Person: Cummings, Richard
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Publication Cellular O-Glycome Reporter/Amplification to Explore O-Glycans of Living Cells
(2015) Kudelka, Matthew R.; Antonopoulos, Aristotelis; Wang, Yingchun; Duong, Duc M.; Song, Xuezheng; Seyfried, Nicholas T.; Dell, Anne; Haslam, Stuart M.; Cummings, Richard; Ju, TongzhongProtein O-glycosylation plays key roles in many biological processes, but the repertoire of O-glycans synthesized by cells is difficult to determine. Here we describe a new approach termed Cellular O-Glycome Reporter/Amplification (CORA), a sensitive method to amplify and profile mucin-type O-glycans synthesized by living cells. Cells incubated with peracetylated benzyl-α-N-acetylgalactosamine (GalNAc-α-Benzyl) convert it to a large variety of modified O-glycan derivatives that are secreted from cells, allowing easy purification for analysis by HPLC and mass spectrometry (MS). CORA results in ~100–1000-fold increase in sensitivity over conventional O-glycan analyses and identifies a more complex repertoire of O-glycans in more than a dozen cell types from Homo sapiens and Mus musculus. Furthermore, CORA coupled with computational modeling allows predictions on the diversity of the human O-glycome and offers new opportunities to identify novel glycan biomarkers for human diseases.
Publication Protective Effect of Galectin-1 during Histoplasma capsulatum Infection Is Associated with Prostaglandin E2 and Nitric Oxide Modulation
(Hindawi Publishing Corporation, 2016) Rodrigues, Lílian Cataldi; Secatto, Adriana; Sorgi, Carlos A.; Dejani, Naiara N.; Medeiros, Alexandra I.; Prado, Morgana Kelly Borges; Ramos, Simone Gusmão; Cummings, Richard; Stowell, Sean R.; Faccioli, Lúcia Helena; Dias-Baruffi, MarceloHistoplasma capsulatum is a dimorphic fungus that develops a yeast-like morphology in host's tissue, responsible for the pulmonary disease histoplasmosis. The recent increase in the incidence of histoplasmosis in immunocompromised patients highlights the need of understanding immunological controls of fungal infections. Here, we describe our discovery of the role of endogenous galectin-1 (Gal-1) in the immune pathophysiology of experimental histoplasmosis. All infected wild-type (WT) mice survived while only 1/3 of Lgals1−/− mice genetically deficient in Gal-1 survived 30 days after infection. Although infected Lgals1−/− mice had increased proinflammatory cytokines, nitric oxide (NO), and elevations in neutrophil pulmonary infiltration, they presented higher fungal load in lungs and spleen. Infected lung and infected macrophages from Lgals1−/− mice exhibited elevated levels of prostaglandin E2 (PGE2, a prostanoid regulator of macrophage activation) and prostaglandin E synthase 2 (Ptgs2) mRNA. Gal-1 did not bind to cell surface of yeast phase of H. capsulatum, in vitro, suggesting that Gal-1 contributed to phagocytes response to infection rather than directly killing the yeast. The data provides the first demonstration of endogenous Gal-1 in the protective immune response against H. capsulatum associated with NO and PGE2 as an important lipid mediator in the pathogenesis of histoplasmosis.
