Bichet DG | title = Nephrogenic diabetes insipidus | journal = Advances in Chronic Kidney Disease | volume = 13 | issue = 2 | pages = 96–104 | date = April 2006 | pmid = 16580609 | doi = 10.1053/j.ackd.2006.01.006 }}
* {{cite journal | vauthors = Bichet DG | title = Nephrogenic diabetes insipidus | journal = Advances in Chronic Kidney Disease | volume = 13 | issue = 2 | pages = 96–104 | date = April 2006 | pmid = 16580609 | doi = 10.1053/j.ackd.2006.01.006 | pmc = 2124392 }}
* {{cite journal | vauthors = Bouley R, Hasler U, Lu HA, Nunes P, Brown D | title = Bypassing vasopressin receptor signaling pathways in nephrogenic diabetes insipidus | journal = Seminars in Nephrology | volume = 28 | issue = 3 | pages = 266–78 | date = May 2008 | pmid = 18519087 | pmc = 2494582 | doi = 10.1016/j.semnephrol.2008.03.010 }}
* {{cite journal | vauthors = Bouley R, Hasler U, Lu HA, Nunes P, Brown D | title = Bypassing vasopressin receptor signaling pathways in nephrogenic diabetes insipidus | journal = Seminars in Nephrology | volume = 28 | issue = 3 | pages = 266–78 | date = May 2008 | pmid = 18519087 | pmc = 2494582 | doi = 10.1016/j.semnephrol.2008.03.010 }}
* {{cite journal | vauthors = Robben JH, Knoers NV, Deen PM | title = Cell biological aspects of the vasopressin type-2 receptor and aquaporin 2 water channel in nephrogenic diabetes insipidus | journal = American Journal of Physiology. Renal Physiology | volume = 291 | issue = 2 | pages = F257-70 | date = August 2006 | pmid = 16825342 | doi = 10.1152/ajprenal.00491.2005 }}
* {{cite journal | vauthors = Robben JH, Knoers NV, Deen PM | title = Cell biological aspects of the vasopressin type-2 receptor and aquaporin 2 water channel in nephrogenic diabetes insipidus | journal = American Journal of Physiology. Renal Physiology | volume = 291 | issue = 2 | pages = F257-70 | date = August 2006 | pmid = 16825342 | doi = 10.1152/ajprenal.00491.2005 }}

Latest revision as of 18:18, 15 May 2018

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External IDsGeneCards: [1]
Orthologs
SpeciesHumanMouse
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AQP2 is found in the apical cell membranes of the kidney's collecting duct principal cells and in intracellular vesicles located throughout the cell.

Regulation

It is the only aquaporin regulated by vasopressin.[1] The basic job of aquaporin 2 is to reabsorb water from the urine while its being removed from the blood by the kidney. Aquaporin 2 is in kidney epithelial cells and usually lies dormant in intracellular vesicle membranes. When it is needed, vasopressin binds to the cell surface vasopressin receptor thereby activating a signaling pathway that causes the aquaporin 2 containing vesicles to fuse with the plasma membrane, so the aquaporin 2 can be used by the cell.[2] This aquaporin is regulated in two ways by the peptide hormone vasopressin:

  • short-term regulation (minutes) through trafficking of AQP2 vesicles to the apical region where they fuse with the apical plasma membrane
  • long-term regulation (days) through an increase in AQP2 gene expression.

This aquaporin is also regulated by food intake. Fasting reduces expression of this aquaporin independently of vasopressin.

Clinical significance

Mutations in this channel are associated with nephrogenic diabetes insipidus, which can be autosomal dominant or recessive. Mutations in the vasopressin receptor cause a similar X-linked phenotype.

Lithium, which is often used to treat bipolar disorder, can cause acquired diabetes insipidus (characterized by the excretion of large volumes of dilute urine) by decreasing the expression of the AQP2 gene.

The expression of the AQP2 gene is increased during conditions associated with water retention such as pregnancy and congestive heart failure.

See also

References

  1. Dibas AI, Mia AJ, Yorio T (December 1998). "Aquaporins (water channels): role in vasopressin-activated water transport". Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine. 219 (3): 183–99. doi:10.3181/00379727-219-44332. PMID 9824541.
  2. Lodish H, Berk A, Kaiser CA, Krieger M, Scott MP, Bretscher A, Ploegh H, Matsudaira P (2008). Molecular Cell Biology (6th ed.). New York: Freeman. p. 445. ISBN 978-0-7167-7601-7.

Further reading

External links