58 research outputs found
Optimizing aerodynamic lenses for single-particle imaging
A numerical simulation infrastructure capable of calculating the flow of gas
and the trajectories of particles through an aerodynamic lens injector is
presented. The simulations increase the fundamental understanding and predict
optimized injection geometries and parameters. Our simulation results were
compared to previous reports and also validated against experimental data for
500 nm polystyrene spheres from an aerosol-beam- characterization setup. The
simulations yielded a detailed understanding of the radial phase-space
distribution and highlighted weaknesses of current aerosol injectors for
single-particle diffractive imaging. With the aid of these simulations we
developed new experimental implementations to overcome current limitations
Visualizing aerosol-particle injection for diffractive-imaging experiments
Delivering sub-micrometer particles to an intense x-ray focus is a crucial
aspect of single-particle diffractive-imaging experiments at x-ray
free-electron lasers. Enabling direct visualization of sub-micrometer aerosol
particle streams without interfering with the operation of the particle
injector can greatly improve the overall efficiency of single-particle imaging
experiments by reducing the amount of time and sample consumed during
measurements. We have developed in-situ non-destructive imaging diagnostics to
aid real-time particle injector optimization and x-ray/particle-beam alignment,
based on laser illumination schemes and fast imaging detectors. Our diagnostics
are constructed to provide a non-invasive rapid feedback on injector
performance during measurements, and have been demonstrated during diffraction
measurements at the FLASH free-electron laser.Comment: 15 page
Rapid sample delivery for megahertz serial crystallography at X-ray FELs
Liquid microjets are a common means of delivering protein crystals to the focus
of X-ray free-electron lasers (FELs) for serial femtosecond crystallography
measurements. The high X-ray intensity in the focus initiates an explosion of the
microjet and sample. With the advent of X-ray FELs with megahertz rates, the
typical velocities of these jets must be increased significantly in order to
replenish the damaged material in time for the subsequent measurement with
the next X-ray pulse. This work reports the results of a megahertz serial
diffraction experiment at the FLASH FEL facility using 4.3 nm radiation. The
operation of gas-dynamic nozzles that produce liquid microjets with velocities
greater than 80 m s1 was demonstrated. Furthermore, this article provides
optical images of X-ray-induced explosions together with Bragg diffraction from
protein microcrystals exposed to trains of X-ray pulses repeating at rates of up
to 4.5 MHz. The results indicate the feasibility for megahertz serial crystallography measurements with hard X-rays and give guidance for the design of
such experiments.Unión Europea 7PM / 2007-2013Consejo de Investigación de Australia DP170100131Ministerio de Economía, Industria y Competitividad DPI2016-78887-C3-1-RNational Science Foundation "BioXFEL" (1231306
Femtosecond x-ray diffraction from an aerosolized beam of protein nanocrystals
We demonstrate near-atomic-resolution Bragg diffraction from aerosolized
single granulovirus crystals using an x-ray free-electron laser. The form of
the aerosol injector is nearly identical to conventional liquid-microjet
nozzles, but the x-ray-scattering background is reduced by several orders of
magnitude by the use of helium carrier gas rather than liquid. This approach
provides a route to study the weak diffuse or lattice-transform signal arising
from small crystals. The high speed of the particles is particularly well
suited to upcoming MHz-repetition-rate x-ray free-electron lasers
Post-sample aperture for low background diffraction experiments at X-ray free-electron lasers
The success of diffraction experiments from weakly scattering samples strongly depends on achieving an optimal signal-to-noise ratio. This is particularly important in single-particle imaging experiments where diffraction signals are typically very weak and the experiments are often accompanied by significant background scattering. A simple way to tremendously reduce background scattering by placing an aperture downstream of the sample has been developed and its application in a single-particle X-ray imaging experiment at FLASH is demonstrated. Using the concept of a post-sample aperture it was possible to reduce the background scattering levels by two orders of magnitude.Funding for this research was provided by: Deutsches Elektronen-Synchrotron; Deutsche Forschungsgemeinschaft
(grant No. DFG-EXC1074); European Research Council (grant No. ERC614507-Kuepper); Helmholtz-Gemeinschaft (grant No. VI 419); Australian Research Council (grant
No. DP170100131); National Science Foundation (grant No.
