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Biology subjects

Lithgo, R. M.

Publications and source records attributed to Lithgo, R. M..

5 recordsLinked to original sources

Identifying novel chemical matter against the Chikungunya virus nsP3 macrodomain through crystallographic fragment screening

Chikungunya virus (CHIKV) causes severe fever, rash and debilitating joint pain that can last for months 1,2or even years. Millions of people have been infected with CHIKV, mostly in low and middle-income countries, and the virus continues to spread into new areas due to the geographical expansion of its mosquito hosts. Its genome encodes a macrodomain, which functions as an ADP-ribosyl hydrolase, removing ADPr from viral and host-cell proteins interfering with the innate immune response. Mutational studies have shown that the CHIKV nsP3 macrodomain is necessary for viral replication, making it a potential target for the development of antiviral therapeutics. We, therefore, performed a high-throughput crystallographic fragment screen against the CHIKV nsP3 macrodomain, yielding 109 fragment hits covering the ADPr-binding site and two adjacent subsites that are absent in the homologous macrodomain of SARS-CoV-2 but may be present in other alphaviruses, such as Venezuelan equine encephalitis virus (VEEV) and eastern equine encephalitis virus (EEEV). Finally, a subset of overlapping fragments was used to manually design three fragment merges covering the adenine and oxyanion subsites. The rich dataset of chemical matter and structural information discovered from this fragment screen is publicly available and can be used as a starting point for developing a CHIKV nsP3 macrodomain inhibitor.

biochemistry↗

Crystallographic fragment screen of Enterovirus D68 3C protease and iterative design of lead-like compounds using structure-guided expansions

The development of effective broad-spectrum antivirals forms an important part of preparing for future pandemics. One cause for concern is the currently emerging pathogen Enterovirus D68 (EV-D68) which primarily spreads through respiratory routes causing mostly mild to severe respiratory illness but, in severe cases, acute flaccid myelitis. The 3C protease of EV-D68 (3Cpro) is a potential target for the development of antiviral drugs due to its essential role in the viral life cycle and high sequence conservation amongst family members. In this study, we describe the identification of fragments which bind to3Cpro using crystallographic screening and the expansion of these into more lead-like compounds. The hits revealed interesting directions for hit-to-lead progression, specifically the importance of the pocket occupied by the conserved glutamine sidechain of the substrates and the interactions formed. Additionally, two pockets could be joined by not following the backbone of the native substrates, thus circumventing the screening issues arising from the flexibility of the catalytic triad. These observations of the novel binding modes of the chemical matter found by this screen can help shape future drug design campaigns against 3C proteases.

biochemistry↗

High-throughput crystallographic fragment screening of Zika virus NS3 Helicase

The Zika virus (ZIKV), discovered in Africa in 1947, swiftly spread across continents, causing significant concern due to its recent association with microcephaly in newborns and Guillain-Barre syndrome in adults. Despite a decrease in prevalence, the potential for a resurgence remains, necessitating urgent therapeutic interventions. Like other flaviviruses, ZIKV presents promising drug targets within its replication machinery, notably the NS3 helicase (NS3Hel) protein, which plays critical roles in viral replication. However, a lack of structural information impedes the development of specific inhibitors targeting NS3Hel. Here we applied high-throughput crystallographic fragment screening on ZIKV NS3Hel, which yielded structures that reveal 3D binding poses of 46 fragments at multiple sites of the protein, including 11 unique fragments in the RNA-cleft site. These fragment structures provide templates for direct design of hit compounds and should thus assist the development of novel direct-acting antivirals against ZIKV and related flaviviruses, thus opening a promising avenue for combating future outbreaks.

biophysics↗

Crystallographic Fragment Screen of Coxsackievirus A16 2A Protease identifies new opportunities for the development of broad-spectrum anti-enterovirals

Enteroviruses are the causative agents of paediatric hand-foot-and-mouth disease, and a target for pandemic preparedness due to the risk of higher order complications in a large-scale outbreak. The 2A protease of these viruses is responsible for the self-cleavage of the poly protein, allowing for correct folding and assembly of capsid proteins in the final stages of viral replication. These 2A proteases are highly conserved between Enterovirus species, such as Enterovirus A71 and Coxsackievirus A16. Inhibition of the 2A protease deranges capsid folding and assembly, preventing formation of mature virions in host cells and making the protease a valuable target for antiviral activity. Herein, we describe a crystallographic fragment screening campaign that identified 75 fragments which bind to the 2A protease including 38 unique compounds shown to bind within the active site. These fragments reveal a path for the development of non-peptidomimetic inhibitors of the 2A protease with broad-spectrum anti-enteroviral activity.

biochemistry↗

Defining the mechanism of galectin-3-mediated TGF-β1 activation and its role in lung fibrosis.

Integrin-mediated activation of the pro-fibrotic mediator transforming growth factor-{beta}1 (TGF-{beta}1), plays a critical role in idiopathic pulmonary fibrosis (IPF) pathogenesis. Galectin-3 is believed to contribute to the pathological wound healing seen in IPF individuals, although its mechanism of action is not precisely defined. We hypothesised that galectin-3 potentiates TGF-{beta}1 activation and/or signaling in the lung to promote fibrogenesis. We show that galectin-3 induces TGF-{beta}1 activation in human lung fibroblasts (HLFs) and specifically that extracellular galectin-3 promotes oleoyl-L--lysophosphatidic acid sodium salt (LPA)-induced integrin-mediated TGF-{beta}1 activation. Surface plasmon resonance (SPR) analysis confirmed that galectin-3 binds to the v integrins, v{beta}1, v{beta}S and v{beta}6 and also to the TGF{beta}RII subunit in a glycosylation-dependent manner. This galectin-3 binding is heterogeneous and not a 1:1 binding stoichiometry. These binding interactions were blocked by small molecule inhibitors of galectin-3 which target the carbohydrate recognition domain. Binding of galectin-3 to the {beta}1 integrin was validated in vitro by co-immunoprecipitation (Co-IP) in HLFs. In addition, proximity ligation assay (PLA) data indicates that galectin-3 and the {beta}1 integrin colocalize closely (40 nm) on the cell surface of HLFs, that colocalization is increased by TGF-{beta}1 treatment and galectin-3 inhibitors prevented this colocalization. In the absence of TGF-{beta}1 stimulation, such colocalization was detectable only in HLFs isolated from IPF patients suggesting that the proteins are inherently more closely associated in the disease state. Taken together, this data suggests that galectin-3 promotes TGF-{beta}1 signaling and may induce fibrogenesis by interacting directly with components of the TGF-{beta}1 signaling cascade. Declaration of InterestsRGJ reports grants or contracts from AstraZeneca, Biogen, Galecto Biotech, GlaxoSmithKline, Nordic Biosciences, RedX, Plaint, consulting fees from Bristol Myers Squibb, Chiesi, Daewoong Veracyre, Resolution Therapeutics and Pliant, honoraria from Boehringer Ingelheim, Chiesi, Roche, PatientMPower, AstraZeneca, advisory roles with Boehringer Ingelheim, Galapagos and Vicore, non-financial support from NuMedii, and is a Trustee for Action for Pulmonary Fibrosis. AEJ reports grant funding from Galecto Biotech. BG reports CASE student project partnership with Galecto Biotech, honoraria from GlaxoSmithKline and Vertex and grants and fellowships from UKRI MRC and BBSRC, Alpha-1 Foundation, BLF/A+LUK, Wellcome Trust. RJS, ACM, FRZ, JFC are Galecto employees with shares/options in the company. NRP is a Roche employee. GH, RML, PS, SBC, DJS declare no competing interests.

molecular biology↗