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1 se caused by a deficiency of the enzyme beta-mannosidase.
2 lternate pathway comprising a distinct alpha-mannosidase.
3 ral and mechanistic dissection of endo-alpha-mannosidase.
4 de hydrolase (GH) family (GH164) of putative mannosidases.
5 in turn induces expression of secreted alpha-mannosidases.
6  base of the barrel similar to other Class 1 mannosidases.
7 )S5 conformational itinerary for GH125 alpha-mannosidases.
8 2 epitope is lost when gp120 is treated with mannosidases.
9 eviously unobserved structural-fold for beta-mannosidases.
10 tity) to class I animal and fungal alpha-1,2 mannosidases.
11  GH130 mannoside phosphorylases and beta-1,2-mannosidases.
12 ic GM inhibitors not affecting the lysosomal mannosidases.
13 ed glycans, including an abundance of acidic mannosidases.
14 r human lysosomal and Drosophila Golgi alpha-mannosidases.
15 tions processed for in situ hybridization of mannosidase 1, alpha (CA1), bcl-2-related ovarian killer
16 rans-Golgi, respectively, using domains from mannosidase-1 and galactosyltransferase.
17                                         Beta-mannosidase, a lysosomal enzyme which acts exclusively a
18 ed previously for the core-specific alpha1,6-mannosidase (acidic pH optimum, inhibition by swainsonin
19 equires endo-1,4-beta-mannanase and 1,4-beta-mannosidase activities.
20                            The production of mannosidase activity by all currently recognized species
21           Thus a nonspecific alpha-(1 --> 2)-mannosidase activity converts the glycoprotein to its Ma
22 ve subsequently demonstrated the presence of mannosidase activity in E. faecalis, which releases free
23 ologs, respectively, each of which had alpha-mannosidase activity in vitro.
24 uences caused by the lack of cytosolic alpha-mannosidase activity in vivo by the generation of Man2c1
25 le continuous assay for measurement of alpha-mannosidase activity is described and demonstrated for a
26 vidence support a model in which neither the mannosidase activity nor catalytic domain is essential f
27                                  When either mannosidase activity or the catalytic activity of protea
28 excellent substrate for the demonstration of mannosidase activity since it is a glycoprotein with a s
29                           Intriguingly, EDEM mannosidase activity was dispensable for these protectiv
30                                              Mannosidase activity was produced only by some members o
31                                Inhibition of mannosidase activity with kifunensine or disruption of t
32 s of this enzyme indicated that it has alpha-mannosidase activity, however, we conclusively show that
33 1-deoxymannojirimycin, an inhibitor of alpha-mannosidase activity, without affecting the monomer popu
34 omozygous mutant mice have undetectable beta-mannosidase activity.
35 rement for chitobiase action before alpha1,6-mannosidase activity.
36 cative of a novel post-endoplasmic reticulum mannosidase activity.
37 peroris and Streptococcus sanguinis produced mannosidase activity.
38 f a fusion between the first 13 exons in the mannosidase alpha class 2A member 1 gene (MAN2A1) and th
39 ownstream of EDEM1 (ER degradation enhancer, mannosidase alpha-like 1) (Pgenotype=0.042).
40 C), matrix metalloprotease-2, collagen-6-A1, mannosidase-alpha-1A and HLA-DPA1.
41                                        alpha-Mannosidase (Ams1) is another resident hydrolase that en
42  enzymes, aminopeptidase I (Ape1p) and alpha-mannosidase (Ams1p), to the vacuole.
43 ining the open reading frame of endo-alpha-D-mannosidase, an enzyme involved in early N-linked oligos
44 nd mannose branching glycans, and alpha1-2,3 mannosidase, an enzyme that cleaves 1-2 and 1-3 mannopyr
45 ene organization with tomato endosperm beta -mannosidase and barley seed beta -glucosidase/ beta -man
46 however, this enzyme also exhibited 1,4-beta-mannosidase and cellodextrinase activities.
47 ere constructed to localize active alpha-1,2-mannosidase and human beta-1,2-N-acetylglucosaminyltrans
48 omal glycosidases alpha-galactosidase, alpha-mannosidase and neuraminidase.
