7 research outputs found

    Synthetic light-activated ion channels for optogenetic activation and inhibition

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    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 (Ca22+^{2+}) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca2+^{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 Ca2+^{2+} and K+^{+} in cell physiology, light-activated Ca2+^{2+}-permeant and K+^{+}-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca2+^{2+}-permeant and K+^{+}-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca2+^{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 Ca2+^{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

    Synthetic Light-Activated Ion Channels for Optogenetic Activation and Inhibition

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    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+) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca2+ 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 Ca2+ and K+ in cell physiology, light-activated Ca2+-permeant and K+-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca2+-permeant and K+-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca2+ 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 Ca2+-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

    Generierung und Charakterisierung neuartiger Proteine für Licht-aktivierte Hyperpolarisation von Zellmembranen

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    The light-gated cation channel Channelrhodopsin-2 was discovered and characterized in 2003. Already in 2005/2006 five independent groups demonstrated that heterologous expression of Channelrhodopsin-2 is a highly useful and simply applicable method for depolarizing and thereby activating nerve cells. The application of Channelrhodopsin-2 revolutionized neuroscience research and the method was then called optogenetics. In recent years more and more light-sensitive proteins were successfully introduced as “optogenetic tools”, not only in neuroscience. Optogenetic tools for neuronal excitation are well developed with many different cation-conducting wildtype and mutated channelrhodopsins, whereas for inhibition of neurons in the beginning (2007) only hyperpolarizing ion pumps were available. The later discovered light-activated anion channels (anion channelrhodopsins) can be useful hyperpolarizers, but only at low cytoplasmic anion concentration. For this thesis, I optimized CsR, a proton-pumping rhodopsin from Coccomyxa subellipsoidea, which naturally shows a robust expression in Xenopus laevis oocytes and plant leaves. I improved the expression and therefore the photocurrent of CsR about two-fold by N-terminal modification to the improved version CsR2.0, without altering the proton pump function and the action spectrum. A light pulse hyperpolarised the mesophyll cells of CsR2.0-expressing transgenic tobacco plants (N. tabacum) by up to 20 mV from the resting membrane potential of -150 to -200 mV. The robust heterologous expression makes CsR2.0 a promising optogenetic tool for hyperpolarization in other organisms as well. A single R83H point-mutation converted CsR2.0 into a light-activated (passive) proton channel with a reversal potential close to the Nernst potential for intra-/extra-cellular H+ concentration. This light-gated proton channel is expected to become a further useful optogenetic tool, e.g. for analysis of pH-regulation in cells or the intercellular space. Ion pumps as optogenetic tools require high expression levels and high light intensity for efficient pump currents, whereas long-term illumination may cause unwanted heating effects. Although anion channelrhodopsins are effective hyperpolarizing tools in some cases, their effect on neuronal activity is dependent on the cytoplasmic chloride concentration which can vary among neurons. In nerve cells, increased conductance for potassium terminates the action potential and K+ conductance underlies the resting membrane potential in excitable cells. Therefore, several groups attempted to synthesize artificial light-gated potassium channels but 2 all of these published innovations showed serious drawbacks, ranging from poor expression over lacking reversibility to poor temporal precision. A highly potassium selective light-sensitive silencer of action potentials is needed. To achieve this, I engineered a light-activated potassium channel by the genetic fusion of a photoactivated adenylyl cyclase, bPAC, and a cAMP-gated potassium channel, SthK. Illumination activates