STC-1231306)
Coherent diffraction of single Rice Dwarf virus particles using hard X-rays at the Linac Coherent Light Source
Single particle diffractive imaging data from Rice Dwarf Virus (RDV) were recorded using the Coherent X-ray Imaging (CXI) instrument at the Linac Coherent Light Source (LCLS). RDV was chosen as it is a wellcharacterized model system, useful for proof-of-principle experiments, system optimization and algorithm development. RDV, an icosahedral virus of about 70 nm in diameter, was aerosolized and injected into the approximately 0.1 mu m diameter focused hard X-ray beam at the CXI instrument of LCLS. Diffraction patterns from RDV with signal to 5.9 angstrom ngstrom were recorded. The diffraction data are available through the Coherent X-ray Imaging Data Bank (CXIDB) as a resource for algorithm development, the contents of which are described here.11Ysciescopu
Rapid sample delivery for megahertz serial crystallography at X-ray FELs
Liquid microjets are a common means of delivering protein crystals to the focus of X-ray free-electron lasers (FELs) for serial femtosecond crystallography measurements. The high X-ray intensity in the focus initiates an explosion of the microjet and sample. With the advent of X-ray FELs with megahertz rates, the typical velocities of these jets must be increased significantly in order to replenish the damaged material in time for the subsequent measurement with the next X-ray pulse. This work reports the results of a megahertz serial diffraction experiment at the FLASH FEL facility using 4.3 nm radiation. The operation of gas-dynamic nozzles that produce liquid microjets with velocities greater than 80 m s-1 was demonstrated. Furthermore, this article provides optical images of X-ray-induced explosions together with Bragg diffraction from protein microcrystals exposed to trains of X-ray pulses repeating at rates of up to 4.5 MHz. The results indicate the feasibility for megahertz serial crystallography measurements with hard X-rays and give guidance for the design of such experiments
Massive X-ray screening reveals two allosteric drug binding sites of SARS-CoV-2 main protease
The coronavirus disease (COVID-19) caused by SARS-CoV-2 is creating tremendous health problems and economical challenges for mankind. To date, no effective drug is available to directly treat the disease and prevent virus spreading. In a search for a drug against COVID-19, we have performed a massive X-ray crystallographic screen of repurposing drug libraries containing 5953 individual compounds against the SARS-CoV-2 main protease (Mpro), which is a potent drug target as it is essential for the virus replication. In contrast to commonly applied X-ray fragment screening experiments with molecules of low complexity, our screen tested already approved drugs and drugs in clinical trials. From the three-dimensional protein structures, we identified 37 compounds binding to Mpro. In subsequent cell-based viral reduction assays, one peptidomimetic and five non-peptidic compounds showed antiviral activity at non-toxic concentrations. Interestingly, two compounds bind outside the active site to the native dimer interface in close proximity to the S1 binding pocket. Another compound binds in a cleft between the catalytic and dimerization domain of Mpro. Neither binding site is related to the enzymatic active site and both represent attractive targets for drug development against SARS-CoV-2. This X-ray screening approach thus has the potential to help deliver an approved drug on an accelerated time-scale for this and future pandemics
X-ray screening identifies active site and allosteric inhibitors of SARS-CoV-2 main protease
The coronavirus disease (COVID-19) caused by SARS-CoV-2 is creating tremendous human suffering. To date, no effective drug is available to directly treat the disease. In a search for a drug against COVID-19, we have performed a high-throughput X-ray crystallographic screen of two repurposing drug libraries against the SARS-CoV-2 main protease (M^(pro)), which is essential for viral replication. In contrast to commonly applied X-ray fragment screening experiments with molecules of low complexity, our screen tested already approved drugs and drugs in clinical trials. From the three-dimensional protein structures, we identified 37 compounds that bind to M^(pro). In subsequent cell-based viral reduction assays, one peptidomimetic and six non-peptidic compounds showed antiviral activity at non-toxic concentrations. We identified two allosteric binding sites representing attractive targets for drug development against SARS-CoV-2
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