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1 various fates of ribosomes that pause during translation termination.
2 ex set of molecular functions in addition to translation termination.
3 ents of RF1 and RF2 are critical to accurate translation termination.
4 ular basis for stop codon recognition during translation termination.
5 ATPase activity during both mRNA export and translation termination.
6 ested ribosomes during inhibition of its own translation termination.
7 ctional importance of individual residues in translation termination.
8 Gle1, and IP(6) are also required for proper translation termination.
9 e cleavage of stop codons during inefficient translation termination.
10 n recognition during both tRNA selection and translation termination.
11 as identified that suppresses nonsense codon translation termination.
12 onsense mutations) typically cause premature translation termination.
13 RNA binding site (A-site) during inefficient translation termination.
14 nition and peptide release during eukaryotic translation termination.
15 lowed the established rules for hierarchy of translation termination.
16 haracterized-for example, those required for translation termination.
17 portant role in ester bond hydrolysis during translation termination.
18 t lead to splicing aberrations and premature translation termination.
19 lation elongation or a reduced efficiency of translation termination.
20 pears to be frequent, suggesting inefficient translation termination.
21 ng a critical role in peptide release during translation termination.
22 between the G1093 region and helix 73 during translation termination.
23 ribosome pauses at stop codons during normal translation termination.
24 egion has an adaptive function separate from translation termination.
25 ribosomal proteins and a yeast suppressor of translation termination.
26 reinitiate on AUG codons 5' to the point of translation termination.
27 Hel2 probably interacts with mRNA during translation termination.
28 next downstream AUG, resulting in premature translation termination.
29 A clones) resulted in a frameshift and early translation termination.
30 rotein sequence context and caused premature translation termination.
31 nt whose function is likely to be related to translation termination.
32 eRF3 or eRF1 reduced SFL-mediated premature translation termination.
33 ribosomal particles due to a dysfunction in translation termination.
34 of eRF3a which itself has an active role in translation termination.
35 ystem, we show that PABP directly stimulates translation termination.
36 and suggests involvement of L27 in bacterial translation termination.
37 op codon because of ribosomal pausing during translation termination.
38 on the mechanisms of canonical and premature translation termination.
39 f thousands of genes without manipulation of translation termination.
40 be achievable without general disruption of translation termination.
41 pid ribosome exchange into the cytosol after translation termination.
42 he degradation of mRNAs undergoing premature translation termination.
43 , essential gene in eukaryotes implicated in translation termination.
44 ain translational fidelity by involvement in translation termination.
45 One potential source of DRiPs is premature translation termination.
46 UGA codon as selenocysteine (Sec) instead of translation termination.
47 ear mRNA export, translation initiation, and translation termination.
50 eracts with the release factors, (ii) delays translation termination and (iii) dissociates post-termi
51 in a transient increase in the efficiency of translation termination and a loss of the [PSI+] phenoty
52 ndicated that PAIP1 and PAIP2 participate in translation termination and are important regulators of
54 a nascent peptide motif that interferes with translation termination and elicits tmRNA.SmpB activity.
56 om complete loss of RFC protein due to early translation termination and increased turnover of a muta
57 ion involved the introduction of overlapping translation termination and initiation codons in-frame i
58 by eRF1, revealing principles of eukaryotic translation termination and laying the foundation for ne
61 cerevisiae orthologue that functions in both translation termination and NMD, has been the only facto
64 Dlg4) exon 18 splicing, leading to premature translation termination and nonsense-mediated mRNA decay
65 slated small ORFs (sORFs) by quantitation of translation termination and peptidic analysis identified
66 rveillance mechanism that monitors premature translation termination and promotes degradation of aber
67 ndings emphasize the importance of efficient translation termination and reveal unexpected link betwe
68 hydrolysis by UPF1 is required for efficient translation termination and ribosome release at a premat
70 is an integral functional unit important for translation termination and that the presence of L11 in
71 natively, the effect of RAC/Ssb mutations on translation termination and the absence of an effect on
72 ve hammerhead ribozyme structure between the translation termination and the polyadenylation signals
73 is conserved rRNA structure in UGA-dependent translation termination and, taken with previous in vitr
75 tive amino acid changes, potential premature translation terminations and potential altered splicing.
76 nascent peptide motif (which interferes with translation termination) and quantified the protein chai
77 the pioneer round of translation, premature translation termination, and proteins failing to fold pr
78 llance complex assembles onto the mRNA after translation termination, and scans the mRNA in a 3' to 5
79 ined in mRNA export, translation initiation, translation termination, and stress granule formation.
