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Dive into the research topics where Parker W. de Waal is active.

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Featured researches published by Parker W. de Waal.


Nature | 2015

Crystal structure of rhodopsin bound to arrestin by femtosecond X-ray laser

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.


Cell Research | 2015

Structural basis of AMPK regulation by adenine nucleotides and glycogen

Xiaodan Li; Lili Wang; X. Edward Zhou; Jiyuan Ke; Parker W. de Waal; Xin Gu; M. H.Eileen Tan; Dongye Wang; Donghai Wu; H. Eric Xu; Karsten Melcher

AMP-activated protein kinase (AMPK) is a central cellular energy sensor and regulator of energy homeostasis, and a promising drug target for the treatment of diabetes, obesity, and cancer. Here we present low-resolution crystal structures of the human α1β2γ1 holo-AMPK complex bound to its allosteric modulators AMP and the glycogen-mimic cyclodextrin, both in the phosphorylated (4.05 Å) and non-phosphorylated (4.60 Å) state. In addition, we have solved a 2.95 Å structure of the human kinase domain (KD) bound to the adjacent autoinhibitory domain (AID) and have performed extensive biochemical and mutational studies. Together, these studies illustrate an underlying mechanism of allosteric AMPK modulation by AMP and glycogen, whose binding changes the equilibria between alternate AID (AMP) and carbohydrate-binding module (glycogen) interactions.


Cell Research | 2015

Destabilization of strigolactone receptor DWARF14 by binding of ligand and E3-ligase signaling effector DWARF3

Li-Hua Zhao; X. Edward Zhou; Wei Yi; Zhongshan Wu; Yue Liu; Yanyong Kang; Li Hou; Parker W. de Waal; Suling Li; Yi Jiang; Adrian Scaffidi; Gavin R. Flematti; Steven M. Smith; Vinh Q. Lam; Patrick R. Griffin; Yonghong Wang; Jiayang Li; Karsten Melcher; H. Eric Xu

Strigolactones (SLs) are endogenous hormones and exuded signaling molecules in plant responses to low levels of mineral nutrients. Key mediators of the SL signaling pathway in rice include the α/β-fold hydrolase DWARF 14 (D14) and the F-box component DWARF 3 (D3) of the ubiquitin ligase SCFD3 that mediate ligand-dependent degradation of downstream signaling repressors. One perplexing feature is that D14 not only functions as the SL receptor but is also an active enzyme that slowly hydrolyzes diverse natural and synthetic SLs including GR24, preventing the crystallization of a binary complex of D14 with an intact SL as well as the ternary D14/SL/D3 complex. Here we overcome these barriers to derive a structural model of D14 bound to intact GR24 and identify the interface that is required for GR24-mediated D14-D3 interaction. The mode of GR24-mediated signaling, including ligand recognition, hydrolysis by D14, and ligand-mediated D14-D3 interaction, is conserved in structurally diverse SLs. More importantly, D14 is destabilized upon the binding of ligands and D3, thus revealing an unusual mechanism of SL recognition and signaling, in which the hormone, the receptor, and the downstream effectors are systematically destabilized during the signal transduction process.


Scientific Data | 2016

X-ray laser diffraction for structure determination of the rhodopsin-arrestin complex

X. Edward Zhou; Xiang Gao; Anton Barty; Yanyong Kang; Yuanzheng He; Wei Liu; Andrii Ishchenko; Thomas A. White; Oleksandr Yefanov; Gye Won Han; Qingping Xu; Parker W. de Waal; Kelly Suino-Powell; Sébastien Boutet; Garth J. Williams; Meitian Wang; Dianfan Li; Martin Caffrey; Henry N. Chapman; John C. Spence; Petra Fromme; Uwe Weierstall; Raymond C. Stevens; Vadim Cherezov; Karsten Melcher; H. Eric Xu

Serial femtosecond X-ray crystallography (SFX) using an X-ray free electron laser (XFEL) is a recent advancement in structural biology for solving crystal structures of challenging membrane proteins, including G-protein coupled receptors (GPCRs), which often only produce microcrystals. An XFEL delivers highly intense X-ray pulses of femtosecond duration short enough to enable the collection of single diffraction images before significant radiation damage to crystals sets in. Here we report the deposition of the XFEL data and provide further details on crystallization, XFEL data collection and analysis, structure determination, and the validation of the structural model. The rhodopsin-arrestin crystal structure solved with SFX represents the first near-atomic resolution structure of a GPCR-arrestin complex, provides structural insights into understanding of arrestin-mediated GPCR signaling, and demonstrates the great potential of this SFX-XFEL technology for accelerating crystal structure determination of challenging proteins and protein complexes.


