Jeffrey Y. W. Mak
University of Queensland
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Featured researches published by Jeffrey Y. W. Mak.
Nature | 2014
Alexandra J. Corbett; Sidonia B. G. Eckle; Richard W. Birkinshaw; Ligong Liu; Onisha Patel; Jennifer Mahony; Zhenjun Chen; Rangsima Reantragoon; Bronwyn Meehan; Hanwei Cao; Nicholas A. Williamson; Richard A. Strugnell; Douwe van Sinderen; Jeffrey Y. W. Mak; David P. Fairlie; Lars Kjer-Nielsen; Jamie Rossjohn; James McCluskey
T cells discriminate between foreign and host molecules by recognizing distinct microbial molecules, predominantly peptides and lipids. Riboflavin precursors found in many bacteria and yeast also selectively activate mucosal-associated invariant T (MAIT) cells, an abundant population of innate-like T cells in humans. However, the genesis of these small organic molecules and their mode of presentation to MAIT cells by the major histocompatibility complex (MHC)-related protein MR1 (ref. 8) are not well understood. Here we show that MAIT-cell activation requires key genes encoding enzymes that form 5-amino-6-d-ribitylaminouracil (5-A-RU), an early intermediate in bacterial riboflavin synthesis. Although 5-A-RU does not bind MR1 or activate MAIT cells directly, it does form potent MAIT-activating antigens via non-enzymatic reactions with small molecules, such as glyoxal and methylglyoxal, which are derived from other metabolic pathways. The MAIT antigens formed by the reactions between 5-A-RU and glyoxal/methylglyoxal were simple adducts, 5-(2-oxoethylideneamino)-6-d-ribitylaminouracil (5-OE-RU) and 5-(2-oxopropylideneamino)-6-d-ribitylaminouracil (5-OP-RU), respectively, which bound to MR1 as shown by crystal structures of MAIT TCR ternary complexes. Although 5-OP-RU and 5-OE-RU are unstable intermediates, they became trapped by MR1 as reversible covalent Schiff base complexes. Mass spectra supported the capture by MR1 of 5-OP-RU and 5-OE-RU from bacterial cultures that activate MAIT cells, but not from non-activating bacteria, indicating that these MAIT antigens are present in a range of microbes. Thus, MR1 is able to capture, stabilize and present chemically unstable pyrimidine intermediates, which otherwise convert to lumazines, as potent antigens to MAIT cells. These pyrimidine adducts are microbial signatures for MAIT-cell immunosurveillance.
Nature Immunology | 2017
Andrew Keller; Sidonia B. G. Eckle; Weijun Xu; Ligong Liu; Victoria A Hughes; Jeffrey Y. W. Mak; Bronwyn Meehan; Troi Pediongco; Richard W. Birkinshaw; Zhenjun Chen; Huimeng Wang; Criselle D'Souza; Lars Kjer-Nielsen; Nicholas A. Gherardin; Dale I. Godfrey; Lyudmila Kostenko; Alexandra J. Corbett; Anthony W. Purcell; David P. Fairlie; James McCluskey; Jamie Rossjohn
The major-histocompatibility-complex-(MHC)-class-I-related molecule MR1 can present activating and non-activating vitamin-B-based ligands to mucosal-associated invariant T cells (MAIT cells). Whether MR1 binds other ligands is unknown. Here we identified a range of small organic molecules, drugs, drug metabolites and drug-like molecules, including salicylates and diclofenac, as MR1-binding ligands. Some of these ligands inhibited MAIT cells ex vivo and in vivo, while others, including diclofenac metabolites, were agonists. Crystal structures of a T cell antigen receptor (TCR) from a MAIT cell in complex with MR1 bound to the non-stimulatory and stimulatory compounds showed distinct ligand orientations and contacts within MR1, which highlighted the versatility of the MR1 binding pocket. The findings demonstrated that MR1 was able to capture chemically diverse structures, spanning mono- and bicyclic compounds, that either inhibited or activated MAIT cells. This indicated that drugs and drug-like molecules can modulate MAIT cell function in mammals.
Angewandte Chemie | 2014
Jeffrey Y. W. Mak; Rebecca H. Pouwer; Craig M. Williams
Well over a hundred years ago, Professor Julius Bredt embarked on a career pursuing and critiquing bridged bicyclic systems that contained ring strain induced by the presence of a bridgehead olefin. These endeavors founded what we now know as Bredts rule (Bredtsche Regel). Physical, theoretical, and synthetic organic chemists have intensely studied this premise, pushing the boundaries of such systems to arrive at a better understood physical phenomenon. Mother nature has also seen fit to construct molecules containing bridgehead double bonds that encompass Bredts rule. For the first time, this topic is reviewed in a natural product context.