Publication GlyTouCan 1.0 – The international glycan structure repository
(Oxford University Press, 2016) Aoki-Kinoshita, Kiyoko; Agravat, Sanjay; Aoki, Nobuyuki P.; Arpinar, Sena; Cummings, Richard; Fujita, Akihiro; Fujita, Noriaki; Hart, Gerald M.; Haslam, Stuart M.; Kawasaki, Toshisuke; Matsubara, Masaaki; Moreman, Kelley W.; Okuda, Shujiro; Pierce, Michael; Ranzinger, René; Shikanai, Toshihide; Shinmachi, Daisuke; Solovieva, Elena; Suzuki, Yoshinori; Tsuchiya, Shinichiro; Yamada, Issaku; York, William S.; Zaia, Joseph; Narimatsu, HisashiGlycans are known as the third major class of biopolymers, next to DNA and proteins. They cover the surfaces of many cells, serving as the ‘face’ of cells, whereby other biomolecules and viruses interact. The structure of glycans, however, differs greatly from DNA and proteins in that they are branched, as opposed to linear sequences of amino acids or nucleotides. Therefore, the storage of glycan information in databases, let alone their curation, has been a difficult problem. This has caused many duplicated efforts when integration is attempted between different databases, making an international repository for glycan structures, where unique accession numbers are assigned to every identified glycan structure, necessary. As such, an international team of developers and glycobiologists have collaborated to develop this repository, called GlyTouCan and is available at http://glytoucan.org/, to provide a centralized resource for depositing glycan structures, compositions and topologies, and to retrieve accession numbers for each of these registered entries. This will thus enable researchers to reference glycan structures simply by accession number, as opposed to by chemical structure, which has been a burden to integrate glycomics databases in the past.
Publication IVIG regulates the survival of human but not mouse neutrophils
(Nature Publishing Group UK, 2017) Schneider, Christoph; Wicki, Simone; Graeter, Stefanie; Timcheva, Tankica M.; Keller, Christian W.; Quast, Isaak; Leontyev, Danila; Djoumerska-Alexieva, Iglika K.; Käsermann, Fabian; Jakob, Stephan M.; Dimitrova, Petya A.; Branch, Donald R.; Cummings, Richard; Lünemann, Jan D.; Kaufmann, Thomas; Simon, Hans-Uwe; von Gunten, StephanIntravenous immunoglobulin (IVIG) are purified IgG preparations made from the pooled plasma from thousands of healthy donors and are being tested in preclinical mouse models. Inherent challenges, however, are the pluripotency of IVIG and its xenogeneicity in animals. IVIG can alter the viability of human neutrophils via agonistic antibodies to Fas and Siglec-9. In this study, we compared the effects of IVIG on human and mouse neutrophils using different death assays. Different commercial IVIG preparations similarly induced cytokine-dependent death in human neutrophils, whereas they had no effects on the survival of either peripheral blood or bone marrow neutrophils from C57BL/6 or BALB/c mice. F(ab’)2 but not Fc fragments of IVIG induced death of human neutrophils, whereas neither of these IVIG fragments, nor agonistic monoclonal antibodies to human Fas or Siglec-9 affected the viability of mouse neutrophils. Pooled mouse IgG, which exhibited a different immunoprofile compared to IVIG, also had no effect on mouse cells. Together, these observations demonstrate that effects of IVIG on neutrophil survival are not adequately reflected in current mouse models, despite the key role of these cells in human inflammatory and autoimmune diseases.
Publication The Interplay between the Host Receptor and Influenza Virus Hemagglutinin and Neuraminidase
(MDPI, 2017) Byrd-Leotis, Lauren; Cummings, Richard; Steinhauer, David A.The hemagglutinin (HA) and neuraminidase (NA) glycoproteins of influenza A virus are responsible for the surface interactions of the virion with the host. Entry of the virus is mediated by functions of the HA: binding to cellular receptors and facilitating fusion of the virion membrane with the endosomal membrane. The HA structure contains receptor binding sites in the globular membrane distal head domains of the trimer, and the fusion machinery resides in the stem region. These sites have specific characteristics associated with subtype and host, and the differences often define species barriers. For example, avian viruses preferentially recognize α2,3-Sialic acid terminating glycans as receptors and mammalian viruses recognize α2,6-Sialic acid. The neuraminidase, or the receptor-destroying protein, cleaves the sialic acid from cellular membrane constituents and viral glycoproteins allowing for egress of nascent virions. A functional balance of activity has been demonstrated between the two glycoproteins, resulting in an optimum level of HA affinity and NA enzymatic cleavage to allow for productive infection. As more is understood about both HA and NA, the relevance for functional balance between HA and NA continues to expand, with potential implications for interspecies transmission, host adaptation, and pathogenicity.
