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The technique to manipulate cells or living animals by illumination after gene transfer of light-sensitive proteins is called optogenetics. Successful optogenetics started with the use of the light-gated cation channel channelrhodopsin-2 (ChR2). After early demonstrations of the power of ChR2, further light-sensitive ion channels and ion pumps were recruited to the optogenetic toolbox. Furthermore, mutations and chimera of ChR2 improved its versatility.
However, there is still a need for improved optogenetic tools, e.g. with higher permeability for calcium or better expression in the plasma membrane. In this thesis, my work focuses on the design of highly functional channelrhodopsins with enhanced Na+ and Ca2+ conductance.
First, I tested different N-terminal signal peptides to improve the plasma membrane targeting of Channelrhodopsins. We found that a N-terminal peptide, named LR, could improve the plasma membrane targeting of many rhodopsins. Modification with LR contributed to three to ten-fold larger photocurrents (than that of the original version) of multiple channelrhodopsins, like ChR2 from C. reinhardtii (CrChR2), PsChR, Chrimson, CheRiff, CeChR, ACRs, and the light-activated pump rhodopsins KR2, Jaw, HR.
Second, by introducing point mutation, I could further improve the light sensitivity and photocurrent of different channelrhodopsins. For instance, ChR2-XXM 2.0, ChR2-XXL 2.0 and PsChR D139H 2.0 exhibited hundred times larger photocurrents than wild type ChR2 and they show high light sensitivity. Also, the Ca2+ permeable channelrhodopsins PsCatCh 2.0f and PsCatCh 2.0e show very large photocurrents and fast kinetics. In addition, I also characterized a novel bi-stable CeChR (from the acidophilic green alga Chlamydomonas eustigma) with a much longer closing time.
Third, I analysed the ion selectivity of different ChRs, which provides a basis for rational selection of channelrhodopsins for different experimental purposes. I demonstrate that ChR2, Chronos, Chrimson, CheRiff and CeChR are highly proton conductive, compared with wild type PsChR. Interestingly, Chronos has the lowest potassium conductance among these channelrhodopsins. Furthermore, I found that mutation of an aspartate in TM4 of ChR2 (D156) and PsChR (D139) to histidine obviously increased both the sodium and calcium permeability while proton conductance was reduced. PsChR D139H 2.0 has the largest sodium conductance of any published channelrhodopsin variants. Additionally, I generated PsCatCh 2.0e which exhibits a ten-fold larger calcium current than the previously reported Ca2+ transporting CrChR2 mutant CatCh.
In summary, my research work
1.) described strategies for improving plasma membrane trafficking efficiency of opsins;
2.) yielded channelrhodopsins with fast kinetics or high light sensitivity;
3.) provided optogenetic tools with improved calcium and sodium conductance.
We could also improve the performance of channelrhodopsins with distinct action spectra, which will facilitate two-color neural excitation, both in-vitro and in-vivo.
Ebenso wie Tiere verfügen Pflanzen über die Fähigkeit elektrische Signale zu generieren. Dabei repräsentieren elektrische Signale – Membranpotentialänderungen an der Plasmamembran – die frühesten Antworten, welche an Pflanzenzellen im Zuge veränderter externer und intrinsischer Bedingungen beobachtet werden können. Stimuli wie Kälte, Hitze, Verwundung, Herbivorie und Pathogene, aber auch physiologische Prozesse, wie Wachstum und Bestäubung führen zur Änderung des Potentials der Plasmamembran pflanzlicher Zellen. Die meisten dieser Membranpotentialänderungen bestehen aus einer schnellen Depolarisation, gefolgt von einer Repolarisation des Membranpotentials, deren Kinetik, in Abhängigkeit des Stimulus hoch variabel sein kann. Das Wissen über die molekularen Grundlagen der Generierung und Weiterleitung elektrischer Signale in Pflanzen ist im Gegensatz zu Tieren nur wenig verstanden. Eine Ausnahme stellen ‚klassisch-erregbare‘ Pflanzen wie die Venusfliegenfalle oder die Mimose dar. In diesen Pflanzen führt ein Berührungsreiz zur Auslösung eines charakteristischen Aktionspotentials, welches in der Folge zu einer, auf differentiellen Turgoränderungen basierenden, nastischen Bewegung führt. In allen anderen Pflanzen ist die Kinetik der Membranpotentialänderungen sehr variabel, abhängig vom Stimulus und dem physiologischen Zustand der Zellen und – mit Ausnahme der Reaktion auf einen Kältestimulus – lediglich nach langen Latenzzeiten wiederholbar. Dieser Umstand verhindert eine systematische Analyse der molekularen Basis elektrischer Signale in den meisten Pflanzen. Ziel dieser Arbeit war es daher, auf der Basis des Channelrhodopsin-2 (ChR2) aus der Grünalge Chlamydomonas reinhardtii, welches bereits seit 2005 in der Neurobiologie genutzt wird, ein nicht-invasives Werkzeug zur funktionellen Analyse elektrischer Signale in Pflanzen zu etablieren. ChR2 ist ein Blaulicht-aktivierter Kationenkanal, der für seine Funktion all trans-Retinal als Cofaktor benötigt. Im Rahmen dieser Arbeit wurden verschiedene Varianten des ChR2, mit einem Schwerpunkt auf ChR2-C128T und vor allem ChR2-D156C, auch bekannt als ChR2-XXL eingesetzt. ChR2 konnte bereits durch M. Baumann im Rahmen ihrer Dissertation funktionell im transienten Expressionssystem Nicotiana benthamiana dargestellt werden. In der vorliegenden Arbeit wurde das System weiter ausgebaut und die besonders aussichtsreichen ChR2-Varianten nicht nur in N. benthamiana, sondern auch in stabilen Arabidopsis thaliana Linien funktionell charakterisiert. Dabei konnte mit dem ChR2-XXL ein geeignetes optogenetisches Werkzeug zur Untersuchung elektrischer Signale in Pflanzen identifiziert werden. ChR2-XXL bietet die Möglichkeit das Membranpotential durch kurze, 5 s Blaulichtpulse im Mittel um 95 mV zu depolarisieren und im Anschluss die Repolarisationsphase zu untersuchen. Blaulicht-induzierbare, ChR2-XXL-vermittelte Depolarisationen konnten, reproduzierbar und beliebig oft an den gleichen Zellen wiederholt ausgelöst werden. Dadurch ermöglicht ChR2-XXL die bisher nur unzureichend bekannten molekularen Komponenten der Repolarisation des Membranpotentials in Pflanzen zu erforschen. In tierischen Zellen generieren spannungsabhängige Natriumkanäle die Depolarisation, während spannungsabhängige Kaliumkanäle die Depolarisationskinetik bestimmen. Die im Vergleich zu tierischen Zellen veränderten Ionengradienten lassen vermuten, dass die pflanzliche Depolarisation im Wesentlichen durch Ca2+-abhängige Anionenkanäle vermittelt wird, die durch den Efflux von Cl- das Membranpotential depolarisieren. Für die Repolarisation wird zum einen die Beteiligung von auswärtsgleichrichtenden Kaliumkanälen postuliert. Zum anderen wird auch eine Beteiligung der Plasmamembran (PM) H+-ATPasen vermutet, welche gleichzeitig einen essentiellen Beitrag zur Generierung des Ruhepotentials leisten. In der vorliegenden Arbeit wurde es durch den Einsatz von ChR2-XXL möglich, beide potentiellen Komponenten der Repolarisationsphase, Kaliumkanäle und PM H+-ATPasen, erstmals durch eine nicht-invasive, Anionen-unabhängige Methode der Depolarisation zu untersuchen. Durch den Einsatz von Mutanten und Kaliumkanalinhibitoren konnte ein möglicher Beitrag des auswärtsgleichrichtenden Kaliumkanals Arabidopsis thaliana GUARD CELL OUTWARD RECTIFYING K+ CHANNEL (AtGORK) an der Repolarisationsphase in Arabidopsis Mesophyllzellen nahezu ausgeschlossen werden. Der auswärtsgleichrichtende Kaliumkanal GORK öffnet erst bei Membranpotentialen positiv vom Gleichgewichtspotential für Kaliumionen (EK (-118 mV)). Da die ChR2-induzierbaren Depolarisationen ebenso wie viele natürliche Stimuli, diesen Wert kaum erreichen oder nur geringfügig überschreiten, leistet der GORK einen geringfügigen Beitrag bei der Repolarisation. Dies ließ vermuten, dass die Repolarisation von EK bis zum Ruhepotential bei ca. -180 mV dagegen möglicherweise durch die PM H+-ATPasen bewerkstelligt wird. Die Wirkung des PM H+-ATPase Inhibitors Natriumorthovanadat, sowie des PM H+-ATPase Aktivators Fusicoccin auf die Repolarisationsphase konnten diese Hypothese unterstützen. Die Hemmung der PM H+-ATPasen verlangsamte die Repolarisationskinetik während eine Aktivierung der PM H+-ATPasen diese beschleunigte. So wurde es erstmals möglich den genauen Einfluss der PM H+-ATPasen auf Wiederherstellung des Membranpotentials während der Repolarisation in Mesophyllzellen zu studieren. Darüber hinaus wurde beobachtet, dass in Gegenwart des Kaliumkanalblockers Ba2+ die Repolarisation ebenfalls beschleunigt werden konnte. In Übereinstimmung mit dem ‚Pump-and-Leak‘-Modell (Alberts et al. 2002) deutet dies darauf hin, dass schwach einwärtsgleichrichtende Kaliumkanäle, wie der ARABIDOPSIS K+ TRANSPORTER 2 (AKT2) dem PM H+-ATPasen Protonengradienten entgegenwirken und somit das Ruhepotential aus der Summe der bewegten Ladungen von Pumpen und Kaliumkanälen bestimmt wird. Das mögliche Potenzial optogenetischer, Rhodopsin-basierter Werkzeuge für die molekulare Analyse elektrischer Signale, insbesondere unter Einsatz der breiten Palette lichtgesteuerter Pumpen und Kanäle, ihrer spektralen Diversität und ihrer Einkreuzung in ausgewählte Arabidopsis Mutanten wird diskutiert.
