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1 ched from the body of the molecule by triple alanine substitution.
2 tamine substitutions (3-4-fold) than for the alanine substitution.
3  ability of Ser-282 to be phosphorylated via alanine substitution.
4 ylation site S2808 on RyR2 is inactivated by alanine substitution.
5 s of modeled YscO were targeted for multiple alanine substitutions.
6 estin mobilization, and internalization upon alanine substitutions.
7 ecific KDAMP was somewhat reduced by glycine-alanine substitutions.
8 ucture has been modified by multiple glycine/alanine substitutions.
9 three rec8 phospho-mutants, with 6, 24 or 29 alanine substitutions.
10  DNA binding in vitro of SpoIIID with single-alanine substitutions.
11 hosphorylation at Ser-318 as the Ser-318 --> alanine substitution abolishes the ability of the result
12                                  Cysteine-to-alanine substitution abrogated FAD-I's ability to induce
13                                 We performed alanine substitutions across the B-finger of human TFIIB
14 edented dataset of the effects of individual alanine substitutions across the E2 protein (355 positio
15 21 in the animal model, whereas glutamate or alanine substitution allowed tumor formation.
16                               Six N-terminal alanine substitutions allowed ToxT transcriptional activ
17                          In addition, single alanine substitutions along the sequence of P17-26 revea
18  of Klebsiella oxytoca NasR to site-directed alanine substitutions and measured RNA-binding activity.
19  IL-23 mutant differs from wild-type by five alanine substitutions and represents the dominant energe
20 to 70% of the wild-type level for all single alanine substitutions and the Y1188A/Y1191A protein.
21  OMPLA dimer interface by introducing single-alanine substitutions and used sedimentation equilibrium
22 s the anti-canonical nature of the Trp150 to alanine substitution, and also reveals a strong long dis
23 ild-type IC-B strain by a single arginine-to-alanine substitution at amino acid 533 of the attachment
24                                     A single alanine substitution at any of these decreases GCase bin
25 d repressor activities, using a ParA with an alanine substitution at Arg(351), a residue previously p
26 with wild-type GC or mutant GC containing an alanine substitution at Cys-122 (C122A).
27     We demonstrate that a single cysteine-to-alanine substitution at extracellular residue Cys-26, lo
28  type (WT) and CFP-NKA-alpha1 point mutants (alanine substitution at F956, E960, L964, and F967) for
29 t that knock-in mice harboring a cysteine-to-alanine substitution at Krt14's codon 373 (C373A) exhibi
30     An STMV CP variant having an arginine to alanine substitution at position 3 in the N-terminal 13a
31 n the maternal allele results in a valine to alanine substitution at residue 163 (p.Val163Ala).
32                                     A single alanine substitution at S986 reduced activation of an E2
33                                              Alanine substitution at Ser-204 and/or the neighboring S
34 tein kinase A (PKA) residues (i.e. serine to alanine substitution at Ser23/24; TnI(PKA-)) were bred w
35 ylatable MyBP-C PKA residues (i.e. serine to alanine substitution at Ser273, Ser282 and Ser302; MyBPC
36                                  A serine-to-alanine substitution at serine 118 also increases the cl
37                         Here, we showed that alanine substitution at the A16 and A17 positions enhanc
38                   Disruption of the motif by alanine substitution at the hydrophobic residues increas
39 e analysis of knock-in mice with cysteine-to-alanine substitution at the palmitoylated residues (4CA
40 is modification is critical to its function; alanine substitution at the phosphorylation sites blocks
41                        An SFV mutant with an alanine substitution at this position (H3A) has a lower
42                                              Alanine substitution at this position in the JFH1 genome
43 Cepsilon phosphorylated NaV1.8 at S1452, and alanine substitution at this site blocked PKCepsilon mod
44                              Mutants with an alanine substitution at yscU codon 263 displayed secreti
45                                  We analyzed alanine substitutions at 13 individual amino acids in FB
46            Except for P478A and K505A R508A, alanine substitutions at conserved residues abolished GP
