5 research outputs found

    Peer Coaching in the Kingdom of Bahrain: Exploring the Implementation of a Professional Development Programme for Primary Teachers

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    Abstract Education plays a crucial role in the Kingdom of Bahrain’s “Economic Vision 2030”, and the country is now working to reform its education system to meet the economic and social challenges of the 21st century. Currently the country is focusing on improving schools’ performance and enhancing their quality to keep pace with the educational reform plan. International research has demonstrated that teachers’ continuous professional development (PD) is one of the fundamental strategies that improves educational quality. Although the Bahraini Ministry of Education has encouraged teachers to adopt peer observation as a tool for PD, a number of obstacles have emerged over time. Following a mixed methods approach, this thesis describes the design and implementation and piloting of a tailor made peer coaching programme which involved 24 teachers in seven state primary schools. Questionnaires were administered to 14 senior teachers and 50 Grade Two teachers of the First Cycle of Basic Education, along with observation sheets and reflective journals. In-depth interviews were also conducted with 11 of the participating teachers. This study reveals that such a peer coaching programme is an effective form of PD because the teachers took ownership of the approach in meeting their professional needs. This enabled them to apply strategies imposed by the Ministry of Education, thereby aiding the implementation of educational changes as required. More broadly, this research demonstrates that if teachers are involved in their professional development provision their motivation is enhanced. A refined version of Wagner and French’s model (Motivation, work satisfaction, and change in practice, 2010) is presented to illustrate this effect

    Investigation of sub-millisecond dynamics and allosteric communication in ionotropic glutamate receptor ligand binding domains

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    Ionotrope Glutamatrezeptoren (iGluRs) sind ligandengesteuerte Ionenkanäle und vermitteln den Großteil der exzitatorischen Signalweiterleitung im gesamten zentralen Nervensystem. Darüber hinaus spielen iGluRs eine entscheidende Rolle bei der neuronalen Entwicklung und Funktion, einschließlich Lernprozessen und Gedächtnisbildung. Da eine Fehlfunktion dieser Rezeptoren mit zahlreichen neurodegenerativen Erkrankungen verbunden ist, stellen iGluRs zudem wichtige Zielproteine für die pharmakologische Wirkstoffentwicklung dar. Im Allgemeinen wird zwischen drei Untergruppen ionotroper Glutamatrezeptoren unterschieden, welche aufgrund ihrer Selektivität für einen bestimmten Liganden benannt sind: AMPA-, Kainate-, und NMDA-Rezeptoren. Die iGluRs jeder dieser Untergruppen bestehen in der Regel aus vier Untereinheiten, welche wiederum aus vier semiautonomen Domänen aufgebaut sind: (i) die aminoterminale Domäne (ATD), (ii) die Ligandenbindedomäne (LBD), (iii) die Transmembrandomäne (TMD) und (iv) die carboxyterminale Domäne (CTD). Die Ligandenbindedomäne, welche wiederum aus zwei Lobes (D1 und D2) besteht und in ihrer Struktur einer Muschelschale ähnelt, vollzieht bei Bindung eines Neurotransmitters eine Konformationsänderung, wobei sie sich um den gebundenen Agonisten herumschließt. Diese Konformationsänderung der LBD wird auf die Transmembrandomäne, welche den membranüberspannenden Ionenkanal ausbildet, übertragen, was in einer Umlagerung der Transmembranhelices und infolgedessen der Öffnung des Ionenkanals resultiert. Die Konformationsänderung der LBD ist demnach die treibende Kraft, welche dem Öffnen und Schließen des Ionenkanals zugrunde liegt. Aus diesem Grund stellt die isolierte Ligandenbindedomäne, welche als lösliches Protein hergestellt werden kann, ein etabliertes Modellsystem zur Untersuchung der strukturellen und funktionellen Zusammenhänge innerhalb des Funktionsmechanismus ionotroper Glutamatrezeptoren dar. Im Rahmen dieser Arbeit wurden die Konformationsdynamiken der in Escherichia coli-Bakterien exprimierten isolierten Ligandenbindedomänen der drei homologen Untergruppen – AMPA-, Kainate- und NMDA-Rezeptoren – sowohl als Monomer als auch als Dimer untersucht. Hierbei wurden im ungebundenen Apo-Zustand der Proteine signifikante Kinetiken im Bereich von Nanosekunden bis Mikrosekunden festgestellt, welche bei Bindung eines Agonisten sowie bei Dimerisierung erheblichen Veränderungen zeigen. Darüber hinaus wurde allosterische Kommunikation zwischen den LBDs der NMDA-Untergruppe untersucht, wobei in der Tat ein deutlicher allosterischer Effekt in Bezug auf die Konformationsdynamiken der Proteine gemessen werden konnte. Weiterhin wurde ein PET-FCS-basiertes Verfahren zur Messung der Dissoziationskonstante der Bindung eines Liganden an die LBD eines AMPA-Rezeptors entwickelt. Zuletzt wurde außerdem ermittelt, ob ein Unterschied zwischen vollen und partiellen Agonisten hinsichtlich ihres Einflusses auf die Konformationsdynamiken einer AMPA-Rezeptor LBD besteht, was nachgewiesenermaßen nicht der Fall ist. Alle Messungen wurden auf Einzelmolekülebene auf Zeitskalen von Nanosekunden bis Millisekunden basierend auf Fluoreszenzfluktuationen unter Verwendung des photoinduzierten Elektronentransfers (PET) in Kombination mit Korrelationsspektroskopie (PET-FCS) durchgeführt. Zu diesem Zweck wurden PET-basierte Fluoreszenzsonden entwickelt, um Konformationsänderungen auf einer räumlichen Skala von einem Nanometer zu detektieren. Durch die Experimente innerhalb dieser Arbeit konnte gezeigt werden, dass die PET-FCS-Methode eine vielversprechende Ergänzung zu allen bisher bestehenden Methoden zur Untersuchung der Konformationsdynamiken der Ligandenbindedomäne ionotroper Glutamatrezeptoren darstellt und daher eine aussichtsreiche Möglichkeit zur Erweiterung des zukünftigen Verständnisses der Funktionsweise von iGluRs bietet.Ionotropic glutamate receptors (iGluRs) are ligand-gated ion channels that mediate most of the excitatory signal transmission throughout the central nervous system. In addition, iGluRs play a crucial role in neural development and function, including learning and memory. Since receptor malfunction contributes to a variety of neurological diseases, iGluRs are key targets for drug development in pharmacology. Furthermore, ionotropic glutamate receptors are divided into three major subgroups, all of which are named due to their selectivity for a certain ligand: AMPA, Kainate and NMDA. Members of each subgroup usually consist of four subunits, which in turn comprise four semi-autonomous domains: (i) the amino terminal domain (ATD), (ii) the ligand binding domain (LBD), (iii) the transmembrane domain (TMD), and (iv) the carboxy terminal domain (CTD). Upon binding a neurotransmitter the ligand binding domain, which adopts a clamshell-like structure consisting of two domains (D1 and D2), undergoes a conformational change by closing around the ligand and trapping it within the binding cleft. The conformational change of the LBD is then transferred to the transmembrane domain which forms the membrane-spanning ion channel, which results in rearrangement of the transmembrane helices and consequently in opening of the ion channel. Accordingly, the conformational change of the LBD is the driving force underlying opening and closing of the ion channel. The isolated ligand binding domain can be produced as soluble protein and represents a well-established model system for exploring structural and functional relationships within the functional mechanism of ionotropic glutamate receptors. As part of this thesis, ligand binding domains of all three homologues – AMPAR, KainateR and NMDAR – have been expressed in Escherichia coli bacterial cells and conformational dynamics of the proteins both as monomer and as dimer have been investigated. In the unbound apo state of the proteins, significant kinetics have been observed in the nanosecond to microsecond time range which undergo considerable changes upon agonist binding or dimerization. In addition, allosteric communication between LBDs of the NMDA subgroup has been investigated, whereby a distinct allosteric effect regarding the conformational dynamics of the protein could actually be measured. Furthermore, a PET-FCS-based tool for measuring the dissociation constant of a ligand for an AMPA receptor LBD has been developed. Finally, it has been investigated whether full and partial agonists have different effects on the conformational dynamics of an AMPA receptor LBD, which has been found clearly not to be the case. All measurements have been performed at the single-molecule level on time scales from nanoseconds to milliseconds based on fluorescence fluctuations using photoinduced electron transfer (PET) fluorescence quenching in combination with correlation spectroscopy (PET-FCS). To this end, PET-based fluorescence probes have been engineered to monitor conformational changes on the one-nanometer scale. The experiments that have been carried out within this thesis introduce PET-FCS as a promising tool to complement all previously existing methods for studying conformational dynamics of ionotropic glutamate receptor ligand binding domains and hence offer a promising opportunity to expand future understanding of how iGluRs work

