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Catecholaminergic polymorphic ventricular tachycardia (CPVT) is an inherited disturbance of the heart rhythm (arrhythmia) that is induced by stress or that occurs during exercise. Most mutations that have been linked to CPVT are found in two genes, i.e., ryanodine receptor 2 (RyR2) and calsequestrin 2 (CASQ2), two proteins fundamentally involved in the regulation of intracellular Ca2+ in cardiac myocytes. We inserted six CPVT-causing mutations via clustered regularly interspaced short palindromic repeats (CRISPR)-Cas9 into unc-68 and csq-1, the Caenorhabditis elegans homologs of RyR and CASQ, respectively. We characterized those mutations via video-microscopy, electrophysiology, and calcium imaging in our previously established optogenetic arrhythmia model. In this study, we additionally enabled high(er) throughput recordings of intact animals by combining optogenetic stimulation with a microfluidic chip system. Whereas only minor/no pump deficiency of the pharynx was observed at baseline, three mutations of UNC-68 (S2378L, P2460S, Q4623R; RyR2-S2246L, -P2328S, -Q4201R) reduced the ability of the organ to follow 4 Hz optogenetic stimulation. One mutation (Q4623R) was accompanied by a strong reduction of maximal pump rate. In addition, S2378L and Q4623R evoked an altered calcium handling during optogenetic stimulation. The 1,4-benzothiazepine S107, which is suggested to stabilize RyR2 channels by enhancing the binding of calstabin2, reversed the reduction of pumping ability in a mutation-specific fashion. However, this depends on the presence of FKB-2, a C. elegans calstabin2 homolog, indicating the involvement of calstabin2 in the disease-causing mechanisms of the respective mutations. In conclusion, we showed for three CPVT-like mutations in C. elegans RyR a reduced pumping ability upon light stimulation, i.e., an arrhythmia-like phenotype, that can be reversed in two cases by the benzothiazepine S107 and that depends on stabilization via FKB-2. The genetically amenable nematode in combination with optogenetics and high(er) throughput recordings is a promising straightforward system for the investigation of RyR mutations and the selection of mutation-specific drugs.
Synaptic transmission is a fundamental process that involves the transfer of information from a presynaptic neuron to a target cell through the release of neurotransmitters. The SV cycle is a complex series of events that enables the recycling of SVs, allowing for the sustained release of neurotransmitters. This process is mediated by a variety of proteins and enzymes, and its regulation is critical for maintaining proper synaptic function. Despite extensive research efforts, many aspects of the SV cycle and the underlying synaptic proteins remain poorly understood, highlighting the need for continued investigation into this important process. During this work, multiple aspects of synaptic transmission were studied by performing
behavioural, pharmacological, optogenetic, electrophysiological and ultrastructural assays on Caenorhabditis elegans. First, the role of two proteins (ERP-1 and RIMB-1) were analysed in the synaptic vesicle cycle. Second, a new optogenetic tool, the pOpsicle assay was described, which enables the direct visualization of synaptic vesicle (SV) release.
Activity-dependent bulk endocytosis (ADBE) enables the endocytosis of SV membrane and proteins in a fast manner during intense stimulation, resulting in bulk endosomes (also so-called large vesicles, LVs). Recycling proteins can be characterized by its site of action, whether they act at the plasma membrane (participating at the LV formation), or at the LV membrane (participating at the SV formation). ERP-1 (the C. elegans ortholog of Endophilin B) was recently identified as a possible SV recycling factor, its contribution to synaptic transmission has not been analysed before. During this project the function and possible cooperation of three proteins, ERP-1, UNC-57 (the C. elegans ortholog of Endophilin A) and CHC-1 (the C. elegans ortholog clathrin heavy chain) were studied, with a special emphasis of the site of action. It has been confirmed that these proteins participate together in synaptic vesicle recycling. Endophilins (ERP-1 and UNC-57) act both at the PM and the LV level, but while UNC-57 has been identified as the main player, ERP-1 rather has a minor role and acts as a back-up protein. CHC-1 functions the LV level in the first place, but it can compensate for the loss of UNC-57 and acts as a back-up protein at the PM.
