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Author

Raymond G. Sierra

Other affiliations: Stanford University
Bio: Raymond G. Sierra is an academic researcher from SLAC National Accelerator Laboratory. The author has contributed to research in topics: Femtosecond & Diffraction. The author has an hindex of 36, co-authored 99 publications receiving 7823 citations. Previous affiliations of Raymond G. Sierra include Stanford University.


Papers
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Journal ArticleDOI
Henry N. Chapman1, Petra Fromme2, Anton Barty, Thomas A. White, Richard A. Kirian2, Andrew Aquila, Mark S. Hunter2, Joachim Schulz, Daniel P. DePonte, Uwe Weierstall2, R. Bruce Doak2, Filipe R. N. C. Maia3, Andrew V. Martin, Ilme Schlichting4, Lukas Lomb4, Nicola Coppola5, Robert L. Shoeman4, Sascha W. Epp4, Robert Hartmann, Daniel Rolles4, Artem Rudenko4, Lutz Foucar4, Nils Kimmel4, Georg Weidenspointner4, Peter Holl, Mengning Liang, Miriam Barthelmess, Carl Caleman, Sébastien Boutet6, Michael J. Bogan6, Jacek Krzywinski6, Christoph Bostedt6, Saša Bajt, Lars Gumprecht, Benedikt Rudek4, Benjamin Erk4, Carlo Schmidt4, André Hömke4, Christian Reich, Daniel Pietschner4, Lothar Strüder4, Günter Hauser4, H. Gorke7, Joachim Ullrich4, Sven Herrmann4, Gerhard Schaller4, Florian Schopper4, Heike Soltau, Kai-Uwe Kühnel4, Marc Messerschmidt6, John D. Bozek6, Stefan P. Hau-Riege8, Matthias Frank8, Christina Y. Hampton6, Raymond G. Sierra6, Dmitri Starodub6, Garth J. Williams6, Janos Hajdu3, Nicusor Timneanu3, M. Marvin Seibert3, M. Marvin Seibert6, Jakob Andreasson3, Andrea Rocker3, Olof Jönsson3, Martin Svenda3, Stephan Stern, Karol Nass1, Robert Andritschke4, Claus Dieter Schröter4, Faton Krasniqi4, Mario Bott4, Kevin Schmidt2, Xiaoyu Wang2, Ingo Grotjohann2, James M. Holton9, Thomas R. M. Barends4, Richard Neutze10, Stefano Marchesini9, Raimund Fromme2, Sebastian Schorb11, Daniela Rupp11, M. Adolph11, Tais Gorkhover11, Inger Andersson12, Helmut Hirsemann, Guillaume Potdevin, Heinz Graafsma, Björn Nilsson, John C. H. Spence2 
03 Feb 2011-Nature
TL;DR: This work offers a new approach to structure determination of macromolecules that do not yield crystals of sufficient size for studies using conventional radiation sources or are particularly sensitive to radiation damage, by using pulses briefer than the timescale of most damage processes.
Abstract: X-ray crystallography provides the vast majority of macromolecular structures, but the success of the method relies on growing crystals of sufficient size. In conventional measurements, the necessary increase in X-ray dose to record data from crystals that are too small leads to extensive damage before a diffraction signal can be recorded(1-3). It is particularly challenging to obtain large, well-diffracting crystals of membrane proteins, for which fewer than 300 unique structures have been determined despite their importance in all living cells. Here we present a method for structure determination where single-crystal X-ray diffraction 'snapshots' are collected from a fully hydrated stream of nanocrystals using femtosecond pulses from a hard-X-ray free-electron laser, the Linac Coherent Light Source(4). We prove this concept with nanocrystals of photosystem I, one of the largest membrane protein complexes(5). More than 3,000,000 diffraction patterns were collected in this study, and a three-dimensional data set was assembled from individual photosystem I nanocrystals (similar to 200 nm to 2 mm in size). We mitigate the problem of radiation damage in crystallography by using pulses briefer than the timescale of most damage processes(6). This offers a new approach to structure determination of macromolecules that do not yield crystals of sufficient size for studies using conventional radiation sources or are particularly sensitive to radiation damage.