47                                       Benign alanine substitutions at conserved surface residues elic
48 V > D39L > D39A > D39G approximately WT, and alanine substitutions at different sites, %S: N90A > S10
49 nt ASIC1a bearing truncation or glutamate-to-alanine substitutions at distal NT causes constitutive c
50                       HLA-DR1 molecules with alanine substitutions at each of the six conserved H- bo
51 ion of astexin-2 and astexin-3 variants with alanine substitutions at each position within the ring a
52 rRST as a phosphorelay system, we introduced alanine substitutions at H1, D1, H2, and D2 and tested t
53    Conversely, non-phosphorylation-mimicking alanine substitutions at H273 and H327 relieved inhibiti
54                                              Alanine substitutions at HO-2 residues Leu-201 and Lys-1
55 ld-type FoxO1 but not FoxO1-AAA (mutant with alanine substitutions at known Akt phosphorylation sites
56 ing cognate, null, or "shaved" peptides with alanine substitutions at known TCR contact residues: Thr
57 combinant infectious SeV mutants with single alanine substitutions at L positions 1782, 1804, 1805, a
58                                              Alanine substitutions at L3 and L4 had no deleterious ef
59  genetics system, we analyzed the effects of alanine substitutions at many conserved residues within
60 in free energy of dimer association, whereas alanine substitutions at other interfacial positions had
61  the frequency of RNA recombination, whereas alanine substitutions at other sites in 3D(pol) increase
62                                              Alanine substitutions at Phe649 and Glu648, residues in
63                         These data show that alanine substitutions at positions 2090, 2092, and 2093
64 and was deficient in a mutant K13 with three alanine substitutions at positions 58 to 60 (K13-58AAA)
65                                          The alanine substitutions at positions 90, 107, and 111, on
66                                              Alanine substitutions at positions Pro-113 Thr-115, Gly-
67 her the beta-flap tip or MotA is impaired by alanine substitutions at residues Leu-607, Arg-608, Phe-
68                                              Alanine substitutions at several positions within this r
69 IGF-1 rescue of AR toxicity is diminished by alanine substitutions at the Akt consensus sites.
70                                 Glycine to D-alanine substitutions at the carboxy termini can stabili
71                                              Alanine substitutions at the conserved positions have la
72 NA-PKcs(3A/3A) allele, which codes for three alanine substitutions at the mouse Thr2605 phosphorylati
73 Using the DNA-PKcs (5A) mouse model carrying alanine substitutions at the T2609 cluster, here we show
74             Previous analysis of leucine and alanine substitutions at the Val-65-equivalent site (Val
75                                              Alanine substitutions at these sites result in constitut
76 opB dimer interface demonstrated that single alanine substitutions at this critical interface signifi
77 Strains bearing a single or double serine to alanine substitutions at those sites were significantly
78 king the cytoplasmic tail and in tyrosine to alanine substitutions at Tyr-485 and Tyr-474.
79 V is critical for replication, with a single alanine substitution being sufficient to abrogate NLS fu
80                                              Alanine substitutions blocking Mn binding abrogated both
81 ue proline-rich motif are highly tolerant of alanine substitutions, but multiple substitutions that d
82                                We found that alanine substitutions caused defects at both early and l
83 type and mutants) suggest that the serine-to-alanine substitution conferred reduced conductance with
84 ch both degrons were mutated by threonine to alanine substitutions (cyclin E(T74A T393A)) and report
85                                 In contrast, alanine substitutions decrease rapamycin resistance.
86                                              Alanine substitution decreased the agonist potency of Gl
87                     However, a methionine-to-alanine substitution enables transport of calcium and ma
88 inally, with the exception of D206A, BLIP-II alanine substitutions exhibit a similar trend of effect
89  to neutralize pseudovirus containing single alanine substitutions exhibited a pattern distinct from
90 as inhibited but not completely prevented by alanine substitution for cysteine palmitoylation sites.
