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1.
Anal Chim Acta ; 1250: 340972, 2023 Apr 15.
Artículo en Inglés | MEDLINE | ID: mdl-36898812

RESUMEN

In the workflow of global N-glycosylation analysis, endoglycosidase-mediated removal of glycans from glycoproteins is an essential and rate-limiting step. Peptide-N-glycosidase F (PNGase F) is the most appropriate and efficient endoglycosidase for the removal of N-glycans from glycoproteins prior to analysis. Due to the high demand for PNGase F in both basic and industrial research, convenient and efficient methods are urgently needed to generate PNGase F, preferably in the immobilized form to solid phases. However, there is no integrated approach to implement both efficient expression, and site-specific immobilization of PNGase F. Herein, efficient production of PNGase F with a glutamine tag in Escherichia coli and site-specific covalent immobilization of PNGase F with this special tag via microbial transglutaminase (MTG) is described. PNGase F was fused with a glutamine tag to facilitate the co-expression of proteins in the supernatant. The glutamine tag was covalently and site-specifically transformed to primary amine-containing magnetic particles, mediated by MTG, to immobilize PNGase F. Immobilized PNGase F could deglycosylate substrates with identical enzymatic performance to that of the soluble counterpart, and exhibit good reusability and thermal stability. Moreover, the immobilized PNGase F could also be applied to clinical samples, including serum and saliva.


Asunto(s)
Glutamina , Transglutaminasas , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Manosil-Glicoproteína Endo-beta-N-Acetilglucosaminidasa/química , Manosil-Glicoproteína Endo-beta-N-Acetilglucosaminidasa/metabolismo , Glicoproteínas/química , Glicósido Hidrolasas , Polisacáridos/análisis , Fenómenos Magnéticos
2.
J Biol Chem ; 298(10): 102439, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-36049519

RESUMEN

Akkermansia muciniphila is key member of the human gut microbiota that impacts many features of host health. A major characteristic of this bacterium is its interaction with host mucin, which is abundant in the gut environment, and its ability to metabolize mucin as a nutrient source. The machinery deployed by A. muciniphila to enable this interaction appears to be extensive and sophisticated, yet it is incompletely defined. The uncharacterized protein AMUC_1438 is encoded by a gene that was previously shown to be upregulated when the bacterium is grown on mucin. This uncharacterized protein has features suggestive of carbohydrate-recognition and peptidase activity, which led us to hypothesize that it has a role in mucin depolymerization. Here, we provide structural and functional support for the assignment of AMUC_1438 as a unique O-glycopeptidase with mucin-degrading capacity. O-glycopeptidase enzymes recognize glycans but hydrolyze the peptide backbone and are common in host-adapted microbes that colonize or invade mucus layers. Structural, kinetic, and mutagenic analyses point to a metzincin metalloprotease catalytic motif but with an active site that specifically recognizes a GalNAc residue α-linked to serine or threonine (i.e., the Tn-antigen). The enzyme catalyzes hydrolysis of the bond immediately N-terminal to the glycosylated residue. Additional modeling analyses suggest the presence of a carbohydrate-binding module that may assist in substrate recognition. We anticipate that these results will be fundamental to a wider understanding of the O-glycopeptidase class of enzymes and how they may contribute to host adaptation.


Asunto(s)
Akkermansia , Proteínas Bacterianas , Mucinas , Humanos , Mucinas/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Polisacáridos/metabolismo , Akkermansia/enzimología , Proteínas Bacterianas/química , Polimerizacion
3.
Rapid Commun Mass Spectrom ; 36(21): e9376, 2022 Nov 15.
Artículo en Inglés | MEDLINE | ID: mdl-35945033

