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      Theoretical Design, Synthesis, and In Vitro Neurobiological Applications of a Highly Efficient Two-Photon Caged GABA Validated on an Epileptic Case

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          Abstract

          In this paper, we present an additional, new cage-GABA compound, called 4-amino-1-(4′-dimethylaminoisopropoxy-5′,7′-dinitro-2′,3′-dihydro-indol-1-yl)-1-oxobutane-γ-aminobutyric acid (iDMPO-DNI-GABA), and currently, this compound is the only photoreagent, which can be applied for GABA uncaging without experimental compromises. By a systematic theoretical design and successful synthesis of several compounds, the best reagent exhibits a high two-photon efficiency within the 700–760 nm range with excellent pharmacological behavior, which proved to be suitable for a complex epileptic study. Quantum chemical design showed that the optimal length of the cationic side chain enhances the two-photon absorption by 1 order of magnitude due to the cooperating internal hydrogen bonding to the extra nitro group on the core. This feature increased solubility while suppressing membrane permeability. The efficiency was demonstrated in a systematic, wide range of in vitro single-cell neurophysiological experiments by electrophysiological as well as calcium imaging techniques. Scalable inhibitory ion currents were elicited by iDMPO-DNI-GABA with appropriate spatial–temporal precision, blocking both spontaneous and evoked cell activity with excellent efficiency. Additionally, to demonstrate its applicability in a real neurobiological study, we could smoothly and selectively modulate neuronal activities during artificial epileptic rhythms first time in a neural network of GCaMP6f transgenic mouse brain slices.

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          Density-functional thermochemistry. III. The role of exact exchange

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            Ultra-sensitive fluorescent proteins for imaging neuronal activity

            Summary Fluorescent calcium sensors are widely used to image neural activity. Using structure-based mutagenesis and neuron-based screening, we developed a family of ultra-sensitive protein calcium sensors (GCaMP6) that outperformed other sensors in cultured neurons and in zebrafish, flies, and mice in vivo. In layer 2/3 pyramidal neurons of the mouse visual cortex, GCaMP6 reliably detected single action potentials in neuronal somata and orientation-tuned synaptic calcium transients in individual dendritic spines. The orientation tuning of structurally persistent spines was largely stable over timescales of weeks. Orientation tuning averaged across spine populations predicted the tuning of their parent cell. Although the somata of GABAergic neurons showed little orientation tuning, their dendrites included highly tuned dendritic segments (5 - 40 micrometers long). GCaMP6 sensors thus provide new windows into the organization and dynamics of neural circuits over multiple spatial and temporal scales.
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              Quantum Calculation of Molecular Energies and Energy Gradients in Solution by a Conductor Solvent Model

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                Author and article information

                Journal
                ACS Omega
                ACS Omega
                ao
                acsodf
                ACS Omega
                American Chemical Society
                2470-1343
                03 June 2021
                15 June 2021
                : 6
                : 23
                : 15029-15045
                Affiliations
                []The Faculty of Information Technology, Pázmány Péter Catholic University , 50 Práter str., H-1083 Budapest, Hungary
                []Laboratory of 3D Functional Network and Dendritic Imaging, Institute of Experimental Medicine , 43 Szigony str., H-1083 Budapest, Hungary
                [§ ]Institute of Chemistry, Faculty of Materials Science and Engineering, University of Miskolc , H-3515 Miskolc, Hungary
                []Chemistry Department, Femtonics Limited , Tűzoltó str. 59, H-1094 Budapest, Hungary
                []Transgenic Facility, Institute of Experimental Medicine , 43 Szigony str., H-1083 Budapest, Hungary
                [# ]Gedeon Richter Plc , Gyömrői str. 19-21, H-1103 Budapest, Hungary
                []Department of Chemistry, University of Toronto , 80 St. George Street, M5S 3H6 Toronto, Ontario, Canada
                []Institute of Materials and Environmental Chemistry, Research Centre for Natural Sciences , 2 Magyar tudósok körútja, H-1117 Budapest, Hungary
                Author notes
                Author information
                https://orcid.org/0000-0003-4895-0999
                https://orcid.org/0000-0001-7057-303X
                https://orcid.org/0000-0002-3939-6925
                https://orcid.org/0000-0003-3224-8847
                Article
                10.1021/acsomega.1c01164
                8210458
                34151084
                82905408-8dd0-41e6-84a9-38324299c1ad
                © 2021 The Authors. Published by American Chemical Society

                Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works ( https://creativecommons.org/licenses/by-nc-nd/4.0/).

                History
                : 03 March 2021
                : 20 May 2021
                Funding
                Funded by: H2020 European Research Council, doi 10.13039/100010663;
                Award ID: 682426
                Funded by: Nemzeti Kutatási Fejlesztési és Innovációs Hivatal, doi 10.13039/501100011019;
                Award ID: VKE-18-2018-00032
                Funded by: Nemzeti Kutatási Fejlesztési és Innovációs Hivatal, doi 10.13039/501100011019;
                Award ID: OTKA PD 128612
                Funded by: Nemzeti Kutatási Fejlesztési és Innovációs Hivatal, doi 10.13039/501100011019;
                Award ID: KFI-18-2018-00097
                Funded by: Magyar Tudományos Akadémia, doi 10.13039/501100003825;
                Award ID: NA
                Categories
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                Custom metadata
                ao1c01164
                ao1c01164

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