91                                           An alanine substitution for Ile-85 specifically interfered
92                                              Alanine substitution for proline had little impact on th
93 on mimic of the seven phosphorylation sites, alanine substitution for Ser(602), Thr(723), and/or Ser(
94                                       Single alanine substitutions for aromatic residues reduced entr
95                             Single or paired alanine substitutions for Cys24 and Cys372 resulted in l
96                                              Alanine substitutions for LANA residues (1068)LKK(1070)
97                                              Alanine substitutions for one or two of the six aromatic
98  The N-terminal 13aa motif of the CP bearing alanine substitutions for positively charged residues lo
99                                       Single alanine substitutions for Ser-497, Thr-500, Ser-502, Ser
100                                              Alanine substitutions for solvent-inaccessible residues
101                                              Alanine substitutions for the first four or the last fou
102                          Kinase-inactivating alanine substitutions for the invariant lysine in subdom
103 horylation-deficient PAP (PAP-7A) containing alanine substitutions for the seven phosphorylation site
104 is report shows that mutant proteins bearing alanine substitutions for two conserved arginines in a m
105 reas subtraction of these contacts by single alanine substitutions for Val131 or Val135 and glycine f
106                                    Extensive alanine substitutions had no effect on fusion triggering
107                                Site-directed alanine substitution identified four residues of the IgE
108                                    Serine-to-alanine substitutions identified Ser-292/Ser-293, a site
109                      The analogous lysine-to-alanine substitution in a glutamate-substituted phosphom
110 sion of VKOR, but not a mutant containing an alanine substitution in its conserved CXXC motif.
111 e perturb integrin function by a tyrosine-to-alanine substitution in membrane-proximal NPIY motif in
112  Sprouty1 knockin mice bearing a tyrosine-to-alanine substitution in position 53, corresponding to th
113             Most notably, a single serine-to-alanine substitution in the first of its two TM domains
114 us expressing an F protein with a glycine-to-alanine substitution in the fusion peptide (P/V-CPI(-)-G
115 ession of a construct expressing a serine-to-alanine substitution in the LAMMER kinase phosphorylatio
116 ting phosphorylation of the S936-TRP site by alanine substitution in transgenic Drosophila (trp(S936A
117 nd expressed mutant forms of UL53 containing alanine substitutions in a predicted helix.
118                           SAS-6 mutants with alanine substitutions in a previously described ZYG-1 ta
119                                              Alanine substitutions in both UL50-S216 and UL53-S19 res
120                                        Three alanine substitutions in cluster H245/H304/H430 resulted
121 n-of-function to provide posttranscriptional alanine substitutions in eukaryotic proteins for potenti
122  spore inner membrane; (iii) shown that some alanine substitutions in GerBC significantly decrease th
123                          McpB mutants having alanine substitutions in key arginine and tyrosine resid
124 sis of the cleavage reactions indicated that alanine substitutions in loop positions of these peptide
125 s S-nitrosylated, we made single cysteine-to-alanine substitutions in Panx1 (Panx1(C40A), Panx1(C346A
126                   All recovered viruses with alanine substitutions in place of SWWS residues had seco
127 not formed with SpaA pilin mutants that have alanine substitutions in place of threonine in the LPXTG
128                                 Tat carrying alanine substitutions in the basic domain (AKKAAQAAA) re
129 a recombinant PEDV, KDKE(4A), with quadruple alanine substitutions in the catalytic tetrad of the 2'-
130 s of wild type and two mutants of MutS, with alanine substitutions in the conserved Phe-Xaa-Glu misma
131                The ability of F mutants with alanine substitutions in the CT to complement an F-null
132                 Analyses of DCS mutants with alanine substitutions in the D(307)DTYD(311) and D(451)D
133 y their roles experimentally, we made single alanine substitutions in the human NaPi-IIa isoform and
134                   Effects of five individual alanine substitutions in the prominent dimer groove did
135 e isolated recombinant viruses with specific alanine substitutions in the putative zinc finger motif
136                     The 5A peptide with five alanine substitutions in the second helix had decreased
137 nd melittin Mut-2 (MM-2), possess leucine to alanine substitutions in the single and double heptadic
138           Consistent with these results, the alanine substitutions in the viral genome caused exagger
139                                  Most of the alanine substitutions in these residues exerted little e
140 uctural flexibility for activation of F, and alanine substitutions in this section, physical stress,
141                     Mutant cycle analysis of alanine substitutions indicated that E153 and K196 are e
142 dues was necessary for fusion regulation, as alanine substitutions induced a 440% increase in fusion
143                                We introduced alanine substitutions into each of these residues, expre
144 NV1 prME expression construct and found that alanine substitutions introduced to four highly conserve
145                                   Additional alanine substitutions involving residues in two or three
146 ures affecting PSM functions, we analyzed an alanine substitution library of PSMalpha3, a strongly cy
147 ling process because a YAP1 mutant harboring alanine substitutions (Mt-YAP5SA) in LATS1 kinase recogn
148 und regions of high similarity and performed alanine substitution mutagenesis to test the hypothesis
149                                        Using alanine substitution mutagenesis, we show that this regi
150 ical bundle (TM1-7) of the M3R to systematic alanine substitution mutagenesis.
