Filipe R. N. C. Maia
Uppsala University
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Featured researches published by Filipe R. N. C. Maia.
Nature | 2011
Henry N. Chapman; Petra Fromme; Anton Barty; Thomas A. White; Richard A. Kirian; Andrew Aquila; Mark S. Hunter; Joachim Schulz; Daniel P. DePonte; Uwe Weierstall; R. Bruce Doak; Filipe R. N. C. Maia; Andrew V. Martin; Ilme Schlichting; Lukas Lomb; Nicola Coppola; Robert L. Shoeman; Sascha W. Epp; Robert Hartmann; Daniel Rolles; A. Rudenko; Lutz Foucar; Nils Kimmel; Georg Weidenspointner; Peter Holl; Mengning Liang; Miriam Barthelmess; Carl Caleman; Sébastien Boutet; Michael J. Bogan
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. 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. We prove this concept with nanocrystals of photosystem I, one of the largest membrane protein complexes. 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 (∼200 nm to 2 μm in size). We mitigate the problem of radiation damage in crystallography by using pulses briefer than the timescale of most damage processes. 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.
Nature Physics | 2006
Henry N. Chapman; Anton Barty; Michael J. Bogan; Sébastien Boutet; Matthias Frank; Stefan P. Hau-Riege; Stefano Marchesini; Bruce W. Woods; Sasa Bajt; W. Henry Benner; Richard A. London; Elke Plönjes; Marion Kuhlmann; Rolf Treusch; S. Düsterer; T. Tschentscher; Jochen R. Schneider; Eberhard Spiller; T. Möller; Christoph F. O. Bostedt; M. Hoener; David A. Shapiro; Keith O. Hodgson; David van der Spoel; Florian Burmeister; Magnus Bergh; Carl Caleman; Gösta Huldt; M. Marvin Seibert; Filipe R. N. C. Maia
Theory predicts1,2,3,4 that, with an ultrashort and extremely bright coherent X-ray pulse, a single diffraction pattern may be recorded from a large macromolecule, a virus or a cell before the sample explodes and turns into a plasma. Here we report the first experimental demonstration of this principle using the FLASH soft-X-ray free-electron laser. An intense 25 fs, 4×1013 W cm−2 pulse, containing 1012 photons at 32 nm wavelength, produced a coherent diffraction pattern from a nanostructured non-periodic object, before destroying it at 60,000 K. A novel X-ray camera assured single-photon detection sensitivity by filtering out parasitic scattering and plasma radiation. The reconstructed image, obtained directly from the coherent pattern by phase retrieval through oversampling5,6,7,8,9, shows no measurable damage, and is reconstructed at the diffraction-limited resolution. A three-dimensional data set may be assembled from such images when copies of a reproducible sample are exposed to the beam one by one10.
Nature | 2011
M. Marvin Seibert; Tomas Ekeberg; Filipe R. N. C. Maia; Martin Svenda; Jakob Andreasson; O Jonsson; Duško Odić; Bianca Iwan; Andrea Rocker; Daniel Westphal; Max F. Hantke; Daniel P. DePonte; Anton Barty; Joachim Schulz; Lars Gumprecht; Nicola Coppola; Andrew Aquila; Mengning Liang; Thomas A. White; Andrew V. Martin; Carl Caleman; Stephan Stern; Chantal Abergel; Virginie Seltzer; Jean-Michel Claverie; Christoph Bostedt; John D. Bozek; Sébastien Boutet; A. Miahnahri; Marc Messerschmidt
X-ray lasers offer new capabilities in understanding the structure of biological systems, complex materials and matter under extreme conditions. 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 plasma. The continuous diffraction pattern of non-crystalline objects permits oversampling and direct phase retrieval. 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 Source. 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.