49  the G protein with the exoglycosidase alpha-mannosidase and reduced after subsequent treatment with
50 f the antigen oligomannoside moiety by alpha-mannosidase and that CD1e is an accessory protein absolu
51 rly been used for identifying beta-(1 --> 4)-mannosidase and the derived Man(0) form has served in tu
52 talytic properties of the Sf9 class II alpha-mannosidase and to more clearly determine its relationsh
53                                        alpha-Mannosidases and alpha-mannanases have attracted attenti
54                               Endo-alpha-1,2-mannosidases and endo-alpha-1,2-mannanases, members of g
55 ries encoding catalytic domains of alpha-1,2-mannosidases and GnTI from mammals, insects, amphibians,
56 n), core-specific alpha1,6-mannosidase, beta-mannosidase, and cleavage at the reducing terminus by a
57 fluorescent protein-tagged soybean alpha-1,2 mannosidase, and correlated the findings to cytoskeletal
58 mmalian and yeast oligosaccharide-processing mannosidases, and the full-length coding region of the p
59                                 Based on the mannosidase- and lactacystin-sensitive properties of int
60 ymatic activities and joint actions of these mannosidases are required for this antiviral activity.
61       Although ubiquitously expressed, alpha-mannosidases are targeted to lysosomes or vacuoles throu
62 e cargo proteins, aminopeptidase I and alpha-mannosidase, are selectively transported from the cytopl
63 gh lvsB mutants inefficiently retained alpha-mannosidase, as well as two other lysosomal cysteine pro
64         This enzyme is not a lysosomal alpha-mannosidase because it is not active at acidic pH and it
65 catalytic itinerary is that of exo-1,6-alpha-mannosidases belonging to CAZy family 125.
66 mannosidase (LysMan), core-specific alpha1,6-mannosidase, beta-mannosidase, and cleavage at the reduc
67 ase and barley seed beta -glucosidase/ beta -mannosidase BGQ60.
68 .44 did not bind antigen treated with beta-D-mannosidase but did bind antigen treated with alpha-D-ma
69 nstrated that other mammalian class II alpha-mannosidases can participate in N-glycan processing.
70        Mannose liberated from the actions of mannosidases can, if desired, be quantified by, for exam
71 d residues map to the periphery of the alpha-mannosidase catalytic domain tertiary structure.
72               One unusual enzyme, endo-alpha-mannosidase, cleaves mannoside linkages internally withi
73                                          The mannosidase component guarantees docking into the Golgi
74                                Class I alpha-mannosidases comprise a homologous and functionally dive
75 d, and in many studies, the numbers of alpha-mannosidase-containing cells were enumerated.
76                                       A beta-mannosidase could be known to hydrolyze beta-mannose, fo
77           CD1e selectively assists the alpha-mannosidase-dependent digestion of PIM(6) species accord
78 ssembly and release of class II is linked to mannosidase-dependent ERAD targeting of the misfolded Ii
79 nce tags were identified for bovine alpha1,6-mannosidase, despite the identification of two sequence
80 med using recombinant Drosophila Golgi alpha-mannosidase (dGMII) has been shown to give the kinetic p
81 ycobacterium smegmatis and digested by alpha-mannosidase, did not activate T cells.
82                                              Mannosidase digestion and concanavalin A adsorption indi
83 otease treatments but was destroyed by alpha-mannosidase digestion.
84 tion, we have identified three class I alpha-mannosidases, EDEM1, EDEM2, and ERManI, which play a cri
85 sidase, endo-(1-->4)-beta-D-xylanase, beta-D-mannosidase, endo-(1-->4)-beta-D-mannanase, alpha-D-xylo
86        Endoplasmic reticulum (ER) alpha-1, 2-mannosidase (ERManI) contributes to ER-associated protei
87 ies of mammalian Class 1 processing alpha1,2-mannosidases (family 47 glycosidases) play critical role
88 1p (Htm1p-Pdi1p) acts as a folding-sensitive mannosidase for catalyzing this first committed step in
89 m temperature of LAM-spiked urine with alpha-mannosidase (for human TB), and LAM-spiked milk with com
90 ed activity-based protein profiling of alpha-mannosidases from both human cell lysate and mouse tissu
91 and the biologically relevant class II alpha-mannosidases from Drosophila melanogaster belonging to g
92 lts suggest that the chitobiase and alpha1,6-mannosidase function in tandem for mammalian lysosomal N
93 lying these traits as well as a single alpha-mannosidase gene directly associated with this tolerance
94 d the entire coding region of the human beta-mannosidase gene using a combination of cDNA library scr
95 '-flanking sequences for the bovine alpha1,6-mannosidase genes may lead to defective transcription si
96 uscle cell line C2, permanently expressing a mannosidase-green fluorescent protein (GFP) construct.
