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Time-resolved serial crystallography captures high-resolution intermediates of photoactive yellow protein.

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Serial femtosecond crystallography using ultrashort pulses from x-ray free electron lasers (XFELs) enables studies of the light-triggered dynamics of biomolecules. We used microcrystals of photoactive yellow protein (a bacterial blue light photoreceptor) as a model system and obtained high-resolution, time-resolved difference electron density maps of excellent quality with strong features; these allowed the determination of structures of reaction intermediates to a resolution of 1.6 angstroms. Our results open the way to the study of reversible and nonreversible biological reactions on time scales as short as femtoseconds under conditions that maximize the extent of reaction initiation throughout the crystal.

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  • Research Article
  • Cite Count Icon 12
  • 10.1107/s1600576723001036
A simple goniometer-compatible flow cell for serial synchrotron X-ray crystallography
  • Mar 9, 2023
  • Journal of Applied Crystallography
  • Swagatha Ghosh + 17 more

Serial femtosecond crystallography was initially developed for room-temperature X-ray diffraction studies of macromolecules at X-ray free electron lasers. When combined with tools that initiate biological reactions within microcrystals, time-resolved serial crystallography allows the study of structural changes that occur during an enzyme catalytic reaction. Serial synchrotron X-ray crystallography (SSX), which extends serial crystallography methods to synchrotron radiation sources, is expanding the scientific community using serial diffraction methods. This report presents a simple flow cell that can be used to deliver microcrystals across an X-ray beam during SSX studies. This device consists of an X-ray transparent glass capillary mounted on a goniometer-compatible 3D-printed support and is connected to a syringe pump via light-weight tubing. This flow cell is easily mounted and aligned, and it is disposable so can be rapidly replaced when blocked. This system was demonstrated by collecting SSX data at MAX IV Laboratory from microcrystals of the integral membrane protein cytochrome c oxidase from Thermus thermophilus, from which an X-ray structure was determined to 2.12 Å resolution. This simple SSX platform may help to lower entry barriers for non-expert users of SSX.

  • Supplementary Content
  • Cite Count Icon 31
  • 10.1063/1.4922774
Time-resolved structural studies with serial crystallography: A new light on retinal proteins
  • Jun 29, 2015
  • Structural Dynamics
  • Valérie Panneels + 17 more

Structural information of the different conformational states of the two prototypical light-sensitive membrane proteins, bacteriorhodopsin and rhodopsin, has been obtained in the past by X-ray cryo-crystallography and cryo-electron microscopy. However, these methods do not allow for the structure determination of most intermediate conformations. Recently, the potential of X-Ray Free Electron Lasers (X-FELs) for tracking the dynamics of light-triggered processes by pump-probe serial femtosecond crystallography has been demonstrated using 3D-micron-sized crystals. In addition, X-FELs provide new opportunities for protein 2D-crystal diffraction, which would allow to observe the course of conformational changes of membrane proteins in a close-to-physiological lipid bilayer environment. Here, we describe the strategies towards structural dynamic studies of retinal proteins at room temperature, using injector or fixed-target based serial femtosecond crystallography at X-FELs. Thanks to recent progress especially in sample delivery methods, serial crystallography is now also feasible at synchrotron X-ray sources, thus expanding the possibilities for time-resolved structure determination.

  • Research Article
  • Cite Count Icon 11
  • 10.1016/j.bpr.2022.100081
Electrically stimulated droplet injector for reduced sample consumption in serial crystallography
  • Sep 29, 2022
  • Biophysical reports
  • Mukul Sonker + 34 more

Electrically stimulated droplet injector for reduced sample consumption in serial crystallography

  • Research Article
  • 10.1107/s2053273323096894
Unravelling the dynamics of biomolecules by serial crystallography at X-ray free-electron lasers
  • Jul 7, 2023
  • Acta Crystallographica Section A Foundations and Advances
  • Petra Fromme