Optics Express | 2012
Andrew Aquila; Mark S. Hunter; R. Bruce Doak; Richard A. Kirian; Petra Fromme; Thomas A. White; Jakob Andreasson; David Arnlund; Sasa Bajt; Thomas R. M. Barends; Miriam Barthelmess; Michael J. Bogan; Christoph Bostedt; Hervé Bottin; John D. Bozek; Carl Caleman; Nicola Coppola; Jan Davidsson; Daniel P. DePonte; Veit Elser; Sascha W. Epp; Benjamin Erk; Holger Fleckenstein; Lutz Foucar; Matthias Frank; Raimund Fromme; Heinz Graafsma; Ingo Grotjohann; Lars Gumprecht; Janos Hajdu
We demonstrate the use of an X-ray free electron laser synchronized with an optical pump laser to obtain X-ray diffraction snapshots from the photoactivated states of large membrane protein complexes in the form of nanocrystals flowing in a liquid jet. Light-induced changes of Photosystem I-Ferredoxin co-crystals were observed at time delays of 5 to 10 µs after excitation. The result correlates with the microsecond kinetics of electron transfer from Photosystem I to ferredoxin. The undocking process that follows the electron transfer leads to large rearrangements in the crystals that will terminally lead to the disintegration of the crystals. We describe the experimental setup and obtain the first time-resolved femtosecond serial X-ray crystallography results from an irreversible photo-chemical reaction at the Linac Coherent Light Source. This technique opens the door to time-resolved structural studies of reaction dynamics in biological systems.
Journal of Applied Crystallography | 2014
Anton Barty; Richard A. Kirian; Filipe R. N. C. Maia; Max F. Hantke; Chun Hong Yoon; Thomas A. White; Henry N. Chapman
The emerging technique of serial X-ray diffraction requires new software tools for the efficient analysis of large volumes of data. Event selection early in the analysis pipeline is highly advantageous. The described software for classifying, sorting and analysing events is freely available to the general community.
Nature Methods | 2012
Rudolf Koopmann; Karolina Cupelli; Karol Nass; Daniel P. DePonte; Thomas A. White; Francesco Stellato; Dirk Rehders; Mengning Liang; Jakob Andreasson; Andrew Aquila; Sasa Bajt; Miriam Barthelmess; Anton Barty; Michael J. Bogan; Christoph Bostedt; Sébastien Boutet; John D. Bozek; Carl Caleman; Nicola Coppola; Jan Davidsson; R. Bruce Doak; Tomas Ekeberg; Sascha W. Epp; Benjamin Erk; Holger Fleckenstein; Lutz Foucar; Heinz Graafsma; Lars Gumprecht; J. Hajdu; Christina Y. Hampton
Protein crystallization in cells has been observed several times in nature. However, owing to their small size these crystals have not yet been used for X-ray crystallographic analysis. We prepared nano-sized in vivo–grown crystals of Trypanosoma brucei enzymes and applied the emerging method of free-electron laser-based serial femtosecond crystallography to record interpretable diffraction data. This combined approach will open new opportunities in structural systems biology.
Nature Methods | 2012
Linda C. Johansson; David Arnlund; Thomas A. White; Gergely Katona; Daniel P. DePonte; Uwe Weierstall; R. Bruce Doak; Robert L. Shoeman; Lukas Lomb; Erik Malmerberg; Jan Davidsson; Karol Nass; Mengning Liang; Jakob Andreasson; Andrew Aquila; Sasa Bajt; Miriam Barthelmess; Anton Barty; Michael J. Bogan; Christoph Bostedt; John D. Bozek; Carl Caleman; Ryan Coffee; Nicola Coppola; Tomas Ekeberg; Sascha W. Epp; Benjamin Erk; Holger Fleckenstein; Lutz Foucar; Heinz Graafsma
X-ray free electron laser (X-FEL)-based serial femtosecond crystallography is an emerging method with potential to rapidly advance the challenging field of membrane protein structural biology. Here we recorded interpretable diffraction data from micrometer-sized lipidic sponge phase crystals of the Blastochloris viridis photosynthetic reaction center delivered into an X-FEL beam using a sponge phase micro-jet.
