Littérature scientifique sur le sujet « Time-Resolved cryoEM »
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Articles de revues sur le sujet "Time-Resolved cryoEM"
Budell, William, Venkata Dandey, Hui Wei, Daija Bobe, Kashyap Maruthi, Mykhailo Kopylov, Edward Eng, Peter Kahn, Clint Potter et Bridget Carragher. « Time-resolved CryoEM Using Spotiton ». Microscopy and Microanalysis 26, S2 (30 juillet 2020) : 326–27. http://dx.doi.org/10.1017/s1431927620014245.
Texte intégralTan, Yong Zi, et John L. Rubinstein. « Through-grid wicking enables high-speed cryoEM specimen preparation ». Acta Crystallographica Section D Structural Biology 76, no 11 (13 octobre 2020) : 1092–103. http://dx.doi.org/10.1107/s2059798320012474.
Texte intégralJagielnicki, Maciej, Iga Kucharska, Brad C. Bennett, Andrew L. Harris et Mark Yeager. « Connexin Gap Junction Channels and Hemichannels : Insights from High-Resolution Structures ». Biology 13, no 5 (26 avril 2024) : 298. http://dx.doi.org/10.3390/biology13050298.
Texte intégralPichon, Benoît P., Paul H. H. Bomans, Peter M. Frederik et Nico A. J. M. Sommerdijk. « A Quasi-Time-Resolved CryoTEM Study of the Nucleation of CaCO3under Langmuir Monolayers ». Journal of the American Chemical Society 130, no 12 (mars 2008) : 4034–40. http://dx.doi.org/10.1021/ja710416h.
Texte intégralBroadhurst, Edward T., Hongyi Xu, Simon Parsons et Fabio Nudelman. « Revealing the early stages of carbamazepine crystallization by cryoTEM and 3D electron diffraction ». IUCrJ 8, no 6 (30 octobre 2021) : 860–66. http://dx.doi.org/10.1107/s2052252521010101.
Texte intégralChestnut, H., D. P. Siegel, J. L. Burns et Y. Talmon. « A temperature-jump technique for time-resolved cryo-transmission Electron Microscopy ». Proceedings, annual meeting, Electron Microscopy Society of America 47 (6 août 1989) : 742–43. http://dx.doi.org/10.1017/s0424820100155682.
Texte intégralBhattacharjee, Biddut, Md Mahfuzur Rahman, Ryan E. Hibbs et Michael H. B. Stowell. « A simple flash and freeze system for cryogenic time-resolved electron microscopy ». Frontiers in Molecular Biosciences 10 (7 mars 2023). http://dx.doi.org/10.3389/fmolb.2023.1129225.
Texte intégralTemperini, Maria Eleonora, Raffaella Polito, Antonia Intze, Raymond Gillibert, Fritz Berkmann, Leonetta Baldassarre, Valeria Giliberti et Michele Ortolani. « A mid-infrared laser microscope for the time-resolved study of light-induced protein conformational changes ». Review of Scientific Instruments 94, no 6 (1 juin 2023). http://dx.doi.org/10.1063/5.0136676.
Texte intégralChang, Chen-Jen, Yen-Chang Hsiao, Ana Elena Aviña et Yu-Fan Chiang. « The effectiveness of flashlamp-pumped pulsed dye laser in conjunction with topical imiquimod treatment for rosacea ». Laser Therapy 29, no 3 (27 décembre 2022). http://dx.doi.org/10.4081/ltj.2022.303.
Texte intégralThèses sur le sujet "Time-Resolved cryoEM"
Moissonnier, Loïck. « Etude fonctionnelle et structurale du transporteur de multiple drogues, BmrA, en condition d’équilibre et en temps résolu. Caractérisation structurale de BmrA en liposome par cryoEM ». Electronic Thesis or Diss., Lyon 1, 2024. http://www.theses.fr/2024LYO10213.
Texte intégralAccording to the World Health Organization, antibiotic resistance is a major problem for humanity due to the emergence of multiresistant bacteria. The emergence of these resistances in bacteria is due to their ability to implement numerous strategies to prevent antibiotics from working. In particular, the first line of defense of these bacteria is the overexpression of ABC (ATP-Binding Cassette) transporters, which expel antibiotics out of the bacterial cell, reducing their concentrations below their cytotoxic thresholds. Over 50 years of study on these transporters have enabled the scientific community to establish a global mechanism, particularly thanks to the increasing acquisition of 3D structures. This has been closely linked to the technological and methodological evolution of structural biology in recent years, especially with the emergence of cryoEM. As knowledge advances, the questions become more precise, and many questions remain about understanding their functioning. As part of my project, I studied BmrA, one of these ABC transporters expressed in Bacillus subtilis, which confers resistance to cervimycin C, an antibiotic secreted by Streptomyces tendae, its natural competitor in the same biotope. Additionally, this transporter is capable of binding and transporting a wide variety of molecules, including many antibiotics, by adopting both a conformation that takes up the ligand (IF, inward-facing conformation) and an outward-facing conformation (OF) to release it. This ability to handle multiple molecules remains a highly debated question, especially in understanding the transport mechanism at the molecular level. During my Ph.D., I participated in a structural enzymology study on an inactive E504A mutant in the presence of ligands (Rhodamine 6G, Hoechst 33342) to improve knowledge of this mechanism. These ligands act as allosteric effectors on the ATP binding of BmrA, impacting the transition between IF and OF conformations. The resolution of several 3D structures by cryoEM was achieved by varying the concentration of ATP. An analysis of the flexibility of each of these conformations highlighted the molecular rearrangements that BmrA can adopt to ensure its polyspecificity. Moreover, I provided numerous functional insights regarding the coupling between ligand transport and the ATPase activity of this transporter. The second part of my work focused on studying the conformational transition occurring in BmrA after ATP binding using so-called "time-resolved" techniques. The objective was to monitor these conformational changes over time using the intrinsic fluorescence of BmrA coupled with cryoEM. I developed and optimized the experimental conditions to conduct this study, particularly acquiring kinetic and dynamic information on mutants as well as the wild-type protein. Finally, the last part of the manuscript involved reconstituting BmrA in a more native amphipathic environment than detergents to obtain its 3D structure by cryoEM. I optimized this reconstitution protocol to obtain the best possible sample for grid deposition. During this process, I characterized the formation of the proteoliposome at each stage of the protocol by observing it with cryoEM. Thanks to this study, I was able to obtain the first 2D classes of BmrA in a lipid bilayer. In conclusion, this thesis offers a new way to study the structure-function relationship of proteins by developing structural enzymology tools and methodology to visualize the dynamics of this ABC transporter, as well as a first approach to studying it in liposomes
Chen, Bo. « Cryo-EM and time-resolved cryo-EM studies on translation ». Thesis, 2015. https://doi.org/10.7916/D8WW7G9J.