New avenues for structural discovery of the function and dynamics of biomolecules have been opened by X-ray Free Electron Lasers (XFELs) by Serial Femtosecond Crystallography (SFX). SFX provides a novel concept for structure determination, where Xray diffraction "snapshots" are collected from a fully hydrated stream of nanocrystals, using femtosecond pulses from high energy X-ray free-electron lasers (XFELs) [1] [2][3][4]. The XFEL pulses are so strong that they destroy any solid material, but a femtosecond is so short (1 fs =10 -15s) that X-ray damage is diminished and diffraction from the crystals is observed before destruction takes effect [3]. Structural Biology with X-ray Free electron lasers allows for data collection at near physiological conditions at room temperature [5-13] thereby opening new avenues for the study of light-driven systems in pump probe experiments [7] [8] [9] [10] [11][12] as well as the study of medical important proteins that could enhance structure-based drug design with SFX studies [5, 13]. The talk will give an overview of XFEL studies on medical important proteins, including the XFEL studies on the SARS-CoV2 protein NendoU that hides the virus from the immune system [14] (Figure 1 ). The talk will also report on our most recent time-resolved studies on light-driven systems including Photosystem I and II and give an overview of the development of compact X-ray Free electron Lasers and their future impact for Structural Biology.

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  • Cite Count Icon 43
  • 10.1038/s41467-020-18156-7
Segmented flow generator for serial crystallography at the European X-ray free electron laser
  • Sep 9, 2020
  • Nature communications
  • Austin Echelmeier + 70 more

Serial femtosecond crystallography (SFX) with X-ray free electron lasers (XFELs) allows structure determination of membrane proteins and time-resolved crystallography. Common liquid sample delivery continuously jets the protein crystal suspension into the path of the XFEL, wasting a vast amount of sample due to the pulsed nature of all current XFEL sources. The European XFEL (EuXFEL) delivers femtosecond (fs) X-ray pulses in trains spaced 100 ms apart whereas pulses within trains are currently separated by 889 ns. Therefore, continuous sample delivery via fast jets wastes >99% of sample. Here, we introduce a microfluidic device delivering crystal laden droplets segmented with an immiscible oil reducing sample waste and demonstrate droplet injection at the EuXFEL compatible with high pressure liquid delivery of an SFX experiment. While achieving ~60% reduction in sample waste, we determine the structure of the enzyme 3-deoxy-D-manno-octulosonate-8-phosphate synthase from microcrystals delivered in droplets revealing distinct structural features not previously reported.

  • Research Article
  • Cite Count Icon 8
  • 10.3791/54463-v
Preparation and Delivery of Protein Microcrystals in Lipidic Cubic Phase for Serial Femtosecond Crystallography
  • Sep 20, 2016
  • Journal of Visualized Experiments
  • Andrii Ishchenko + 2 more

Membrane proteins (MPs) are essential components of cellular membranes and primary drug targets. Rational drug design relies on precise structural information, typically obtained by crystallography; however MPs are difficult to crystallize. Recent progress in MP structural determination has benefited greatly from the development of lipidic cubic phase (LCP) crystallization methods, which typically yield well-diffracting, but often small crystals that suffer from radiation damage during traditional crystallographic data collection at synchrotron sources. The development of new-generation X-ray free-electron laser (XFEL) sources that produce extremely bright femtosecond pulses has enabled room temperature data collection from microcrystals with no or negligible radiation damage. Our recent efforts in combining LCP technology with serial femtosecond crystallography (LCP-SFX) have resulted in high-resolution structures of several human G protein-coupled receptors, which represent a notoriously difficult target for structure determination. In the LCP-SFX technique, LCP is recruited as a matrix for both growth and delivery of MP microcrystals to the intersection of the injector stream with an XFEL beam for crystallographic data collection. It has been demonstrated that LCP-SFX can substantially improve the diffraction resolution when only sub-10 µm crystals are available, or when the use of smaller crystals at room temperature can overcome various problems associated with larger cryocooled crystals, such as accumulation of defects, high mosaicity and cryocooling artifacts. Future advancements in X-ray sources and detector technologies should make serial crystallography highly attractive and practicable for implementation not only at XFELs, but also at more accessible synchrotron beamlines. Here we present detailed visual protocols for the preparation, characterization and delivery of microcrystals in LCP for serial crystallography experiments. These protocols include methods for conducting crystallization experiments in syringes, detecting and characterizing the crystal samples, optimizing crystal density, loading microcrystal laden LCP into the injector device and delivering the sample to the beam for data collection.

