Juraj Knoška
University of Hamburg
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Publication
Featured researches published by Juraj Knoška.
Nature | 2017
Jason R. Stagno; Yongmei Liu; Y. R. Bhandari; Chelsie E. Conrad; S. Panja; M. Swain; L. Fan; Garrett Nelson; Chufeng Li; D. R. Wendel; Thomas A. White; Jesse Coe; Max O. Wiedorn; Juraj Knoška; Dominik Oberthuer; R. A. Tuckey; P. Yu; M. Dyba; Sergey G. Tarasov; Uwe Weierstall; Thomas D. Grant; Charles D. Schwieters; Junmei Zhang; Adrian R. Ferré-D'Amaré; Petra Fromme; D. E. Draper; Mengning Liang; Mark S. Hunter; Sébastien Boutet; K. Tan
Riboswitches are structural RNA elements that are generally located in the 5′ untranslated region of messenger RNA. During regulation of gene expression, ligand binding to the aptamer domain of a riboswitch triggers a signal to the downstream expression platform. A complete understanding of the structural basis of this mechanism requires the ability to study structural changes over time. Here we use femtosecond X-ray free electron laser (XFEL) pulses to obtain structural measurements from crystals so small that diffusion of a ligand can be timed to initiate a reaction before diffraction. We demonstrate this approach by determining four structures of the adenine riboswitch aptamer domain during the course of a reaction, involving two unbound apo structures, one ligand-bound intermediate, and the final ligand-bound conformation. These structures support a reaction mechanism model with at least four states and illustrate the structural basis of signal transmission. The three-way junction and the P1 switch helix of the two apo conformers are notably different from those in the ligand-bound conformation. Our time-resolved crystallographic measurements with a 10-second delay captured the structure of an intermediate with changes in the binding pocket that accommodate the ligand. With at least a 10-minute delay, the RNA molecules were fully converted to the ligand-bound state, in which the substantial conformational changes resulted in conversion of the space group. Such notable changes in crystallo highlight the important opportunities that micro- and nanocrystals may offer in these and similar time-resolved diffraction studies. Together, these results demonstrate the potential of ‘mix-and-inject’ time-resolved serial crystallography to study biochemically important interactions between biomacromolecules and ligands, including those that involve large conformational changes.
Scientific Reports | 2017
Dominik Oberthuer; Juraj Knoška; Max O. Wiedorn; Kenneth R. Beyerlein; David A. Bushnell; Elena G. Kovaleva; Michael Heymann; Lars Gumprecht; Richard A. Kirian; Anton Barty; Valerio Mariani; Aleksandra Tolstikova; Luigi Adriano; Salah Awel; Miriam Barthelmess; Katerina Dörner; P. Lourdu Xavier; Oleksandr Yefanov; Daniel James; Garrett Nelson; Dingjie Wang; George Calvey; Yujie Chen; Andrea Schmidt; Michael Szczepek; Stefan Frielingsdorf; Oliver Lenz; Edward H. Snell; Philip J. J. Robinson; Božidar Šarler
Serial femtosecond crystallography requires reliable and efficient delivery of fresh crystals across the beam of an X-ray free-electron laser over the course of an experiment. We introduce a double-flow focusing nozzle to meet this challenge, with significantly reduced sample consumption, while improving jet stability over previous generations of nozzles. We demonstrate its use to determine the first room-temperature structure of RNA polymerase II at high resolution, revealing new structural details. Moreover, the double flow-focusing nozzles were successfully tested with three other protein samples and the first room temperature structure of an extradiol ring-cleaving dioxygenase was solved by utilizing the improved operation and characteristics of these devices.
