Aquaporins: translating bench research to human disease
Affiliation:
1. Departments of Medicine and Physiology, Cardiovascular Research Institute, University of California, San Francisco, CA 94143, USA
Abstract
SUMMARYThere is considerable potential for translating knowledge of aquaporin structure, function and physiology to the clinic. One area is in aquaporin-based diagnostics. The discovery of AQP4 autoantibodies as a marker of the neuromyelitis optica form of multiple sclerosis has allowed precise diagnosis of this disease. Other aquaporin-based diagnostics are possible. Another area is in aquaporin-based genetics. Genetic diseases caused by loss-of-function mutations in aquaporins include nephrogenic diabetes insipidus and cataracts, and functionally significant aquaporin polymorphisms are beginning to be explored. Perhaps of greatest translational potential is aquaporin-based therapeutics. Information largely from aquaporin knockout mice has implicated key roles of aquaporin-facilitated water transport in transepithelial fluid transport (urinary concentrating, gland fluid secretion), water movement into and out of the brain, cell migration(angiogenesis, tumor metastasis, wound healing) and neural function (sensory signaling, seizures). A subset of aquaporins that transport both water and glycerol, the `aquaglyceroporins', regulate glycerol content in epidermal, fat and other tissues, and are involved in skin hydration, cell proliferation,carcinogenesis and fat metabolism. Aquaporin-based modulator drugs are predicted to be of broad potential utility in the treatment of edematous states, cancer, obesity, wound healing, epilepsy and glaucoma. These exciting possibilities and their associated challenges are reviewed.
Publisher
The Company of Biologists
Subject
Insect Science,Molecular Biology,Animal Science and Zoology,Aquatic Science,Physiology,Ecology, Evolution, Behavior and Systematics
Reference103 articles.
1. Amiry-Moghaddam, M., Lindland, H., Zelenin, S., Roberg, B. A.,Gundersen, B. B., Petersen, P., Rinvik, E., Torgner, I. A. and Ottersen, O. P. (2005). Brain mitochondria contain aquaporin water channels: evidence for the expression of a short AQP9 isoform in the inner mitochondrial membrane. FASEB J.19,1459-1467. 2. Auguste, K. I., Jin, S., Uchida, K., Yan, D., Manley, G. T.,Papadopoulos, M. C. and Verkman, A. S. (2007). Greatly impaired migration of implanted aquaporin-4-deficient astroglial cells in mouse brain toward a site of injury. FASEB J.21,108-116. 3. Bai, C., Fukuda, N., Song, Y., Ma, T., Matthay, M. A. and Verkman, A. S. (1999). Lung fluid transport in aquaporin-1 and aquaporin-4 knockout mice. J. Clin. Invest.103, 555-561. 4. Berry, V., Francis, P., Kaushal, S., Moore, A. and Bhattacharya,S. (2000). Missense mutations in MIP underlie autosomal dominant `polymorphic' and lamellar cataracts linked to 12q. Nat. Genet.25,15-17. 5. Bichet, D. G. (2006). Hereditary polyuric disorders: new concepts and differential diagnosis. Semin. Nephrol.26,224-233.
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