Nature | 2012
N. D. Loh; Christina Y. Hampton; Andrew V. Martin; Dmitri Starodub; Raymond G. Sierra; A. Barty; Andrew Aquila; Joachim Schulz; Lukas Lomb; Jan Steinbrener; Robert L. Shoeman; Stephan Kassemeyer; Christoph Bostedt; John D. Bozek; Sascha W. Epp; Benjamin Erk; Robert Hartmann; Daniel Rolles; A. Rudenko; Benedikt Rudek; Lutz Foucar; Nils Kimmel; Georg Weidenspointner; G. Hauser; Peter Holl; Emanuele Pedersoli; Mengning Liang; M. M. Hunter; Lars Gumprecht; Nicola Coppola
The morphology of micrometre-size particulate matter is of critical importance in fields ranging from toxicology to climate science, yet these properties are surprisingly difficult to measure in the particles’ native environment. Electron microscopy requires collection of particles on a substrate; visible light scattering provides insufficient resolution; and X-ray synchrotron studies have been limited to ensembles of particles. Here we demonstrate an in situ method for imaging individual sub-micrometre particles to nanometre resolution in their native environment, using intense, coherent X-ray pulses from the Linac Coherent Light Source free-electron laser. We introduced individual aerosol particles into the pulsed X-ray beam, which is sufficiently intense that diffraction from individual particles can be measured for morphological analysis. At the same time, ion fragments ejected from the beam were analysed using mass spectrometry, to determine the composition of single aerosol particles. Our results show the extent of internal dilation symmetry of individual soot particles subject to non-equilibrium aggregation, and the surprisingly large variability in their fractal dimensions. More broadly, our methods can be extended to resolve both static and dynamic morphology of general ensembles of disordered particles. Such general morphology has implications in topics such as solvent accessibilities in proteins, vibrational energy transfer by the hydrodynamic interaction of amino acids, and large-scale production of nanoscale structures by flame synthesis.
Physical Review Letters | 2010
N. D. Loh; Michael J. Bogan; Veit Elser; Anton Barty; Sébastien Boutet; Sasa Bajt; Janos Hajdu; Tomas Ekeberg; Filipe R. N. C. Maia; Joachim Schulz; M. Marvin Seibert; Bianca Iwan; Nicusor Timneanu; Stefano Marchesini; Ilme Schlichting; Robert L. Shoeman; Lukas Lomb; Matthias Frank; Mengning Liang; Henry N. Chapman
We reconstructed the 3D Fourier intensity distribution of monodisperse prolate nanoparticles using single-shot 2D coherent diffraction patterns collected at DESYs FLASH facility when a bright, coherent, ultrafast x-ray pulse intercepted individual particles of random, unmeasured orientations. This first experimental demonstration of cryptotomography extended the expansion-maximization-compression framework to accommodate unmeasured fluctuations in photon fluence and loss of data due to saturation or background scatter. This work is an important step towards realizing single-shot diffraction imaging of single biomolecules.
Science | 2014
Luis F. Gomez; Ken R. Ferguson; James P. Cryan; Camila Bacellar; Rico Mayro P. Tanyag; Curtis Jones; Sebastian Schorb; Denis Anielski; A. Belkacem; Charles Bernando; Rebecca Boll; John D. Bozek; Sebastian Carron; Gang Chen; Tjark Delmas; Lars Englert; Sascha W. Epp; Benjamin Erk; Lutz Foucar; Robert Hartmann; Alexander Hexemer; Martin Huth; Justin Kwok; Stephen R. Leone; Jonathan H. S. Ma; Filipe R. N. C. Maia; Erik Malmerberg; Stefano Marchesini; Daniel M. Neumark; Billy K. Poon
X-raying superfluid helium droplets When physicists rotate the superfluid 4He, it develops a regular array of tiny whirlpools, called vortices. The same phenomenon should occur in helium droplets half a micrometer in size, but studying individual droplets is tricky. Gomez et al. used x-ray diffraction to deduce the shape of individual rotating droplets and image the resulting vortex patterns, which confirmed the superfluidity of the droplets. They found that superfluid droplets can host a surprising number of vortices and can rotate faster than normal droplets without disintegrating. Science, this issue p. 906 Vortex lattices inside individual helium droplets are imaged using x-ray diffraction. Helium nanodroplets are considered ideal model systems to explore quantum hydrodynamics in self-contained, isolated superfluids. However, exploring the dynamic properties of individual droplets is experimentally challenging. In this work, we used single-shot femtosecond x-ray coherent diffractive imaging to investigate the rotation of single, isolated superfluid helium-4 droplets containing ~108 to 1011 atoms. The formation of quantum vortex lattices inside the droplets is confirmed by observing characteristic Bragg patterns from xenon clusters trapped in the vortex cores. The vortex densities are up to five orders of magnitude larger than those observed in bulk liquid helium. The droplets exhibit large centrifugal deformations but retain axially symmetric shapes at angular velocities well beyond the stability range of viscous classical droplets.