bPAC to produce cAMP and the elevated cAMP level opens SthK. The slow diffusion and degradation of cAMP makes this construct a very light-sensitive, long-lasting inhibitor. I have successfully developed four variants with EC50 to cAMP ranging from 7 over 10, 21, to 29 μM. Together with the original fusion construct (EC50 to cAMP is 3 μm), there are five different light- (or cAMP-) sensitive potassium channels for researchersto choose, depending on their cell type and light intensity needs.Der lichtgesteuerte Kationenkanal Channelrhodopsin-2 wurde 2003 entdeckt und charakterisiert. Bereits 2005/2006 zeigten fünf unabhängige Gruppen, dass die heterologe Expression von Channelrhodopsin-2 eine sehr nützliche und einfach anwendbare Methode zur Depolarisation und damit Aktivierung von Nervenzellen ist. Die Anwendung von Channelrhodopsin-2 revolutionierte die neurowissenschaftliche Forschung und die Methode wurde dann Optogenetik genannt. In den letzten Jahren wurden immer mehr lichtempfindliche Proteine als „optogenetische Werkzeuge“ eingeführt, und nicht nur in den Neurowissenschaften erfolgreich angewandt. Optogenetische Werkzeuge zur neuronalen Anregung sind mit vielen verschiedenen Kationen-leitenden Wildtyp- und mutierten Channelrhodopsinen gut entwickelt, während für die Hemmung von Neuronen zu Beginn (2007) nur hyperpolarisierende Ionenpumpen zur Verfügung standen. Die später entdeckten lichtaktivierten Anionenkanäle (Anionenkanalrhodopsine) können nützliche Hyperpolarisatoren sein, jedoch nur bei niedriger zytoplasmatischer Anionenkonzentration. Für diese Arbeit habe ich CsR optimiert, ein Protonen pumpendes Rhodopsin aus Coccomyxa subellipsoidea, das von Natur aus eine robuste Expression in Oozyten von Xenopus laevis und in Pflanzenblättern zeigt. Ich habe die Expression und damit den Photostrom von CsR etwa um das Zweifache durch N-terminale Modifikation verbessert, ohne die Protonenpump-Funktion und das Aktionsspektrum bei der verbesserten Version von CsR2.0 zu verändern. Ein Lichtpuls hyperpolarisierte die Mesophyllzellen von CsR2.0-exprimierenden transgenen Tabakpflanzen (N. tabacum) um bis zu 20 mV gegenüber dem Ruhe-Membranpotential von -150 bis -200 mV. Die robuste heterologe Expression macht CsR2.0 zu einem vielversprechenden optogenetischen Werkzeug für die Hyperpolarisation auch in anderen Organismen. Eine einzelne R83H-Punktmutation wandelte CsR2.0 um in einen Licht-aktivierten (passiven) Protonenkanal mit einem Umkehrpotential nahe dem Nernst-Potential für intra-/extrazelluläre H+-Konzentration. Es wird erwartet, dass dieser Licht-gesteuerte Protonenkanal ein weiteres nützliches optogenetisches Werkzeug wird, z. zur Analyse der pH-Regulation in Zellen oder dem Interzellularraum. Ionenpumpen als optogenetische Werkzeuge erfordern hohe Expressionsraten und eine hohe Lichtintensität für effiziente Pumpströme, wobei eine Langzeitbeleuchtung unerwünschte Erwärmungseffekte verursachen kann. Obwohl Anionen-Channelrhodopsine in einigen Fällen wirksame hyperpolarisierende Werkzeuge sind, hängt ihre Wirkung auf die neuronale Aktivität von der zytoplasmatischen Chloridkonzentration ab, die zwischen den Neuronen variieren kann. In Nervenzellen beendet eine erhöhte Leitfähigkeit für Kalium das Aktionspotential und die K+-Leitfähigkeit liegt dem Ruhe-Membranpotential in erregbaren Zellen zugrunde. Daher versuchten mehrere Gruppen, künstliche lichtgesteuerte Kaliumkanäle zu synthetisieren, aber alle diese veröffentlichten Innovationen zeigten schwerwiegende Nachteile, die von schlechter Expression über fehlende Reversibilität bis hin zu geringer zeitlicher Präzision reichten. Ein hoch Kalium-selektiver Licht-empfindlicher Inhibitor der Aktionspotentiale ist von hohem Wert für die Neurowissenschaft. Um dies zu erreichen, habe ich einen Licht-aktivierten Kaliumkanal durch genetische Fusion einer photoaktivierten Adenylylcyclase, bPAC, und eines cAMP-gesteuerten Kaliumkanals, SthK, konstruiert. Beleuchtung aktiviert bPAC zur Produktion von cAMP und der erhöhte cAMP-Spiegel öffnet SthK. Die langsame Diffusion und Degradation von cAMP macht dieses Konstrukt zu einem sehr Licht-empfindlichen, lang anhaltenden Inhibitor. Ich habe darüber hinaus erfolgreich vier Varianten mit EC50 für cAMP im Bereich von 7 über 10, 21 bis 29 µM entwickelt. Zusammen mit dem ursprünglichen Fusionskonstrukt (EC50 zu cAMP beträgt 3 μM) gibt es damit nun fünf verschiedene lichtempfindliche Kaliumkanäle, die je nach Zelltyp und Lichtintensitätsbedarf für optogenetische Experimente ausgewählt werden können