RESUMEN

The analysis of glycoproteins and the comparison of protein N-glycosylation from different eukaryotic origins require unbiased and robust analytical workflows. The structural and functional analysis of vertebrate protein N-glycosylation currently depends extensively on bacterial peptide-N4-(N-acetyl-ß-glucosaminyl) asparagine amidases (PNGases), which are indispensable enzymatic tools in releasing asparagine-linked oligosaccharides (N-glycans) from glycoproteins. So far, only limited PNGase candidates are available for N-glycans analysis, and particularly the analysis of plant and invertebrate N-glycans is hampered by the lack of suitable PNGases. Furthermore, liquid chromatography-mass spectrometry (LC-MS) workflows, such as hydrogen deuterium exchange mass spectrometry (HDX-MS), require a highly efficient enzymatic release of N-glycans at low pH values to facilitate the comprehensive structural analysis of glycoproteins. Herein, we describe a previously unstudied superacidic bacterial N-glycanase (PNGase H+ ) originating from the soil bacterium Rudaea cellulosilytica (Rc), which has significantly improved enzymatic properties compared to previously described PNGase H+ variants. Active and soluble recombinant PNGase Rc was expressed at a higher protein level (3.8-fold) and with higher specific activity (~56% increase) compared to the currently used PNGase H+ variant from Dyella japonicum (Dj). Recombinant PNGase Rc was able to deglycosylate the glycoproteins horseradish peroxidase and bovine lactoferrin significantly faster than PNGase Dj (10 min vs. 6 h). The versatility of PNGase Rc was demonstrated by releasing N-glycans from a diverse array of samples such as peach fruit, king trumpet mushroom, mouse serum, and the soil nematode Caenorhabditis elegans. The presence of only two disulfide bonds shown in the AlphaFold protein model (so far all other superacidic PNGases possess more disulfide bonds) could be corroborated by intact mass- and peptide mapping analysis and provides a possible explanation for the improved recombinant expression yield of PNGase Rc.


Asunto(s)
Asparagina , Espectrometría de Masas de Intercambio de Hidrógeno-Deuterio , Amidohidrolasas/metabolismo , Animales , Medición de Intercambio de Deuterio , Disulfuros , Eucariontes/metabolismo , Gammaproteobacteria , Glicoproteínas/química , Peroxidasa de Rábano Silvestre/metabolismo , Lactoferrina/metabolismo , Ratones , Oligosacáridos , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Polisacáridos/química , Suelo
4.
Nutrients ; 14(9)2022 Apr 19.
Artículo en Inglés | MEDLINE | ID: mdl-35565658

RESUMEN

The cytosolic PNGase (peptide:N-glycanase), also known as peptide-N4-(N-acetyl-ß-glucosaminyl)-asparagine amidase, is a well-conserved deglycosylation enzyme (EC 3.5.1.52) which catalyzes the non-lysosomal hydrolysis of an N(4)-(acetyl-ß-d-glucosaminyl) asparagine residue (Asn, N) into a N-acetyl-ß-d-glucosaminyl-amine and a peptide containing an aspartate residue (Asp, D). This enzyme (NGLY1) plays an essential role in the clearance of misfolded or unassembled glycoproteins through a process named ER-associated degradation (ERAD). Accumulating evidence also points out that NGLY1 deficiency can cause an autosomal recessive (AR) human genetic disorder associated with abnormal development and congenital disorder of deglycosylation. In addition, the loss of NGLY1 can affect multiple cellular pathways, including but not limited to NFE2L1 pathway, Creb1/Atf1-AQP pathway, BMP pathway, AMPK pathway, and SLC12A2 ion transporter, which might be the underlying reasons for a constellation of clinical phenotypes of NGLY1 deficiency. The current comprehensive review uncovers the NGLY1'ssdetailed structure and its important roles for participation in ERAD, involvement in CDDG and potential treatment for NGLY1 deficiency.


Asunto(s)
Asparagina , Trastornos Congénitos de Glicosilación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Trastornos Congénitos de Glicosilación/genética , Humanos , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/deficiencia , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética , Péptidos/metabolismo , Miembro 2 de la Familia de Transportadores de Soluto 12
5.
Mol Biotechnol ; 64(8): 914-918, 2022 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-35244857

RESUMEN

High resolution analysis of N-glycans can be performed after their endoglycosidase mediated removal from proteins. N-glycosidase F peptide (PNGase F) is one the most frequently used enzyme for this purpose. Because of the significant demand for PNGase F both in basic and applied research, rapid and inexpensive methods are of great demand for its large-scale production, preferably in immobilizable form to solid supports or surfaces. In this paper, we report on the high-yield production of N-terminal 6His-PNGase F enzyme in a bacterial Escherichia coli SHuffle expression system. The activity profile of the generated enzyme was compared to commercially available PNGase F enzymes, featuring higher activity for the former. The method described here is thus suitable for the cost-effective production of PNGase F in an active, immobilizable form.


