Literature DB >> 10749700

Silent alpha(2C)-adrenergic receptors enable cold-induced vasoconstriction in cutaneous arteries.

M A Chotani1, S Flavahan, S Mitra, D Daunt, N A Flavahan.   

Abstract

Cold constricts cutaneous blood vessels by increasing the reactivity of smooth muscle alpha(2)-adrenergic receptors (alpha(2)-ARs). Experiments were performed to determine the role of alpha(2)-AR subtypes (alpha(2A)-, alpha(2B)-, alpha(2C)-ARs) in this response. Stimulation of alpha(1)-ARs by phenylephrine or alpha(2)-ARs by UK-14,304 caused constriction of isolated mouse tail arteries mounted in a pressurized myograph system. Compared with proximal arteries, distal arteries were more responsive to alpha(2)-AR activation but less responsive to activation of alpha(1)-ARs. Cold augmented constriction to alpha(2)-AR activation in distal arteries but did not affect the response to alpha(1)-AR stimulation or the level of myogenic tone. Western blot analysis demonstrated expression of alpha(2A)- and alpha(2C)-ARs in tail arteries: expression of alpha(2C)-ARs decreased in distal compared with proximal arteries, whereas expression of the glycosylated form of the alpha(2A)-AR increased in distal arteries. At 37 degrees C, alpha(2)-AR-induced vasoconstriction in distal arteries was inhibited by selective blockade of alpha(2A)-ARs (BRL-44408) but not by selective inhibition of alpha(2B)-ARs (ARC-239) or alpha(2C)-ARs (MK-912). In contrast, during cold exposure (28 degrees C), the augmented response to UK-14,304 was inhibited by the alpha(2C)-AR antagonist MK-912, which selectively abolished cold-induced amplification of the response. These experiments indicate that cold-induced amplification of alpha(2)-ARs is mediated by alpha(2C)-ARs that are normally silent in these cutaneous arteries. Blockade of alpha(2C)-ARs may prove an effective treatment for Raynaud's Phenomenon.

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Year:  2000        PMID: 10749700     DOI: 10.1152/ajpheart.2000.278.4.H1075

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  75 in total

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Authors:  B N Manukhin; V N Ananiev; O V Ananieva; T P Kichikulova
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2.  Changes in systemic arterial pressure response to norepinephrine in rabbits during adaptation to cold.

Authors:  O V Anan'eva; V N Anan'ev; T P Kichikulova; B N Manukhin
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3.  Cyclic AMP-Rap1A signaling activates RhoA to induce α(2c)-adrenoceptor translocation to the cell surface of microvascular smooth muscle cells.

Authors:  Selvi C Jeyaraj; Nicholas T Unger; Ali H Eid; Srabani Mitra; N Paul El-Dahdah; Lawrence A Quilliam; Nicholas A Flavahan; Maqsood A Chotani
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Review 4.  The pathogenesis, diagnosis and treatment of Raynaud phenomenon.

Authors:  Ariane L Herrick
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Review 5.  Local thermal control of the human cutaneous circulation.

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Review 6.  Thermal provocation to evaluate microvascular reactivity in human skin.

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Review 7.  Sympathetic control of reflex cutaneous vasoconstriction in human aging.

Authors:  Jody L Greaney; Lacy M Alexander; W Larry Kenney
Journal:  J Appl Physiol (1985)       Date:  2015-08-13

8.  Efficacy of Rho kinase inhibitor fasudil in secondary Raynaud's phenomenon.

Authors:  Andrea Fava; Peter K Wung; Fredrick M Wigley; Laura K Hummers; Natalie R Daya; Sharon R Ghazarian; Francesco Boin
Journal:  Arthritis Care Res (Hoboken)       Date:  2012-01-24       Impact factor: 4.794

9.  Microbial short chain fatty acid metabolites lower blood pressure via endothelial G protein-coupled receptor 41.

Authors:  Niranjana Natarajan; Daijiro Hori; Sheila Flavahan; Jochen Steppan; Nicholas A Flavahan; Dan E Berkowitz; Jennifer L Pluznick
Journal:  Physiol Genomics       Date:  2016-09-23       Impact factor: 3.107

10.  alpha(2)-adrenoceptor antagonist properties of OPC-28326, a novel selective peripheral vasodilator.

Authors:  K Orito; M Kishi; T Imaizumi; T Nakazawa; A Hashimoto; T Mori; T Kambe
Journal:  Br J Pharmacol       Date:  2001-10       Impact factor: 8.739

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