Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation
Opioid analgesics such as morphine have indispensable roles in analgesia. However, morphine use can elicit side effects such as respiratory depression and constipation. It has been reported that G protein-biased agonists as substitutes for classic opioid agonists can alleviate (or even eliminate) th...
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doaj-43a38058f06b421a8476dd09c063f8be2020-11-25T03:28:47ZengMDPI AGInternational Journal of Molecular Sciences1661-65961422-00672020-07-01214699469910.3390/ijms21134699Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon ActivationZhennan Zhao0Tingting Huang1Jiazhong Li2School of Pharmacy, Lanzhou University, Lanzhou 730000, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou 730000, ChinaSchool of Pharmacy, Lanzhou University, Lanzhou 730000, ChinaOpioid analgesics such as morphine have indispensable roles in analgesia. However, morphine use can elicit side effects such as respiratory depression and constipation. It has been reported that G protein-biased agonists as substitutes for classic opioid agonists can alleviate (or even eliminate) these side effects. The compounds PZM21 and TRV130 could be such alternatives. Nevertheless, there are controversies regarding the efficacy and G protein-biased ability of PZM21. To demonstrate a rationale for the reduced biasing agonism of PZM21 compared with that of TRV130 at the molecular level, we undertook a long-term molecular dynamics simulation of the μ-opioid receptor (MOR) upon the binding of three ligands: morphine, TRV130, and PZM21. We found that the delayed movement of the W293<sup>6.48</sup> (Ballesteros–Weinstein numbering) side chain was a factor determining the dose-dependent agonism of PZM21. Differences in conformational changes of W318<sup>7.35</sup>, Y326<sup>7.43</sup>, and Y336<sup>7.53</sup> in PZM21 and TRV130 explained the observed differences in bias between these ligands. The extent of water movements across the receptor channel was correlated with analgesic effects. Taken together, these data suggest that the observed differences in conformational changes of the studied MOR–ligand complexes point to the low-potency and lower bias effects of PZM21 compared with the other two ligands, and they lay the foundation for the development of G protein-biased agonists.https://www.mdpi.com/1422-0067/21/13/4699G protein-biased agonistsµ-opioid receptor (MOR)morphinePZM21molecular dynamicssimulation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Zhennan Zhao Tingting Huang Jiazhong Li |
spellingShingle |
Zhennan Zhao Tingting Huang Jiazhong Li Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation International Journal of Molecular Sciences G protein-biased agonists µ-opioid receptor (MOR) morphine PZM21 molecular dynamics simulation |
author_facet |
Zhennan Zhao Tingting Huang Jiazhong Li |
author_sort |
Zhennan Zhao |
title |
Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation |
title_short |
Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation |
title_full |
Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation |
title_fullStr |
Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation |
title_full_unstemmed |
Molecular Dynamics Simulations to Investigate How PZM21 Affects the Conformational State of the μ-Opioid Receptor Upon Activation |
title_sort |
molecular dynamics simulations to investigate how pzm21 affects the conformational state of the μ-opioid receptor upon activation |
publisher |
MDPI AG |
series |
International Journal of Molecular Sciences |
issn |
1661-6596 1422-0067 |
publishDate |
2020-07-01 |
description |
Opioid analgesics such as morphine have indispensable roles in analgesia. However, morphine use can elicit side effects such as respiratory depression and constipation. It has been reported that G protein-biased agonists as substitutes for classic opioid agonists can alleviate (or even eliminate) these side effects. The compounds PZM21 and TRV130 could be such alternatives. Nevertheless, there are controversies regarding the efficacy and G protein-biased ability of PZM21. To demonstrate a rationale for the reduced biasing agonism of PZM21 compared with that of TRV130 at the molecular level, we undertook a long-term molecular dynamics simulation of the μ-opioid receptor (MOR) upon the binding of three ligands: morphine, TRV130, and PZM21. We found that the delayed movement of the W293<sup>6.48</sup> (Ballesteros–Weinstein numbering) side chain was a factor determining the dose-dependent agonism of PZM21. Differences in conformational changes of W318<sup>7.35</sup>, Y326<sup>7.43</sup>, and Y336<sup>7.53</sup> in PZM21 and TRV130 explained the observed differences in bias between these ligands. The extent of water movements across the receptor channel was correlated with analgesic effects. Taken together, these data suggest that the observed differences in conformational changes of the studied MOR–ligand complexes point to the low-potency and lower bias effects of PZM21 compared with the other two ligands, and they lay the foundation for the development of G protein-biased agonists. |
topic |
G protein-biased agonists µ-opioid receptor (MOR) morphine PZM21 molecular dynamics simulation |
url |
https://www.mdpi.com/1422-0067/21/13/4699 |
work_keys_str_mv |
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