97 showed good and selective inhibition of beta-mannosidase (Helix pomatia).
98 epitope-tagged full-length form of the human mannosidase homolog in normal rat kidney cells resulted
99 he full-length coding region of the putative mannosidase homolog was isolated by a combination of 5'-
100 he COOH-terminal luminal domain of the human mannosidase homolog, was expressed in COS cells, the fus
101       Here we report that the complex of the mannosidase Htm1p and the protein disulfide isomerase Pd
102 ibition of human endoplasmic reticulum alpha-mannosidase I (ER Man I) and mouse Golgi alpha-mannosida
103 , including endoplasmic reticulum (ER) alpha-mannosidase I (ERManI) and Golgi alpha-mannosidase IA (G
104 d how, modification by endoplasmic reticulum mannosidase I (ERManI) contributes to the preferential s
105                                           ER mannosidase I (ERManI) is a quality control factor that
106               Endoplasmic reticulum alpha1,2 mannosidase I (ERManI), a central component of ER qualit
107 ene of Drosophila melanogaster encodes Golgi mannosidase I (MAS-1), and flies homozygous for small de
108 d by the sequential action of Golgi alpha1,2-mannosidase I (MIa,b,c), MGAT1, alpha1,2-mannosidase II
109                     The Arabidopsis ER-alpha-mannosidase I (MNS3) generates an oligomannosidic N-glyc
110                 Interestingly, inhibition of mannosidase I also results in prolonged association betw
111 lycoprotein processing inhibitors that block mannosidase I and increase the amount of protein-bound M
112 me reactions using a combination of human ER mannosidase I and recombinant Golgi mannosidase IA indic
113 proteins as well as vesicle cargo molecules (mannosidase I and sialyltransferase-yellow fluorescent p
114  selective trimming of N-glycans by ER alpha-mannosidase I and subsequent recognition by the ER degra
115 ached to misfolded glycoproteins by ER alpha-mannosidase I and subsequent recognition by the ER degra
116 wild type and mutant forms of human ER alpha-mannosidase I as well as by structural analysis of a co-
117 erized by down-regulation of the Golgi alpha-mannosidase I coding gene MAN1A1, leading to elevation o
118 teolytically driven checkpoint control of ER mannosidase I contributes to the establishment of an equ
119 alnexin (CNX) and calreticulin (CRT), and ER mannosidase I in apo(a) intracellular targeting.
120 g the participation of endoplasmic reticulum mannosidase I in the disposal process.
121 rent primary cells or in the presence of the mannosidase I inhibitor deoxymannojirimycin dramatically
122                              In addition, ER mannosidase I inhibitor kifunensine and down-regulation
123 ral serine kinase inhibition implied that ER mannosidase I is subjected to regulated proteolysis.
124                                Unexpectedly, mannosidase I redistributed from the Golgi complex to co
125 reshaping of the glycome by inhibiting alpha-mannosidase I resulted in significantly higher migratory
126 endent on mannose trimming and inhibition of mannosidase I stabilizes Ii.
127 igosaccharides by endoplasmic reticulum (ER) mannosidase I targets misfolded glycoproteins for disloc
128                            Redistribution of mannosidase I was also observed in cells incubated at 15
129    Herein the intracellular fate of human ER mannosidase I was monitored to determine whether a post-
130                             Inhibition of ER mannosidase I with deoxymannojirimycin or kifunensine ha
131 MAN1B1 gene product MAN1B1, also known as ER mannosidase I, is to function within the ER similar to t
132 abidopsis (Arabidopsis thaliana) Golgi alpha-mannosidase I, Nicotiana tabacum beta1,2-N-acetylglucosa
133 haride modification by endoplasmic reticulum mannosidase I, the latter of which occurred as PI Z was
134 sly isolated for Saccharomyces cerevisiae ER mannosidase I, the oligosaccharide in the active site of
135 in which processing by endoplasmic reticulum mannosidase I, which attenuates the removal of glucose f
136 wild type and mutant forms of human ER alpha-mannosidase I.
