Jesse Coe
Arizona State University
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Publication
Featured researches published by Jesse Coe.
Nature | 2015
Yanyong Kang; X. Edward Zhou; Xiang Gao; Yuanzheng He; Wei Liu; Andrii Ishchenko; Anton Barty; Thomas A. White; Oleksandr Yefanov; Gye Won Han; Qingping Xu; Parker W. de Waal; Jiyuan Ke; M. H.Eileen Tan; Chenghai Zhang; Arne Moeller; Graham M. West; Bruce D. Pascal; Ned Van Eps; Lydia N. Caro; Sergey A. Vishnivetskiy; Regina J. Lee; Kelly Suino-Powell; Xin Gu; Kuntal Pal; Jinming Ma; Xiaoyong Zhi; Sébastien Boutet; Garth J. Williams; Marc Messerschmidt
G-protein-coupled receptors (GPCRs) signal primarily through G proteins or arrestins. Arrestin binding to GPCRs blocks G protein interaction and redirects signalling to numerous G-protein-independent pathways. Here we report the crystal structure of a constitutively active form of human rhodopsin bound to a pre-activated form of the mouse visual arrestin, determined by serial femtosecond X-ray laser crystallography. Together with extensive biochemical and mutagenesis data, the structure reveals an overall architecture of the rhodopsin–arrestin assembly in which rhodopsin uses distinct structural elements, including transmembrane helix 7 and helix 8, to recruit arrestin. Correspondingly, arrestin adopts the pre-activated conformation, with a ∼20° rotation between the amino and carboxy domains, which opens up a cleft in arrestin to accommodate a short helix formed by the second intracellular loop of rhodopsin. This structure provides a basis for understanding GPCR-mediated arrestin-biased signalling and demonstrates the power of X-ray lasers for advancing the frontiers of structural biology.
Science | 2014
Jason Tenboer; Shibom Basu; Nadia A. Zatsepin; Kanupriya Pande; Despina Milathianaki; Matthias Frank; Mark S. Hunter; Sébastien Boutet; Garth J. Williams; Jason E. Koglin; Dominik Oberthuer; Michael Heymann; Christopher Kupitz; Chelsie E. Conrad; Jesse Coe; Shatabdi Roy-Chowdhury; Uwe Weierstall; Daniel James; Dingjie Wang; Thomas D. Grant; Anton Barty; Oleksandr Yefanov; Jennifer Scales; Cornelius Gati; Carolin Seuring; Vukica Šrajer; Robert Henning; Peter Schwander; Raimund Fromme; A. Ourmazd
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. Structural changes during a macromolecular reaction are captured at near-atomic resolution by an x-ray free electron laser. Watching a protein molecule in motion X-ray crystallography has yielded beautiful high-resolution images that give insight into how proteins function. However, these represent static snapshots of what are often dynamic processes. For photosensitive molecules, time-resolved crystallography at a traditional synchrotron source provides a method to follow structural changes with a time resolution of about 100 ps. X-ray free electron lasers (XFELs) open the possibility of performing time-resolved experiments on time scales as short as femtoseconds. Tenboer et al. used XFELs to study the light-triggered dynamics of photoactive yellow protein. Electron density maps of high quality were obtained 10 ns and 1 µs after initiating the reaction. At 1 µs, two intermediates revealed previously unidentified structural changes. Science, this issue p. 1242
Cell | 2015
Haitao Zhang; Hamiyet Unal; Cornelius Gati; Gye Won Han; Wei Liu; Nadia A. Zatsepin; Daniel James; Dingjie Wang; Garrett Nelson; Uwe Weierstall; Michael R. Sawaya; Qingping Xu; Marc Messerschmidt; Garth J. Williams; Sébastien Boutet; Oleksandr Yefanov; Thomas A. White; Chong Wang; Andrii Ishchenko; Kalyan C. Tirupula; Russell Desnoyer; Jesse Coe; Chelsie E. Conrad; Petra Fromme; Raymond C. Stevens; Vsevolod Katritch; Sadashiva S. Karnik; Vadim Cherezov
Angiotensin II type 1 receptor (AT(1)R) is a G protein-coupled receptor that serves as a primary regulator for blood pressure maintenance. Although several anti-hypertensive drugs have been developed as AT(1)R blockers (ARBs), the structural basis for AT(1)R ligand-binding and regulation has remained elusive, mostly due to the difficulties of growing high-quality crystals for structure determination using synchrotron radiation. By applying the recently developed method of serial femtosecond crystallography at an X-ray free-electron laser, we successfully determined the room-temperature crystal structure of the human AT(1)R in complex with its selective antagonist ZD7155 at 2.9-Å resolution. The AT(1)R-ZD7155 complex structure revealed key structural features of AT(1)R and critical interactions for ZD7155 binding. Docking simulations of the clinically used ARBs into the AT(1)R structure further elucidated both the common and distinct binding modes for these anti-hypertensive drugs. Our results thereby provide fundamental insights into AT(1)R structure-function relationship and structure-based drug design.