    Conservation of folding and association within a family of spidroin N-terminal domains

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    Web spiders synthesize silk fibres, nature’s toughest biomaterial, through the controlled assembly of fibroin proteins, so-called spidroins. The highly conserved spidroin N-terminal domain (NTD) is a pH-driven self-assembly device that connects spidroins to super-molecules in fibres. The degree to which forces of self-assembly is conserved across spider glands and species is currently unknown because quantitative measures are missing. Here, we report the comparative investigation of spidroin NTDs originating from the major ampullate glands of the spider species Euprosthenops australis, Nephila clavipes, Latrodectus hesperus, and Latrodectus geometricus. We characterized equilibrium thermodynamics and kinetics of folding and self-association using dynamic light scattering, stopped-flow fluorescence and circular dichroism spectroscopy in combination with thermal and chemical denaturation experiments. We found cooperative two-state folding on a sub-millisecond time scale through a late transition state of all four domains. Stability was compromised by repulsive electrostatic forces originating from clustering of point charges on the NTD surface required for function. pH-driven dimerization proceeded with characteristic fast kinetics yielding high affinities. Results showed that energetics and kinetics of NTD self-assembly are highly conserved across spider species despite the different silk mechanical properties and web geometries they produce

    Allosteric coupling of sub-millisecond clamshell motions in ionotropic glutamate receptor ligand-binding domains

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    Ionotropic glutamate receptors (iGluRs) mediate signal transmission in the brain and are important drug targets. Structural studies show snapshots of iGluRs, which provide a mechanistic understanding of gating, yet the rapid motions driving the receptor machinery are largely elusive. Here we detect kinetics of conformational change of isolated clamshell-shaped ligand-binding domains (LBDs) from the three major iGluR sub-types, which initiate gating upon binding of agonists. We design fluorescence probes to measure domain motions through nanosecond fluorescence correlation spectroscopy. We observe a broad kinetic spectrum of LBD dynamics that underlie activation of iGluRs. Microsecond clamshell motions slow upon dimerization and freeze upon binding of full and partial agonists. We uncover allosteric coupling within NMDA LBD hetero-dimers, where binding of L-glutamate to the GluN2A LBD stalls clamshell motions of the glycine-binding GluN1 LBD. Our results reveal rapid LBD dynamics across iGluRs and suggest a mechanism of negative allosteric cooperativity in NMDA receptors
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