コーパス検索結果 (1語後でソート)
通し番号をクリックするとPubMedの該当ページを表示します
1 ion or tunicamycin-mediated inhibition of ER protein glycosylation.
2 e development and maintenance, or defects in protein glycosylation.
3 cells with knock-in/out enzymes involved in protein glycosylation.
4 as a method to compensate for deficiency in protein glycosylation.
5 niae encodes an unusual pathway for N-linked protein glycosylation.
6 to UDP-sugar biosynthesis to support virion protein glycosylation.
7 needed to reveal the biological function of protein glycosylation.
8 rst two committed steps of asparagine-linked protein glycosylation.
9 he impact of nucleotide and NS metabolism on protein glycosylation.
10 and enables proteome-wide discovery of O-Man protein glycosylation.
11 alyzing the first committed step of N-linked protein glycosylation.
12 silsesquioxane, dendrimer), (d) peptide and protein glycosylation.
13 not by tunicamycin treatment, which inhibits protein glycosylation.
14 e biology of a major type of cancer-relevant protein glycosylation.
15 des a semiquantitative assessment of overall protein glycosylation.
16 ct cellular localization, and regulation for protein glycosylation.
17 abolishes the ability of ACER2 to regulation protein glycosylation.
18 binding affinity for PrP was not altered by protein glycosylation.
19 LNT enzyme in initiating mucin type O-linked protein glycosylation.
20 icamycin (TM), an agent that blocks N-linked protein glycosylation.
21 acter jejuni has systems for N- and O-linked protein glycosylation.
22 vertebrate nucleotidases may play a role in protein glycosylation.
23 affect either DNA synthesis or UDP-dependent protein glycosylation.
24 are required for DNA, RNA, and UDP-dependent protein glycosylation.
25 ains is at least partly mediated by envelope protein glycosylation.
26 jejuni virulence by affecting the degree of protein glycosylation.
27 can be employed to modulate the patterns of protein glycosylation.
28 (ER) stress, which results from a decline in protein glycosylation.
29 ts suggest that the genes may be involved in protein glycosylation.
30 hexose metabolism in a manner beneficial for protein glycosylation.
31 prevention of intravascular thrombosis, and protein glycosylation.
32 used glucose deprivation as a tool to alter protein glycosylation.
33 her dendrites also possess the machinery for protein glycosylation.
34 N-acetylglucosamine and thus is a measure of protein glycosylation.
35 lglucosamine (O-GlcNAc), a prevalent form of protein glycosylation.
36 ectivity and unexpectedly increases rates of protein glycosylation.
37 y has become a popular approach for studying protein glycosylation.
38 screen hits were genes involved in N-linked protein glycosylation.
39 ino acid residues, forming multiple types of protein glycosylation.
40 tive in its reliance on mechanical force and protein glycosylation.
41 covery further advances our understanding of protein glycosylation.
42 n be made to promote further explorations of protein glycosylation.
43 ial to determining the microheterogeneity of protein glycosylation.
44 burst (in 3 of 3 patients tested), corrected protein glycosylation (2 of 2), and normal neutrophil ch
45 ree genes are involved in dolichol-dependent protein glycosylation, a pathway not previously implicat
47 , genes required for mannose utilization and protein glycosylation, activated a pheromone-response-pa
48 N-acetylglucosamine (O-GlcNAc) is one of the protein glycosylations affecting various intracellular e
49 oligosaccharide precursor and total cellular protein glycosylation, along with hypoglycosylation of a
50 s the use of DEN-gas sheathless CE-ESI-MS in protein glycosylation analysis, where precision is essen
53 hose members include essential components of protein glycosylation and cell-wall synthesis pathways.