151 atalytic functionality using structure-based alanine substitution mutagenesis.
152  cap-dependent translation, expression of an alanine substitution mutant 4E-BP1.S83A partially revers
153                       A non-phosphorylatable alanine substitution mutant at this position causes enha
154                    Utilizing a comprehensive alanine substitution mutant library of ToxT, 19 N-termin
155                 Binding of both MAbs to gp41 alanine substitution mutant peptides required the DKW(66
156                         Moreover, the triple alanine substitution mutant was unable to grow on transf
157 combinant proteins that are analogous to the alanine substitution mutants exhibit defects in nucleoti
158                                              Alanine substitution mutants in the deviant Walker A and
159                       Functional analysis of alanine substitution mutants indicates that basic residu
160                                       Single alanine substitution mutants internalized iron at wild-t
161 mbly and budding, we constructed a series of alanine substitution mutants of M2 with mutations in the
162                           Using deletion and alanine substitution mutants of RctB, we have now locali
163                                              Alanine substitution mutants of the G-H loop amino acids
164                  Nine of 12 individual HeV G alanine substitution mutants possessed a complete defect
165 A screen of Saccharomyces cerevisiae histone alanine substitution mutants revealed that mutations in
166 quences in Ab-MLV transformation more fully, alanine substitution mutants that affect Mo-MLV replicat
167 nteraction, as evidenced by the inability of alanine substitution mutants to coimmunoprecipitate with
168 rprisingly, with only one exception (G105A), alanine substitution mutants with changes in residues af
169 ain and generated single, double, and triple alanine substitution mutants.
170 nd electrophysiology experiments on a set of alanine-substitution mutants confirmed functional roles
171                                           An alanine substitution mutation in a tyrosine-based motif
172                     We generated a series of alanine substitution mutations at these residues in the
173                           We identified nine alanine substitution mutations in 3D(pol) that resulted
174 f variants carrying a series of deletion and alanine substitution mutations in the carboxyl terminus
175 o test this, we engineered single and double alanine substitution mutations into the genome of murine
176 e contacts, we analyzed the effects of eight alanine substitution mutations on CheA-CheY binding inte
177                Furthermore, we reasoned that alanine substitution mutations that disrupt 3D(pol)-RNA
178                                 Aspartate or alanine substitution mutations throughout this region un
179 ular disulfide bonds using single and paired alanine substitution mutations.
180                 By hierarchical assembly, 40 alanine-substitution mutations (covering all known modif
181                                              Alanine substitutions near or within these sequences wer
182 ct this crRNA size pattern and found that an alanine substitution of a conserved aspartate residue of
183                                              Alanine substitution of a glycine residue on the dimeriz
184 vity between PD81723 and NECA was reduced on alanine substitution of a number of ECL2 residues, inclu
185                                              Alanine substitution of a number of residues in the GIY-
186                          We demonstrate that alanine substitution of a single threonine residue at po
187             Blocking MDM2 phosphorylation by alanine substitution of all six phosphorylation sites re
188                                              Alanine substitution of Arg-337 and Lys-338 showed that
189                       Surprisingly, although alanine substitution of Asp-248 abolished manganese effl
190 tions of leucine and individual glycines and alanine substitution of both glycines within a LGYSG seq
191                                              Alanine substitution of C90, C97 or C103 in NsrR abrogat
192                                              Alanine substitution of conserved residues His42 in the
193                                              Alanine substitution of cysteine residues forming the C-
194 ow fluorescence annealing assays showed that alanine substitution of D9, E18 or E37 strengthened RNA
195                                              Alanine substitution of E171 (within the consensus motif
196 he TyrV:24 mutant could partly be rescued by alanine substitution of either AspIII:25 or GluVI:-06 in
197                                              Alanine substitution of Glu(68), Tyr(92), or Asn(139), w
198                                          The alanine substitution of individual amino acid residues o
199                                              Alanine substitution of individual hydrophobic amino aci
200 in central venous catheters in rats, whereas alanine substitution of K1595/R1596 in 1593FKKRFFKL1600
201                                              Alanine substitution of lysine residues K805/K806 in 804
202                                              Alanine substitution of PLB C-terminal residues signific
203                                              Alanine substitution of Q49 or N144 impeded the ability
204                    Within this motif, triple alanine substitution of residues Leu(496), Leu(500), and
205                                              Alanine substitution of serine, threonine, and tyrosine
