TY - JOUR A1 - Tian, Yuehui A1 - Yang, Shang A1 - Gao, Shiqiang T1 - Advances, perspectives and potential engineering strategies of light-gated phosphodiesterases for optogenetic applications JF - International Journal of Molecular Sciences N2 - The second messengers, cyclic adenosine 3′-5′-monophosphate (cAMP) and cyclic guanosine 3′-5′-monophosphate (cGMP), play important roles in many animal cells by regulating intracellular signaling pathways and modulating cell physiology. Environmental cues like temperature, light, and chemical compounds can stimulate cell surface receptors and trigger the generation of second messengers and the following regulations. The spread of cAMP and cGMP is further shaped by cyclic nucleotide phosphodiesterases (PDEs) for orchestration of intracellular microdomain signaling. However, localized intracellular cAMP and cGMP signaling requires further investigation. Optogenetic manipulation of cAMP and cGMP offers new opportunities for spatio-temporally precise study of their signaling mechanism. Light-gated nucleotide cyclases are well developed and applied for cAMP/cGMP manipulation. Recently discovered rhodopsin phosphodiesterase genes from protists established a new and direct biological connection between light and PDEs. Light-regulated PDEs are under development, and of demand to complete the toolkit for cAMP/cGMP manipulation. In this review, we summarize the state of the art, pros and cons of artificial and natural light-regulated PDEs, and discuss potential new strategies of developing light-gated PDEs for optogenetic manipulation. KW - cyclic nucleotides KW - phosphodiesterases (PDEs) KW - optogenetics KW - cAMP KW - cGMP Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236203 SN - 1422-0067 VL - 21 IS - 20 ER - TY - JOUR A1 - Panzer, Sabine A1 - Zhang, Chong A1 - Konte, Tilen A1 - Bräuer, Celine A1 - Diemar, Anne A1 - Yogendran, Parathy A1 - Yu-Strzelczyk, Jing A1 - Nagel, Georg A1 - Gao, Shiqiang A1 - Terpitz, Ulrich T1 - Modified Rhodopsins From Aureobasidium pullulans Excel With Very High Proton-Transport Rates JF - Frontiers in Molecular Biosciences N2 - Aureobasidium pullulans is a black fungus that can adapt to various stressful conditions like hypersaline, acidic, and alkaline environments. The genome of A. pullulans exhibits three genes coding for putative opsins ApOps1, ApOps2, and ApOps3. We heterologously expressed these genes in mammalian cells and Xenopus oocytes. Localization in the plasma membrane was greatly improved by introducing additional membrane trafficking signals at the N-terminus and the C-terminus. In patch-clamp and two-electrode-voltage clamp experiments, all three proteins showed proton pump activity with maximal activity in green light. Among them, ApOps2 exhibited the most pronounced proton pump activity with current amplitudes occasionally extending 10 pA/pF at 0 mV. Proton pump activity was further supported in the presence of extracellular weak organic acids. Furthermore, we used site-directed mutagenesis to reshape protein functions and thereby implemented light-gated proton channels. We discuss the difference to other well-known proton pumps and the potential of these rhodopsins for optogenetic applications. KW - black yeast KW - photoreceptor KW - microbial rhodopsins KW - optogenetics KW - proton channel KW - membrane trafficking KW - fungal rhodopsins KW - Aureobasidium Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-249248 SN - 2296-889X VL - 8 ER - TY - THES A1 - Grotemeyer, Alexander T1 - Characterisation and application of new optogenetic tools in \(Drosophila\) \(melanogaster\) T1 - Charakterisierung und Anwendung neuer optogenetischer Werkzeuge in \(Drosophila\) \(melanogaster\) N2 - Since Channelrhodopsins has been described first and introduced successfully in freely moving animals (Nagel et al., 2003 and 2005), tremendous impact has been made in this interesting field of neuroscience. Subsequently, many different optogenetic tools have been described and used to address long-lasting scientific issues. Furthermore, beside the ‘classical’ Channelrhodopsin-2 (ChR2), basically a cation-selective ion channel, also altered ChR2 descendants, anion selective channels and light-sensitive metabotropic proteins have expanded the optogenetic toolbox. However, in spite of this variety of different tools most researches still pick Channelrhodopsin-2 for their optogenetic approaches due to its well-known kinetics. In this thesis, an improved Channelrhodopsin, Channelrhodopsin2-XXM (ChR2XXM), is described, which might become an useful tool to provide ambitious neuroscientific approaches by dint of its characteristics. Here, ChR2XXM was chosen to investigate the functional consequences of Drosophila larvae lacking latrophilin in their chordotonal organs. Finally, the functionality of GtACR, was checked at the Drosophila NMJ. For a in-depth characterisation, electrophysiology along with behavioural setups was employed. In detail, ChR2XXM was found to have a better cellular expression pattern, high spatiotemporal precision, substantial increased light sensitivity and improved affinity to its chromophore retinal, as compared to ChR2. Employing ChR2XXM, effects of latrophilin (dCIRL) on signal transmission in the chordotonal organ could be clarified with a minimum of side effects, e.g. possible heat response of the chordotonal organ, due to high light sensitivity. Moreover, optogenetic activation of the chordotonal organ, in vivo, led to behavioural changes. Additionally, GtACR1 was found to be effective to inhibit motoneuronal excitation but is accompanied by unexpected side effects. These results demonstrate that further improvement and research of optogenetic tools is highly valuable and required to enable researchers to choose the best fitting optogenetic tool to address their scientific questions. N2 - Seit dem Channelrhodopsine das erste Mal beschrieben und erfolgreich in lebende Tiere eingebracht wurden (Nagel et al., 2003 und 2005), kam es zu einem beträchtlichen Fortschritt in diesem interessanten Gebiet der Neurowissenschaften. In der nachfolgenden Zeit wurden viele verschiedene optogenetische Werkzeuge beschrieben und zur Bearbeitung neurowissenschaftlicher Fragestellungen angewandt. Des Weiteren haben neben dem „klassischen“ Channelrhodopsin-2 (ChR2), ein im Wesentlichen Kation selektiver Kanal, auch modifizierte ChR2 Abkömmlinge, Anion selektive Kanäle und Licht sensitive metabotrope Proteine, die opotogenetische Werkzeugkiste erweitert. Dennoch greifen die meisten Wissenschaftler trotz der Vielfalt an optogenetischen Werkzeugen meist noch zu Channelrhodopsin-2, da seine Wirkungseigenschaften sehr gut erforscht sind. In der nachfolgenden Arbeit wird ein weiterentwickeltes Channelrhodopsin, Channelrhodopsin2-XXM (ChR2XXM), beschrieben. Aufgrund seiner vielfältigen Eigenschaften stellt es ein vielversprechendes Werkzeug dar, vor allem für zukünftige neurowissenschaftliche Forschungsarbeiten. Hierbei wurde ChR2XXM eingesetzt, um zu untersuchen welche Auswirkungen das Fehlen von Latrophilin im Chordotonal Organ von Drosophilalarven hat. Schließlich wurde noch die Funktionalität von GtACR an der neuromuskulären Endplatte der Drosophila überprüft. Für die umfassende Charakterisierung wurden elektrophysiologische und verhaltensbasierte Experimente an Larven durchgeführt. Es konnte gezeigt werden, dass ChR2XXM aufgrund einer erhöhten Affinität zu dem Chromophore Retinal, im Vergleich zu ChR2 ein besseres zelluläres Expressionsmuster, eine bessere zeitliche Auflösung und eine erheblich höhere Lichtsensitiviät aufweist. Durch den Einsatz von ChR2XXM konnte, aufgrund der hohen Lichtsensitiviät, mit nur minimalen Nebeneffekten, wie z.B. mögliche Wärmeaktivierung des Chordotonalorgans, der Einfluss von Latrophilin (dCIRL) auf die Signaltransmission im Chordotonalorgan, aufgeklärt werden. Ferner führte eine optogenetische, in vivo, Aktivierung des Chordotonalorgans zu Verhaltensänderungen. Zusätzlich konnte gezeigt werden, dass GtACR1 zwar effektiv motoneuronale Erregung inhibieren kann, dies aber von unerwarteten Nebeneffekten begleitet wird. Diese Ergebnisse zeigen auf, dass weitere Forschung