Review of Scientific Instruments | 2015
Kenneth R. Beyerlein; Luigi Adriano; Michael Heymann; Richard A. Kirian; Juraj Knoška; Fabian Wilde; Henry N. Chapman; Sasa Bajt
Serial femtosecond crystallography (SFX) using X-ray Free-Electron Lasers (XFELs) allows for room temperature protein structure determination without evidence of conventional radiation damage. In this method, a liquid suspension of protein microcrystals can be delivered to the X-ray beam in vacuum as a micro-jet, which replenishes the crystals at a rate that exceeds the current XFEL pulse repetition rate. Gas dynamic virtual nozzles produce the required micrometer-sized streams by the focusing action of a coaxial sheath gas and have been shown to be effective for SFX experiments. Here, we describe the design and characterization of such nozzles assembled from ceramic micro-injection molded outer gas-focusing capillaries. Trends of the emitted jet diameter and jet length as a function of supplied liquid and gas flow rates are measured by a fast imaging system. The observed trends are explained by derived relationships considering choked gas flow and liquid flow conservation. Finally, the performance of these nozzles in a SFX experiment is presented, including an analysis of the observed background.
Structural Dynamics | 2017
Christopher Kupitz; Jose L. Olmos; Mark R. Holl; Lee Tremblay; Kanupriya Pande; Suraj Pandey; Dominik Oberthür; Mark S. Hunter; Mengning Liang; Andrew Aquila; Jason Tenboer; George Calvey; Andrea M. Katz; Yujie Chen; Max O. Wiedorn; Juraj Knoška; Alke Meents; Valerio Majriani; Tyler Norwood; Ishwor Poudyal; Thomas D. Grant; Mitchell D. Miller; Weijun Xu; Aleksandra Tolstikova; Andrew J. Morgan; Markus Metz; Jose M. Martin-Garcia; James Zook; Shatabdi Roy-Chowdhury; Jesse Coe
Mix-and-inject serial crystallography (MISC) is a technique designed to image enzyme catalyzed reactions in which small protein crystals are mixed with a substrate just prior to being probed by an X-ray pulse. This approach offers several advantages over flow cell studies. It provides (i) room temperature structures at near atomic resolution, (ii) time resolution ranging from microseconds to seconds, and (iii) convenient reaction initiation. It outruns radiation damage by using femtosecond X-ray pulses allowing damage and chemistry to be separated. Here, we demonstrate that MISC is feasible at an X-ray free electron laser by studying the reaction of M. tuberculosis ß-lactamase microcrystals with ceftriaxone antibiotic solution. Electron density maps of the apo-ß-lactamase and of the ceftriaxone bound form were obtained at 2.8 Å and 2.4 Å resolution, respectively. These results pave the way to study cyclic and non-cyclic reactions and represent a new field of time-resolved structural dynamics for numerous substrate-triggered biological reactions.
Structural Dynamics | 2015
Richard A. Kirian; Salah Awel; Niko Eckerskorn; Holger Fleckenstein; Max O. Wiedorn; Luigi Adriano; Sasa Bajt; Miriam Barthelmess; Richard Bean; Kenneth R. Beyerlein; Leonard M. G. Chavas; M. Domaracky; Michael Heymann; Daniel A. Horke; Juraj Knoška; Markus Metz; Andrew J. Morgan; Dominik Oberthuer; Nils Roth; T. Sato; Paulraj Lourdu Xavier; Oleksandr Yefanov; Andrei Rode; Jochen Küpper; Henry N. Chapman
A major challenge in high-resolution x-ray free-electron laser-based coherent diffractive imaging is the development of aerosol injectors that can efficiently deliver particles to the peak intensity of the focused X-ray beam. Here, we consider the use of a simple convergent-orifice nozzle for producing tightly focused beams of particles. Through optical imaging we show that 0.5 μm particles can be focused to a full-width at half maximum diameter of 4.2 μm, and we demonstrate the use of such a nozzle for injecting viruses into a micro-focused soft-X-ray FEL beam.