1,708 citations

Journal ArticleDOI
M. Marvin Seibert1, Tomas Ekeberg1, Filipe R. N. C. Maia1, Martin Svenda1, Jakob Andreasson1, Olof Jönsson1, Dusko Odic1, Bianca Iwan1, Andrea Rocker1, Daniel Westphal1, Max F. Hantke1, Daniel P. DePonte, Anton Barty, Joachim Schulz, Lars Gumprecht, Nicola Coppola, Andrew Aquila, Mengning Liang, Thomas A. White, Andrew V. Martin, Carl Caleman1, Stephan Stern2, Chantal Abergel3, Virginie Seltzer3, Jean-Michel Claverie3, Christoph Bostedt4, John D. Bozek4, Sébastien Boutet4, A. Miahnahri4, Marc Messerschmidt4, Jacek Krzywinski4, Garth J. Williams4, Keith O. Hodgson4, Michael J. Bogan4, Christina Y. Hampton4, Raymond G. Sierra4, D. Starodub4, Inger Andersson5, Sǎa Bajt, Miriam Barthelmess, John C. H. Spence6, Petra Fromme6, Uwe Weierstall6, Richard A. Kirian6, Mark S. Hunter6, R. Bruce Doak6, Stefano Marchesini7, Stefan P. Hau-Riege8, Matthias Frank8, Robert L. Shoeman9, Lukas Lomb9, Sascha W. Epp9, Robert Hartmann, Daniel Rolles9, Artem Rudenko9, Carlo Schmidt9, Lutz Foucar9, Nils Kimmel9, Peter Holl, Benedikt Rudek9, Benjamin Erk9, André Hömke9, Christian Reich, Daniel Pietschner9, Georg Weidenspointner9, Lothar Strüder9, Günter Hauser9, H. Gorke, Joachim Ullrich9, Ilme Schlichting9, Sven Herrmann9, Gerhard Schaller9, Florian Schopper9, Heike Soltau, Kai Uwe Kuhnel9, Robert Andritschke9, Claus Dieter Schröter9, Faton Krasniqi9, Mario Bott9, Sebastian Schorb10, Daniela Rupp10, M. Adolph10, Tais Gorkhover10, Helmut Hirsemann, Guillaume Potdevin, Heinz Graafsma, Björn Nilsson, Henry N. Chapman2, Janos Hajdu1 
03 Feb 2011-Nature
TL;DR: This work shows that high-quality diffraction data can be obtained with a single X-ray pulse from a non-crystalline biological sample, a single mimivirus particle, which was injected into the pulsed beam of a hard-X-ray free-electron laser, the Linac Coherent Light Source.
Abstract: The start-up of the Linac Coherent Light Source (LCLS), the new femtosecond hard X-ray laser facility in Stanford, California, has brought high expectations of a new era for biological imaging. The intense, ultrashort X-ray pulses allow diffraction imaging of small structures before radiation damage occurs. Two papers in this issue of Nature present proof-of-concept experiments showing the LCLS in action. Chapman et al. tackle structure determination from nanocrystals of macromolecules that cannot be grown in large crystals. They obtain more than three million diffraction patterns from a stream of nanocrystals of the membrane protein photosystem I, and assemble a three-dimensional data set for this protein. Seibert et al. obtain images of a non-crystalline biological sample, mimivirus, by injecting a beam of cooled mimivirus particles into the X-ray beam. The start-up of the new femtosecond hard X-ray laser facility in Stanford, the Linac Coherent Light Source, has brought high expectations for a new era for biological imaging. The intense, ultrashort X-ray pulses allow diffraction imaging of small structures before radiation damage occurs. This new capability is tested for the problem of imaging a non-crystalline biological sample. Images of mimivirus are obtained, the largest known virus with a total diameter of about 0.75 micrometres, by injecting a beam of cooled mimivirus particles into the X-ray beam. The measurements indicate no damage during imaging and prove the concept of this imaging technique. X-ray lasers offer new capabilities in understanding the structure of biological systems, complex materials and matter under extreme conditions1,2,3,4. Very short and extremely bright, coherent X-ray pulses can be used to outrun key damage processes and obtain a single diffraction pattern from a large macromolecule, a virus or a cell before the sample explodes and turns into plasma1. The continuous diffraction pattern of non-crystalline objects permits oversampling and direct phase retrieval2. Here we show that high-quality diffraction data can be obtained with a single X-ray pulse from a non-crystalline biological sample, a single mimivirus particle, which was injected into the pulsed beam of a hard-X-ray free-electron laser, the Linac Coherent Light Source5. Calculations indicate that the energy deposited into the virus by the pulse heated the particle to over 100,000 K after the pulse had left the sample. The reconstructed exit wavefront (image) yielded 32-nm full-period resolution in a single exposure and showed no measurable damage. The reconstruction indicates inhomogeneous arrangement of dense material inside the virion. We expect that significantly higher resolutions will be achieved in such experiments with shorter and brighter photon pulses focused to a smaller area. The resolution in such experiments can be further extended for samples available in multiple identical copies.