RIM-binding protein is an evolutionarily conserved active zone protein, which interacts directly with RIM and N, P/Q, as well as L-type Ca2+ channels. RIM-BP and RIM have redundant functions in different model organisms including C. elegans, however, while the loss of UNC-10 (the C. elegans ortholog of RIM) led to drastic behavioural defects, the loss of RIMB-1 (the C. elegans ortholog of RIM-BP) led only to mild phenotypes. During this work the synaptic function of RIMB-1 and its interaction with UNC-10 and UNC-2 (C. elegans ortholog of the CaV2 1 subunit) were extensively investigated. It has been shown that RIMB-1 contributes to the precise localization of VGCCs in cooperation with UNC-10. Furthermore, it has been demonstrated, that RIMB-1 plays different roles in cholinergic and GABAergic neurons, thus it contributes to maintain a proper excitation/inhibition balance.
There are numerous available assays, which enable the indirect analysis of synaptic transmission, however, a tool, that enables the direct visualization of SV release, is highly desired. pOpsicle is a method which combines the optogenetic stimulation of cholinergic neurons with real-time visualization of SV release. A pH-sensitive fluorescence protein, pHuji, was inserted into the second intravesicular loop of the synaptic vesicle membrane protein, synaptogyrin (SNG-1). The fluorescence of pHuji is quenched inside the vesicles, but once they are released, the pH increases and pHuji can be detected. pOpsicle enables not only the direct visualization of SV exo-, and endocytosis events, but also the identification of putative SV recycling proteins.
Nikotinische Acetylcholin Rezeptoren (nAChR) sind ligandengesteuerte Ionenkanäle der pentameren Cys-Loop Familie, welche nach Bindung des Neurotransmitters Acetylcholin exzitatorische Signale in Muskeln und Neuronen vermitteln. Während die Funktion der Rezeptoren an der synaptischen Membran relativ gut untersucht wurde, gibt es bis heute kaum Erkenntnisse über die intrazellulären Prozesse und Proteine, die der selektiven Assemblierung von homologen Untereinheiten zu funktionalen Rezeptorpentameren zugrundeliegen.
Das C. elegans Genom kodiert für mehr als 29 nAChR Untereinheiten-Gene und besitzt damit die größte Anzahl bekannter Homologe innerhalb der untersuchten Arten. An der neuromuskulären Synapse (NMJ) des Nematoden sind zwei Typen von nAChR bekannt: der heteromere Levamisolrezeptor (L-AChR) und der homomere Nikotinrezeptor (N-AChR). Innerhalb dieser Arbeit wurde der funktionale Zusammenhang zwischen den nikotinischen Rezeptoren der NMJ von C. elegans und einem neuen rezeptorassoziierten ER-Proteinkomplex der Proteine NRA-2 und NRA-4 untersucht. Ihre vertebraten Homologe Nicalin und Nomo wurden zuerst im ER vom Zebrafisch im Zusammenhang mit dem TGF-β Signalweg beschrieben. Mutation der Proteine hat einen Agonist-spezifischen Einfluss auf die Aktivität von L-AChR und N-AChR. Die subzellulären Lokalisationsstudien demonstrierten, dass die beiden Proteine im ER von Muskelzellen wirken und dort mit Rezeptoruntereinheiten co-lokalisieren. Weiterhin ließ sich nachweisen, dass die relative Menge einzelner L-AChR-Untereinheiten an der synaptischen Oberfläche reduziert bzw. erhöht ist. Da die Rezeptoraktivität in Zusammenhang mit der Untereinheiten Komposition steht, wurde die Rolle von zusätzlichen Untereinheiten wie ACR-8 untersucht. Dies zeigte, dass die zusätzliche Mutation der Untereinheit acr-8 in nra-2 Mutanten den Einfluss der nra-2 Einzelmutation auf die Aktivität des L-AChR revertiert. Basierend auf diesen Ergebnissen lässt sich die Hypothese formulieren, dass der NRA-2/NRA-4 Komplex im ER von C. elegans als Kontrollinstanz fungiert welche dafür sorgt, dass nur die jeweils „korrekten“ Untereinheiten in funktionale Rezeptoren eingebaut bzw. andere vom Einbau in das Pentamer abgehalten werden. Durch Fehlen des aktiven Komplexes in Mutanten können nicht vorgesehene -Untereinheiten (z. B. ACR-8) in funktionale Pentamere mit veränderter Funktionalität eingebaut werden.