Bioorganic & Medicinal Chemistry Letters | 2009
Ross P. McGeary; Peter Vella; Jeffrey Y. W. Mak; Luke W. Guddat; Gerhard Schenk
Purple acid phosphatases (PAPs) are binuclear hydrolases that catalyse the hydrolysis of a range of phosphorylated substrates. Human PAP is a major histochemical marker for the diagnosis of osteoporosis. In patients suffering from this disorder, PAP activity contributes to increased bone resorption and, therefore, human PAP is a key target for the development of anti-osteoporotic drugs. This manuscript describes the design and synthesis of derivatives of 1-naphthylmethylphosphonic acids as inhibitors of PAP. The K(i) values of these compounds are as low as 4 microM, the lowest reported to date for a PAP inhibitor.
Natural Product Reports | 2012
Jeffrey Y. W. Mak; Craig M. Williams
Vibsanins are rare, structurally dense diterpenes, which occur exclusively in the Viburnum species. Despite the first reported isolation thirty one years ago, this natural product family has only attracted synthetic attention within the past decade. The aim of this article is to highlight the key accomplishments in the total synthesis of these unique natural products.
Nature Communications | 2017
Jeffrey Y. W. Mak; Weijun Xu; Robert C. Reid; Alexandra J. Corbett; Bronwyn Meehan; Huimeng Wang; Zhenjun Chen; Jamie Rossjohn; James McCluskey; Ligong Liu; David P. Fairlie
Mucosal-associated invariant T (MAIT) cells are activated by unstable antigens formed by reactions of 5-amino-6-D-ribitylaminouracil (a vitamin B2 biosynthetic intermediate) with glycolysis metabolites such as methylglyoxal. Here we show superior preparations of antigens in dimethylsulfoxide, avoiding their rapid decomposition in water (t1/2 1.5 h, 37 °C). Antigen solution structures, MAIT cell activation potencies (EC50 3–500 pM), and chemical stabilities are described. Computer analyses of antigen structures reveal stereochemical and energetic influences on MAIT cell activation, enabling design of a water stable synthetic antigen (EC50 2 nM). Like native antigens, this antigen preparation induces MR1 refolding and upregulates surface expression of human MR1, forms MR1 tetramers that detect MAIT cells in human PBMCs, and stimulates cytokine expression (IFNγ, TNF) by human MAIT cells. These antigens also induce MAIT cell accumulation in mouse lungs after administration with a co-stimulant. These chemical and immunological findings provide new insights into antigen properties and MAIT cell activation.
Journal of Immunology | 2018
Criselle D'Souza; Troi Pediongco; Huimeng Wang; Jean-Pierre Y. Scheerlinck; Lyudmila Kostenko; Robyn Esterbauer; Andrew Stent; Sidonia B. G. Eckle; Bronwyn Meehan; Richard A. Strugnell; Hanwei Cao; Ligong Liu; Jeffrey Y. W. Mak; George O. Lovrecz; Louis Lu; David P. Fairlie; Jamie Rossjohn; James McCluskey; Alison L. Every; Zhenjun Chen; Alexandra J. Corbett
Mucosal-associated invariant T (MAIT) cells produce inflammatory cytokines and cytotoxic granzymes in response to by-products of microbial riboflavin synthesis. Although MAIT cells are protective against some pathogens, we reasoned that they might contribute to pathology in chronic bacterial infection. We observed MAIT cells in proximity to Helicobacter pylori bacteria in human gastric tissue, and so, using MR1-tetramers, we examined whether MAIT cells contribute to chronic gastritis in a mouse H. pylori SS1 infection model. Following infection, MAIT cells accumulated to high numbers in the gastric mucosa of wild-type C57BL/6 mice, and this was even more pronounced in MAIT TCR transgenic mice or in C57BL/6 mice where MAIT cells were preprimed by Ag exposure or prior infection. Gastric MAIT cells possessed an effector memory Tc1/Tc17 phenotype, and were associated with accelerated gastritis characterized by augmented recruitment of neutrophils, macrophages, dendritic cells, eosinophils, and non-MAIT T cells and by marked gastric atrophy. Similarly treated MR1−/− mice, which lack MAIT cells, showed significantly less gastric pathology. Thus, we demonstrate the pathogenic potential of MAIT cells in Helicobacter-associated immunopathology, with implications for other chronic bacterial infections.
