15 research outputs found

    production of chitooligosaccharides from Rhizopus oligosporus NRRL2710 cells by chitosanase digestion

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    The intact cells of Rhizopus oligosporus NRRL2710, whose cell walls are abundant source of N-acetylglu- cosamine (GlcNAc) and glucosamine (GlcN), were digested with three chitinolytic enzymes, a GH-46 chitosanase from Streptomyces sp. N174 (CsnN174), a chitinase from Pyrococcus furiosus, and a chitinase from Trichoderma viride, respectively. Solubilization of the intact cells by CsnN174 was found to be the most efļ¬cient from solid state CP/MAS 13C NMR spectroscopy. Chitosanase products from Rhizopus cells were puriļ¬ed by cation exchange chromatography on CM-Sephadex C-25 and gel-ļ¬ltration on Celluloļ¬ne Gcl-25 m. NMR and MALDI-TOF-MS analyses of the puriļ¬ed products revealed that GlcNā€“GlcNAc, (GlcN)2ā€“GlcNAc, and (GlcN)2 were produced by the enzymatic digestion of the intact cells. The chitosan- ase digestion of Rhizopus cells was found to be an excellent system for the conversion of fungal biomass without any environmental impact

    Fungal effector Ecp6 outcompetes host immune receptor for chitin binding through intrachain LysM dimerization

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    While host immune receptors detect pathogen-associated molecular patterns to activate immunity, pathogens attempt to deregulate host immunity through secreted effectors. Fungi employ LysM effectors to prevent recognition of cell wall-derived chitin by host immune receptors, although the mechanism to compete for chitin binding remained unclear. Structural analysis of the LysM effector Ecp6 of the fungal tomato pathogen Cladosporium fulvum reveals a novel mechanism for chitin binding, mediated by intrachain LysM dimerization, leading to a chitin-binding groove that is deeply buried in the effector protein. This composite binding site involves two of the three LysMs of Ecp6 and mediates chitin binding with ultra-high (pM) affinity. Intriguingly, the remaining singular LysM domain of Ecp6 binds chitin with low micromolar affinity but can nevertheless still perturb chitin-triggered immunity. Conceivably, the perturbation by this LysM domain is not established through chitin sequestration but possibly through interference with the host immune receptor complex

    Two secured FACT recruitment mechanisms are essential for heterochromatin maintenance

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    FACT (facilitate chromatin transcription) is involved in heterochromatic silencing, but its mechanisms and function remain unclear. We reveal that the Spt16 recruitment mechanism operates in two distinct ways in heterochromatin. First, Pob3 mediates Spt16 recruitment onto the heterochromatin through its Spt16 dimerization and tandem PH domains. Without Pob3, Spt16 recruitment is partially reduced, exhibiting a silencing defect and impaired H2A/H2B organization. Second, heterochromatin protein 1 (HP1)/Swi6 mediates Spt16 recruitment onto the heterochromatin by physical interaction of the Swi6 chromo-shadow domain (CSD) and Spt16 peptidase-like domains. Several CSD mutants are tested for Spt16 binding activity, and the charged loop connecting beta 1 and beta 2 is critical for Spt16 binding and heterochromatic silencing. Loss of these pathways causes a severe defect in H3K9 methylation and HP1/Swi6 localization in the pericentromeric region, exhibiting transcriptional silencing defects and disordered heterochromatin. Our findings suggest that FACT and HP1/Swi6 work intimately to regulate heterochromatin organization
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