54 proteins involved in vesicular transport and protein glycosylation and degradation, pointing to key n
55 a has different vesicles that play a role in protein glycosylation and folding quality control, analo
56 notype of B. fragilis mutants with defective protein glycosylation and found that the glycan added to
58 ecific genetic interactors that restore both protein glycosylation and growth of yeast harboring the
60 Decreased KCC2 surface expression, reduced protein glycosylation and impaired chloride extrusion co
61 ferred by enforced beta cell-specific GnT-4a protein glycosylation and involved the maintenance of gl
63 ize current knowledge on flavivirus envelope protein glycosylation and its impact on viral infection
64 emented with galactose showed restoration of protein glycosylation and no evidence of glycogen accumu
66 chnique in comprehensive characterization of protein glycosylation and phosphorylation; however, the
67 ol reductase with a crucial role in N-linked protein glycosylation and pinpoint SRD5A3 mutations as t
69 o provide the glycosyl subunits required for protein glycosylation and production of high titers of i
70 mutations (p.Ser577Arg, p.Ser650Pro) impair protein glycosylation and reduce JAG1 cell surface expre
71 ited defects in manganese-dependent steps in protein glycosylation and showed an overall decrease in
74 n allowed improved site-specific analysis of protein glycosylation and superior to positive ion mode
75 was primarily mediated via loss of envelope protein glycosylation and that this was associated with
80 respiratory chain), dolichols (important for protein glycosylation), and isoprenoids (lipid moieties
82 ination through control of lipid metabolism, protein glycosylation, and organization of microvilli in
83 uption of calcium homeostasis, inhibition of protein glycosylation, and reduction of disulfide bonds
84 uption of calcium homeostasis, inhibition of protein glycosylation, and reduction of disulfide bonds,
86 is, lipid metabolism, carotenoid metabolism, protein glycosylation, antibiotics and cytotoxins biosyn
89 Both de novo DNA synthesis and UDP-dependent protein glycosylation are important for the perplexed ph
96 for cell wall carbohydrate biosynthesis and protein glycosylation as well as for AsA biosynthesis.
97 genes encoding enzymes directly involved in protein glycosylation as well as loci likely to be invol
98 dge of the biosynthetic pathways involved in protein glycosylation, as well as how changes in glycosy
100 to enable and expedite the identification of protein glycosylation based on protein size and affinity
101 we analyze Asn-linked and Ser/Thr/Tyr-linked protein glycosylation between brain regions and sexes in
102 of the endoplasmic reticulum calcium stores, protein glycosylation block, and formation of aberrant p
103 are subjected to calcium depletion stress or protein glycosylation block, the transcription of a fami
104 Here, we highlight how regulated changes in protein glycosylation both at the cell surface and on se
106 the reliable structural characterization of protein glycosylation by mass spectrometry at the picomo
110 th various biochemical probes at the site of protein glycosylation by using the Staudinger ligation.
112 n of stress pathways following inhibition of protein glycosylation can promote EC proliferation and a
117 Mechanistically, PGM3 inhibition, reducing protein glycosylation, causes a sustained Unfolded Prote
119 nditional (temperature-sensitive) defects in protein glycosylation (CHO K12 and BHK tsBN7) induce CHO
122 ental and essential property as mutants with protein glycosylation defects have impaired growth and a
123 e animals and cells derived from them showed protein glycosylation deficiencies similar to those foun
124 by a severe reduction in the HEV-associated proteins, glycosylation-dependent cell adhesion molecule
125 nd activity in invasive cancers, and altered protein glycosylation detected in malignant tumors at al
126 Candida albicans mutant strains defective in protein glycosylation did not show altered plasminogen b
127 rbohydrate interactions allowing us to study protein glycosylation directly on unmodified glycoprotei
128 r understanding of the mechanisms regulating protein glycosylation during neutrophil granulopoiesis a
129 ine pathway, as well as direct inhibitors of protein glycosylation efficiently inhibited TSP-1 transc
131 homeostasis, resulting in global changes in protein glycosylation, expression and functional effects
132 pacity, biochemicals related to methylation, protein glycosylation, extracellular matrix structure, s
133 was used to characterize the requirement of protein glycosylation for cell membrane stability during
134 erscores the importance of asparagine-linked protein glycosylation for proper functioning of the neur
135 ndings underscore the importance of N-linked protein glycosylation for proper functioning of the neur
137 roles for a number of novel gene products in protein glycosylation, GPI-anchor attachment, ER quality
142 anslational modifications (PTMs) in mammals, protein glycosylation has been observed to alter in mult
147 ed role for TRAPPC11 in LLO biosynthesis and protein glycosylation in addition to its established fun
149 rk for understanding the process of N-linked protein glycosylation in Bacteria and for devising strat
151 identification of a unique system of general protein glycosylation in C. jejuni, a C. jejuni protein
153 AP) method provides a platform for analyzing protein glycosylation in clinical specimens and could co
155 sly unrecognized cell-type-specific role for protein glycosylation in epithelial phenotype developmen
158 n (HLA) complexes, and discuss the role of S protein glycosylation in potentially modulating the inna
163 unfolded protein response (UPR) by altering protein glycosylation in the endoplasmic reticulum (ER).
164 dolichol biosynthesis and dolichol-dependent protein glycosylation in the endoplasmic reticulum.
165 edict a link between SUN-domain proteins and protein glycosylation in the endoplasmic reticulum.