Asunto(s)
Escherichia coli , Polisacáridos , Escherichia coli/genética , Escherichia coli/metabolismo , Glicosilación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Polisacáridos/química , Proteínas Recombinantes/genética , Proteínas Recombinantes/metabolismo
6.
FEBS J ; 289(11): 3115-3131, 2022 06.
Artículo en Inglés | MEDLINE | ID: mdl-34995415

RESUMEN

The polycaspase inhibitor Z-VAD-fmk acts as an inhibitor of peptide: N-glycanase (NGLY1), an endoglycosidase which cleaves N-linked glycans from glycoproteins exported from the endoplasmic reticulum (ER) during ER-associated degradation (ERAD). Both pharmacological N-glycanase inhibition by Z-VAD-fmk and siRNA-mediated knockdown (KD) of NGLY1 induce GFP-LC3-positive puncta in HEK 293 cells. The activation of ER stress markers or induction of reactive oxygen species (ROS) is not observed under either condition. Moreover, Ca2+ handling is unaffected when observing release from intracellular stores. Under conditions of pharmacological NGLY1 inhibition or NGLY1 KD, upregulation of autophagosome formation without impairment of autophagic flux is observed. Enrichment of autophagosomes by immunoprecipitation (IP) and mass spectrometry-based proteomic analysis reveals comparable autophagosomal protein content. Gene ontology analysis of proteins enriched in autophagosome IPs shows overrepresentation of factors involved in protein translation, localization and targeting, RNA degradation and protein complex disassembly. Upregulation of autophagy represents a cellular adaptation to NGLY1 inhibition or KD, and ATG13-deficient mouse embryonic fibroblasts (MEFs) show reduced viability under these conditions. In contrast, treatment with pan-caspase inhibitor, Q-VD-OPh, does not induce cellular autophagy. Therefore, experiments with Z-VAD-fmk are complicated by the effects of NGLY1 inhibition, including induction of autophagy, and Q-VD-OPh represents an alternative caspase inhibitor free from this limitation. ENZYMES: Peptide:N-glycanase1, Peptide-N(4)-(N-acetyl-beta-glucosaminyl)asparagine amidase [EC:3.5.1.52].


Asunto(s)
Fibroblastos , Proteómica , Animales , Autofagia , Caspasas , Fibroblastos/metabolismo , Células HEK293 , Humanos , Ratones , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Péptidos/metabolismo
7.
J Biochem ; 171(2): 141-143, 2022 Feb 21.
Artículo en Inglés | MEDLINE | ID: mdl-34969094

RESUMEN

The cytosolic peptide:N-glycanase (PNGase; NGLY1 in humans) is a deglycosylating enzyme that is widely conserved in eukaryotes. This enzyme is involved in the degradation of misfolded N-glycoproteins that are destined for proteasomal degradation in the cytosol, a process that is called endoplasmic reticulum-associated degradation. Although the physiological significance of NGLY1 remained unknown until recently, the discovery of NGLY1 deficiency, a human genetic disorder bearing mutations in the NGLY1 gene, has led to explosive research progress regarding the functional characterization of this enzyme. For example, it is now known that NGLY1 can also act as an 'editing enzyme' to convert N-glycosylated asparagine residues to aspartate residues, thus introducing negative charges into a core peptide and modulating the function of the target molecule. Diverse biological processes have also been found to be affected by compromised NGLY1 activity. In this special issue, recent research progress on the functional characterization of NGLY1 and its orthologues in worm/fly/rodents, assay methods/biomarkers useful for the development of therapeutics and the comprehensive transcriptome/proteome of NGLY1-KO cells as well as patient-derived cells are discussed.