81 Transcripts harboring premature signals for translation termination are recognized and rapidly degra
83 erapy utilizes small molecules that suppress translation termination at a PTC to restore synthesis of
85 represses downstream translation by blocking translation termination at its own stop codon and by cau
86 have been shown to affect the efficiency of translation termination at nonsense codons and/or the pr
87 h as gentamicin have the ability to suppress translation termination at premature stop mutations, lea
88 TP hydrolysis also reduced the efficiency of translation termination at some termination signals but
90 nstrated that both PAIP1 and PAIP2 prevented translation termination at the premature termination cod
91 t, the Euplotes hybrid facilitated efficient translation termination at UAA and UAG codons but not at
92 the mRNP can alter the rate of key steps in translation termination; (b) the discrimination between
93 nts that enable the ribosome to overcome the translation termination blockage imposed by an arrest pe
95 is an epigenetic modifier of the fidelity of translation termination, but its impact on yeast biology
96 er RNA decay (NMD) is triggered by premature translation termination, but the features distinguishing
98 ical approaches, we show that PF846 inhibits translation termination by arresting the nascent chain (
100 ribosome binding, polypeptide elongation, or translation termination, can influence the susceptibilit
104 is activated by the presence of a premature translation termination codon (PTC) in an atypical seque
108 ormal open reading frame (ORF) and brought a translation termination codon 33 amino acids downstream.
110 struction of a gammaHV68 mutant containing a translation termination codon in the LANA ORF (73.STOP).
111 n with a mutant virus containing a premature translation termination codon in the UL83 open reading f
112 ximately 180 bp, located 260 bases 3' to the translation termination codon of p21WAF1/CIP1 cDNA, was
113 on VIII that changes tyrosine codon 426 to a translation termination codon resulting in an EPOR prote
114 an RNA element downstream of the gag natural translation termination codon that prevents degradation
121 man genetic diseases are caused by premature translation-termination codon (PTC)-generating mutations
122 tron 3, and in the second allele a premature translation-termination codon in exon 1 was identified.
125 essenger RNAs (mRNAs) that contain premature translation termination codons (PTCs) are targeted for r
127 apid degradation of mRNA harboring premature translation termination codons (PTCs) serves to protect
129 es aberrant transcripts containing premature translation termination codons and regulates the levels
130 ox translation initiation codons and partial translation termination codons are absent, the use of TG
134 ative splicing switches introduces premature translation termination codons into selected transcripts
135 68 mutant virus (45STOP) by the insertion of translation termination codons into the portion of the g
136 D) eliminates transcripts carrying premature translation termination codons, but the role of NMD on y
137 .IX (hF.IX), or F.IX variants with premature translation termination codons, or missense mutations, u
139 pound that promotes readthrough of premature translation termination codons, suggesting that it may h
140 we investigated the efficiency of eukaryotic translation termination codons, to assess codon readthro
154 allographic refinement to a 70S ribosome-RF1 translation termination complex that was recently solved
156 cerevisiae, Sup35p (eRF3), a subunit of the translation termination complex, can take up a prion-lik
157 ike [PSI(+)] variants, where the strength of translation termination corresponds to the level of solu
158 3' untranslated region of mRNAs that affects translation termination, deadenylation, and mRNA decay.