Publication Multiplex glycan bead array for high throughput and high content analyses of glycan binding proteins
(Nature Publishing Group UK, 2018) Purohit, Sharad; Li, Tiehai; Guan, Wanyi; Song, Xuezheng; Song, Jing; Tian, Yanna; Li, Lei; Sharma, Ashok; Dun, Boying; Mysona, David; Ghamande, Sharad; Rungruang, Bunja; Cummings, Richard; Wang, Peng George; She, Jin-XiongGlycan-binding proteins (GBPs) play critical roles in diverse cellular functions such as cell adhesion, signal transduction and immune response. Studies of the interaction between GBPs and glycans have been hampered by the availability of high throughput and high-content technologies. Here we report multiplex glycan bead array (MGBA) that allows simultaneous analyses of 384 samples and up to 500 glycans in a single assay. The specificity, sensitivity and reproducibility of MGBA are evaluated using 39 plant lectins, 13 recombinant anti-glycan antibodies, and mammalian GBPs. We demonstrate the utility of this platform by the analyses of natural anti-glycan IgM and IgG antibodies in 961 human serum samples and the discovery of anti-glycan antibody biomarkers for ovarian cancer. Our data indicate that the MGBA platform is particularly suited for large population-based studies that require the analyses of large numbers of samples and glycans.
Publication A library of chemically defined human N-glycans synthesized from microbial oligosaccharide precursors
(Nature Publishing Group UK, 2017) Hamilton, Brian S.; Wilson, Joshua D.; Shumakovich, Marina A.; Fisher, Adam C.; Brooks, James C.; Pontes, Alyssa; Naran, Radnaa; Heiss, Christian; Gao, Chao; Kardish, Robert; Heimburg-Molinaro, Jamie; Azadi, Parastoo; Cummings, Richard; Merritt, Judith H.; DeLisa, Matthew P.Synthesis of homogenous glycans in quantitative yields represents a major bottleneck to the production of molecular tools for glycoscience, such as glycan microarrays, affinity resins, and reference standards. Here, we describe a combined biological/enzymatic synthesis that is capable of efficiently converting microbially-derived precursor oligosaccharides into structurally uniform human-type N-glycans. Unlike starting material obtained by chemical synthesis or direct isolation from natural sources, which can be time consuming and costly to generate, our approach involves precursors derived from renewable sources including wild-type Saccharomyces cerevisiae glycoproteins and lipid-linked oligosaccharides from glycoengineered Escherichia coli. Following deglycosylation of these biosynthetic precursors, the resulting microbial oligosaccharides are subjected to a greatly simplified purification scheme followed by structural remodeling using commercially available and recombinantly produced glycosyltransferases including key N-acetylglucosaminyltransferases (e.g., GnTI, GnTII, and GnTIV) involved in early remodeling of glycans in the mammalian glycosylation pathway. Using this approach, preparative quantities of hybrid and complex-type N-glycans including asymmetric multi-antennary structures were generated and subsequently used to develop a glycan microarray for high-throughput, fluorescence-based screening of glycan-binding proteins. Taken together, these results confirm our combined synthesis strategy as a new, user-friendly route for supplying chemically defined human glycans simply by combining biosynthetically-derived precursors with enzymatic remodeling.
Publication The Mannose Receptor in Regulation of Helminth-Mediated Host Immunity
(Frontiers Media S.A., 2017) van Die, Irma; Cummings, RichardInfection with parasitic helminths affects humanity and animal welfare. Parasitic helminths have the capacity to modulate host immune responses to promote their survival in infected hosts, often for a long time leading to chronic infections. In contrast to many infectious microbes, however, the helminths are able to induce immune responses that show positive bystander effects such as the protection to several immune disorders, including multiple sclerosis, inflammatory bowel disease, and allergies. They generally promote the generation of a tolerogenic immune microenvironment including the induction of type 2 (Th2) responses and a sub-population of alternatively activated macrophages. It is proposed that this anti-inflammatory response enables helminths to survive in their hosts and protects the host from excessive pathology arising from infection with these large pathogens. In any case, there is an urgent need to enhance understanding of how helminths beneficially modulate inflammatory reactions, to identify the molecules involved and to promote approaches to exploit this knowledge for future therapeutic interventions. Evidence is increasing that C-type lectins play an important role in driving helminth-mediated immune responses. C-type lectins belong to a large family of calcium-dependent receptors with broad glycan specificity. They are abundantly present on immune cells, such as dendritic cells and macrophages, which are essential in shaping host immune responses. Here, we will focus on the role of the C-type lectin macrophage mannose receptor (MR) in helminth–host interactions, which is a critically understudied area in the field of helminth immunobiology. We give an overview of the structural aspects of the MR including its glycan specificity, and the functional implications of the MR in helminth–host interactions focusing on a few selected helminth species.
