Elucidating the Gating Mechanism of Cys-Loop Receptors

Cys-loop receptors are membrane proteins that are key players for the fast synaptic neurotransmission. Their ion transport initiates new nerve signals after activation by small agonist molecules, but this function is also highly sensitive to allosteric modulation by a number of compounds such as ane...

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Main Author: Yoluk, Özge
Format: Doctoral Thesis
Language:English
Published: KTH, Teoretisk biologisk fysik 2016
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-187230
http://nbn-resolving.de/urn:isbn:978-91-7729-009-4
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spelling ndltd-UPSALLA1-oai-DiVA.org-kth-1872302016-05-21T05:22:54ZElucidating the Gating Mechanism of Cys-Loop ReceptorsengYoluk, ÖzgeKTH, Teoretisk biologisk fysikStockholm2016ion channelgatingsimulationmolecular dynamicsreceptorcys-loopmodellingCys-loop receptors are membrane proteins that are key players for the fast synaptic neurotransmission. Their ion transport initiates new nerve signals after activation by small agonist molecules, but this function is also highly sensitive to allosteric modulation by a number of compounds such as anesthetics, alcohol or anti-parasitic agents. For a long time, these modulators were believed to act primarily on the membrane, but the availability of high- resolution structures has made it possible to identify several binding sites in the transmembrane domains of the ion channels. It is known that ligand binding in the extracellular domain causes a conformational earthquake that interacts with the transmembrane domain, which leads to channel opening. The investigations carried out in this thesis aim at understanding the connection between ligand binding and channel opening. I present new models of the mammalian GABAA receptor based on the eukaryotic structure GluCl co-crystallized with an anti-parasitic agent, and show how these models can be used to study receptor-modulator interactions. I also show how removal of the bound modulator leads to gradual closing of the channel in molecular dynamics simulations. In contrast, simulations of the receptor with both the agonist and the modulator remain stable in an open-like conformation. This makes it possible to extract several key interactions, and I propose mechanisms for how the extracellular domain motion is initiated. The rapid increase in the number of cys-loop receptor structures the last few years has further made it possible to use principal component analysis (PCA) to create low-dimensional descriptions of the conformational landscape. By performing PCA on the crystal structure ensemble, I have been able to divide the structures into functional clusters and sample the transitions between them using various sampling methods. The studies presented in this thesis contribute to our understanding of the gating mechanism and the functional clustering of the cys-loop receptor structures, which both are important to design new allosteric modulator drugs that influence the channel function, in particular to treat neurological disorders. <p>QC 20160518</p>Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-187230urn:isbn:978-91-7729-009-4TRITA-FYS, 0280-316X ; 2016:26application/pdfinfo:eu-repo/semantics/openAccess
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic ion channel
gating
simulation
molecular dynamics
receptor
cys-loop
modelling
spellingShingle ion channel
gating
simulation
molecular dynamics
receptor
cys-loop
modelling
Yoluk, Özge
Elucidating the Gating Mechanism of Cys-Loop Receptors
description Cys-loop receptors are membrane proteins that are key players for the fast synaptic neurotransmission. Their ion transport initiates new nerve signals after activation by small agonist molecules, but this function is also highly sensitive to allosteric modulation by a number of compounds such as anesthetics, alcohol or anti-parasitic agents. For a long time, these modulators were believed to act primarily on the membrane, but the availability of high- resolution structures has made it possible to identify several binding sites in the transmembrane domains of the ion channels. It is known that ligand binding in the extracellular domain causes a conformational earthquake that interacts with the transmembrane domain, which leads to channel opening. The investigations carried out in this thesis aim at understanding the connection between ligand binding and channel opening. I present new models of the mammalian GABAA receptor based on the eukaryotic structure GluCl co-crystallized with an anti-parasitic agent, and show how these models can be used to study receptor-modulator interactions. I also show how removal of the bound modulator leads to gradual closing of the channel in molecular dynamics simulations. In contrast, simulations of the receptor with both the agonist and the modulator remain stable in an open-like conformation. This makes it possible to extract several key interactions, and I propose mechanisms for how the extracellular domain motion is initiated. The rapid increase in the number of cys-loop receptor structures the last few years has further made it possible to use principal component analysis (PCA) to create low-dimensional descriptions of the conformational landscape. By performing PCA on the crystal structure ensemble, I have been able to divide the structures into functional clusters and sample the transitions between them using various sampling methods. The studies presented in this thesis contribute to our understanding of the gating mechanism and the functional clustering of the cys-loop receptor structures, which both are important to design new allosteric modulator drugs that influence the channel function, in particular to treat neurological disorders. === <p>QC 20160518</p>
author Yoluk, Özge
author_facet Yoluk, Özge
author_sort Yoluk, Özge
title Elucidating the Gating Mechanism of Cys-Loop Receptors
title_short Elucidating the Gating Mechanism of Cys-Loop Receptors
title_full Elucidating the Gating Mechanism of Cys-Loop Receptors
title_fullStr Elucidating the Gating Mechanism of Cys-Loop Receptors
title_full_unstemmed Elucidating the Gating Mechanism of Cys-Loop Receptors
title_sort elucidating the gating mechanism of cys-loop receptors
publisher KTH, Teoretisk biologisk fysik
publishDate 2016
url http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-187230
http://nbn-resolving.de/urn:isbn:978-91-7729-009-4
work_keys_str_mv AT yolukozge elucidatingthegatingmechanismofcysloopreceptors
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