Asunto(s)
Trastornos Congénitos de Glicosilación , Degradación Asociada con el Retículo Endoplásmico , Biología , Glicosilación , Humanos , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo
8.
Glycobiology ; 32(2): 110-122, 2022 03 19.
Artículo en Inglés | MEDLINE | ID: mdl-34939090

RESUMEN

Cytosolic peptide: N-glycanase (PNGase; NGLY1), an enzyme responsible for de-glycosylation of N-glycans on glycoproteins, is known to play pivotal roles in a variety of biological processes. In 2012, NGLY1 deficiency, a rare genetic disorder, was reported and since then, more than 100 patients have now been identified worldwide. Patients with this disease exhibit several common symptoms that are caused by the dysfunction of NGLY1. However, correlation between the severity of patient symptoms and the extent of the reduction in NGLY1 activity in these patients remains to be clarified, mainly due to the absence of a facile quantitative assay system for this enzyme, especially in a crude extract as an enzyme source. In this study, a quantitative, non-radioisotope (RI)-based assay method for measuring recombinant NGLY1 activity was established using a BODIPY-labeled asialoglycopeptide (BODIPY-ASGP) derived from hen eggs. With this assay, the activities of 27 recombinant NGLY1 mutants that are associated with the deficiency were examined. It was found that the activities of three (R469X, R458fs and H494fs) out of the 27 recombinant mutant proteins were 30-70% of the activities of wild-type NGLY1. We further developed a method for measuring endogenous NGLY1 activity in crude extracts derived from cultured cells, patients' fibroblasts, iPS cells or peripheral blood mononuclear cells (PBMCs), using a glycosylated cyclopeptide (GCP) that exhibited resistance to the endogenous proteases in the extract. Our methods will not only provide new insights into the molecular mechanism responsible for this disease but also promises to be applicable for its diagnosis.


Asunto(s)
Leucocitos Mononucleares , Péptidos Cíclicos , Animales , Pollos , Mezclas Complejas , Femenino , Glicosilación , Humanos , Leucocitos Mononucleares/metabolismo , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptidos/metabolismo , Péptidos Cíclicos/metabolismo
9.
J Biomol Tech ; 33(2)2022 07 15.
Artículo en Inglés | MEDLINE | ID: mdl-36756538

RESUMEN

A current method to locate sites of N-linked glycosylation on a protein involves the identification of deamidated sites after releasing the glycans with peptide-N-glycosidase F (PNGase F). PNGase F deglycosylation converts glycosylated Asn residues into Asp. The 1-Da mass tag created by this process is observable by liquid chromatography-tandem mass spectrometry analysis. A potential interference to this method of N-glycosylation site mapping is the chemical deamidation of Asn residues, which occurs spontaneously and can result in false positives. Deamidation is a pH-dependent process that results in the formation of iso-Asp (i-Asp) and native Asp (n-Asp) by a succinimide intermediate, whereas PNGase F deglycosylation results in the conversion of the glycosylation Asn residue into n-Asp. N-linked glycosylation sites can thus be identified by the presence of a single chromatographic peak corresponding to an n-Asp residue within the consensus sequence Asn-X-Ser/Thr, whereas sites of deamidation led to 2 chromatographic peaks resulting from the presence of n-Asp and i-Asp. The intent of this study is to alert investigators in the field to the potential and unexpected errors resulting from this phenomenon and to suggest a strategy to overcome this pitfall and limit the number of false-positive identifications.


Asunto(s)
Asparagina , Glicosilación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Asparagina/química , Asparagina/metabolismo , Espectrometría de Masas , Cromatografía Liquida
10.
Anal Biochem ; 634: 114367, 2021 12 01.
Artículo en Inglés | MEDLINE | ID: mdl-34509445

RESUMEN

Plant acidic peptide: N-glycanase (aPNGase) release N-glycans from glycopeptides during the degradation process of glycoproteins in developing or growing plants. We have previously developed a new method to detect the aPNGase activity in crude extracts, which is prerequisite for the construction of aPNGase knockout or overexpression lines. However, this method has the disadvantage of requiring de-sialylation treatment and a lectin chromatography. In this study, therefore, we improved the simple and accurate method for detecting aPNGase activity using anion-exchange HPLC requiring neither the desialylation treatment nor the lectin affinity chromatography.