206                                              Alanine substitution of several residues in the RNA-cont
207                                              Alanine substitution of the conserved catalytic Cys-His
208                  Disruption of the-fold by d-alanine substitution of the conserved central Gly(6)-Gln
209                                              Alanine substitution of the conserved residue H98 in prM
210                                              Alanine substitution of the hydrophobic residues I28, L3
211                                              Alanine substitution of the phosphorylation site Thr166
212                                              Alanine substitution of the RXL/Cy motif prevents this i
213                                              Alanine substitution of the SpaB lysine residue K139 or
214                                              Alanine substitution of the Ssd1 NLS prevents Ssd1 nucle
215 in SpaA harbors a disulfide bond in vivo and alanine substitution of these cysteines abrogates SpaA p
216                                              Alanine substitution of these ionizable residues decoupl
217                                              Alanine substitution of these leucines partially impaire
218                                              Alanine substitution of these residues (P4m) eliminated
219                                 We show that alanine substitution of these residues blocks the bindin
220                                              Alanine substitution of these three residues was suffici
221                                              Alanine substitution of Thr-759 renders DIAPH1 more stab
222                             We now show that alanine substitution of tryptophan W2 within SCAMP2 E su
223 f phosphorylation to the shifted ligand, and alanine substitution of two residues (Glu-145 and Ser-14
224 rtion with the backbone carbonyl of Tyr-271; alanine substitution of Tyr-271, but not Phe-272, result
225 d receptor internalization was observed upon alanine substitution of TyrV:24.
226 d transgenic mice expressing an alpha1C with alanine substitutions of all conserved serine or threoni
227 study, we investigated the effects of single alanine substitutions of amino acid residues in the supp
228                                              Alanine substitutions of arginine 56 (R56A) and aspartic
229 increases in response to growth factors, and alanine substitutions of Arp2 T237 and T238 or Y202 inhi
230              Using the structure as a guide, alanine substitutions of basic residues in regions analo
231                      The results showed that alanine substitutions of conserved residues W85 and Y113
232                                              Alanine substitutions of E1 S57 and E2 H170 destabilized
233 d the in vivo role of E3 in pH protection by alanine substitutions of E3 Y47 and Y48 (Y47/48A) in Sem
234          The same phenotype is observed with alanine substitutions of either the conserved cysteine o
235 MO7b or overexpression of mutated LMO7b with alanine substitutions of five potential JNK phosphorylat
236                                              Alanine substitutions of H348 and H352 inhibit virus gro
237                                              Alanine substitutions of key residues in the interface s
238                           In contrast to the alanine substitutions of PQIIIS, the mutation of LQLP to
239                                              Alanine substitutions of predicted myristoylation (glyci
240                                              Alanine substitutions of residues within a region of E2
241                                              Alanine substitutions of S228 and M180 resulted in catal
242                              The 3D(pol) NLS alanine substitutions of T19 and L21 results in aberrant
243 lls, but this distribution was unaffected by alanine substitutions of the arginine residues, which on
244 , and P(hybO), since IscR mutants containing alanine substitutions of the cysteine Fe-S ligands retai
245 t a 53BP1 phosphomutant, 53BP18A, comprising alanine substitutions of the eight most N-terminal S/TQ
246                                              Alanine substitutions of the hydrophobic residues in tho
247             Here, we identified seven single-alanine substitutions of the region 4 of sigma(70) (sigm
248                                              Alanine substitutions of these residues did not impair c
249                                              Alanine substitutions of Thr117 or Arg118 favor the reve
250                                   Individual alanine substitutions of two basic residues within the 4
251 ic flies expressing mutant dMTF-1 containing alanine substitutions of two, four or six cysteine resid
252                                              Alanine substitutions of tyrosines 118 and 148 at the ti
253             Most deletion mutations, but not alanine substitutions, of individual residues from posit
254 ructure loops, neither of which contains the alanine substitution, on both the dimerization and effec
255            Disrupting either PCI1 or PCI2 by alanine substitution or deletion diminishes CE associati
256 in((6-13)) and des-acyl ghrelin((6-13)) with alanine substitutions or cyclization, but not with d-ami
257 domain disrupted disintegration activity, an alanine substitution (P365A) in a conserved amino acid o
258 alpha-casein; VHLPP, alpha-zein) and the six alanine substitution peptides of PGTAVFK were synthesise
259 ation to aspartic acid blocked tethering and alanine substitution prevented mitotic Golgi unlinking.