137 ncoding the resident Golgi protein alpha-1,2 mannosidase I.
138 e encodes an enzyme previously designated ER mannosidase I.
139                               Remarkably, ER mannosidase I/Man1b1, the first alpha-mannosidase implic
140 g five active eukaryotic proteins, including mannosidases I and II, N-acetylglucosaminyl transferases
141  cells cultured in the presence of the alpha-mannosidase-I inhibitor kifunensine.
142 alpha-mannosidase I (ERManI) and Golgi alpha-mannosidase IA (GMIA), are responsible for cleavage of t
143 nnosidase I (ER Man I) and mouse Golgi alpha-mannosidase IA (Golgi Man IA).
144 nosidases, we have crystallized murine Golgi mannosidase IA (space group P2(1)2(1)2(1)), and the stru
145 human ER mannosidase I and recombinant Golgi mannosidase IA indicated that that these two enzymes are
146 t yeast strain and subsequent treatment with mannosidase IA.
147 nnose trimming enzyme drosophila Golgi alpha-mannosidase II (dGMII) complexed with the inhibitors man
148  characterized included inserts in the alpha-mannosidase II (dGMII), ash1, and pumilio genes.
149                                        Golgi mannosidase II (GMII) catalyzes the sequential hydrolysi
150                                  Golgi alpha-mannosidase II (GMII), a member of glycoside hydrolase f
151 aminyltransferase I, Arabidopsis Golgi alpha-mannosidase II (GMII), and Arabidopsis beta1,2-xylosyltr
152                    Inhibition of Golgi alpha-mannosidase II (GMII), which acts late in the N-glycan p
153 nd cosedimented with the Golgi marker, alpha-mannosidase II (Man II).
154 GalT was compared with transfected rat alpha-mannosidase II (medial-Golgi, polyclonal antibody).
155                                        alpha-Mannosidase II (MII) is a key enzyme converting precurso
156 1,2-mannosidase I (MIa,b,c), MGAT1, alpha1,2-mannosidase II (MII, IIx), and MGAT2.
157 development consistent with increasing alpha-mannosidase II and core fucosyl-transferase enzyme activ
158  cDNA encoding a protein homologous to alpha-mannosidase II and designated it alpha-mannosidase IIx.
159                                              Mannosidase II and giantin were observed to colocalize w
160 reen et al. now show that mice lacking alpha-mannosidase II develop an autoimmune disease similar to
161 alpha-mannosidase IIx colocalizes with alpha-mannosidase II in COS cells.
162                    The functional role of ER mannosidase II in glycoprotein quality control is discus
163                                  Golgi alpha-mannosidase II is an enzyme that processes the intermedi
164 nto small punctate structures at a time when mannosidase II is still largely localized to Golgi struc
165 g kinetics was seen with the HeLa GalT/alpha-mannosidase II pairing.
166 ed oligosaccharides by endoplasmic reticulum mannosidase II partitions variant PI Z away from the con
167 on is temporally and spatially distinct from mannosidase II relocation and that FTCD provides a novel
168  its redistribution is distinct from that of mannosidase II relocation.
169 onsisting of the first 117 residues of alpha-mannosidase II tagged with a fluorescent protein and a t
170     Swainsonine, an inhibitor of Golgi alpha-mannosidase II that causes abnormal N-glycosylation, str
171 taining pattern was similar to that of alpha-mannosidase II which is a known resident enzyme of the G
172 NBCCV was found to be colocalized with alpha-mannosidase II, a marker for the Golgi complex.
173 noprecipitate betaCOP, Golgi 58K protein, or mannosidase II, all Golgi-resident proteins.
