Prostaglandin E2 receptors in the heart are coupled to inhibition of adenylyl cyclase via a pertussis toxin sensitive G protein

1992 ◽  
Vol 70 (1) ◽  
pp. 77-84 ◽  
Author(s):  
Richard W. Lerner ◽  
Gary D. Lopaschuk ◽  
Peter M. Olley

In previous studies we have identified and isolated a prostaglandin E2 (PGE2) receptor from cardiac sarcolemmal (SL) membranes. Binding of PGE2 to this receptor in permeabilized SL vesicles inhibits adenylyl cyclase activity. The purpose of this study was to determine if the cardiac PGE2 receptor is coupled to adenylyl cyclase via a pertussis toxin sensitive guanine nucleotide binding inhibitory (Gi) protein. Incubation of permeabilized SL vesicles in the presence of 100 μM 5′-guanylamidiophosphate, Gpp(NH)p, a nonhydrolyzable analogue of GTP, resulted in a shift in [3H]PGE2 binding from two sites, one of high affinity (KD = 0.018 ± 0.003 nM) comprising 7.7% of the total available binding sites and one of lower affinity (KD = 1.9 ± 0.7 nM) to one site of intermediate affinity (KD = 0.52 ± 0.01 nM) without a significant change in the total number of PGE2 binding sites. A shift from two binding sites to one binding site in the presence of Gpp(NH)p was also observed for [3H]dihydroalprenolol binding to permeabilized cardiac SL. When permeabilized SL vesicles were pretreated with activated pertussis toxin, ADP-ribosylation of a 40- to 41-kDa protein corresponding to Gi was observed. ADP-ribosylation of SL resulted in a shift in [3H]PGE2 binding to one site of intermediate affinity without significantly changing the number of binding sites. In alamethicin permeabilized SL vesicles, 1 nM PGE2 significantly decreased (30%) adenylyl cyclase activity. Pretreatment with activated pertussis toxin overcame the inhibitory effects of PGE2. These results demonstrate that the cardiac PGE2 receptor is coupled to adenylyl cyclase via a pertussis toxin sensitive Gi protein. They also demonstrate that the interaction of this Gi protein with the PGE2 receptor is important in the regulation of PGE2 binding to its receptor.Key words: prostaglandin E2, sarcolemma, heart, adenylyl cyclase, G protein.

1992 ◽  
Vol 58 (4) ◽  
pp. 1409-1419 ◽  
Author(s):  
Richard F. Cowburn ◽  
Cora O'Neill ◽  
Rivka Ravid ◽  
Irina Alafuzoff ◽  
Bengt Winblad ◽  
...  

1990 ◽  
Vol 144 (3) ◽  
pp. 448-456 ◽  
Author(s):  
Masahiro Kawabata ◽  
Hiroshi Yoshikura ◽  
Keizo Horio ◽  
Kenji Fujiwara ◽  
Aikichi Iwamoto

1995 ◽  
Vol 73 (7) ◽  
pp. 1030-1036 ◽  
Author(s):  
Ranjev Bhogal ◽  
David M. Smith ◽  
Ali A. Owji ◽  
Stephen R. Bloom

Islet amyloid polypeptide (IAPP) and calcitonin gene related peptide (CGRP) share a 47% sequence homology. IAPP can interact with adenylyl cyclase coupled CGRP receptors. We have examined [125I]IAPP binding in mouse, pig, and guinea pig lung membranes in competition with IAPP, CGRP, and CGRP(8–37). Three types of site were shown by order of potency: (i) mouse, IAPP > CGRP(8–37) [Formula: see text] CGRP; (ii) pig, CGRP > IAPP > CGRP(8–37); and (iii) guinea pig, CGRP = IAPP = CGRP(8–37). Chemical cross-linking of [125I]IAPP and [125I]CGRP binding sites in lung demonstrated that both sites had similar molecular weights in any one species but differed across species, i.e., mouse Mr = 70 000 and 98 000; pig Mr = 68 000, 56 000, and 47 000; and guinea pig Mr = 106 000 and 56 000. Adenylyl cyclase activity was stimulated by forskolin and AlCl3–NaF in rat, mouse, pig, and guinea pig membranes. Only in mouse and pig were CGRP and IAPP able to stimulate adenylyl cyclase activity. In mouse lung CGRP and IAPP stimulated adenylyl cyclase activity with EC50 values of 642 ± 222 nM (n = 4) and 325 ± 115 nM (n = 4), respectively. In pig lung membranes EC50 values were 5.7 ± 0.3 nM (n = 4) for CGRP and 1230 ± 1130 nM (n = 4) for IAPP. Thus IAPP either did not stimulate adenylyl cyclase activity in these lung membranes or did so with a low potency.Key words: islet amyloid polypeptide, amylin, calcitonin gene related peptide, lung, receptors.


Alcohol ◽  
1998 ◽  
Vol 16 (4) ◽  
pp. 285-293 ◽  
Author(s):  
David Wenrich ◽  
Birgit Lichtenberg-Kraag ◽  
Hans Rommelspacher

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