Texte intégralFu, Ziao. « Time-resolved Cryo-EM Studies on Translation and Cryo-EM Studies on Membrane Proteins ». Thesis, 2019. https://doi.org/10.7916/d8-armm-km47.
Texte intégralLivres sur le sujet "Time-Resolved cryoEM"
Fu, Ziao. Time-resolved Cryo-EM Studies on Translation and Cryo-EM Studies on Membrane Proteins. [New York, N.Y.?] : [publisher not identified], 2019.
Trouver le texte intégralCryo-EM and time-resolved cryo-EM studies on translation. [New York, N.Y.?] : [publisher not identified], 2015.
Trouver le texte intégralChapitres de livres sur le sujet "Time-Resolved cryoEM"
Frank, Joachim. « Time-Resolved Cryo-Electron Microscopy : Recent Progress ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 423–31. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-20.
Texte intégralKaledhonkar, Sandip, Ziao Fu, Howard White et Joachim Frank. « Time-Resolved Cryo-Electron Microscopy Using a Microfluidic Chip ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 433–47. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-21.
Texte intégralKaledhonkar, Sandip, Ziao Fu, Howard White et Joachim Frank. « Time-Resolved Cryo-electron Microscopy Using a Microfluidic Chip ». Dans Protein Complex Assembly, 59–71. New York, NY : Springer New York, 2018. http://dx.doi.org/10.1007/978-1-4939-7759-8_4.
Texte intégralFu, Ziao, Sandip Kaledhonkar, Anneli Borg, Ming Sun, Bo Chen, Robert A. Grassucci, Mans Ehrenberg et Joachim Frank. « Key Intermediates in Ribosome Recycling Visualized by Time-Resolved Cryo-Electron Microscopy ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 367–93. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-18.
Texte intégralKaledhonkar, Sandip, Ziao Fu, Kelvin Caban, Wen Li, Bo Chen, Ming Sun, Ruben L. Gonzalez et Joachim Frank. « Late Steps in Bacterial Translation Initiation Visualized Using Time-Resolved Cryo-EM ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 449–80. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-22.
Texte intégralChen, Bo, Sandip Kaledhonkar, Ming Sun, Bingxin Shen, Zonghuan Lu, David Barnard, Toh-Ming Lu, Ruben L. Gonzalez et Joachim Frank. « Structural Dynamics of Ribosome Subunit Association Studied by Mixing-Spraying Time-Resolved Cryogenic Electron Microscopy ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 315–41. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-16.
Texte intégralFu, Ziao, Gabriele Indrisiunaite, Sandip Kaledhonkar, Binita Shah, Ming Sun, Bo Chen, Robert A. Grassucci, Mans Ehrenberg et Joachim Frank. « The Structural Basis for Release-Factor Activation During Translation Termination Revealed by Time-Resolved Cryogenic Electron Microscopy ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 481–500. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-23.
Texte intégralMandelkow, Eckhard, et Eva-Maria Mandelkow. « Microtubule Structure and Assembly Studied by Time-Resolved X-Ray Scattering and Cryo-Electron Microscopy ». Dans Structure, Dynamics and Function of Biomolecules, 148–51. Berlin, Heidelberg : Springer Berlin Heidelberg, 1987. http://dx.doi.org/10.1007/978-3-642-71705-5_32.
Texte intégralSun, Ming, Bingxin Shen, Wen Li, Parimal Samir, Christopher M. Browne, Andrew J. Link et Joachim Frank. « A Time-Resolved Cryo-EM Study of Saccharomyces cerevisiae 80S Ribosome Protein Composition in Response to a Change in Carbon Source ». Dans Novel Developments in Cryo‐EM of Biological Molecules, 501–21. New York : Jenny Stanford Publishing, 2023. http://dx.doi.org/10.1201/9781003456100-24.
Texte intégral« Time-resolved electron diffraction and microscopy studies of membrane proteins ». Dans Time-resolved Diffraction, sous la direction de Richard Henderson et Nigel Unwin, 391–400. Oxford University PressOxford, 1997. http://dx.doi.org/10.1093/oso/9780198500322.003.0014.
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