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MeSH Review

Sweat Glands

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Disease relevance of Sweat Glands


Psychiatry related information on Sweat Glands


High impact information on Sweat Glands


Chemical compound and disease context of Sweat Glands


Biological context of Sweat Glands


Anatomical context of Sweat Glands


Associations of Sweat Glands with chemical compounds


Gene context of Sweat Glands


Analytical, diagnostic and therapeutic context of Sweat Glands


  1. Cyclic AMP-dependent protein kinase opens chloride channels in normal but not cystic fibrosis airway epithelium. Li, M., McCann, J.D., Liedtke, C.M., Nairn, A.C., Greengard, P., Welsh, M.J. Nature (1988) [Pubmed]
  2. Induction of sweat glands by epidermal growth factor in murine X-linked anhidrotic ectodermal dysplasia. Blecher, S.R., Kapalanga, J., Lalonde, D. Nature (1990) [Pubmed]
  3. Diazepam-induced coma with bullae and eccrine sweat gland necrosis. Varma, A.J., Fisher, B.K., Sarin, M.K. Arch. Intern. Med. (1977) [Pubmed]
  4. Ectodermal dysplasia in females and inversion of chromosome 9. Fuenmayor, H.M., Roldan-París, L., Bermúdez, H. J. Med. Genet. (1981) [Pubmed]
  5. Gene delivery to human sweat glands: a model for cystic fibrosis gene therapy. Lee, H., Koehler, D.R., Pang, C.Y., Levine, R.H., Ng, P., Palmer, D.J., Quinton, P.M., Hu, J. Gene Ther. (2005) [Pubmed]
  6. The responsiveness of human eccrine sweat glands to choline and carbachol. Application to the study of peripheral cholinergic functioning in Alzheimer-type dementia. Lamb, K., Bradshaw, C.M., Szabadi, E. Eur. J. Clin. Pharmacol. (1983) [Pubmed]
  7. Botulinum toxin A for axillary hyperhidrosis (excessive sweating). Heckmann, M., Ceballos-Baumann, A.O., Plewig, G. N. Engl. J. Med. (2001) [Pubmed]
  8. Mutations in the human homologue of mouse dl cause autosomal recessive and dominant hypohidrotic ectodermal dysplasia. Monreal, A.W., Ferguson, B.M., Headon, D.J., Street, S.L., Overbeek, P.A., Zonana, J. Nat. Genet. (1999) [Pubmed]
  9. X-linked anhidrotic (hypohidrotic) ectodermal dysplasia is caused by mutation in a novel transmembrane protein. Kere, J., Srivastava, A.K., Montonen, O., Zonana, J., Thomas, N., Ferguson, B., Munoz, F., Morgan, D., Clarke, A., Baybayan, P., Chen, E.Y., Ezer, S., Saarialho-Kere, U., de la Chapelle, A., Schlessinger, D. Nat. Genet. (1996) [Pubmed]
  10. Mislocalization of delta F508 CFTR in cystic fibrosis sweat gland. Kartner, N., Augustinas, O., Jensen, T.J., Naismith, A.L., Riordan, J.R. Nat. Genet. (1992) [Pubmed]
  11. Higher bioelectric potentials due to decreased chloride absorption in the sweat glands of patients with cystic fibrosis. Quinton, P.M., Bijman, J. N. Engl. J. Med. (1983) [Pubmed]
  12. Epidermal growth factor, estrogen, and progesterone receptor expression in primary sweat gland carcinomas and primary and metastatic mammary carcinomas. Busam, K.J., Tan, L.K., Granter, S.R., Kohler, S., Junkins-Hopkins, J., Berwick, M., Rosen, P.P. Mod. Pathol. (1999) [Pubmed]
  13. The effect of nicardipine, a calcium channel blocker, on the sweat test in adult patients with cystic fibrosis. Roberts, C.M., Butland, R.J., Saunders, C., Greenland, J.H., Hodson, M.E. Respiratory medicine. (1989) [Pubmed]
  14. Transepidermal water loss and sweat gland response in lamellar ichthyosis before and during treatment with etretinate: report of three cases. Kiistala, R., Lauharanta, J., Kanerva, L. Acta Derm. Venereol. (1982) [Pubmed]
  15. Localized subepidermal bullae after intravenous phenobarbital. Haroun, M., Jakubovic, H.R., Nethercott, J.R. Cutis; cutaneous medicine for the practitioner. (1987) [Pubmed]
  16. Immunohistochemical study of serotonin in lesions of chronic eczema. Huang, J., Li, G., Xiang, J., Yin, D., Chi, R. International journal of dermatology. (2004) [Pubmed]