Journal of Medicinal Chemistry | 2016

Tumor Targeting with Novel 6-Substituted Pyrrolo [2,3-d] Pyrimidine Antifolates with Heteroatom Bridge Substitutions via Cellular Uptake by Folate Receptor α and the Proton-Coupled Folate Transporter and Inhibition of de Novo Purine Nucleotide Biosynthesis

Lalit K. Golani; Adrianne Wallace-Povirk; Siobhan M. Deis; Jennifer E. Wong; Jiyuan Ke; Xin Gu; Sudhir Raghavan; Mike R. Wilson; Xinxin Li; Lisa Polin; Parker W. de Waal; Kathryn White; Juiwanna Kushner; Carrie O’Connor; Zhanjun Hou; H. Eric Xu; Karsten Melcher; Charles E. Dann; Larry H. Matherly; Aleem Gangjee

Targeted antifolates with heteroatom replacements of the carbon vicinal to the phenyl ring in 1 by N (4), O (8), or S (9), or with N-substituted formyl (5), acetyl (6), or trifluoroacetyl (7) moieties, were synthesized and tested for selective cellular uptake by folate receptor (FR) α and β or the proton-coupled folate transporter. Results show increased in vitro antiproliferative activity toward engineered Chinese hamster ovary cells expressing FRs by 4-9 over the CH2 analogue 1. Compounds 4-9 inhibited de novo purine biosynthesis and glycinamide ribonucleotide formyltransferase (GARFTase). X-ray crystal structures for 4 with FRα and GARFTase showed that the bound conformations of 4 required flexibility for attachment to both FRα and GARFTase. In mice bearing IGROV1 ovarian tumor xenografts, 4 was highly efficacious. Our results establish that heteroatom substitutions in the 3-atom bridge region of 6-substituted pyrrolo[2,3-d]pyrimidines related to 1 provide targeted antifolates that warrant further evaluation as anticancer agents.


Journal of Chemical Physics | 2016

A fast, open source implementation of adaptive biasing potentials uncovers a ligand design strategy for the chromatin regulator BRD4

Bradley M. Dickson; Parker W. de Waal; Zachary Ramjan; H. Eric Xu; Scott B. Rothbart

In this communication we introduce an efficient implementation of adaptive biasing that greatly improves the speed of free energy computation in molecular dynamics simulations. We investigated the use of accelerated simulations to inform on compound design using a recently reported and clinically relevant inhibitor of the chromatin regulator BRD4 (bromodomain-containing protein 4). Benchmarking on our local compute cluster, our implementation achieves up to 2.5 times more force calls per day than plumed2. Results of five 1 μs-long simulations are presented, which reveal a conformational switch in the BRD4 inhibitor between a binding competent and incompetent state. Stabilization of the switch led to a -3 kcal/mol improvement of absolute binding free energy. These studies suggest an unexplored ligand design principle and offer new actionable hypotheses for medicinal chemistry efforts against this druggable epigenetic target class.


Nature | 2018

Cryo-EM structure of human rhodopsin bound to an inhibitory G protein

Yanyong Kang; Oleg Kuybeda; Parker W. de Waal; Somnath Mukherjee; Ned Van Eps; Przemyslaw Dutka; X. Edward Zhou; Alberto Bartesaghi; Satchal Erramilli; Takefumi Morizumi; Xin Gu; Yanting Yin; Ping Liu; Yi Jiang; Xing Meng; Gongpu Zhao; Karsten Melcher; Oliver P. Ernst; Anthony A. Kossiakoff; Sriram Subramaniam; H. Eric Xu

G-protein-coupled receptors comprise the largest family of mammalian transmembrane receptors. They mediate numerous cellular pathways by coupling with downstream signalling transducers, including the hetrotrimeric G proteins Gs (stimulatory) and Gi (inhibitory) and several arrestin proteins. The structural mechanisms that define how G-protein-coupled receptors selectively couple to a specific type of G protein or arrestin remain unknown. Here, using cryo-electron microscopy, we show that the major interactions between activated rhodopsin and Gi are mediated by the C-terminal helix of the Gi α-subunit, which is wedged into the cytoplasmic cavity of the transmembrane helix bundle and directly contacts the amino terminus of helix 8 of rhodopsin. Structural comparisons of inactive, Gi-bound and arrestin-bound forms of rhodopsin with inactive and Gs-bound forms of the β2-adrenergic receptor provide a foundation to understand the unique structural signatures that are associated with the recognition of Gs, Gi and arrestin by activated G-protein-coupled receptors.The cryo-electron microscopy structure of human rhodopsin bound to the inhibitory Gi protein-coupled receptor provides insights into ligand–receptor–G-protein interactions.


Cell discovery | 2018

Crystal structure of the human 5-HT 1B serotonin receptor bound to an inverse agonist

Wanchao Yin; X. Edward Zhou; Dehua Yang; Parker W. de Waal; Meitian Wang; Antao Dai; Xiaoqing Cai; Chia-Ying Huang; Ping Liu; Xiaoxi Wang; Yanting Yin; Bo Liu; Yu Zhou; Jiang Wang; Hong Liu; Martin Caffrey; Karsten Melcher; Yechun Xu; Ming-Wei Wang; H. Eric Xu; Yi Jiang

