scholarly journals Two Types of Novel Allosteric Modulators Activate β2-AR Signaling, a G Protein-coupled Receptor Involved in Airway Smooth Muscle Relaxation and Asthma♦

2014 ◽  
Vol 289 (52) ◽  
pp. 35685-35685
2004 ◽  
Vol 286 (2) ◽  
pp. L312-L319 ◽  
Author(s):  
J. K. L. Walker ◽  
R. R. Gainetdinov ◽  
D. S. Feldman ◽  
P. K. McFawn ◽  
M. G. Caron ◽  
...  

G protein-coupled receptors (GPCRs) transduce extracellular signals into intracellular events. The waning responsiveness of GPCRs in the face of persistent agonist stimulation, or desensitization, is a necessary event that ensures physiological homeostasis. GPCR kinases (GRKs) are important regulators of GPCR desensitization. GRK5, one member of the GRK family, desensitizes central M2 muscarinic receptors in mice. We questioned whether GRK5 might also be an important regulator of peripheral muscarinic receptor responsiveness in the cardiopulmonary system. Specifically, we wanted to determine the role of GRK5 in regulating muscarinic receptor-mediated control of airway smooth muscle tone or regulation of cholinergic-induced bradycardia. Tracheal pressure, heart rate, and tracheal smooth muscle tension were measured in mice having a targeted deletion of the GRK5 gene ( GRK5- /-) and littermate wild-type (WT) control mice. Both in vivo and in vitro results showed that the airway contractile response to a muscarinic receptor agonist was not different between GRK5- /- and WT mice. However, the relaxation component of bilateral vagal stimulation and the airway smooth muscle relaxation resulting from β2-adrenergic receptor activation were diminished in GRK5- /- mice. These data suggest that M2 muscarinic receptor-mediated opposition of airway smooth muscle relaxation is regulated by GRK5 and is, therefore, excessive in GRK5- /- mice. In addition, this study shows that GRK5 regulates pulmonary responses in a tissue- and receptor-specific manner but does not regulate peripheral cardiac muscarinic receptors. GRK5 regulation of airway responses may have implications in obstructive airway diseases such as asthma or chronic obstructive pulmonary disease.


2021 ◽  
Vol 64 (1) ◽  
pp. 59-68
Author(s):  
Amy D. Wu ◽  
William Dan ◽  
Yi Zhang ◽  
Shruti Vemaraju ◽  
Brian A. Upton ◽  
...  

1999 ◽  
Vol 276 (4) ◽  
pp. R1214-R1221 ◽  
Author(s):  
Julia K. L. Walker ◽  
Karsten Peppel ◽  
Robert J. Lefkowitz ◽  
Marc G. Caron ◽  
John T. Fisher

Contraction and relaxation of airway smooth muscles is mediated, in part, by G protein-coupled receptors (GPCRs) and dysfunction of these receptors has been implicated in asthma. Phosphorylation of GPCRs, by G protein-coupled receptor kinase (GRK), is an important mechanism involved in the dampening of GPCR signaling. To determine whether this mechanism might play a role in airway smooth muscle physiology, we examined the airway pressure time index and heart rate (HR) responses to intravenous administration of the cholinergic agonist methacholine (MCh) in genetically altered mice lacking one copy of GRK2 (GRK2 +/−), homozygous GRK3 knockout (GRK3 −/−), and wild-type littermates. (GRK2 −/− mice die in utero.) GRK3 −/− mice demonstrated a significant enhancement in the airway response to 100 and 250 μg/kg doses of MCh compared with wild-type and GRK2 +/− mice. GRK3 −/− mice also displayed an enhanced sensitivity of the airway smooth muscle response to MCh. In addition, GRK3 −/− mice displayed an altered HR recovery from MCh-induced bradycardia. Although direct stimulation of cardiac muscarinic receptors measured as vagal stimulation-induced bradycardia was similar in GRK3 −/− and wild-type mice, the baroreflex increase in HR associated with sodium nitroprusside-induced hypotension was significantly greater in GRK3 −/− than wild-type mice. Therefore, these data demonstrate that in the mouse, GRK3 may be involved in modulating the cholinergic response of airway smooth muscle and in regulating the chronotropic component of the baroreceptor reflex.


2015 ◽  
Vol 29 (10) ◽  
pp. 4227-4235 ◽  
Author(s):  
Tonio Pera ◽  
Akhil Hegde ◽  
Deepak A. Deshpande ◽  
Sarah J. Morgan ◽  
Brian C. Tiegs ◽  
...  

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