Almost all life forms on earth have adapted to the most impactful and most predictable recurring change in environmental condition, the cycle of day and night, caused by the axial rotation of the planet. As a result many animals have evolved intricate endogenous clocks, which adapt and synchronize the organisms’ physiology, metabolism and behaviour to the daily change in environmental conditions. The scientific field researching these endogenous clocks is called chronobiology and has steadily grown in size, scope and relevance since the works of the earliest pioneers in the 1960s.
The number one model organism for the research of circadian clocks is the fruit fly, Drosophila melanogaster, whose clock serves as the entry point to understanding the basic inner workings of such an intricately constructed endogenous timekeeping system. In this thesis it was attempted to combine the research on the circadian clock with the techniques of optogenetics, a fairly new scientific field, launched by the discovery of Channelrhodopsin 2 just over 15 years ago. Channelrhodopsin 2 is a light-gated ion channel found in the green alga Chlamydomonas reinhardtii. In optogenetics, researches use these light-gated ion channels like Channelrhodopsin 2 by heterologously expressing them in cells and tissues of other organisms, which can then be stimulated by the application of light. This is most useful when studying neurons, as these channels provide an almost non-invasive tool to depolarize the neuronal plasma membranes at will. The goal of this thesis was to develop an optogenetic tool, which would be able to influence and phase shift the circadian clock of Drosophila melanogaster upon illumination. A phase shift is the adaptive response of the circadian clock to an outside stimulus that signals a change in the environmental light cycle. An optogenetic tool, able to influence and phase shift the circadian clock predictably and reliably, would open up many new ways and methods of researching the neuronal network of the clock and which neurons communicate to what extent, ultimately synchronizing the network.
The first optogenetic tool to be tested in the circadian clock of Drosophila melanogaster was ChR2-XXL, a channelrhodopsin variant with dramatically increased expression levels and photocurrents combined with a prolonged open state. The specific expression of ChR2-XXL and of later constructs was facilitated by deploying the three different clock-specific GAL4-driver lines, clk856-gal4, pdf-gal4 and mai179-gal4. Although ChR2-XXL was shown to be highly effective at depolarizing neurons, these stimulations proved to be unable to significantly phase shift the circadian clock of Drosophila. The second series of experiments was conducted with the conceptually novel optogenetic tools Olf-bPAC and SthK-bPAC, which respectively combine a cyclic nucleotide-gated ion channel (Olf and SthK) with the light-activated adenylyl-cyclase bPAC. These tools proved to be quite useful when expressed in the motor neurons of instar-3 larvae of Drosophila, paralyzing the larvae upon illumination, as well as affecting body length. This way, these new tools could be precisely characterized, spawning a successfully published research paper, centered around their electrophysiological characterization and their applicability in model organisms like Drosophila. In the circadian clock however, these tools caused substantial damage, producing severe arrhythmicity and anomalies in neuronal development. Using a temperature-sensitive GAL80-line to delay the expression until after the flies had eclosed, yielded no positive results either. The last series of experiments saw the use of another new series of optogenetic tools, modelled after the Olf-bPAC, with bPAC swapped out for CyclOp, a membrane-bound guanylyl-cyclase, coupled with less potent versions of the Olf. This final attempt however also ended up being unsuccessful. While these tools could efficiently depolarize neuronal membranes upon illumination, they were ultimately unable to stimulate the circadian clock in way that would cause it to phase shift.