838 citations

Journal ArticleDOI
11 Sep 2014-Nature
TL;DR: Time resolved experiments on PSII nano/microcrystals from Thermosynechococcus elongatus performed with the recently developed technique of serial femtosecond crystallography provide evidence that PSII undergoes significant conformational changes at the electron acceptor side and at the Mn4CaO5 core of the OEC.
Abstract: Photosynthesis, a process catalysed by plants, algae and cyanobacteria converts sunlight to energy thus sustaining all higher life on Earth. Two large membrane protein complexes, photosystem I and ...

417 citations

Journal ArticleDOI
19 Jun 2014-Nature
TL;DR: It is demonstrated that femtosecond X-ray laser pulses can be used to probe the structure of liquid water in micrometre-sized droplets that have been evaporatively cooled below TH, and experimental evidence is found for the existence of metastable bulk liquid water down to temperatures of kelvin in the previously largely unexplored no man’s land.
Abstract: Water has a number of anomalous physical properties, and some of these become drastically enhanced on supercooling below the freezing point. Particular interest has focused on thermodynamic response functions that can be described using a normal component and an anomalous component that seems to diverge at about 228 kelvin (refs 1-3). This has prompted debate about conflicting theories that aim to explain many of the anomalous thermodynamic properties of water. One popular theory attributes the divergence to a phase transition between two forms of liquid water occurring in the 'no man's land' that lies below the homogeneous ice nucleation temperature (TH) at approximately 232 kelvin and above about 160 kelvin, and where rapid ice crystallization has prevented any measurements of the bulk liquid phase. In fact, the reliable determination of the structure of liquid water typically requires temperatures above about 250 kelvin. Water crystallization has been inhibited by using nanoconfinement, nanodroplets and association with biomolecules to give liquid samples at temperatures below TH, but such measurements rely on nanoscopic volumes of water where the interaction with the confining surfaces makes the relevance to bulk water unclear. Here we demonstrate that femtosecond X-ray laser pulses can be used to probe the structure of liquid water in micrometre-sized droplets that have been evaporatively cooled below TH. We find experimental evidence for the existence of metastable bulk liquid water down to temperatures of 227(-1)(+2) kelvin in the previously largely unexplored no man's land. We observe a continuous and accelerating increase in structural ordering on supercooling to approximately 229 kelvin, where the number of droplets containing ice crystals increases rapidly. But a few droplets remain liquid for about a millisecond even at this temperature. The hope now is that these observations and our detailed structural data will help identify those theories that best describe and explain the behaviour of water.