Abstract5-hydroxytryptamine (5-HT, also known as serotonin) regulates many physiological processes through the 5-HT receptor family. Here we report the crystal structure of 5-HT1B subtype receptor (5-HT1BR) bound to the psychotropic serotonin receptor inverse agonist methiothepin (MT). Crystallization was facilitated by replacing ICL3 with a novel optimized variant of BRIL (OB1) that enhances the formation of intermolecular polar interactions, making OB1 a potential useful tool for structural studies of membrane proteins. Unlike the agonist ergotamine (ERG), MT occupies only the conserved orthosteric binding pocket, explaining the wide spectrum effect of MT on serotonin receptors. Compared with ERG, MT shifts toward TM6 and sterically pushes residues W3276.48, F3306.50 and F3316.51 from inside the orthosteric binding pocket, leading to an outward movement of the extracellular end and a corresponding inward shift of the intracellular end of TM6, a feature shared by other reported inactive G protein-coupled receptor (GPCR) structures. Together with the previous agonist-bound serotonin receptor structures, the inverse agonist-bound 5-HT1BR structure identifies a basis for the ligand-mediated switch of 5-HT1BR activity and provides a structural understanding of the inactivation mechanism of 5-HT1BR and some other class A GPCRs, characterized by ligand-induced outward movement of the extracellular end of TM6 that is coupled with inward movement of the cytoplasmic end of this helix.


Journal of Biological Chemistry | 2017

Rearrangement of a polar core provides a conserved mechanism for constitutive activation of class B G protein-coupled receptors

Yanting Yin; Parker W. de Waal; Yuanzheng He; Li-Hua Zhao; Dehua Yang; Xiaoqing Cai; Yi Jiang; Karsten Melcher; Ming-Wei Wang; H. Eric Xu

The glucagon receptor (GCGR) belongs to the secretin-like (class B) family of G protein-coupled receptors (GPCRs) and is activated by the peptide hormone glucagon. The structures of an activated class B GPCR have remained unsolved, preventing a mechanistic understanding of how these receptors are activated. Using a combination of structural modeling and mutagenesis studies, we present here two modes of ligand-independent activation of GCGR. First, we identified a GCGR-specific hydrophobic lock comprising Met-338 and Phe-345 within the IC3 loop and transmembrane helix 6 (TM6) and found that this lock stabilizes the TM6 helix in the inactive conformation. Disruption of this hydrophobic lock led to constitutive G protein and arrestin signaling. Second, we discovered a polar core comprising conserved residues in TM2, TM3, TM6, and TM7, and mutations that disrupt this polar core led to constitutive GCGR activity. On the basis of these results, we propose a mechanistic model of GCGR activation in which TM6 is held in an inactive conformation by the conserved polar core and the hydrophobic lock. Mutations that disrupt these inhibitory elements allow TM6 to swing outward to adopt an active TM6 conformation similar to that of the canonical β2-adrenergic receptor complexed with G protein and to that of rhodopsin complexed with arrestin. Importantly, mutations in the corresponding polar core of several other members of class B GPCRs, including PTH1R, PAC1R, VIP1R, and CRFR1, also induce constitutive G protein signaling, suggesting that the rearrangement of the polar core is a conserved mechanism for class B GPCR activation.


Acta Pharmacologica Sinica | 2016

The structural basis of the dominant negative phenotype of the Gα i1 β 1 γ 2 G203A/A326S heterotrimer

Ping Liu; Ming-zhu Jia; X. Edward Zhou; Parker W. de Waal; Bradley M. Dickson; Bo Liu; Li Hou; Yanting Yin; Yanyong Kang; Yi Shi; Karsten Melcher; H. Eric Xu; Yi Jiang

Aim:Dominant negative mutant G proteins have provided critical insight into the mechanisms of G protein-coupled receptor (GPCR) signaling, but the mechanisms underlying the dominant negative characteristics are not completely understood. The aim of this study was to determine the structure of the dominant negative Gαi1β1γ2 G203A/A326S complex (Gi-DN) and to reveal the structural basis of the mutation-induced phenotype of Gαi1β1γ2.Methods:The three subunits of the Gi-DN complex were co-expressed with a baculovirus expression system. The Gi-DN heterotrimer was purified, and the structure of its complex with GDP was determined through X-ray crystallography.Results:The Gi-DN heterotrimer structure revealed a dual mechanism underlying the dominant negative characteristics. The mutations weakened the hydrogen bonding network between GDP/GTP and the binding pocket residues, and increased the interactions in the Gα-Gβγ interface. Concomitantly, the Gi-DN heterotrimer adopted a conformation, in which the C-terminus of Gαi and the N-termini of both the Gβ and Gγ subunits were more similar to the GPCR-bound state compared with the wild type complex. From these structural observations, two additional mutations (T48F and D272F) were designed that completely abolish the GDP binding of the Gi-DN heterotrimer.Conclusion:Overall, the results suggest that the mutations impede guanine nucleotide binding and Gα-Gβγ protein dissociation and favor the formation of the G protein/GPCR complex, thus blocking signal propagation. In addition, the structure provides a rationale for the design of other mutations that cause dominant negative effects in the G protein, as exemplified by the T48F and D272F mutations.

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Xin Gu

Van Andel Institute

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Yi Jiang

Chinese Academy of Sciences

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Yuanzheng He

Harbin Institute of Technology

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Ping Liu

Chinese Academy of Sciences

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