und Verbesserungen im Bereich der optogenetischen Werkzeuge sehr wertvoll und notwendig ist, um Wissenschaftlern zu erlauben das am besten geeignetste optogenetische Werkzeug für ihre wissenschaftlichen Fragestellungen auswählen zu können. KW - Optogenetik KW - Taufliege KW - Elektrophysiologie KW - Channelrhodopsin-2 KW - optogenetics KW - Drosophila melanogaster KW - Channelrhodopsin KW - Electrophysiology Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-178793 ER - TY - JOUR A1 - Tian, Yuehui A1 - Yang, Shang A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Characterization and modification of light-sensitive phosphodiesterases from choanoflagellates JF - Biomolecules N2 - Enzyme rhodopsins, including cyclase opsins (Cyclops) and rhodopsin phosphodiesterases (RhoPDEs), were recently discovered in fungi, algae and protists. In contrast to the well-developed light-gated guanylyl/adenylyl cyclases as optogenetic tools, ideal light-regulated phosphodiesterases are still in demand. Here, we investigated and engineered the RhoPDEs from Salpingoeca rosetta, Choanoeca flexa and three other protists. All the RhoPDEs (fused with a cytosolic N-terminal YFP tag) can be expressed in Xenopus oocytes, except the AsRhoPDE that lacks the retinal-binding lysine residue in the last (8th) transmembrane helix. An N296K mutation of YFP::AsRhoPDE enabled its expression in oocytes, but this mutant still has no cGMP hydrolysis activity. Among the RhoPDEs tested, SrRhoPDE, CfRhoPDE1, 4 and MrRhoPDE exhibited light-enhanced cGMP hydrolysis activity. Engineering SrRhoPDE, we obtained two single point mutants, L623F and E657Q, in the C-terminal catalytic domain, which showed ~40 times decreased cGMP hydrolysis activity without affecting the light activation ratio. The molecular characterization and modification will aid in developing ideal light-regulated phosphodiesterase tools in the future. KW - choanoflagellates KW - optogenetics KW - rhodopsin phosphodiesterase (RhoPDE) KW - cGMP Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-254769 SN - 2218-273X VL - 12 IS - 1 ER - TY - JOUR A1 - Zhou, Yang A1 - Ding, Meiqi A1 - Duan, Xiaodong A1 - Konrad, Kai R. A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Extending the Anion Channelrhodopsin-Based Toolbox for Plant Optogenetics JF - Membranes N2 - Optogenetics was developed in the field of neuroscience and is most commonly using light-sensitive rhodopsins to control the neural activities. Lately, we have expanded this technique into plant science by co-expression of a chloroplast-targeted β-carotene dioxygenase and an improved anion channelrhodopsin GtACR1 from the green alga Guillardia theta. The growth of Nicotiana tabacum pollen tube can then be manipulated by localized green light illumination. To extend the application of analogous optogenetic tools in the pollen tube system, we engineered another two ACRs, GtACR2, and ZipACR, which have different action spectra, light sensitivity and kinetic features, and characterized them in Xenopus laevis oocytes, Nicotiana benthamiana leaves and N. tabacum pollen tubes. We found that the similar molecular engineering method used to improve GtACR1 also enhanced GtACR2 and ZipACR performance in Xenopus laevis oocytes. The ZipACR1 performed in N. benthamiana mesophyll cells and N. tabacum pollen tubes with faster kinetics and reduced light sensitivity, allowing for optogenetic control of anion fluxes with better temporal resolution. The reduced light sensitivity would potentially facilitate future application in plants, grown under low ambient white light, combined with an optogenetic manipulation triggered by stronger green light. KW - optogenetics KW - rhodopsin KW - light-sensitive anion channel KW - surface potential recording KW - pollen tube Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236617 SN - 2077-0375 VL - 11 IS - 4 ER - TY - JOUR A1 - Beck, Sebastian A1 - Yu-Strzelczyk, Jing A1 - Pauls, Dennis A1 - Constantin, Oana M. A1 - Gee, Christine E. A1 - Ehmann, Nadine A1 - Kittel, Robert J. A1 - Nagel, Georg A1 - Gao, Shiqiang T1 - Synthetic