260 well-studied common human genetic proline 12 alanine substitution (Pro12Ala) polymorphism.
261         These constructs focused on a single alanine substitution (R515A) and a truncation (M155n) at
262         S Delta19 proteins with other double alanine substitutions reduced cell-cell fusion further,
263                                  Four double alanine substitutions reduced entry to 5 to 10% of the w
264 nsitive version of PAH1 with a serine 162 to alanine substitution represses PC biosynthesis and also
265 phodeficient s15 carrying a threonine 136 to alanine substitution rescues dopamine neuron degeneratio
266 e graft-as dissected residue-by-residue with alanine substitutions-resembled more closely those of 2F
267 ntact residue, where canonical refers to the alanine substitution resulting in a matched change in th
268                                 Furthermore, alanine substitution revealed that the tryptophan in pos
269                                              Alanine substitutions revealed that the affinity changes
270 rse staurosporine effect on aspartate versus alanine substitutions reveals a cross-talk between diffe
271                                              Alanine substitution showed that GW/WG motifs in Delta12
272 ino acids 363 and 394 having four additional alanine substitutions (STANT + 7A) reduced desensitizati
273   In summary, the sensitivity of gp41 HR1 to alanine substitutions suggests that even subtle changes
274                   The majority (13 of 15) of alanine substitutions supported yeast growth as the sole
275  non-phosphorylatable Ser282 (i.e. serine to alanine substitution, TG(S282A)).
276 ) that abrogated binding of ARF and a single alanine substitution that allowed ARF binding but inhibi
277                        Previously identified alanine substitutions that can reduce AR3A binding to ex
278 he GP64 postfusion structure, we generated 2-alanine substitutions that scanned the two so-called fus
279 erB GR subunits in spores; and (iv) found no alanine substitutions that specifically affect interacti
280                                          The alanine substitution (that would promote a alpha-helical
281                                 Deletions or alanine substitutions throughout FUD caused loss of both
282 t the Asn-348-Tyr-427 interaction, and (iii) alanine substitutions throughout the region Phe-416-Pro-
283                                      We used alanine substitutions to examine the roles of all indivi
284 e, microspheres coated with JAM-A containing alanine substitutions to residues 43NNP45 (NNP-JAM-A) wi
285                            Here we show that alanine substitutions to these residues also affect 3'-e
286     The extent of sensitivity of gp120-C5 to alanine substitutions underscores the importance of this
287                  Consistently, a cysteine-to-alanine substitution was found in a reporter protein exp
288                               In contrast to alanine substitution, we found that mutation of K96 to a
289                                        Using alanine substitutions, we identify several amino acid re
290 es for NS4B function in HCV RNA replication, alanine substitutions were engineered in place of 28 cha
291 stitution studies were employed, and several alanine substitutions were found to induce a partial ope
292        Four methionine substitutions and two alanine substitutions were introduced at fixed positions
293 sed, isolated A2 domain (bA2) variants where alanine substitutions were made for individual residues
294                          Single and multiple alanine substitutions were made in these conserved resid
295                                    Serine-to-alanine substitutions were used to ablate the abilities
296                                              Alanine substitutions within a hydrophobic "neck" of the
297               Indeed, we identified multiple alanine substitutions within loop>J of the full length a
298 rotein import specifically, whereas specific alanine substitutions within the IBBL abrogated this act
299                                      We made alanine substitutions within the putative DNA binding he
300                                              Alanine substitutions within the WDXNWD motif abolish th

 
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