392 citations

Journal ArticleDOI
26 Apr 2013-Science
TL;DR: This simultaneous XRD-XES study shows that the PS II crystals are intact during measurements at the LCLS, not only with respect to the structure of PS II, but also with regard to the electronic structure of the highly radiation-sensitive Mn4CaO5 cluster, opening new directions for future dynamics studies.
Abstract: Intense femtosecond x-ray pulses produced at the Linac Coherent Light Source (LCLS) were used for simultaneous x-ray diffraction (XRD) and x-ray emission spectroscopy (XES) of microcrystals of photosystem II (PS II) at room temperature. This method probes the overall protein structure and the electronic structure of the Mn4CaO5 cluster in the oxygen-evolving complex of PS II. XRD data are presented from both the dark state (S1) and the first illuminated state (S2) of PS II. Our simultaneous XRD-XES study shows that the PS II crystals are intact during our measurements at the LCLS, not only with respect to the structure of PS II, but also with regard to the electronic structure of the highly radiation-sensitive Mn4CaO5 cluster, opening new directions for future dynamics studies.

383 citations


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Journal ArticleDOI
01 Oct 2019
TL;DR: Recent developments in the Phenix software package are described in the context of macromolecular structure determination using X-rays, neutrons and electrons.
Abstract: Diffraction (X-ray, neutron and electron) and electron cryo-microscopy are powerful methods to determine three-dimensional macromolecular structures, which are required to understand biological processes and to develop new therapeutics against diseases. The overall structure-solution workflow is similar for these techniques, but nuances exist because the properties of the reduced experimental data are different. Software tools for structure determination should therefore be tailored for each method. Phenix is a comprehensive software package for macromolecular structure determination that handles data from any of these techniques. Tasks performed with Phenix include data-quality assessment, map improvement, model building, the validation/rebuilding/refinement cycle and deposition. Each tool caters to the type of experimental data. The design of Phenix emphasizes the automation of procedures, where possible, to minimize repetitive and time-consuming manual tasks, while default parameters are chosen to encourage best practice. A graphical user interface provides access to many command-line features of Phenix and streamlines the transition between programs, project tracking and re-running of previous tasks.

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Journal Article
TL;DR: This volume is keyed to high resolution electron microscopy, which is a sophisticated form of structural analysis, but really morphology in a modern guise, the physical and mechanical background of the instrument and its ancillary tools are simply and well presented.
Abstract: I read this book the same weekend that the Packers took on the Rams, and the experience of the latter event, obviously, colored my judgment. Although I abhor anything that smacks of being a handbook (like, \"How to Earn a Merit Badge in Neurosurgery\") because too many volumes in biomedical science already evince a boyscout-like approach, I must confess that parts of this volume are fast, scholarly, and significant, with certain reservations. I like parts of this well-illustrated book because Dr. Sj6strand, without so stating, develops certain subjects on technique in relation to the acquisition of judgment and sophistication. And this is important! So, given that the author (like all of us) is somewhat deficient in some areas, and biased in others, the book is still valuable if the uninitiated reader swallows it in a general fashion, realizing full well that what will be required from the reader is a modulation to fit his vision, propreception, adaptation and response, and the kind of problem he is undertaking. A major deficiency of this book is revealed by comparison of its use of physics and of chemistry to provide understanding and background for the application of high resolution electron microscopy to problems in biology. Since the volume is keyed to high resolution electron microscopy, which is a sophisticated form of structural analysis, but really morphology in a modern guise, the physical and mechanical background of The instrument and its ancillary tools are simply and well presented. The potential use of chemical or cytochemical information as it relates to biological fine structure , however, is quite deficient. I wonder when even sophisticated morphol-ogists will consider fixation a reaction and not a technique; only then will the fundamentals become self-evident and predictable and this sine qua flon will become less mystical. Staining reactions (the most inadequate chapter) ought to be something more than a technique to selectively enhance contrast of morphological elements; it ought to give the structural addresses of some of the chemical residents of cell components. Is it pertinent that auto-radiography gets singled out for more complete coverage than other significant aspects of cytochemistry by a high resolution microscopist, when it has a built-in minimal error of 1,000 A in standard practice? I don't mean to blind-side (in strict football terminology) Dr. Sj6strand's efforts for what is \"routinely used in our laboratory\"; what is done is usually well done. It's just that …

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