167 this slowdown helps to ensure more complete protein glycosylation in the Golgi stack and proper sort
169 d recently that there is a system of general protein glycosylation in the human enteropathogen Campyl
170 esis of glycosyl carrier lipids required for protein glycosylation in the lumen of endoplasmic reticu
172 Understanding the biosynthetic pathway of protein glycosylation in various expression cell lines i
174 s provide new information about the roles of protein glycosylation in yeast and, in particular, the s
176 essing the biological importance of specific protein glycosylations in the production of safe and eff
177 s regulating goblet cell differentiation and protein glycosylation, including forkhead box A3 (Foxa3)
183 y more resistant to growth inhibition by the protein glycosylation inhibitor tunicamycin (Tm) than ei
184 zation, misfolded DAT, induced either by the protein glycosylation inhibitor tunicamycin or by its C-
186 RK4 is likely to be among client proteins of protein glycosylation involved in BAK1/SERK4-regulated c
197 factor, and support the view that defective protein glycosylation is a major disease mechanism in ge
213 Taken together our results indicate that protein glycosylation is governed by more diversified re
223 Emerging evidence strongly suggests that protein glycosylation is strongly related to this diseas
229 in Golgi complex fragmentation, and reduced protein glycosylation, leading to reduced secretion of c
232 ation of these SLPs as new adjuvants and the protein glycosylation mechanisms in these bacteria.
233 is brefeldin A-sensitive and insensitive to protein glycosylation, monensin treatment, and low tempe
234 is brefeldin A-sensitive and insensitive to protein glycosylation, monensin treatment, and low tempe
235 ing RNAs, protein synthesis and degradation, protein glycosylation, motility, and biofilm formation.
236 US1 transcription in the mannose utilization/protein glycosylation mutants required some but not all
237 nthetic growth defect in mannose utilization/protein glycosylation mutants, we suggest that the Sho1
238 have developed a method using MRM to monitor protein glycosylation normalized to absolute protein con
239 discovered a novel form of serine/threonine protein glycosylation (O-linked beta-GlcNAc; O-GlcNAc) t
244 obic proteins in pathogenesis and of surface protein glycosylation on exposure of the proteins, the l
246 l gaps in our knowledge about the effects of protein glycosylation on the heart and vascular system,
247 files in serum/plasma are due to a change in protein glycosylation or a change in protein concentrati
253 he discovery of asparagine-linked (N-linked) protein glycosylation pathways in bacteria, major effort
254 trate GlycoPRIME by constructing 37 putative protein glycosylation pathways, creating 23 unique glyca
258 a starting point, two enzymes of the general protein glycosylation (Pgl) pathway in C. jejuni (PglF a
261 d by post-translational processing involving protein glycosylation, phosphorylation, and proteolysis.
262 pe of post-translational modification (PTM), protein glycosylation plays a crucial role in protein st
263 -inflammatory therapy response marker, since protein glycosylation plays an essential role in the inf
264 As a common post-translational modification, protein glycosylation plays an important role in many bi
270 s in genes with diverse functions, including protein-glycosylation, polyunsaturated fatty acid metabo
272 Domain mapping studies in combination with a protein glycosylation prediction program identified mult
273 UDP-sugars, which are indispensable for protein glycosylation reactions in cellular secretory pa
279 ejuni 81-176 pgl mutants impaired in general protein glycosylation showed reduced ability to adhere t
284 nzymatic tagging; identification of sites of protein glycosylation; targeted glycoproteomics; and fun
285 ycosylation (CDGs) are disorders of abnormal protein glycosylation that affect multiple organ systems
286 uman diseases have been linked to defects in protein glycosylation that affects a wide range of organ
287 ntal processes, but the pivotal and specific protein glycosylation that is a necessary for recovery f
288 them, O-mannosylation is an unusual type of protein glycosylation that is largely restricted to the
289 ants in VMA21 in male patients with abnormal protein glycosylation that result in mild cholestasis, c
291 , reducing experimental barriers to studying protein glycosylation, the most widespread and complex f
294 present a method to obtain information about protein glycosylation using a minimal amount of protein.
295 Prior to this discovery, it was dogma that protein glycosylation was restricted to the luminal comp
297 act as a competitive inhibitor of mannose in protein glycosylation, we added mannose together with 2-
298 o overcome the challenges in the analysis of protein glycosylation, we have developed a comprehensive
300 ed the effect of UDP-GlcNAc availability and protein glycosylation with O-linked N-acetylglucosamine