174                  When coexpressed with alpha-mannosidase II, alpha-mannosidase IIx colocalizes with a
175 -GFP fusion colocalized with a Golgi marker, mannosidase II, and retained catalytic activity compared
176     Swainsonine, an inhibitor of Golgi alpha-mannosidase II, blocked beta1,6GlcNAc N-glycan expressio
177 tegral membrane Golgi proteins called GEARs (mannosidase II, GOS-28, GS15, GPP130, CASP, giantin, and
178 several Golgi and vesicle markers, including mannosidase II, p58, trans-Golgi network (TGN)38, and be
179 at mutation of a single gene, encoding alpha-mannosidase II, which regulates the hybrid to complex br
180 icular stomatitis virus (VSV)-G protein to a mannosidase II-containing Golgi compartment.
181 d for the delivery of a cargo protein to the mannosidase II-containing Golgi compartment.
182                                        alpha-Mannosidase II-deficient autoimmune disease is due to an
183 ne its relationship to mammalian Golgi alpha-mannosidase II.
184 localized with the medial-Golgi marker alpha-mannosidase II.
185 emical similarities to mammalian Golgi alpha-mannosidase II.
186  the Sf9 enzyme is distinct from Golgi alpha-mannosidase II.
187 es originating from the Golgi and containing mannosidase II.
188                                        Alpha-mannosidase-II (alphaM-II) deficiency diminishes complex
189 olgi transport of Rh1, downstream from alpha-mannosidase-II in the medial- Golgi.
190              Brefeldin A treatment inhibited mannosidase-II recruitment and phagocytic uptake of seru
191              Mechanistically, recruitment of mannosidase-II vesicles during phagocytic uptake require
192                           The recruitment of mannosidase-II vesicles was an early event mediated by f
193                     We report recruitment of mannosidase-II-positive Golgi-derived vesicles during up
194 perties, we designated this enzyme Sf9 alpha-mannosidase III and concluded that it probably provides
195                                Because alpha-mannosidase IIx (MX) is a candidate enzyme for this path
196 atozoa, a phenotype similar to that of alpha-mannosidase IIx (MX) KO mice.
197  disruption of Man2a2, a gene encoding alpha-mannosidase IIx (MX), an enzyme that forms intermediate
198 coexpressed with alpha-mannosidase II, alpha-mannosidase IIx colocalizes with alpha-mannosidase II in
199 in A fusion of the catalytic domain of alpha-mannosidase IIx hydrolyzes a synthetic substrate, 4-umbe
200               The results suggest that alpha-mannosidase IIx hydrolyzes two peripheral Man alpha 1-->
201 e, we show by immunocytochemistry that alpha-mannosidase IIx resides in the Golgi in HeLa cells.
202 ese hamster ovary cells overexpressing alpha-mannosidase IIx show a reduction of M(6)Gn(2) and an acc
203 alpha-mannosidase II and designated it alpha-mannosidase IIx.
204 ly, ER mannosidase I/Man1b1, the first alpha-mannosidase implicated in this conventional N-glycan-med
205 d with kifunensine, an inhibitor of alpha1,2-mannosidase in the ER, indicating that degradation of AT
206 analysis demonstrates that BtMan2A is a beta-mannosidase in which substrate binding energy is provide
207 function for maternally deposited acid alpha-mannosidase in yolk consumption.
208 pha- and beta-galactosidase, alpha- and beta-mannosidase) in an assay that measured the rate of hydro
209 e glycoside hydrolase family 47 (GH47) alpha-mannosidases, including endoplasmic reticulum (ER) alpha
210 m in which Golgi-localized MAN1B1 can play a mannosidase-independent gatekeeper role in the proteosta
211        Accelerated degradation occurred in a mannosidase-independent manner and was arrested by lacta
212 al content of the beta subunit was less with mannosidase inhibition compared with that found in the N
213                Proteasome inhibition but not mannosidase inhibition led to the accumulation of full-l
214                                        Golgi mannosidase inhibition to prevent carbohydrate chain bra
215 hibitor lactacystin, and in combination with mannosidase inhibition, revealed that the removal of man
216    Complexes with the established endo-alpha-mannosidase inhibitor alpha-Glc-1,3-deoxymannonojirimyci
217 iated neutralization of JRFL produced with a mannosidase inhibitor further revealed that its neutrali
218 ctical synthesis of the potent class I alpha-mannosidase inhibitor kifunensine (1) beginning from the
219 hen Env was expressed in the presence of the mannosidase inhibitor kifunensine to force retention of
220                        Mice treated with the mannosidase inhibitor kifunensine to prevent the formati
221  a CHO cell line in the presence of an alpha-mannosidase inhibitor kifunensine, and an endoglycosidas
222 pe KOR1 in the presence of the class I alpha-mannosidase inhibitor kifunensine, which abolished the c
223 ng several concentrations of the known alpha-mannosidase inhibitor swainsonine are also presented, de
224 reatment of zebrafish embryos with the alpha-mannosidase inhibitor swainsonine resulted in the accumu
225                      Finally, kifunensine, a mannosidase inhibitor that can block entry of ER protein
226 er of alpha-mannosides, and the potential of mannosidase inhibitors as cellular probes and therapeuti
227      Compounds 15 and 16 were specific alpha-mannosidase inhibitors, and 24 and 26 were potent and se
228 se inhibitor, castanospermine (CST), and two mannosidase inhibitors, kifunensine (KIF) and deoxymanno
229 sidase, that is susceptible to several known mannosidase inhibitors.
