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1 thyronine, dabsyl-L-valine, and N-benzoyl-L-arginyl-4-amino-benzoic acid to generate a series of 13
2 that the RGD in the pro-toxin was changed to arginyl-alanyl-aspartic or to arginyl-glycyl-glutamic, w
4 s composed of N,N-distearyl-N-methyl-N-2-(N'-arginyl) aminoethyl ammonium chloride (DSAA), a guanidin
5 c lipid, i.e. N,N-distearyl-N-methyl-N-2-(N'-arginyl) aminoethyl ammonium chloride, which can induce
6 sh that there is an absolute requirement for arginyl, as none of the [R46X]V1aR mutant constructs sup
8 CK) and, to a lesser extent, H-D-Tyr-L-Pro-L-arginyl chloromethyl ketone (YPRCK) and was relatively i
9 ve-site labeling with dansyl-glutamyl-glycyl-arginyl chloromethyl ketone or immunoblot analysis showe
10 bitors hirudin and D-phenylalanyl-L-prolyl-L-arginyl chloromethyl ketone, indicating that the effect
13 ngiform taste papillae (HBO) cells with five arginyl dipeptides: Ala-Arg (AR), Arg-Ala (RA), Arg-Pro
16 ucted to examine the effect of the dipeptide arginyl-glutamine (Arg-Gln) on vascular endothelial cell
17 taminases significantly increases their RGD (arginyl-glycyl-aspartate)-dependent interaction with end
18 ds 140 to 142 of the pre-pro-protein form an arginyl-glycyl-aspartic (RGD) sequence, a motif involved
19 sion of H10 cells to vitronectin and (glycyl-arginyl-glycyl-aspartyl-serine)4 and significant inhibit
20 r rates to the polymeric RGD peptide (glycyl-arginyl-glycyl-aspartyl-serine)4 than to monomeric RGD p
21 was changed to arginyl-alanyl-aspartic or to arginyl-glycyl-glutamic, were expressed in Escherichia c
22 ned from the fungus, but the control peptide arginyl-glycyl-glutamyl-serine provided no protection.
23 e spastic cerebral arteries via binding to L-arginyl-glycyl-L-aspartate-dependent integrin receptors
24 MT activity includes recognition of specific arginyl groups within targeted proteins and the generati
29 otrypsin substrate 3-carbomethoxypropionyl-L-arginyl-L-prolyl-L-tyrosine-p-nitroanili ne- HCl (S-2586
30 expression and/or protein citrullination and arginyl methylation in human and mouse optic nerve and i
33 omogenic substrate L-pyroglutamyl-L-prolyl-L-arginyl-p-nitroaniline (S-2366) and on the activation of
34 polar granules made of cyanophycin [multi-L-arginyl-poly (L-aspartic acid)], which is synthesized by
36 ciens ADP-glucose pyrophosphorylase with the arginyl reagent phenylglyoxal resulted in complete desen
37 ng residues surrounding the putative sessile arginyl residue and found stimulated platelets released
39 ge of pro-EGF first occurs at the C-terminal arginyl residue of the EGF domain, and that proteolysis
40 te the presence of several substrate-binding arginyl residues and the absence of a hydrophobic pocket
41 We show here that chemical modification of arginyl residues in CS1 pili abolishes CS1-mediated aggl
42 e, double, or triple alanyl substitutions at arginyl residues significantly decreased TonB activity.
43 hrough the replacement of one of the binding arginyl residues with several unnatural alkyl and aryl a
45 34mM of the synthetic substrate N-benzoyl-dl-arginyl-rho-nitroanilide, whereas Vmax was 0.056+/-0.001
48 hibition of CheZ activity as a result of the arginyl substitution at CheY position 59 are discussed.
49 vestigations of phenylalanyl, methionyl, and arginyl ternary complexes, and the development of a stra
50 -of-function mutant of rrt-1 that encodes an arginyl-transfer RNA (tRNA) synthetase, an enzyme essent
52 uces the proteasome-dependent degradation of arginyl-transferase in vivo, thus acting as both a "stoi
54 Furthermore, we show that hemin inhibits arginyl-transferase through a redox mechanism that invol
60 ercome apoptosis resistance in cells lacking arginyl-tRNA protein transferase that express R-CRT on t
63 ion and two others when bound to the cognate arginyl-tRNA synthetase or to codons on the ribosome whe
64 ion was identified as the binding partner of arginyl-tRNA synthetase, a polypeptide of the multi-amin
66 they function through their conjugation, by arginyl-tRNA-protein transferase (R-transferase), to arg
68 rth intron of the AtATE1 gene, which encodes arginyl-tRNA:protein arginyltransferase (EC. 2.3.2.8, R-
69 the Arg concentration increased; all of the arginyl-tRNAs examined appeared maximally charged at low
71 e is a tripeptide, L-tyrosinyl-L-isoleucyl-L-arginyl, which competitively inhibits the hydrolysis of
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