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Published on: June 9, 2017
Differential activation of G-proteins by mu-opioid receptor agonists
Zuzana Saidak1, Katherine Blake-Palmer, Debbie L Hay
1The Liggins Institute, University of Auckland, Auckland, New Zealand.
Abstract:
We investigated the ability of the activated mu-opioid receptor (MOR) to differentiate between myristoylated G(alphai1) and G(alphaoA) type G(alpha) proteins, and the maximal activity of a range of synthetic and endogenous agonists to activate each G(alpha) protein. Membranes from HEK293 cells stably expressing transfected MOR were chaotrope extracted to denature endogenous G-proteins and reconstituted with specific purified G-proteins. The G(alpha) subunits were generated in bacteria and were demonstrated to be recognised equivalently to bovine brain purified G(alpha) protein by CB(1) cannabinoid receptors. The ability of agonists to catalyse the MOR-dependent GDP/[(35)S]GTP(gamma)S exchange was then compared for G(alphai1) and G(alphaoA). Activation of MOR by DAMGO produced a high-affinity saturable interaction for G(alphaoA) (K(m)=20+/-1 nM) but a low-affinity interaction with G(alphai1) (K(m)=116+/-12 nM). DAMGO, met-enkephalin and leucine-enkephalin displayed maximal G(alpha) activation among the agonists evaluated. Endomorphins 1 and 2, methadone and beta-endorphin activated both G(alpha) to more than 75% of the maximal response, whereas fentanyl partially activated both G-proteins. Buprenorphine and morphine demonstrated a statistically significant difference between the maximal activities between G(alphai1) and G(alphaoA). Interestingly, DAMGO, morphine, endomorphins 1 and 2, displayed significant differences in the potencies for the activation of the two G(alpha). Differences in maximal activity and potency, for G(alphai1) versus G(alphaoA), are both indicative of agonist selective activation of G-proteins in response to MOR activation. These findings may provide a starting point for the design of drugs that demonstrate greater selectivity between these two G-proteins and therefore produce a more limited range of effects.
Insights
The mu-opioid receptor (MOR) distinguishes between Gαi1 and GαoA proteins, with agonists showing varied potency and maximal activity. This selective activation offers a basis for designing targeted pain relief medications.
Area of Science:
- Pharmacology
- Molecular Biology
- Neuroscience
Background:
- The mu-opioid receptor (MOR) is a key target for pain management.
- Understanding MOR's interaction with different Gα proteins is crucial for drug development.
- Gαi1 and GαoA are distinct G protein subtypes involved in MOR signaling.
Purpose of the Study:
- To investigate MOR's differential activation of Gαi1 and GαoA.
- To compare the maximal activity of various agonists on these Gα proteins.
- To explore the potential for designing selective MOR agonists.
Main Methods:
- HEK293 cells expressing MOR were used.
- Chaotropic extraction removed endogenous G proteins.
- Purified Gαi1 and GαoA were reconstituted for agonist activation assays.
- GDP/[(35)S]GTPγS exchange measured G protein activation.
Main Results:
- DAMGO showed higher affinity for GαoA (Km=20 nM) than Gαi1 (Km=116 nM).
- DAMGO, met-enkephalin, and leucine-enkephalin achieved maximal Gα activation.
- Buprenorphine and morphine exhibited significant differences in maximal activity between Gαi1 and GαoA.
- Several agonists displayed significant potency differences for activating Gαi1 versus GαoA.
Conclusions:
- MOR demonstrates selectivity in activating Gαi1 and GαoA proteins.
- Agonist-specific differences in potency and maximal activity were observed.
- These findings support the development of drugs with improved G protein selectivity for targeted effects.
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