Science | 2016
Kanupriya Pande; C. Hutchison; Gerrit Groenhof; Andy Aquila; Josef S. Robinson; Jason Tenboer; Shibom Basu; Sébastien Boutet; Daniel P. DePonte; Mengning Liang; Thomas A. White; Nadia A. Zatsepin; Oleksandr Yefanov; Dmitry Morozov; Dominik Oberthuer; Cornelius Gati; Ganesh Subramanian; Daniel James; Yun Zhao; J. D. Koralek; Jennifer Brayshaw; Christopher Kupitz; Chelsie E. Conrad; Shatabdi Roy-Chowdhury; Jesse Coe; Markus Metz; Paulraj Lourdu Xavier; Thomas D. Grant; Jason E. Koglin; Gihan Ketawala
Visualizing a response to light Many biological processes depend on detecting and responding to light. The response is often mediated by a structural change in a protein that begins when absorption of a photon causes isomerization of a chromophore bound to the protein. Pande et al. used x-ray pulses emitted by a free electron laser source to conduct time-resolved serial femtosecond crystallography in the time range of 100 fs to 3 ms. This allowed for the real-time tracking of the trans-cis isomerization of the chromophore in photoactive yellow protein and the associated structural changes in the protein. Science, this issue p. 725 The trans-to-cis isomerization of a key chromophore is characterized on ultrafast time scales. A variety of organisms have evolved mechanisms to detect and respond to light, in which the response is mediated by protein structural changes after photon absorption. The initial step is often the photoisomerization of a conjugated chromophore. Isomerization occurs on ultrafast time scales and is substantially influenced by the chromophore environment. Here we identify structural changes associated with the earliest steps in the trans-to-cis isomerization of the chromophore in photoactive yellow protein. Femtosecond hard x-ray pulses emitted by the Linac Coherent Light Source were used to conduct time-resolved serial femtosecond crystallography on photoactive yellow protein microcrystals over a time range from 100 femtoseconds to 3 picoseconds to determine the structural dynamics of the photoisomerization reaction.
Nature Structural & Molecular Biology | 2015
Gustavo Fenalti; Nadia A. Zatsepin; Cecilia Betti; Patrick T. Giguere; Gye Won Han; Andrii Ishchenko; Wei-Wei Liu; Karel Guillemyn; Haitao Zhang; Daniel James; Dingjie Wang; Uwe Weierstall; John C. Spence; Sébastien Boutet; M. Messerschmidt; Garth J. Williams; Cornelius Gati; Oleksandr Yefanov; Thomas A. White; Dominik Oberthuer; Markus Metz; Chun Hong Yoon; Anton Barty; Henry N. Chapman; Shibom Basu; Jesse Coe; Chelsie E. Conrad; Raimund Fromme; Petra Fromme; Dirk Tourwé
Bifunctional μ- and δ-opioid receptor (OR) ligands are potential therapeutic alternatives, with diminished side effects, to alkaloid opiate analgesics. We solved the structure of human δ-OR bound to the bifunctional δ-OR antagonist and μ-OR agonist tetrapeptide H-Dmt-Tic-Phe-Phe-NH2 (DIPP-NH2) by serial femtosecond crystallography, revealing a cis-peptide bond between H-Dmt and Tic. The observed receptor-peptide interactions are critical for understanding of the pharmacological profiles of opioid peptides and for development of improved analgesics.
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.
