Survey
* Your assessment is very important for improving the work of artificial intelligence, which forms the content of this project
* Your assessment is very important for improving the work of artificial intelligence, which forms the content of this project
57 Xiaodong Tao, Oscar Azucena, Min Fu, Yi Zuo, Diana C. Chen, and Joel Kubby, Adaptive optics microscopy with direct wavefront sensing using fluorescent protein guide stars, Optics Letters 36 (2011), 3389-3391. 58 Xiaodong Tao, Oscar Azucena, Min Fu, Yi Zuo, Diana C. Chen, and Joel Kubby, Adaptive optics confocal microscopy using fluorescent protein guide-stars for brain tissue imaging, Proc. SPIE 8253 (2012), 82530M-82530M-6. 59 Xiaodong Tao, Justin Crest, Shaila Kotadia, Oscar Azucena, Diana C. Chen, William Sullivan, and Joel Kubby, Live imaging using adaptive optics with fluorescent protein guide-stars, Optics Express 20 (2012), 15969-15982. 60 J. Zhang and T.L. Megraw, Proper recruitment of gamma-tubulin and D-TACC/Msps to embryonic Drosophila centrosomes requires Centrosomin Motif 1, Mol. Biol. Cell 18 (2007), 4037-4049. 61 T. Moutinho-Santos, P. Sampaio, I. Amorim, M. Costa, and C.E. Sunkel, In vivo localisation of the mitotic POLO kinase shows a highly dynamic association with the mitotic apparatus during early embryogenesis in Drosophila, Biol. Cell 91 (1999), 585-596. 62 W.F. Rothwell and W. Sullivan, Fluorescent analysis of drosophila embryos, Drosophila Protocols, W. Sullivan, M. Ashburner and R. S. Hawley, eds. (Cold Spring Harbor Laboratory Press, 2000), 141-157. 63 M. Gu, Advanced Optical Imaging Theory (Springer-Verlag, New York, 1999). 64 M. Schwertner, M.J. Booth, M.A. Neil, and T. Wilson, Measurement of specimen-induced aberrations of biological samples using phase stepping interferometry, J. Microscopy 213 (2004), 11-19. 65 M.A.R. Jewel, V. Akondi, and B. Vohnsen, 3-D Analysis of Pinhole Size Optimization for a Confocal Signal-based Wavefront Sensor, Frontiers in Optics 2014, OSA Technical Digest (online) (Optical Society of America, 2014), JW3A.40. 66 C.A. Schneider, W.S. Rasband, and K.W. Eliceiri, NIH Image to ImageJ: 25 years of image analysis, Nat. Methods 9 (2012), 671-675. 67 Kai Wang, Wenzhi Sun, Christopher T. Richie, Brandon K. Harvey, Eric Betzig and Na Ji, Direct wavefront sensing for high-resolution in vivo imaging in scattering tissue, Nat. Comm. 6 (2015), 7276. 68 Jonathan M. Taylor, Christopher D. Saunter, Cyril Bourgenot, John M. Girkin, and Gordon D. Love, Realtime wavefront sensing in a SPIM microscope, and active aberration tracking, Proc. SPIE 9335 (2015), 93350A. 69 Demirhan Kobat, Michael E. Durst, Nozomi Nishimura, Angela W. Wong, Chris B. Schaffer, and Chris Xu, Deep tissue multiphoton microscopy using longer wavelength excitation, Opt. Express 17 (2009), 13354-13364. 70 Helmchen and W. Denk, Deep tissue two-photon microscopy, Nat. Methods 2 (2005), 932-940. 71 J.M. Girkin, S. Poland, and A.J. Wright, Adaptive optics for deeper imaging of biological samples, Curr. Opin. Biotechnol. 20 (2009), 106-110. 72 O. Albert, L. Sherman, G. Mourou, T.B. Norris and G. Vdovin, Smart microscope: an adaptive optics learning system for aberration correction in multiphoton confocal microscopy, Opt. Lett. 25 (2000), 52-54. 73 P. Marsh, D. Burns, and J. Girkin, Practical implementation of adaptive optics in multiphoton microscopy, Opt. Express 11 (2003), 1123-1130. 74 D. Debarre, E.J. Botcherby, T. Watanabe, S. Srinivas, M.J. Booth and T. Wilson, Image-based adaptive optics for two-photon microscopy, Opt. Lett. 34 (2009), 2495-2497. 75 N. Ji, D.E. Milkie, and E. Betzig, Characterization and adaptive optical correction of aberrations during in vivo imaging in the mouse cortex, Nat. Methods 7 (2010), 141-147. 76 Marcus Feierabend, Markus Rückel, and Winfried Denk, Coherence-gated wave-front sensing in strongly scattering samples, Opt. Lett. 29 (2004), 2255-2257. 77 M. Rueckel, J.A. Mack-Bucher, and W. Denk, Adaptive wavefront correction in two-photon microscopy using coherence-gated wavefront sensing, Proc. Nat. Acad. of Sci. 103 (2006), 17137-17142. 78 Markus Rueckel and Winfried Denk, Properties of coherence-gated wavefront sensing, J. Opt. Soc. Am. A 24 (2007), 3517-3529. 79 T.I.M. van Werkhoven, J. Antonello, H.H. Truong, M. Verhaegen, H.C. Gerritsen, and C.U. Keller, Snapshot coherence-gated direct wavefront sensing for multi-photon microscopy, Opt. Express 22 (2014), 9715-9733. 80 J.W. Cha, J. Ballesta, and P.T.C. So, Shack-Hartmann wavefront-sensor-based adaptive optics system for multiphoton microscopy, J. Biomed. Optics 15 (2010), 046022.