159 visiae Sup35/[PSI(+)] prion, which confers a translation termination defect and expression level-depe
160 re specifically impaired in establishing the translation termination defect that normally accompanies
161 ants recapitulate all of the mRNA export and translation termination defects found in mutants deplete
162 RF1 mutants are quantitatively unlinked with translation termination defects, suggesting that the evo
165 to describe the prion-mediated regulation of translation termination efficiency and discuss its impli
166 -like determinant [PSI+] is able to regulate translation termination efficiency in response to enviro
167 termination and polyadenylation) influences translation termination efficiency, mRNA poly(A) tail le
168 [PSI+] strains exhibit a marked decrease in translation termination efficiency, which permits decodi
170 ants have previously been shown to exhibit a translation termination error phenotype and the sup44+ a
172 ling activities are shared by the homologous translation termination factor complex eRF1:eRF3, sugges
173 cent studies have shown that domain 1 of the translation termination factor eRF1 mediates stop codon
175 ent premature termination is mediated by the translation termination factor eRF1, which recognizes ri
177 e misfolded and self-propagating form of the translation termination factor eRF3 (Sup35), can be cure
179 ics and the prion state of the S. cerevisiae translation termination factor eRF3, Rps23p hydroxylatio
183 3), casein kinase 1alpha (CK1alpha), and the translation termination factor GSPT1] whose ubiquitylati
186 otein Lsb2 (Pin3) promotes conversion of the translation termination factor Sup35 into its prion form
187 es derived from the prion domain NM of yeast translation termination factor Sup35 persistently propag
188 pic prion strains, weak and strong, of yeast translation termination factor Sup35 with respect to ang
195 rpetuating change in the conformation of the translation termination factor Sup35p is the basis for t
196 is a nonfunctional, ordered aggregate of the translation termination factor Sup35p that influences ne
197 ange in the conformation and function of the translation termination factor Sup35p, and is transmitte
199 The yeast Sup35 protein is a subunit of the translation termination factor, and its conversion to th
200 the Sup35 protein, normally a subunit of the translation termination factor, but impaired in this vit
201 a molecular glue, inducing degradation of a translation termination factor, GSPT1 to achieve its pot
203 ] prion is a self-propagating amyloid of the translation termination factor, Sup35p, of Saccharomyces
205 sure as a result of aggregation of the Sup35 translation termination factor, which increases stop cod
217 st [PSI+] prion is an epigenetic modifier of translation termination fidelity that causes nonsense su
219 d Pyl insertion can effectively compete with translation termination for UAG codons obviating the nee
220 e initiation ternary complex after premature translation termination has occurred nor the elongation
221 (NMD) pathway functions by checking whether translation termination has occurred prematurely and sub
222 ontaining that structure was found to affect translation termination in a codon-specific manner.
223 al ADAR2 protein expression due to premature translation termination in an alternate reading frame.
227 se results support a direct role for eRF3 in translation termination in higher eukaryotes and also hi
228 th Gle1 and IP(6) are required for efficient translation termination in Saccharomyces cerevisiae and
230 nding, we quantified the effects of PAIPs on translation termination in the presence or absence of PA
232 PAIP2 inhibited the activity of free PABP on translation termination in vitro However, after binding
234 ribosome positioning and find that premature translation termination in yeast extracts is indeed aber
238 The results presented here suggest that translation termination is important for assembly of the
247 genomes, as well as genomes containing an E6 translation termination linker, an E6 frameshift mutatio
248 istic view of how MoMLV manipulates the host translation termination machinery for the synthesis of i
249 interact with each other, the ribosome, the translation termination machinery, and multiple mRNA dec
250 putative surveillance complex that enhances translation termination, monitors whether termination ha
251 e genes (Ofd1, Schizosaccharomyces pombe) to translation termination/mRNA polyadenylation (Tpa1p, Sac
252 ntaining mutant HPV 31 E7 genes, including a translation termination mutant, two Rb-binding site muta
253 HPV type 11 (HPV-11) genomes that contained translation termination mutations in E6 or E7 were const
258 -containing reporters results from premature translation termination on out of frame stop codons foll
261 heir release into bulk lipid is triggered by translation termination or, in some cases, by the arriva
264 ingle small-molecule drug that modulates the translation termination process at a premature nonsense
266 sitive to the PSI state, indicating either a translation termination process independent of eRF3 or a
270 d in a general decrease in the efficiency of translation termination rather than a decrease at a subs
272 d expression occurred as a result of a novel translation termination/reinitiation event between the n
276 sequence-dependent manner to inhibit its own translation termination, resulting in persistence of the
281 coding exons, leading to a frameshift and a translation termination signal 20 codons after the AUG.
282 ight neurofilament (NF-L) mRNA, spanning the translation termination signal, participates in regulati
284 nation efficiency, which permits decoding of translation termination signals and, presumably, the pro
285 RF3 is required to couple the recognition of translation termination signals by eRF1 to efficient pol
288 of UPF3B during the early and late phases of translation termination suggest that UPF3B is involved i
289 that NMD factors appear to dictate efficient translation termination, suggests that NMD factors do no
290 ng a tetrapeptide and to propose a model for translation termination that accounts for the cooperativ
291 th important roles in ribosome recycling and translation termination that are conserved in eukaryotes
293 e nascent polypeptide can affect the rate of translation termination, thereby influencing ribosome pa
294 HCV 3'UTR retains ribosome complexes during translation termination to facilitate efficient initiati
296 yadenylate-binding protein (PABP) stimulates translation termination via interaction of its C-termina
297 gnal-dependent decrease in the efficiency of translation termination was due to a defect in either eR
299 he basis of these results and the process of translation termination, we suggest a multistep model fo