230  substrate interactions within the family 47 mannosidases involved in glycan maturation and ER-associ
231 f glycosidases including the Jack Bean alpha-mannosidase (JBalphaMan) and the biologically relevant c
232 ial treatment strategies, we produced a beta-mannosidase knockout mouse.
233                   By contrast, the lysosomal mannosidase lacks an equivalent GlcNAc binding site and
234 the majority of strains transformed with the mannosidase/leader library displayed only modest in vivo
235  clinically and pathologically, tissue alpha-mannosidase levels were assayed, and in many studies, th
236        EDEM1 (ER degradation-enhancing alpha-mannosidase-like 1 protein) has been proposed to play a
237  with kifunensine or disruption of the EDEM1 mannosidase-like domain by mutation had no effect on EDE
238  EDEM1 binds nonnative proteins and uses its mannosidase-like domain to target aberrant proteins to t
239 1 associates through a region outside of its mannosidase-like domain with the nonglycosylated protein
240 d upregulates ER degradation-enhancing alpha-mannosidase-like protein (EDEM) and ER chaperones, thus
241 mes predicted ER degradation-enhancing alpha-mannosidase-like protein and Mns1 orthologs, respectivel
242 nition by the ER degradation-enhancing alpha-mannosidase-like protein family of lectins, both members
243 nition by the ER degradation-enhancing alpha-mannosidase-like protein family of lectins, both members
244 lasmic reticulum degradation-enhancing alpha-mannosidase-like protein mRNA levels were inversely rela
245 tion of EDEM (ER degradation-enhancing alpha-mannosidase-like protein) also suppressed the degradatio
246 tion of EDEM (ER degradation-enhancing alpha-mannosidase-like protein).
247 et gene EDEM (ER degradation-enhancing alpha-mannosidase-like protein, a protein degradation factor)
248 luding ERdj4, ER degradation-enhancing alpha-mannosidase-like protein, and p58(IPK), or expression of
249 through upregulation of ERAD-enhancing alpha-mannosidase-like proteins (EDEMs) protected against chro
250 atively, an alpha-1,2-mannosidase (Mns1) and mannosidase-like proteins (ER degradation-enhancing alph
251 ike proteins (ER degradation-enhancing alpha-mannosidase-like proteins 1, 2, and 3) are part of a pro
252 -mannosidase ManIIb (GM) and lysosomal alpha-mannosidase LManII (LM).
253 ncluding a broad specificity lysosomal alpha-mannosidase (LysMan), core-specific alpha1,6-mannosidase
254 ycan processing gene arrays identified alpha-mannosidases (MAN1A2 and MAN1C1) as targets for down-reg
255  (Nicotiana tabacum) plants of a human alpha-mannosidase, MAN2B1, which is a lysosomal enzyme involve
256                                        alpha-Mannosidase (MAN2C1) is the enzyme responsible for the p
257 to one of the target genes, lysosomal beta A mannosidase (MANBA), we observed that genetic variants a
258                               Endo-alpha-1,2-mannosidase (MANEA) is the sole endo-acting glycoside hy
259 glycohydrolase family 38, namely Golgi alpha-mannosidase ManIIb (GM) and lysosomal alpha-mannosidase
260 ng function, and that genes related to alpha-mannosidase may influence risk of emphysema.