  17. Reduced epidermal growth factor receptor expression in hypohidrotic ectodermal dysplasia and Tabby mice. Vargas, G.A., Fantino, E., George-Nascimento, C., Gargus, J.J., Haigler, H.T. J. Clin. Invest. (1996) [Pubmed]
  18. Autoradiographic localization of endothelin-1 binding sites in porcine skin. Zhao, Y.D., Springall, D.R., Wharton, J., Polak, J.M. J. Invest. Dermatol. (1991) [Pubmed]
  19. Lipogenesis by isolated human apocrine sweat glands: testosterone has no effect during long-term organ maintenance. Barth, J.H., Ridden, J., Philpott, M.P., Greenall, M.J., Kealey, T. J. Invest. Dermatol. (1989) [Pubmed]
  20. The activity of HMG-CoA reductase and acetyl-CoA carboxylase in human apocrine sweat glands, sebaceous glands, and hair follicles is regulated by phosphorylation and by exogenous cholesterol. Smythe, C.D., Greenall, M., Kealey, T. J. Invest. Dermatol. (1998) [Pubmed]
  21. Freeze fracture morphology of the tight junctions of the eccrine sweat gland from patients with cystic fibrosis. Briggman, J.V., Bank, H., Graves, J.S., Spicer, S.S. Lab. Invest. (1983) [Pubmed]
  22. Cell-specific expression of epithelial sodium channel alpha, beta, and gamma subunits in aldosterone-responsive epithelia from the rat: localization by in situ hybridization and immunocytochemistry. Duc, C., Farman, N., Canessa, C.M., Bonvalet, J.P., Rossier, B.C. J. Cell Biol. (1994) [Pubmed]
  23. Neonatal 6-hydroxydopamine treatment eliminates cholinergic sympathetic innervation and induces sensory sprouting in rat sweat glands. Yodlowski, M.L., Fredieu, J.R., Landis, S.C. J. Neurosci. (1984) [Pubmed]
  24. Development of choline acetyltransferase (CAT) in the sympathetic innervation of rat sweat glands. Leblanc, G., Landis, S. J. Neurosci. (1986) [Pubmed]
  25. Expression of the cystic fibrosis gene in human development. Harris, A., Chalkley, G., Goodman, S., Coleman, L. Development (1991) [Pubmed]
  26. A cystic fibrosis phenotype in cells cultured from sweat gland secretory coil. Altered kinetics of 36Cl efflux. Wood, L.C., Neufeld, E.F. J. Biol. Chem. (1990) [Pubmed]
  27. Noradrenergic regulation of cholinergic differentiation. Habecker, B.A., Landis, S.C. Science (1994) [Pubmed]
  28. Defective beta adrenergic response of cystic fibrosis sweat glands in vivo and in vitro. Sato, K., Sato, F. J. Clin. Invest. (1984) [Pubmed]
  29. Collateral reinnervation of sweat glands. Kennedy, W.R., Sakuta, M. Ann. Neurol. (1984) [Pubmed]
  30. Functional requirement of aquaporin-5 in plasma membranes of sweat glands. Nejsum, L.N., Kwon, T.H., Jensen, U.B., Fumagalli, O., Frøkiaer, J., Krane, C.M., Menon, A.G., King, L.S., Agre, P.C., Nielsen, S. Proc. Natl. Acad. Sci. U.S.A. (2002) [Pubmed]
  31. TAB2, TRAF6 and TAK1 are involved in NF-kappaB activation induced by the TNF-receptor, Edar and its adaptator Edaradd. Morlon, A., Munnich, A., Smahi, A. Hum. Mol. Genet. (2005) [Pubmed]
  32. Edar/Eda interactions regulate enamel knot formation in tooth morphogenesis. Tucker, A.S., Headon, D.J., Schneider, P., Ferguson, B.M., Overbeek, P., Tschopp, J., Sharpe, P.T. Development (2000) [Pubmed]
  33. Characterization of a target-derived neuronal cholinergic differentiation factor. Rao, M.S., Landis, S.C. Neuron (1990) [Pubmed]
  34. Quantitation of the sweating deficiency in diabetes mellitus. Kennedy, W.R., Sakuta, M., Sutherland, D., Goetz, F.C. Ann. Neurol. (1984) [Pubmed]
  35. Sudomotor function in autonomic failure. Baser, S.M., Meer, J., Polinsky, R.J., Hallett, M. Neurology (1991) [Pubmed]
  36. Pharmacological responsiveness of sweat glands in anxious patients and healthy volunteers. Maple, S., Bradshaw, C.M., Szabadi, E. The British journal of psychiatry : the journal of mental science. (1982) [Pubmed]
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