Publication IFN-γ-independent immune markers of Mycobacterium tuberculosis exposure
(Springer Science and Business Media LLC, 2019-05-20) Lu, Lenette; Smith, Malisa; Yu, Krystle K. Q.; Luedemann, Corinne; Suscovich, Todd; Grace, Patricia; Cain, Adam; Yu, Wen-Han; McKitrick, Tanya; Lauffenburger, Douglas; Cummings, Richard; Mayanja-Kizza, Harriet; Hawn, Thomas R.; Boom, W. Henry; Stein, Catherine M.; Fortune, Sarah; Seshadri, Chetan; Alter, GalitExposure to Mycobacterium tuberculosis (Mtb) results in heterogeneous clinical outcomes including primary progressive tuberculosis and latent Mtb infection (LTBI). Mtb infection is identified using the tuberculin skin test and interferon-γ (IFN-γ) release assay IGRA, and a positive result may prompt chemoprophylaxis to prevent progression to tuberculosis. In the present study, we report on a cohort of Ugandan individuals who were household contacts of patients with TB. These individuals were highly exposed to Mtb but tested negative by IFN-γ release assay and tuberculin skin test, ‘resisting’ development of classic LTBI. We show that ‘resisters’ possess IgM, class-switched IgG antibody responses and non-IFN-γ T cell responses to the Mtb-specific proteins ESAT6 and CFP10, immunologic evidence of exposure to Mtb. Compared to subjects with classic LTBI, ‘resisters’ display enhanced antibody avidity and distinct Mtb-specific IgG Fc profiles. These data reveal a distinctive adaptive immune profile among Mtb-exposed subjects, supporting an expanded definition of the host response to Mtb exposure, with implications for public health and the design of clinical trials.
Publication The Schizophrenia-Associated Variant in SLC39A8 Alters Protein Glycosylation in the Mouse Brain
(Springer Science and Business Media LLC, 2022-03-08) Mealer, Robert; Williams, Sarah E.; Noel, Maxence; Yang, Bo; D'Souza, Alexandria; Nakata, Toru; Graham, Daniel B.; Creasey, Elizabeth A.; Cetinbas, Murat; Sadreyev, Ruslan; Scolnick, Edward; Woo, Christina; Smoller, Jordan; Xavier, Ramnik; Cummings, RichardA missense mutation (A391T) in the manganese transporter SLC39A8 is strongly associated with schizophrenia in genomic studies, though the molecular connection to the brain remains hypothetical. Human carriers of A391T have reduced serum manganese, altered plasma glycosylation, and brain MRI changes consistent with altered metal transport. Here, using a knock-in mouse model homozygous for A391T, we show that the schizophrenia-associated variant changes protein glycosylation in the brain. Glycosylation of Asn residues in glycoproteins (N-glycosylation) was most significantly impaired, with effects differing between regions. RNAseq analysis showed negligible regional variation, consistent with changes in the activity of glycosylation enzymes rather than gene expression. Finally, nearly one third of detected glycoproteins were differentially N-glycosylated in the cortex, including members of several pathways previously implicated in schizophrenia such as cell adhesion molecules and neurotransmitter receptors, and expressed across all cell types. These findings provide a mechanistic link between a risk allele and potentially reversible biochemical changes in the brain, furthering our molecular understanding of the pathophysiology of schizophrenia and a novel opportunity for therapeutic development.