261                  Alternatively, an alpha-1,2-mannosidase (Mns1) and mannosidase-like proteins (ER deg
262 e role of Arabidopsis thaliana class I alpha-mannosidases (MNS1 to MNS5) in glycan-dependent ERAD.
263 f the beta-1,2-xylose, followed by the alpha-mannosidase NixJ (GH125), which removes the alpha-1,6-ma
264 emoval of the alpha-1,3-mannose by the alpha-mannosidase NixK (GH92) is a prerequisite for the subseq
265 lines processed and targeted lysosomal alpha-mannosidase normally, indicating the lack of a significa
266 anavalin A as well as the enzymes alpha1-2,3 mannosidase or beta1-4 galactosidase to provide structur
267 se but did bind antigen treated with alpha-D-mannosidase, other alpha- or beta-glycosidases, or a pan
268 ine-linked oligosaccharides by a slow-acting mannosidase partitions the misfolded monomer into the pr
269               ERManI, a putative ER resident mannosidase, plays a rate-limiting role in generating a
270 ervation that this motif is invariant in GH2 mannosidases points to a generic role for these residues
271 we determine that most glucosidases and beta-mannosidases preferentially bind their substrates in the
272 ides in the ER lumen, followed by ENGase and mannosidase processing in the cytosol and lysosomes.
273                            Investigations on mannosidase production using synthetic (4-methylumbellif
274 ycoprotein as the substrate demonstrate that mannosidase production within the viridans group strepto
275                               Digestion with mannosidase reduced infectivity by fivefold.
276 us for upper-lower lobe ratio near the alpha-mannosidase-related gene MAN2B1 (rs10411619; P = 1.1 x 1
277 frican Americans, a locus near a third alpha-mannosidase-related gene, MAN1C1 (rs12130495; P = 9.9 x
278 ent of the catalytic domain of class I alpha-mannosidases reveals four well-supported phylogenetic gr
279 he reaction coordinate of an inverting alpha-mannosidase show how the enzyme distorts the substrate a
280 ence, such as the neuraminidase NanA and the mannosidase SpGH92, we anticipate that the alpha-fucosid
281 o be less potent inhibitors of Class I alpha-mannosidases than kifuensine itself, the bis(hydroxymeth
282 length cDNA clone encoding a human alpha1, 2-mannosidase that catalyzes the first mannose trimming st
283  that Htm1p-Pdi1p is a glycoprotein-specific mannosidase that preferentially targets nonnative glycop
284 rom all other known mammalian class II alpha-mannosidases that can hydrolyze Man(5)GlcNAc(2).
285  phosphate binding residues, are indeed beta-mannosidases that hydrolyze beta-1,2-mannosidic linkages
286 e found that it is a trimeric retaining beta-mannosidase, that is susceptible to several known mannos
287 tions of alpha-(1 --> 3) and alpha-(1 --> 6)-mannosidases, to the Man(1) form via Man(4), Man(3), and
288                                     alpha1,6-Mannosidase transcripts were ubiquitously expressed in h
289                A swainsonine-sensitive alpha-mannosidase trims some N-glycans to biantennary Man(3)Gl
290           However, no evidence of a role for mannosidases was found for TCR-alpha, and significant re
291 asis for substrate recognition among Class 1 mannosidases, we have crystallized murine Golgi mannosid
292 ing efficiency of the lysosomal enzyme alpha-mannosidase were normal in the mutant strain.
293 e efficiency of targeting of lysosomal alpha-mannosidase were normal, although lvsB mutants inefficie
294                          Three class I alpha-mannosidases were identified to play a critical role in
295 eriments, Rab7 T22N cells oversecreted alpha-mannosidase, whereas Rab7 WT cells retained this hydrola
296 (GFP) fusion protein co-localized with alpha-mannosidase, which indicated that the fusion protein loc
297 multiple enzymatic digestion steps including mannosidase with activity toward specific Man(alpha 1,3)
298 ct (Sf9) cell cDNA encoding a class II alpha-mannosidase with amino acid sequence and biochemical sim
299 ovel human glycosylhydrolase family 38 alpha-mannosidase with catalytic characteristics similar to th
300 city studies comparing the novel human alpha-mannosidase with human LysMan revealed that the former e

 
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