  • Research Article
  • Cite Count Icon 20
  • 10.3791/54463
Preparation and Delivery of Protein Microcrystals in Lipidic Cubic Phase for Serial Femtosecond Crystallography.
  • Sep 20, 2016
  • Journal of Visualized Experiments
  • Andrii Ishchenko + 2 more

Membrane proteins (MPs) are essential components of cellular membranes and primary drug targets. Rational drug design relies on precise structural information, typically obtained by crystallography; however MPs are difficult to crystallize. Recent progress in MP structural determination has benefited greatly from the development of lipidic cubic phase (LCP) crystallization methods, which typically yield well-diffracting, but often small crystals that suffer from radiation damage during traditional crystallographic data collection at synchrotron sources. The development of new-generation X-ray free-electron laser (XFEL) sources that produce extremely bright femtosecond pulses has enabled room temperature data collection from microcrystals with no or negligible radiation damage. Our recent efforts in combining LCP technology with serial femtosecond crystallography (LCP-SFX) have resulted in high-resolution structures of several human G protein-coupled receptors, which represent a notoriously difficult target for structure determination. In the LCP-SFX technique, LCP is recruited as a matrix for both growth and delivery of MP microcrystals to the intersection of the injector stream with an XFEL beam for crystallographic data collection. It has been demonstrated that LCP-SFX can substantially improve the diffraction resolution when only sub-10 µm crystals are available, or when the use of smaller crystals at room temperature can overcome various problems associated with larger cryocooled crystals, such as accumulation of defects, high mosaicity and cryocooling artifacts. Future advancements in X-ray sources and detector technologies should make serial crystallography highly attractive and practicable for implementation not only at XFELs, but also at more accessible synchrotron beamlines. Here we present detailed visual protocols for the preparation, characterization and delivery of microcrystals in LCP for serial crystallography experiments. These protocols include methods for conducting crystallization experiments in syringes, detecting and characterizing the crystal samples, optimizing crystal density, loading microcrystal laden LCP into the injector device and delivering the sample to the beam for data collection.

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  • Research Article
  • Cite Count Icon 62
  • 10.3390/ijms20051094
Sample Delivery Media for Serial Crystallography.
  • Mar 4, 2019
  • International journal of molecular sciences
  • Ki Hyun Nam

X-ray crystallographic methods can be used to visualize macromolecules at high resolution. This provides an understanding of molecular mechanisms and an insight into drug development and rational engineering of enzymes used in the industry. Although conventional synchrotron-based X-ray crystallography remains a powerful tool for understanding molecular function, it has experimental limitations, including radiation damage, cryogenic temperature, and static structural information. Serial femtosecond crystallography (SFX) using X-ray free electron laser (XFEL) and serial millisecond crystallography (SMX) using synchrotron X-ray have recently gained attention as research methods for visualizing macromolecules at room temperature without causing or reducing radiation damage, respectively. These techniques provide more biologically relevant structures than traditional X-ray crystallography at cryogenic temperatures using a single crystal. Serial femtosecond crystallography techniques visualize the dynamics of macromolecules through time-resolved experiments. In serial crystallography (SX), one of the most important aspects is the delivery of crystal samples efficiently, reliably, and continuously to an X-ray interaction point. A viscous delivery medium, such as a carrier matrix, dramatically reduces sample consumption, contributing to the success of SX experiments. This review discusses the preparation and criteria for the selection and development of a sample delivery medium and its application for SX.

