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The audio and video recording device will document police and civilian interactions while engaged in enforcement and investigative duties.
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S.U., M.K., T.Y., Y.O., S.T. and Y.U. conducted experiments and performed analyses. S.U., M.K., Y.O. and Y.U. co-wrote the manuscript. K.S., K.O., M.C.T., T.F. and H.F. contributed materials/analysis tools. M.K. and Y.U. planned and initiated the project, designed experiments, and supervised the entire project.
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This research was supported in part by the Ministry of Education, Culture, Sports, Science and Technology of Japan (Grant-in-Aid for Scientific Research (KAKENHI): 20117003 and 23249004 to Y.U., 23113504 and 25113707 to M.K., 23710108 to M.C.T., 24659092, 25113723 and 25293046 to Y.O. and 21121004 to T. F.), by The Daiichi-Sankyo Foundation of Life Science (to Y.U.), by the Uehara memorial Foundation (to Y.O.), by The Mochida Memorial Foundation for Medical and Pharmaceutical Research (to M.K.) and by a JSPS stipend (to S.U.). The authors thank D. Toomre for many useful discussions, K. Johnsson and G. Lukinavičius for β-tubulin–SNAP plasmid, N. Imamoto for HeLa cell lines expressing nuclear pore proteins, R. Wong for POM121 plasmid, J. Asada and S. Dan Xu for the construction of plasmids and experimental assistance, and Y. Arai for the ImageJ script for analysing projection profiles of the localization of super-resolution images. The African green monkey kidney normal cell line Vero (JCRB0111) was obtained from the Japanese Collection of Research Bioresources (JCRB) cell bank.
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Single-molecule localization microscopy is used to construct super-resolution images, but generally requires prior intense laser irradiation and in some cases additives, such as thiols, to induce on–off switching of fluorophores. These requirements limit the potential applications of this methodology. Here, we report a first-in-class spontaneously blinking fluorophore based on an intramolecular spirocyclization reaction. Optimization of the intramolecular nucleophile and rhodamine-based fluorophore (electrophile) provide a suitable lifetime for the fluorescent open form, and equilibrium between the open form and the non-fluorescent closed form. We show that this spontaneously blinking fluorophore is suitable for single-molecule localization microscopy imaging deep inside cells and for tracking the motion of structures in living cells. We further demonstrate the advantages of this fluorophore over existing methodologies by applying it to nuclear pore structures located far above the coverslip with a spinning-disk confocal microscope and for repetitive time-lapse super-resolution imaging of microtubules in live cells for up to 1 h.
Steinhauer, C., Forthmann, C., Vogelsang, J. & Tinnefeld, P. Superresolution microscopy on the basis of engineered dark states. J. Am. Chem. Soc. 130, 16840–16841 (2008).
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Kenmoku, S., Urano, Y., Kojima, H. & Nagano, T. Development of a highly specific rhodamine-based fluorescence probe for hypochlorous acid and its application to real-time imaging of phagocytosis. J. Am. Chem. Soc. 129, 7313–7318 (2007).