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result(s) for
"Peisley, Alys"
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Structural basis for ubiquitin-mediated antiviral signal activation by RIG-I
2014
RIG-I protein recognizes viral duplex RNA with a 5′-triphosphate group, activating innate immune responses; a crystal structure of its tetrameric CARD signalling domain reveals that non-covalently linked ubiquitin chains stabilize the tetramer in a ‘lock-washer’ structure that serves as a signalling platform for the recruitment and activation of MAVS.
Mechanism of RIG-I protein virus recognition
The protein RIG-I recognizes viral RNA sequences, activating innate immune responses. This protein is known to make both covalent and non-covalent interactions with K63-linked ubiquitin chains. It has remained unclear, however, how these ubiquitin modifications regulate the activity of 2CARD, the signalling domain of RIG-I, to allow its release in response to viral RNA and subsequent interaction with the downstream signalling molecule MAVS. Sun Hur and colleagues now present the crystal structure of 2CARD tetramer bound by three K63-ubiquitin chains. They find that the non-covalently linked ubiquitin chains bridge adjacent subunits of 2CARD and the covalently linked chains further stabilize this tetramer, which resembles a 'lock-washer' with its surface serving as a signalling platform for recruitment and activation of MAVS.
Ubiquitin (Ub) has important roles in a wide range of intracellular signalling pathways. In the conventional view, ubiquitin alters the signalling activity of the target protein through covalent modification, but accumulating evidence points to the emerging role of non-covalent interaction between ubiquitin and the target. In the innate immune signalling pathway of a viral RNA sensor, RIG-I, both covalent and non-covalent interactions with K63-linked ubiquitin chains (K63-Ub
n
) were shown to occur in its signalling domain, a tandem caspase activation and recruitment domain (hereafter referred to as 2CARD)
1
,
2
. Non-covalent binding of K63-Ub
n
to 2CARD induces its tetramer formation, a requirement for downstream signal activation
3
. Here we report the crystal structure of the tetramer of human RIG-I 2CARD bound by three chains of K63-Ub
2
. 2CARD assembles into a helical tetramer resembling a ‘lock-washer’, in which the tetrameric surface serves as a signalling platform for recruitment and activation of the downstream signalling molecule, MAVS. Ubiquitin chains are bound along the outer rim of the helical trajectory, bridging adjacent subunits of 2CARD and stabilizing the 2CARD tetramer. The combination of structural and functional analyses reveals that binding avidity dictates the K63-linkage and chain-length specificity of 2CARD, and that covalent ubiquitin conjugation of 2CARD further stabilizes the Ub–2CARD interaction and thus the 2CARD tetramer. Our work provides unique insights into the novel types of ubiquitin-mediated signal-activation mechanism, and previously unexpected synergism between the covalent and non-covalent ubiquitin interaction modes.
Journal Article
Cooperative assembly and dynamic disassembly of MDA5 filaments for viral dsRNA recognition
by
Hur, Sun
,
Wu, Bin
,
Peisley, Alys
in
Adenosine triphosphatase
,
adenosine triphosphate
,
Adenosine Triphosphate - metabolism
2011
MDA5, an RIG-I-like helicase, is a conserved cytoplasmic viral RNA sensor, which recognizes dsRNA from a wide-range of viruses in a length-dependent manner. It has been proposed that MDA5 forms higher-order structures upon viral dsRNA recognition or during antiviral signaling, however the organization and nature of this proposed oligomeric state is unknown. We report here that MDA5 cooperatively assembles into a filamentous oligomer composed of a repeating segmental arrangement of MDA5 dimers along the length of dsRNA. Binding of MDA5 to dsRNA stimulates its ATP hydrolysis activity with little coordination between neighboring molecules within a filament. Individual ATP hydrolysis in turn renders an intrinsic kinetic instability to the MDA5 filament, triggering dissociation of MDA5 from dsRNA at a rate inversely proportional to the filament length. These results suggest a previously unrecognized role of ATP hydrolysis in control of filament assembly and disassembly processes, thereby autoregulating the interaction of MDA5 with dsRNA, and provides a potential basis for dsRNA length-dependent antiviral signaling.