  • Research Article
  • Cite Count Icon 23
  • 10.1016/j.crstbi.2024.100131
Guide to serial synchrotron crystallography
  • Jan 1, 2024
  • Current Research in Structural Biology
  • Ki Hyun Nam

Guide to serial synchrotron crystallography

  • Supplementary Content
  • Cite Count Icon 1
  • 10.3390/biom15111488
Standard Sample Preparation for Serial Femtosecond Crystallography
  • Oct 22, 2025
  • Biomolecules
  • Christina Schmidt + 3 more

The development of serial crystallography (SX), including serial synchrotron crystallography (SSX) at synchrotron sources and serial femtosecond crystallography (SFX) at X-ray free-electron lasers (XFELs), has facilitated the collection of high-resolution diffraction data from micron-sized crystals, providing unique insights into the structures and dynamics of biomolecules at room temperature. Standard samples are essential for the commissioning of new XFEL instruments and the validation of experimental setups. In this review, we summarize currently used standard proteins and describe representative microcrystal preparation workflows for four widely adopted models, lysozyme, myoglobin, iq-mEmerald, and photoactive yellow protein (PYP), drawing on established methodologies and accumulated experience from their applications at the European XFEL. By consolidating existing knowledge and integrating protocols that have been systematically refined and optimized through our experimental efforts, this review aims to provide practical guidance for the serial crystallography community, thereby enhancing reproducibility and ensuring consistent experimental performance across facilities.

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  • Cite Count Icon 15
  • 10.1107/s2053273316018696
Asymmetry in serial femtosecond crystallography data.
  • Jan 30, 2017
  • Acta Crystallographica Section A Foundations and Advances
  • Amit Sharma + 5 more

Serial crystallography is an increasingly important approach to protein crystallography that exploits both X-ray free-electron laser (XFEL) and synchrotron radiation. Serial crystallography recovers complete X-ray diffraction data by processing and merging diffraction images from thousands of randomly oriented non-uniform microcrystals, of which all observations are partial Bragg reflections. Random fluctuations in the XFEL pulse energy spectrum, variations in the size and shape of microcrystals, integrating over millions of weak partial observations and instabilities in the XFEL beam position lead to new types of experimental errors. The quality of Bragg intensity estimates deriving from serial crystallography is therefore contingent upon assumptions made while modeling these data. Here it is observed that serial femtosecond crystallography (SFX) Bragg reflections do not follow a unimodal Gaussian distribution and it is recommended that an idealized assumption of single Gaussian peak profiles be relaxed to incorporate apparent asymmetries when processing SFX data. The phenomenon is illustrated by re-analyzing data collected from microcrystals of the Blastochloris viridis photosynthetic reaction center and comparing these intensity observations with conventional synchrotron data. The results show that skewness in the SFX observations captures the essence of the Wilson plot and an empirical treatment is suggested that can help to separate the diffraction Bragg intensity from the background.

  • Research Article
  • Cite Count Icon 4
  • 10.1107/s2052252524010170
Crystal structure of a bacterial photoactivated adenylate cyclase determined by serial femtosecond and serial synchrotron crystallography.
  • Oct 29, 2024
  • IUCrJ
  • Sofia M Kapetanaki + 37 more

OaPAC is a recently discovered blue-light-using flavin adenosine dinucleotide (BLUF) photoactivated adenylate cyclase from the cyanobacterium Oscillatoria acuminata that uses adenosine triphosphate and translates the light signal into the production of cyclic adenosine monophosphate. Here, we report crystal structures of the enzyme in the absence of its natural substrate determined from room-temperature serial crystallography data collected at both an X-ray free-electron laser and a synchrotron, and we compare these structures with cryo-macromolecular crystallography structures obtained at a synchrotron by us and others. These results reveal slight differences in the structure of the enzyme due to data collection at different temperatures and X-ray sources. We further investigate the effect of the Y6W mutation in the BLUF domain, a mutation which results in a rearrangement of the hydrogen-bond network around the flavin and a notable rotation of the side chain of the critical Gln48 residue. These studies pave the way for picosecond-millisecond time-resolved serial crystallography experiments at X-ray free-electron lasers and synchrotrons in order to determine the early structural intermediates and correlate them with the well studied picosecond-millisecond spectroscopic intermediates.