Asunto(s)
Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Extractos Vegetales/química , Arabidopsis/química , Arabidopsis/enzimología , Cromatografía de Afinidad/métodos , Cromatografía Líquida de Alta Presión/métodos , Glicopéptidos/metabolismo , Glicoproteínas/metabolismo , Glicosilación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Plantas/metabolismo , Polisacáridos/metabolismo
11.
Proc Natl Acad Sci U S A ; 118(10)2021 03 09.
Artículo en Inglés | MEDLINE | ID: mdl-33658366

RESUMEN

A challenge faced by peptidases is the recognition of highly diverse substrates. A feature of some peptidase families is the capacity to specifically use post-translationally added glycans present on their protein substrates as a recognition determinant. This is ultimately critical to enabling peptide bond hydrolysis. This class of enzyme is also frequently large and architecturally sophisticated. However, the molecular details underpinning glycan recognition by these O-glycopeptidases, the importance of these interactions, and the functional roles of their ancillary domains remain unclear. Here, using the Clostridium perfringens ZmpA, ZmpB, and ZmpC M60 peptidases as model proteins, we provide structural and functional insight into how these intricate proteins recognize glycans as part of catalytic and noncatalytic substrate recognition. Structural, kinetic, and mutagenic analyses support the key role of glycan recognition within the M60 domain catalytic site, though they point to ZmpA as an apparently inactive enzyme. Wider examination of the Zmp domain content reveals noncatalytic carbohydrate binding as a feature of these proteins. The complete three-dimensional structure of ZmpB provides rare insight into the overall molecular organization of a highly multimodular enzyme and reveals how the interplay of individual domain function may influence biological activity. O-glycopeptidases frequently occur in host-adapted microbes that inhabit or attack mucus layers. Therefore, we anticipate that these results will be fundamental to informing more detailed models of how the glycoproteins that are abundant in mucus are destroyed as part of pathogenic processes or liberated as energy sources during normal commensal lifestyles.


Asunto(s)
Proteínas Bacterianas/química , Clostridium perfringens/enzimología , Metaloendopeptidasas/química , Mucinas/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Proteínas Bacterianas/genética , Dominio Catalítico , Clostridium perfringens/genética , Hidrólisis , Metaloendopeptidasas/genética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética
12.
Eur J Med Genet ; 64(3): 104146, 2021 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-33497766

RESUMEN

NGLY1 deficiency is a recently described autosomal recessive disorder, involved in deglycosylation of proteins, and for that reason grouped as the congenital disorders of deglycosylation together with the lysosomal storage disorders. The typical phenotype is characterized by intellectual disability, liver malfunctioning, muscular hypotonia, involuntary movements, and decreased or absent tear production. Liver biopsy demonstrates vacuolar amorphous cytoplasmic storage material. NGLY1 deficiency is caused by bi-allelic variants in NGLY1 which catalyzes protein deglycosylation. We describe five patients from two families with NGLY1 deficiency due to homozygosity for two novel NGLY1 variants, and compare their findings to those of earlier reported patients. The typical features of the disorder are present in a limited way, and there is intra-familial variability. In addition in one of the families the muscle atrophy and posture abnormalities are marked. These can be explained either as variability of the phenotype or as sign of slowly progression of features as the present affected individuals are older than earlier reported patients.


Asunto(s)
Trastornos Congénitos de Glicosilación/genética , Mutación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética , Adolescente , Adulto , Trastornos Congénitos de Glicosilación/patología , Femenino , Humanos , Masculino , Linaje , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/deficiencia , Fenotipo , Dominios Proteicos
13.
Glycobiology ; 31(4): 385-390, 2021 05 03.
Artículo en Inglés | MEDLINE | ID: mdl-33030205

RESUMEN

The glycosylation of proteins is typically considered as a stabilizing modification, including resistance to proteolysis. A class of peptidases, referred to as glycopeptidases or O-glycopeptidases, circumvent the protective effect of glycans against proteolysis by accommodating the glycans in their active sites as specific features of substrate recognition. IMPa from Pseudomonas aeruginosa is such an O-glycopeptidase that cleaves the peptide bond immediately preceding a site of O-glycosylation, and through this glycoprotein-degrading function contributes to the host-pathogen interaction. IMPa, however, is a relatively large multidomain protein and how its additional domains may contribute to its function remains unknown. Here, through the determination of a crystal structure of IMPa in complex with an O-glycopeptide, we reveal that the N-terminal domain of IMPa, which is classified in Pfam as IMPa_N_2, is a proline recognition domain that also shows the properties of recognizing an O-linked glycan on the serine/threonine residue following the proline. The proline is bound in the center of a bowl formed by four functionally conserved aromatic amino acid side chains while the glycan wraps around one of the tyrosine residues in the bowl to make classic aromatic ring-carbohydrate CH-π interactions. This structural evidence provides unprecedented insight into how the ancillary domains in glycoprotein-specific peptidases can noncatalytically recognize specific glycosylated motifs that are common in mucin and mucin-like molecules.