Journal Article
Kinetic mechanism for viral dsRNA length discrimination by MDA5 filaments
by
Hur, Sun
,
Wu, Bin
,
Peisley, Alys
in
Adenosine triphosphatase
,
adenosine triphosphate
,
Adenosine Triphosphate - metabolism
2012
The viral sensor MDA5 distinguishes between cellular and viral dsRNAs by length-dependent recognition in the range of ∼0.5–7 kb. The ability to discriminate dsRNA length at this scale sets MDA5 apart from other dsRNA receptors of the immune system. We have shown previously that MDA5 forms filaments along dsRNA that disassemble upon ATP hydrolysis. Here, we demonstrate that filament formation alone is insufficient to explain its length specificity, because the intrinsic affinity of MDA5 for dsRNA depends only moderately on dsRNA length. Instead, MDA5 uses a combination of end disassembly and slow nucleation kinetics to “ discard ” short dsRNA rapidly and to suppress rebinding. In contrast, filaments on long dsRNA cycle between partial end disassembly and elongation, bypassing nucleation steps. MDA5 further uses this repetitive cycle of assembly and disassembly processes to repair filament discontinuities, which often are present because of multiple, internal nucleation events, and to generate longer, continuous filaments that more accurately reflect the length of the underlying dsRNA scaffold. Because the length of the continuous filament determines the stability of the MDA5–dsRNA interaction, the mechanism proposed here provides an explanation for how MDA5 uses filament assembly and disassembly dynamics to discriminate between self vs. nonself dsRNA.
Journal Article
Discovery of processive catalysis by an exo-hydrolase with a pocket-shaped active site
2019
Substrates associate and products dissociate from enzyme catalytic sites rapidly, which hampers investigations of their trajectories. The high-resolution structure of the native
Hordeum
exo-hydrolase HvExoI isolated from seedlings reveals that non-covalently trapped glucose forms a stable enzyme-product complex. Here, we report that the alkyl β-
d
-glucoside and methyl 6-thio-β-gentiobioside substrate analogues perfused in crystalline HvExoI bind across the catalytic site after they displace glucose, while methyl 2-thio-β-sophoroside attaches nearby. Structural analyses and multi-scale molecular modelling of nanoscale reactant movements in HvExoI reveal that upon productive binding of incoming substrates, the glucose product modifies its binding patterns and evokes the formation of a transient lateral cavity, which serves as a conduit for glucose departure to allow for the next catalytic round. This path enables substrate-product assisted processive catalysis through multiple hydrolytic events without HvExoI losing contact with oligo- or polymeric substrates. We anticipate that such enzyme plasticity could be prevalent among exo-hydrolases.
Enzyme substrates and products often diffuse too rapidly to assess the catalytic implications of these movements. Here, the authors characterise the structural basis of product and substrate diffusion for an exo-hydrolase and discover a substrate-product assisted processive catalytic mechanism.
Journal Article
Multi-level regulation of cellular recognition of viral dsRNA
2013
Effective antiviral immunity depends on accurate recognition of viral RNAs by the innate immune system. Double-stranded RNA (dsRNA) often accumulates in virally infected cells and was initially considered a unique viral signature that was sufficient to initiate antiviral response through dsRNA receptors and dsRNA-dependent effectors such as Toll-like receptor 3, retinoic acid inducible gene-1, protein kinase RNA-activated and oligoadenylate synthetase. However, dsRNA is also present in many cellular RNAs, raising a question of how these receptors and effectors discriminate between viral and cellular dsRNAs. Accumulating evidence suggests that innate immune sensors detect not only dsRNA structure but also other and often multiple features of RNA such as length, sequence, cellular location, post-transcriptional processing and modification, which are divergent between viral and cellular RNAs. This review summarizes recent findings on the substrate specificities of a few selected dsRNA-dependent effectors and receptors, which have revealed more complex mechanisms involved in cellular discrimination between self and non-self RNA.
Journal Article
Determination of the melanocortin-4 receptor structure identifies Ca2+ as a cofactor for ligand binding
by
Peisley, Alys
,
Han, Gye Won
,
Hernandez, Ciria C.
in
Adenosine monophosphate
,
Affinity
,
Agonists
2020
The melanocortin-4 receptor (MC4R) is involved in energy homeostasis and is an important drug target for syndromic obesity. We report the structure of the antagonist SHU9119-bound human MC4R at 2.8-angstrom resolution. Ca2+ is identified as a cofactor that is complexed with residues from both the receptor and peptide ligand. Extracellular Ca2+ increases the affinity and potency of the endogenous agonist α-melanocyte–stimulating hormone at the MC4R by 37- and 600-fold, respectively. The ability of the MC4R crystallized construct to couple to ion channel Kir7.1, while lacking cyclic adenosine monophosphate stimulation, highlights a heterotrimeric GTP-binding protein (G protein)–independent mechanism for this signaling modality. MC4R is revealed as a structurally divergent G protein–coupled receptor (GPCR), with more similarity to lipidic GPCRs than to the homologous peptidic GPCRs.