light-activated ion channels for optogenetic activation and inhibition JF - Frontiers in Neuroscience N2 - Optogenetic manipulation of cells or living organisms became widely used in neuroscience following the introduction of the light-gated ion channel channelrhodopsin-2 (ChR2). ChR2 is a non-selective cation channel, ideally suited to depolarize and evoke action potentials in neurons. However, its calcium (Ca2\(^{2+}\)) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca\(^{2+}\) might be desirable. Moreover, there is need for an efficient light-gated potassium (K\(^{+}\)) channel that can rapidly inhibit spiking in targeted neurons. Considering the importance of Ca\(^{2+}\) and K\(^{+}\) in cell physiology, light-activated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca\(^{2+}\)-permeant and K\(^{+}\)-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca\(^{2+}\) or for K\(^{+}\), respectively. Optimized fusion constructs showed strong light-gated conductance in Xenopus laevis oocytes and in rat hippocampal neurons. These constructs could also be used to control the motility of Drosophila melanogaster larvae, when expressed in motoneurons. Illumination led to body contraction when motoneurons expressed the light-sensitive Ca\(^{2+}\)-permeant channel, and to body extension when expressing the light-sensitive K\(^{+}\) channel, both effectively and reversibly paralyzing the larvae. Further optimization of these constructs will be required for application in adult flies since both constructs led to eclosion failure when expressed in motoneurons. KW - optogenetics KW - calcium KW - potassium KW - bPAC KW - CNG channel KW - cAMP KW - Drosophila melanogaster motoneuron KW - rat hippocampal neurons Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-177520 VL - 12 IS - 643 ER - TY - JOUR A1 - vom Dahl, Christian A1 - Müller, Christoph Emanuel A1 - Berisha, Xhevat A1 - Nagel, Georg A1 - Zimmer, Thomas T1 - Coupling the cardiac voltage-gated sodium channel to channelrhodopsin-2 generates novel optical switches for action potential studies JF - Membranes N2 - Voltage-gated sodium (Na\(^+\)) channels respond to short membrane depolarization with conformational changes leading to pore opening, Na\(^+\) influx, and action potential (AP) upstroke. In the present study, we coupled channelrhodopsin-2 (ChR2), the key ion channel in optogenetics, directly to the cardiac voltage-gated Na\(^+\) channel (Na\(_v\)1.5). Fusion constructs were expressed in Xenopus laevis oocytes, and electrophysiological recordings were performed by the two-microelectrode technique. Heteromeric channels retained both typical Na\(_v\)1.5 kinetics and light-sensitive ChR2 properties. Switching to the current-clamp mode and applying short blue-light pulses resulted either in subthreshold depolarization or in a rapid change of membrane polarity typically seen in APs of excitable cells. To study the effect of individual K\(^+\) channels on the AP shape, we co-expressed either K\(_v\)1.2 or hERG with one of the Na\(_v\)1.5-ChR2 fusions. As expected, both delayed rectifier K\(^+\) channels shortened AP duration significantly. K\(_v\)1.2 currents remarkably accelerated initial repolarization, whereas hERG channel activity efficiently restored the resting membrane potential. Finally, we investigated the effect of the LQT3 deletion mutant ΔKPQ on the AP shape and noticed an extremely prolonged AP duration that was directly correlated to the size of the non-inactivating Na\(^+\) current fraction. In conclusion, coupling of ChR2 to a voltage-gated Na\(^+\) channel generates optical switches that are useful for studying the effect of individual ion channels on the AP shape. Moreover, our novel optogenetic approach provides the potential for an application in pharmacology and optogenetic tissue-engineering. KW - optogenetics KW - channelrhodopsin KW - voltage-gated Na\(^+\) channel KW - action potential KW - delayed rectifier potassium channel KW - hERG KW - long QT syndrome Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-288228 SN - 2077-0375 VL - 12 IS - 10 ER -