Asunto(s)
Glicopéptidos , Prolina , Glicopéptidos/química , Glicoproteínas/metabolismo , Glicosilación , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Polisacáridos/química
14.
Bioorg Med Chem ; 28(22): 115783, 2020 11 15.
Artículo en Inglés | MEDLINE | ID: mdl-33007561

RESUMEN

Methods that allow for chemical site-selective dual protein modification are scarce. Here, we provide proof-of-concept for the orthogonality and compatibility of a method for regioselective lysine modification with strategies for protein modification at cysteine and genetically encoded ketone-tagged amino acids. This sequential, orthogonal approach was applied to albumin and a therapeutic antibody to create functional dual site-selectively labelled proteins.


Asunto(s)
Albúminas/metabolismo , Anticuerpos/metabolismo , Lisina/metabolismo , Albúminas/química , Anticuerpos/química , Lisina/química , Estructura Molecular , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo
15.
Nat Commun ; 11(1): 4844, 2020 09 24.
Artículo en Inglés | MEDLINE | ID: mdl-32973204

RESUMEN

Akkermansia muciniphila is a mucin-degrading bacterium commonly found in the human gut that promotes a beneficial effect on health, likely based on the regulation of mucus thickness and gut barrier integrity, but also on the modulation of the immune system. In this work, we focus in OgpA from A. muciniphila, an O-glycopeptidase that exclusively hydrolyzes the peptide bond N-terminal to serine or threonine residues substituted with an O-glycan. We determine the high-resolution X-ray crystal structures of the unliganded form of OgpA, the complex with the glycodrosocin O-glycopeptide substrate and its product, providing a comprehensive set of snapshots of the enzyme along the catalytic cycle. In combination with O-glycopeptide chemistry, enzyme kinetics, and computational methods we unveil the molecular mechanism of O-glycan recognition and specificity for OgpA. The data also contribute to understanding how A. muciniphila processes mucins in the gut, as well as analysis of post-translational O-glycosylation events in proteins.


Asunto(s)
Microbioma Gastrointestinal/fisiología , Mucinas/metabolismo , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/metabolismo , Verrucomicrobia/metabolismo , Akkermansia , Animales , Sitios de Unión , Cristalografía por Rayos X , Glicopéptidos/química , Humanos , Mamíferos , Simulación del Acoplamiento Molecular , Mucina-1/metabolismo , Polisacáridos/química , Conformación Proteica , Alineación de Secuencia , Verrucomicrobia/enzimología
16.
J Am Soc Mass Spectrom ; 31(11): 2305-2312, 2020 Nov 04.
Artículo en Inglés | MEDLINE | ID: mdl-32955262

RESUMEN

Hydrogen/deuterium exchange monitored by mass spectrometry (HDX-MS) has become an important method to study the structural dynamics of proteins. However, glycoproteins represent a challenge to the traditional HDX-MS workflow for determining the deuterium uptake of the protein segments that contain the glycan. We have recently demonstrated the utility of the glycosidase PNGase A to enable HDX-MS analysis of N-glycosylated protein regions. Here, we have investigated the use of the acidic glycosidase PNGase H+, which has a pH optimum at 2.6, to efficiently deglycosylate N-linked glycosylated peptides during HDX-MS analysis of glycoproteins. Our results show that PNGase H+ retains high deglycosylation activity at HDX quench conditions. When used in an HDX-MS workflow, PNGase H+ allowed the extraction of HDX data from all five glycosylated regions of the serpin α1-antichymotrypsin. We demonstrate that PNGase A and PNGase H+ are capable of similar deglycosylation performance during HDX-MS analysis of α1-antichymotrypsin and the IgG1 antibody trastuzumab (TZ). However, PNGase H+ provides broader specificity and greater tolerance to the disulfide-bond reducing agent TCEP, while PNGase A offers advantages in terms of commercial availability and purity. Overall, our findings demonstrate the unique features of PNGase H+ for improving conformational analysis of glycoproteins by HDX-MS, in particular, challenging glycoproteins containing both glycosylations and disulfide bonds.