    Modified Rhodopsins From Aureobasidium pullulans Excel With Very High Proton-Transport Rates

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    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

    Synthetic light-activated ion channels for optogenetic activation and inhibition

    Get PDF
    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 (Ca22+^{2+}) permeability and single channel conductance are low and for some applications longer-lasting increases in intracellular Ca2+^{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 Ca2+^{2+} and K+^{+} in cell physiology, light-activated Ca2+^{2+}-permeant and K+^{+}-specific channels would be welcome additions to the optogenetic toolbox. Here we describe the engineering of novel light-gated Ca2+^{2+}-permeant and K+^{+}-specific channels by fusing a bacterial photoactivated adenylyl cyclase to cyclic nucleotide-gated channels with high permeability for Ca2+^{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 Ca2+^{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

    PMRT1, a Plasmodium specific parasite plasma membrane transporter is essential for asexual and sexual blood stage development

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    Membrane transport proteins perform crucial roles in cell physiology. The obligate intracellular parasite Plasmodium falciparum, an agent of human malaria, relies on membrane transport proteins for the uptake of nutrients from the host, disposal of metabolic waste, exchange of metabolites between organelles, and generation and maintenance of transmembrane electrochemical gradients for its growth and replication within human erythrocytes. Despite their importance for Plasmodium cellular physiology, the functional roles of a number of membrane transport proteins remain unclear, which is particularly true for orphan membrane transporters that have no or limited sequence homology to transporter proteins in other evolutionary lineages. Therefore, in the current study, we applied endogenous tagging, targeted gene disruption, conditional knockdown, and knockout approaches to investigate the subcellular localization and essentiality of six membrane transporters during intraerythrocytic development of P. falciparum parasites. They are localized at different subcellular structures—the food vacuole, the apicoplast, and the parasite plasma membrane—and four out of the six membrane transporters are essential during asexual development. Additionally, the plasma membrane resident transporter 1 (PMRT1; PF3D7_1135300), a unique Plasmodium-specific plasma membrane transporter, was shown to be essential for gametocytogenesis and functionally conserved within the genus Plasmodium. Overall, we reveal the importance of four orphan transporters to blood stage P. falciparum development, which have diverse intracellular localizations and putative functions. IMPORTANCE: Plasmodium falciparum-infected erythrocytes possess multiple compartments with designated membranes. Transporter proteins embedded in these membranes not only facilitate movement of nutrients, metabolites, and other molecules between these compartments, but also are common therapeutic targets and can confer antimalarial drug resistance. Orphan membrane transporters in P. falciparum without sequence homology to transporters in other evolutionary lineages and divergent from host transporters may constitute attractive targets for novel intervention approaches. Here, we localized six of these putative transporters at different subcellular compartments and probed their importance during asexual parasite growth by using reverse genetic approaches. In total, only two candidates turned out to be dispensable for the parasite, highlighting four candidates as putative targets for therapeutic interventions. This study reveals the importance of several orphan transporters to blood stage P. falciparum development
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