Journal Article
Determination of the melanocortin-4 receptor structure identifies Ca 2+ as a cofactor for ligand binding
by
Peisley, Alys
,
Han, Gye Won
,
Hernandez, Ciria C.
in
Calcium - chemistry
,
Crystallography, X-Ray
,
Cyclic AMP - chemistry
2020
The melanocortin-4 receptor (MC4R) coordinates food intake and energy expenditure and is a target for treating obesity. MC4R is an unusual G protein–coupled receptor, in part because it binds either an endogenous agonist or an endogenous antagonist, leading to reduced appetite or increased food intake, respectively. Yu et al. determined the structure of MC4R bound to an antagonist (see the Perspective by Chaturvedi and Shukla). This structure revealed a calcium ion coordinated by the receptor and the antagonist. Biochemical studies showed that the calcium ion also increased the affinity for endogenous agonist, which translated into increased potency. The authors also confirm a previous finding that MC4R directly couples to the ion channel Kir7.1 and regulates channel gating. Science , this issue p. 428 ; see also p. 369 The G protein–coupled receptor melanocortin-4 binds Ca2+ and ligand at the same site and directly couples to Kir7.1 ion channels. The melanocortin-4 receptor (MC4R) is involved in energy homeostasis and is an important drug target for syndromic obesity. We report the structure of the antagonist SHU9119-bound human MC4R at 2.8-angstrom resolution. Ca 2+ is identified as a cofactor that is complexed with residues from both the receptor and peptide ligand. Extracellular Ca 2+ increases the affinity and potency of the endogenous agonist α-melanocyte–stimulating hormone at the MC4R by 37- and 600-fold, respectively. The ability of the MC4R crystallized construct to couple to ion channel Kir7.1, while lacking cyclic adenosine monophosphate stimulation, highlights a heterotrimeric GTP-binding protein (G protein)–independent mechanism for this signaling modality. MC4R is revealed as a structurally divergent G protein–coupled receptor (GPCR), with more similarity to lipidic GPCRs than to the homologous peptidic GPCRs.
Journal Article
Structure of the Ion Channel Kir7.1 and Implications for its Function in Normal and Pathophysiologic States
2024
Hereditary defects in the function of the Kir7.1 in the retinal pigment epithelium are associated with the ocular diseases retinitis pigmentosa, Leber congenital amaurosis, and snowflake vitreal degeneration. Studies also suggest that Kir7.1 may be regulated by a GPCR, the melanocortin-4 receptor, in certain hypothalamic neurons. We present the first structures of human Kir7.1 and describe the conformational bias displayed by two pathogenic mutations, R162Q and E276A, to provide an explanation for the basis of disease and illuminate the gating pathway. We also demonstrate the structural basis for the blockade of the channel by a small molecule ML418 and demonstrate that channel blockade in vivo activates MC4R neurons in the paraventricular nucleus of the hypothalamus (PVH), inhibiting food intake and inducing weight loss. Preliminary purification, and structural and pharmacological characterization of an in tandem construct of MC4R and Kir7.1 suggests that the fusion protein forms a homotetrameric channel that retains regulation by liganded MC4R molecules.
Journal Article
Membrane Orientation and Oligomerization of the Melanocortin Receptor Accessory Protein 2
by
Hernandez, Ciria Q
,
Britt, Laura L
,
Peisley, Alys
in
Biochemistry
,
Dimerization
,
Energy balance
2020
The melanocortin receptor accessory protein 2 (MRAP2) plays a pivotal role in the regulation of several G- protein coupled receptors (GPCR) that are essential for energy balance and food intake. MRAP2 loss-of-function results in obesity in mammals. MRAP2 and its homolog MRAP1 have an unusual membrane topology and are the only known eukaryotic proteins that thread into the membrane in both orientations. In this study, we demonstrate that the conserved polybasic motif that dictates the membrane topology and dimerization of MRAP1 does not control the membrane orientation and dimerization of MRAP2. We also show that MRAP2 dimerizes through its transmembrane domain and can form higher order oligomers that arrange MRAP2 monomers in a parallel orientation. Investigating the molecular details of MRAP2 structure is essential for understanding the mechanism by which it regulates GPCRs and will aid in elucidating the pathways involved in metabolic dysfunction. Competing Interest Statement The authors have declared no competing interest.