Asunto(s)
Amidohidrolasas/química , Glicoproteínas/análisis , Espectrometría de Masas de Intercambio de Hidrógeno-Deuterio/métodos , Animales , Glicosilación , Humanos , Ratones , Modelos Moleculares , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptidos/análisis
17.
Anal Bioanal Chem ; 412(27): 7569-7579, 2020 Nov.
Artículo en Inglés | MEDLINE | ID: mdl-32844281

RESUMEN

The analysis of N-linked glycans using liquid chromatography and mass spectrometry (LC-MS) presents significant challenges, particularly owing to their hydrophilic nature. To address these difficulties, a variety of derivatization methods have been developed to facilitate improved ionization and detection sensitivity. One such method, the Individuality Normalization when Labeling with Isotopic Glycan Hydrazide Tags (INLIGHT)™ strategy for labeling glycans, has previously been utilized in the analysis of N- and O-linked glycans in biological samples. To assess the maximum sensitivity and separability of the INLIGHT™ preparation and analysis pipeline, several critical steps were investigated. First, recombinant and nonrecombinant sources of PNGase F were compared to assess variations in the released glycans. Second, modifications in the INLIGHT™ derivatization step were evaluated including temperature optimization, solvent composition changes, reaction condition length and tag concentration. Optimization of the modified method resulted in 20-100 times greater peak areas for the detected N-linked glycans in fetuin and horseradish peroxidase compared with the standard method. Furthermore, the identification of low-abundance glycans, such as (Fuc)1(Gal)2(GlcNAc)4(Man)3(NeuAc)1 and (Gal)3(GlcNAc)5(Man)3(NeuAc)3, was possible. Finally, the optimal LC setup for the INLIGHT™ derivatized N-linked glycan analyses was found to be a C18 reverse-phase (RP) column with mobile phases typical of RPLC.


Asunto(s)
Glicómica/métodos , Polisacáridos/análisis , Cromatografía de Fase Inversa/métodos , Femenino , Fetuínas/química , Glicosilación , Humanos , Masculino , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Espectrometría de Masas en Tándem/métodos
18.
BMC Med Genet ; 21(1): 135, 2020 06 23.
Artículo en Inglés | MEDLINE | ID: mdl-32576142

RESUMEN

BACKGROUND: NGLY1-related congenital disorder of deglycosylation (NGLY1-CDDG) is a multisystemic neurodevelopmental disorder in which affected individuals show developmental delay, epilepsy, intellectual disability, abnormal liver function, and poor growth. This study presents a 10-month-old female infant with elevated liver transaminases, developmental delay, epilepsy (subclinical seizures), and constipation who possesses two compound heterozygous mutations in NGLY1. CASE PRESENTATION: The proband was admitted to the Department of Gastroenterology, Children's Hospital of Soochow University, with elevated liver transaminases. She had a history of intrauterine growth retardation and exhibited elevated transaminases, global developmental delay, seizures and light constipation during early infancy. Whole-exome sequencing (WES) and Sanger sequencing revealed two compound heterozygous mutations in NGLY1 that had been inherited in an autosomal recessive manner from her parents. One was a termination mutation, c.1168C > T (p.R390*), and the other was a missense mutation, c.1156G > T (p.D386Y). NGLY1-CDDG is a rare disorder, with a few dozen cases. The two mutations of this proband has not been previously identified. CONCLUSIONS: This study investigated a Chinese proband with NGLY1-CDDG born from healthy parents who was studied using WES and Sanger sequencing to identify the causative mutations. We identified two novel compound heterozygous mutations in NGLY1, c.1168C > T (p.R390*)/c.1156G > T (p.D386Y), which are probably causative of disease.


Asunto(s)
Trastornos Congénitos de Glicosilación/enzimología , Trastornos Congénitos de Glicosilación/genética , Mutación/genética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/deficiencia , Secuencia de Aminoácidos , Secuencia de Bases , Encéfalo/diagnóstico por imagen , Encéfalo/patología , Femenino , Heterocigoto , Humanos , Lactante , Recién Nacido , Imagen por Resonancia Magnética , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/genética
19.
J Pharm Biomed Anal ; 179: 112995, 2020 Feb 05.
Artículo en Inglés | MEDLINE | ID: mdl-31767225