  • Research Article
  • Cite Count Icon 4
  • 10.1021/acs.analchem.2c01701
Acoustic Focusingof Protein Crystals for In-LineMonitoring and Up-Concentration during Serial Crystallography
  • Sep 2, 2022
  • Analytical Chemistry
  • Björn Hammarström + 5 more

Serial femtosecond crystallography (SFX) has become oneof thestandard techniques at X-ray free-electron lasers (XFELs) to obtainhigh-resolution structural information from microcrystals of proteins.Nevertheless, reliable sample delivery is still often limiting datacollection, as microcrystals can clog both field- and flow-focusingnozzles despite in-line filters. In this study, we developed acoustic2D focusing of protein microcrystals in capillaries that enables real-timeonline characterization of crystal size and shape in the sample deliveryline after the in-line filter. We used a piezoelectric actuator tocreate a standing wave perpendicular to the crystal flow, which focusedlysozyme microcrystals into a single line inside a silica capillaryso that they can be imaged using a high-speed camera. We characterizedthe acoustic contrast factor, focus size, and the coaxial flow linesand developed a splitting union that enables up-concentration to atleast a factor of five. The focus size, flow rates, and geometry mayenable an upper limit of up-concentration as high as 200 fold. Thenovel feedback and concentration control could be implemented forserial crystallography at synchrotrons with minor modifications. Itwill also aid the development of improved sample delivery systemsthat will increase SFX data collection rates at XFELs, with potentialapplications to many proteins that can only be purified and crystallizedin small amounts.

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  • Cite Count Icon 7
  • 10.1063/4.0000258
Appraising protein conformational changes by resampling time-resolved serial x-ray crystallography data.
  • Jul 1, 2024
  • Structural dynamics (Melville, N.Y.)
  • Adams Vallejos + 2 more

With the development of serial crystallography at both x-ray free electron laser and synchrotron radiation sources, time-resolved x-ray crystallography is increasingly being applied to study conformational changes in macromolecules. A successful time-resolved serial crystallography study requires the growth of microcrystals, a mechanism for synchronized and homogeneous excitation of the reaction of interest within microcrystals, and tools for structural interpretation. Here, we utilize time-resolved serial femtosecond crystallography data collected from microcrystals of bacteriorhodopsin to compare results from partial occupancy structural refinement and refinement against extrapolated data. We illustrate the domain wherein the amplitude of refined conformational changes is inversely proportional to the activated state occupancy. We illustrate how resampling strategies allow coordinate uncertainty to be estimated and demonstrate that these two approaches to structural refinement agree within coordinate errors. We illustrate how singular value decomposition of a set of difference Fourier electron density maps calculated from resampled data can minimize phase bias in these maps, and we quantify residual densities for transient water molecules by analyzing difference Fourier and Polder omit maps from resampled data. We suggest that these tools may assist others in judging the confidence with which observed electron density differences may be interpreted as functionally important conformational changes.

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  • Research Article
  • Cite Count Icon 8
  • 10.3390/cryst12010099
Serial X-ray Crystallography
  • Jan 13, 2022
  • Crystals
  • Ki Hyun Nam

Serial crystallography (SX) is an emerging technique to determine macromolecules at room temperature. SX with a pump–probe experiment provides the time-resolved dynamics of target molecules. SX has developed rapidly over the past decade as a technique that not only provides room-temperature structures with biomolecules, but also has the ability to time-resolve their molecular dynamics. The serial femtosecond crystallography (SFX) technique using an X-ray free electron laser (XFEL) has now been extended to serial synchrotron crystallography (SSX) using synchrotron X-rays. The development of a variety of sample delivery techniques and data processing programs is currently accelerating SX research, thereby increasing the research scope. In this editorial, I briefly review some of the experimental techniques that have contributed to advances in the field of SX research and recent major research achievements. This Special Issue will contribute to the field of SX research.

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