IUCrJ | 2017
Kenneth R. Beyerlein; Dennis Dierksmeyer; Valerio Mariani; Manuela Kuhn; Iosifina Sarrou; Angelica Ottaviano; Salah Awel; Juraj Knoška; Silje Skeide Fuglerud; O Jonsson; Stephan Stern; Max O. Wiedorn; Oleksandr Yefanov; Luigi Adriano; Richard Bean; Anja Burkhardt; Pontus Fischer; Michael Heymann; Daniel A. Horke; Katharina E.J. Jungnickel; Elena G. Kovaleva; Olga Lorbeer; Markus Metz; Jan Meyer; Andrew J. Morgan; Kanupriya Pande; Saravanan Panneerselvam; Carolin Seuring; Aleksandra Tolstikova; Julia Lieske
The structure of chitotriose bound to lysozyme after mixing times of 2 and 50 s was determined using a polyimide tape-drive device for mix-and-diffuse serial crystallography at a synchrotron light source.
Journal of Applied Crystallography | 2018
Salah Awel; Richard A. Kirian; Max O. Wiedorn; Kenneth R. Beyerlein; Nils Roth; Daniel A. Horke; Dominik Oberthür; Juraj Knoška; Valerio Mariani; Andrew J. Morgan; Luigi Adriano; Alexandra Tolstikova; P. Lourdu Xavier; Oleksandr Yefanov; Andrew Aquila; Anton Barty; Shatabdi Roy-Chowdhury; Mark S. Hunter; Daniel James; Uwe Weierstall; Andrei Rode; Sasa Bajt; Jochen Küpper; Henry N. Chapman
A new particle-injection approach is demonstrated that achieves very low background in the measurement of diffraction from macromolecular nanocrystals by using an aerosol-focusing injector with an X-ray free-electron laser.
IUCrJ | 2018
Max O. Wiedorn; Salah Awel; Andrew J. Morgan; Kartik Ayyer; Yaroslav Gevorkov; Holger Fleckenstein; Nils Roth; Luigi Adriano; Richard Bean; Kenneth R. Beyerlein; Joe Chen; Jesse Coe; Francisco Cruz-Mazo; Tomas Ekeberg; Rita Graceffa; Michael Heymann; Daniel A. Horke; Juraj Knoška; Valerio Mariani; Reza Nazari; Dominik Oberthür; Amit K. Samanta; Raymond G. Sierra; Claudiu A. Stan; Oleksandr Yefanov; Dimitrios Rompotis; Jonathan Correa; Benjamin Erk; Rolf Treusch; Joachim Schulz
Sample delivery is a major challenge to performing serial crystallography experiments at upcoming high-repetition-rate X-ray free-electron lasers. The feasibility of using gas-driven liquid jets for this purpose at the FLASH facility in Hamburg has been studied.
Journal of Synchrotron Radiation | 2017
Max O. Wiedorn; Salah Awel; Andrew J. Morgan; Miriam Barthelmess; Richard Bean; Kenneth R. Beyerlein; Leonard M. G. Chavas; Niko Eckerskorn; Holger Fleckenstein; Michael Heymann; Daniel A. Horke; Juraj Knoška; Valerio Mariani; Dominik Oberthür; Nils Roth; Oleksandr Yefanov; Anton Barty; Sasa Bajt; Jochen Küpper; Andrei Rode; Richard A. Kirian; Henry N. Chapman
Diffraction experiments with weakly scattering samples often suffer from a low signal-to-noise ratio due to unwanted background scatter. Improving the signal-to-noise ratio for single-particle imaging experiments is particularly important as the diffraction signal is very weak. Here, a simple way to minimize the background scattering by placing an aperture downstream of the sample is demonstrated.
Scientific Reports | 2017
Dominik Oberthuer; Juraj Knoška; Max O. Wiedorn; Kenneth R. Beyerlein; David A. Bushnell; Elena G. Kovaleva; Michael Heymann; Lars Gumprecht; Richard A. Kirian; Anton Barty; Valerio Mariani; Aleksandra Tolstikova; Luigi Adriano; Salah Awel; Miriam Barthelmess; Katerina Dörner; P. Lourdu Xavier; Oleksandr Yefanov; Daniel James; Garrett Nelson; Dingjie Wang; George Calvey; Yujie Chen; Andrea Schmidt; Michael Szczepek; Stefan Frielingsdorf; Oliver Lenz; Edward H. Snell; Philip J. J. Robinson; Božidar Šarler
This corrects the article DOI: 10.1038/srep44628.