Taken together, these mostly negative results indicate that an optogenetic manipulation of the circadian clock of Drosophila melanogaster is an extremely challenging subject. As light already constitutes the most impactful environmental factor on the circadian clock, the combination of chronobiology with optogenetics demands the parameters of the conducted experiments to be tuned with an extremely high degree of precision, if one hopes to receive positive results from these types of experiments at all.
Optogenetics is a method to control the cell activity with light by expression of a natural or engineered photoreceptor via genetic modification technology. Optogenetics early success came with the light-gated cation channel "Channelrhodopsin-2" in neurons and expanded from neuroscience to other research fields such as cardiac research and cell signaling, also due to the enrichment by new photoreceptors. In this study, I focus on searching and characterizing new photoreceptors to expand the optogenetic tool box. In this work I characterize three newly discovered microbial rhodopsins and some engineered mutants of them.
The first rhodopsin is a proton pump from the diatom Fragilariopsis cylindrus, Fragilariopsis Rhodopsin or abbreviated: FR. I cloned the full-length FR and proved it to be a light-activated proton pump with high efficacy in comparison to Bacteriorhodopsin (BR). During this study, I also developed a new method to improve the plasma membrane targeting of several microbial rhodopsins. I also obtained a FR mutant (channel-like FR or chFR) which behaves like a light-gated proton channel. FR can be used for optogenetic hyperpolarization or alkalization of a cell while the chFR could be used for depolarization or lowering of the cellular pH. The induction of FR expression under iron-limited conditions in the diatom indicated an alternative energy generation mechanism of F. cylindrus when iron-containing enzymes are scarce.
I then characterized a new microbial rhodopsin with novel light-regulated Guanylyl Cyclase (GC) activity. This rhodopsin guanylyl cyclase from the fungus Blastocladiella emersonii (B.e. CyclaseOpsin or BeCyclOp) has been proven by me to be an efficient light-gated GC with high specificity and fast kinetics. BeCyclOp also has a novel structure with eight transmembrane helices, containing a long cytosolic N-terminus which participates in the tight regulation of the GC activity. In collaboration with Prof. Alexander Gottschalk (Univ. Frankfurt/M.), BeCyclOp has been tested in muscle cells and sensory neurons of Caenorhabditis elegans and proven to be a powerful optogenetic tool in a living animal. I also generated a BeCyclOp mutant with enhanced light sensitivity.
Already more than ten years ago, guanylyl cyclase rhodopsins were suggested to exist in Chlamydomonas reinhardtii by analyzing genomic sequence data. But until now no functional proof existed. By further cloning and sequencing I discovered such a rhodopsin with light-regulated guanylyl cyclase activity. This functional Cyclaseopsin (COP6c) is quite different to BeCyclOp, as it was proven to be a light-inhibited GC. Cop6c is much larger than BeCyclOp with a His-Kinase and a response regulator domain between the rhodopsin and the cyclase domain.
I also introduced a new strategy for generating optogenetic tools by fusing the photoactivated adenylyl cyclase bPAC to two different CNG channels. These new tools function via light-gated cAMP production and subsequent CNG channel activation. These tools combined the properties of bPAC (highly sensitive to blue light) and CNG channels (high single-channel conductance and high Ca2+ permeability), as demonstrated by expression in Xenopus oocytes. As a further benefit the fusing of bPAC to CNG channels leads to a bPAC with a more than tenfold reduced dark activity which is a valuable improvement for bPAC itself as an optogenetic tool.