RESUMEN

An efficient deglycosylation process is a key requirement for the identification and characterization of glycosylation during the production and purification of therapeutic antibodies. PNGase F is widely used for the deglycosylation of N-linked glycans. The commonly-used in-solution deglycosylation method is relatively time-consuming and requires several hours up to overnight for complete removal of all N-linked glycans. In order to develop a simple and efficient method for the rapid release of N-linked glycans from glycoproteins, we fabricated trypsin- and PNGase F-impregnated polyacrylamide gels in a commercial 200 µL volume pipette tip. Our enzyme reactor is based on simple photochemical copolymerization of monomers using the following procedure: (1) a pipette tip was filled with a gel solution comprising acrylamide, N,N'-methylene-bis-acrylamide containing PNGase F or trypsin with 2,2-azobis(2-methyl-N-(2-hydroxyethyl) propionamide) as a photocatalytic initiator; and (2) in situ polymerization of gel solution approximately 30 mm from the tip was performed by irradiation with a 365 nm blue LED beam from a distance 10 mm. The fixed enzymes maintained their activities in the polyacrylamide gel and the reaction was completed by 40 iterations of suction and discharge with a pipette (hereafter referred to as manual pipetting times) for 8 min with each enzyme digestion. Capillary electrophoresis (CE) of released glycans labeled with 8-aminopyrene-1,3,6-trisulfonate (APTS) demonstrated quantitative recovery of glycans from selected glycoproteins.


Asunto(s)
Resinas Acrílicas/química , Glicoproteínas/química , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Polisacáridos/química , Electroforesis Capilar/métodos , Glicosilación , Técnicas de Síntesis en Fase Sólida , Tripsina/química
20.
J Biol Chem ; 294(51): 19546-19564, 2019 12 20.
Artículo en Inglés | MEDLINE | ID: mdl-31719148

RESUMEN

Hemocyanins are widely used as carriers, adjuvants, and nonspecific immunostimulants in cancer because they promote Th1 immunity in mammals. Hemocyanins also interact with glycan-recognizing innate immune receptors on antigen-presenting cells, such as the C-type lectin immune receptors mannose receptor (MR), macrophage galactose lectin (MGL), and the Toll-like receptors (TLRs), stimulating proinflammatory cytokine secretion. However, the role of N-linked oligosaccharides on the structural and immunological properties of hemocyanin is unclear. Mollusk hemocyanins, such as Concholepas concholepas (CCH), Fissurella latimarginata (FLH), and Megathura crenulata (KLH), are oligomeric glycoproteins with complex dodecameric quaternary structures and heterogeneous glycosylation patterns, primarily consisting of mannose-rich N-glycans. Here, we report that enzyme-catalyzed N-deglycosylation of CCH, FLH, and KLH disrupts their quaternary structure and impairs their immunogenic effects. Biochemical analyses revealed that the deglycosylation does not change hemocyanin secondary structure but alters their refolding mechanism and dodecameric structure. Immunochemical analyses indicated decreased binding of N-deglycosylated hemocyanins to the MR and MGL receptors and TLR4 and reduced endocytosis concomitant with an impaired production of tumor necrosis factor α, and interleukins 6 and 12 (IL-6 and IL-12p40, respectively) in macrophages. Evaluating the function of N-deglycosylated hemocyanins in the humoral immune response and their nonspecific antitumor effects in the B16F10 melanoma model, we found that compared with native hemocyanins N-deglycosylated hemocyanins elicited reduced antibody titers, as well as partially diminished antitumor effects and altered carrier activities. In conclusion, the glycan content of hemocyanins is, among other structural characteristics, critically required for their immunological activities and should be considered in biomedical applications.


Asunto(s)
Hemocianinas/química , Hemocianinas/inmunología , Inmunidad Humoral , Moluscos/química , Adyuvantes Inmunológicos , Animales , Línea Celular , Citocinas/inmunología , Galactosa/química , Glicosilación , Lectinas/química , Lectinas Tipo C/química , Macrófagos/inmunología , Receptor de Manosa , Lectinas de Unión a Manosa/química , Melanoma Experimental , Ratones , Ratones Endogámicos C57BL , Péptido-N4-(N-acetil-beta-glucosaminil) Asparagina Amidasa/química , Polisacáridos/química , Pliegue de Proteína , Estructura Cuaternaria de Proteína , Estructura Secundaria de Proteína , Receptores de Superficie Celular/química
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