Journal of Clinical Investigation | 2018
Antiopi Varelias; Mark D. Bunting; Kate L. Ormerod; Motoko Koyama; Stuart D. Olver; Jasmin Straube; Rachel D. Kuns; Renee J. Robb; Andrea S. Henden; Leanne Cooper; Nancy Lachner; Kate H. Gartlan; Olivier Lantz; Lars Kjer-Nielsen; Jeffrey Y. W. Mak; David P. Fairlie; Andrew D. Clouston; James McCluskey; Jamie Rossjohn; Steven W. Lane; Philip Hugenholtz; Geoffrey R. Hill
Mucosal-associated invariant T (MAIT) cells are a unique innate-like T cell subset that responds to a wide array of bacteria and yeast through recognition of riboflavin metabolites presented by the MHC class I–like molecule MR1. Here, we demonstrate using MR1 tetramers that recipient MAIT cells are present in small but definable numbers in graft-versus-host disease (GVHD) target organs and protect from acute GVHD in the colon following bone marrow transplantation (BMT). Consistent with their preferential juxtaposition to microbial signals in the colon, recipient MAIT cells generate large amounts of IL-17A, promote gastrointestinal tract integrity, and limit the donor alloantigen presentation that in turn drives donor Th1 and Th17 expansion specifically in the colon after BMT. Allogeneic BMT recipients deficient in IL-17A also develop accelerated GVHD, suggesting MAIT cells likely regulate GVHD, at least in part, by the generation of this cytokine. Indeed, analysis of stool microbiota and colon tissue from IL-17A–/– and MR1–/– mice identified analogous shifts in microbiome operational taxonomic units (OTU) and mediators of barrier integrity that appear to represent pathways controlled by similar, IL-17A–dependent mechanisms. Thus, MAIT cells act to control barrier function to attenuate pathogenic T cell responses in the colon and, given their very high frequency in humans, likely represent an important population in clinical BMT.
Immunology and Cell Biology | 2018
Lars Kjer-Nielsen; Alexandra J. Corbett; Zhenjun Chen; Ligong Liu; Jeffrey Y. W. Mak; Dale I. Godfrey; Jamie Rossjohn; David P. Fairlie; James McCluskey; Sidonia B. G. Eckle
Mucosal associated invariant T (MAIT) cells are restricted by the monomorphic MHC class I‐like molecule, MHC‐related protein‐1 (MR1). Until 2012, the origin of the MAIT cell antigens (Ags) was unknown, although it was established that MAIT cells could be activated by a broad range of bacteria and yeasts, possibly suggesting a conserved Ag. Using a combination of protein chemistry, mass spectrometry, cellular biology, structural biology and small molecule chemistry, we discovered MR1 ligands derived from folic acid (vitamin B9) and from an intermediate in the microbial biosynthesis of riboflavin (vitamin B2). While the folate derivative 6‐formylpterin generally inhibited MAIT cell activation, two riboflavin pathway derivatives, 5‐(2‐oxopropylideneamino)‐6‐D‐ribitylaminouracil and 5‐(2‐oxoethylideneamino)‐6‐D‐ribitylaminouracil, were potent MAIT cell agonists. Other intermediates and derivatives of riboflavin synthesis displayed weak or no MAIT cell activation. Collectively, these studies revealed that in addition to peptide and lipid‐based Ags, small molecule natural product metabolites are also ligands that can activate T cells expressing αβ T‐cell receptors, and here we recount this discovery.
Nature Communications | 2018
Huimeng Wang; Criselle D’Souza; Xin Yi Lim; Lyudmila Kostenko; Troi Pediongco; Sidonia B. G. Eckle; Bronwyn Meehan; Mai Shi; Nancy Wang; Shihan Li; Ligong Liu; Jeffrey Y. W. Mak; David P. Fairlie; Yoichiro Iwakura; Jennifer M. Gunnersen; Andrew Stent; Dale I. Godfrey; Jamie Rossjohn; Glen P. Westall; Lars Kjer-Nielsen; Richard A. Strugnell; James McCluskey; Alexandra J. Corbett; Timothy S. C. Hinks; Zhenjun Chen
Mucosal associated invariant T (MAIT) cells recognise conserved microbial metabolites from riboflavin synthesis. Striking evolutionary conservation and pulmonary abundance implicate them in antibacterial host defence, yet their functions in protection against clinically important pathogens are unknown. Here we show that mouse Legionellalongbeachae infection induces MR1-dependent MAIT cell activation and rapid pulmonary accumulation of MAIT cells associated with immune protection detectable in immunocompetent host animals. MAIT cell protection is more evident in mice lacking CD4+ cells, and adoptive transfer of MAIT cells rescues immunodeficient Rag2−/−γC−/− mice from lethal Legionella infection. Protection is dependent on MR1, IFN-γ and GM-CSF, but not IL-17A, TNF or perforin, and enhanced protection is detected earlier after infection of mice antigen-primed to boost MAIT cell numbers before infection. Our findings define a function for MAIT cells in protection against a major human pathogen and indicate a potential role for vaccination to enhance MAIT cell immunity.Mucosal associated invariant T (MAIT) cells have been implicated in antibacterial responses. Here the authors show MAIT cells confer IFN-γ-mediated protection from lethal infection in a mouse model of Legionella infection, which can be enhanced by synthetic MR1 ligands.