Nature | 2016
Kartik Ayyer; Oleksandr Yefanov; Dominik Oberthür; Shatabdi Roy-Chowdhury; Lorenzo Galli; Valerio Mariani; Shibom Basu; Jesse Coe; Chelsie E. Conrad; Raimund Fromme; Alexander Schaffer; Katerina Dörner; Daniel James; Christopher Kupitz; Markus Metz; Garrett Nelson; Paulraj Lourdu Xavier; Kenneth R. Beyerlein; Marius Schmidt; Iosifina Sarrou; John C. Spence; Uwe Weierstall; Thomas A. White; Jay How Yang; Yun Zhao; Mengning Liang; Andrew Aquila; Mark S. Hunter; Jason E. Koglin; Sébastien Boutet
The three-dimensional structures of macromolecules and their complexes are mainly elucidated by X-ray protein crystallography. A major limitation of this method is access to high-quality crystals, which is necessary to ensure X-ray diffraction extends to sufficiently large scattering angles and hence yields information of sufficiently high resolution with which to solve the crystal structure. The observation that crystals with reduced unit-cell volumes and tighter macromolecular packing often produce higher-resolution Bragg peaks suggests that crystallographic resolution for some macromolecules may be limited not by their heterogeneity, but by a deviation of strict positional ordering of the crystalline lattice. Such displacements of molecules from the ideal lattice give rise to a continuous diffraction pattern that is equal to the incoherent sum of diffraction from rigid individual molecular complexes aligned along several discrete crystallographic orientations and that, consequently, contains more information than Bragg peaks alone. Although such continuous diffraction patterns have long been observed—and are of interest as a source of information about the dynamics of proteins—they have not been used for structure determination. Here we show for crystals of the integral membrane protein complex photosystem II that lattice disorder increases the information content and the resolution of the diffraction pattern well beyond the 4.5-ångström limit of measurable Bragg peaks, which allows us to phase the pattern directly. Using the molecular envelope conventionally determined at 4.5 ångströms as a constraint, we obtain a static image of the photosystem II dimer at a resolution of 3.5 ångströms. This result shows that continuous diffraction can be used to overcome what have long been supposed to be the resolution limits of macromolecular crystallography, using a method that exploits commonly encountered imperfect crystals and enables model-free phasing.
IUCrJ | 2015
Chelsie E. Conrad; Shibom Basu; Daniel James; Dingjie Wang; Alexander Schaffer; Shatabdi Roy-Chowdhury; Nadia A. Zatsepin; Andrew Aquila; Jesse Coe; Cornelius Gati; Mark S. Hunter; Jason E. Koglin; Christopher Kupitz; Garrett Nelson; Ganesh Subramanian; Thomas A. White; Yun Zhao; James Zook; Sébastien Boutet; Vadim Cherezov; John C. Spence; Raimund Fromme; Uwe Weierstall; Petra Fromme
Viscous sample delivery that decreases the net protein consumed in serial femtosecond crystallography is described. The agarose stream has a low background, is compatible with membrane proteins and can be used at a wide range of temperatures.
Archives of Biochemistry and Biophysics | 2016
Jose M. Martin-Garcia; Chelsie E. Conrad; Jesse Coe; Shatabdi Roy-Chowdhury; Petra Fromme
Macromolecular crystallography at synchrotron sources has proven to be the most influential method within structural biology, producing thousands of structures since its inception. While its utility has been instrumental in progressing our knowledge of structures of molecules, it suffers from limitations such as the need for large, well-diffracting crystals, and radiation damage that can hamper native structural determination. The recent advent of X-ray free electron lasers (XFELs) and their implementation in the emerging field of serial femtosecond crystallography (SFX) has given rise to a remarkable expansion upon existing crystallographic constraints, allowing structural biologists access to previously restricted scientific territory. SFX relies on exceptionally brilliant, micro-focused X-ray pulses, which are femtoseconds in duration, to probe nano/micrometer sized crystals in a serial fashion. This results in data sets comprised of individual snapshots, each capturing Bragg diffraction of single crystals in random orientations prior to their subsequent destruction. Thus structural elucidation while avoiding radiation damage, even at room temperature, can now be achieved. This emerging field has cultivated new methods for nanocrystallogenesis, sample delivery, and data processing. Opportunities and challenges within SFX are reviewed herein.
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.