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1 while proofreading errors with its intrinsic 3' 5' exonuclease.
2 ted element and which blocks the action of a 3'-5' exonuclease.
3 e domain did not function independently as a 3'-5' exonuclease.
4  a catalytically bifunctional DNA polymerase:3'-5' exonuclease.
5 A-DNA hybrid duplex is the substrate for the 3'-5' exonuclease.
6 nged to that predicted for the activity of a 3'-5' exonuclease.
7 ameshift mutations in TREX1, which encodes a 3'-5' exonuclease.
8 product and to Ustilago maydis Rec1, a known 3'->5'exonuclease.
9 at sidRNA production depends on distributive 3'-5' exonucleases.
10 r then could be subject to proofreading by a 3'-->5' exonuclease.
11       We recently showed that hWRN is also a 3'-->5' exonuclease.
12 r poly(U) to protect RNA substrates from the 3'-->5' exonuclease.
13   The TREX1 and TREX2 genes encode mammalian 3'-->5' exonucleases.
14 s that these recombinant proteins are active 3'-->5' exonucleases.
15 ecBCD enzyme, which is both a helicase and a 3' --> 5' exonuclease.
16 the RecQ DNA helicase family that contains a 3' --> 5'-exonuclease.
17 xonucleolytic processing by a combination of 3' --> 5' exonucleases.
18 to regulate histone mRNA metabolism, and the 3'-5' exonuclease 3'hExo trims its 3'-end after processi
19                                 Through this 3'-5' exonuclease action the total 5S RNA of the mutant
20              This fragment contains both the 3'-5' exonuclease active site and part of the autologous
21 l gamma) shares conserved DNA polymerase and 3'-5' exonuclease active site motifs with Escherichia co
22   There are two main differences between the 3'-5' exonuclease active site regions of the two protein
23 fractional occupancies of the polymerase and 3'-5' exonuclease active sites of Klenow fragment.
24 A primer terminus between the polymerase and 3'-5' exonuclease active sites of the mutant proteins wa
25            To discern how the polymerase and 3' --> 5' exonuclease activities contribute to the high
26     We find that both the polymerization and 3' --> 5' exonuclease activities of gp43 are totally inh
27 tical properties, and the DNA polymerase and 3' --> 5' exonuclease activities were shown unambiguousl
28 n that possesses both 3' --> 5' helicase and 3' --> 5' exonuclease activities.
29 es were used to test whether 5' -->3' and/or 3' -->5' exonuclease activities mediated degradation.
30 nation of mismatch-specific endonuclease and 3'-->5' exonuclease activities in the reaction mixture.
31 n2 protein contains 3'-phosphodiesterase and 3'-->5' exonuclease activities, and mutation of the acti
32 ince none of these processing steps involves 3'-->5' exonuclease activities, the requirement for the
33 ease activities as well as deadenylating and 3'-->5' exonuclease activities.
34 ase family and contains 3'-->5' helicase and 3'-->5' exonuclease activities.
35  protein (WRN) that has ATPase, helicase and 3'-->5' exonuclease activities.
36 ed polypeptide has both 3'-->5' helicase and 3'-->5' exonuclease activities.
37 dividual contributions of its polymerase and 3'-->5' exonuclease activities.
38 es catalytic centers for both polymerase and 3'-5' exonuclease activities that are separated by about
39 t DNA polymerases with a range of attenuated 3'-5' exonuclease activities was constructed from a chim
40 t (PolD1) possessing both DNA polymerase and 3'-5' exonuclease activities, and a smaller subunit (Pol
41  subunit, which has intrinsic polymerase and 3'-5' exonuclease activities, contains sequence motifs t
42 it contains both RNA and single-stranded DNA 3'-5' exonuclease activities.
43 e family, PolB possesses both polymerase and 3'-5' exonuclease activities.
44 purified protein had both DNA polymerase and 3'-5' exonuclease activities.
45 parent mass) and has both DNA polymerase and 3'-5'-exonuclease activities.
46 (in the context of a single-nucleotide gap), 3' --> 5' exonuclease activity (in the context of a nick
47  the fast mismatch excision catalyzed by the 3' --> 5' exonuclease activity further lowers the error
48   This represents the first demonstration of 3' --> 5' exonuclease activity in the polymerase catalyt
49 was completely stalled by the lesion, as its 3' --> 5' exonuclease activity increased significantly a
50 gnition of a properly oriented chi site, the 3' --> 5' exonuclease activity is attenuated.
51                          Pol epsilon lacking 3' --> 5' exonuclease activity is less accurate to a deg
52                                          The 3' --> 5' exonuclease activity is shown to be highly dep
53                             Furthermore, the 3' --> 5' exonuclease activity of DNA polymerase epsilon
54 R studies confirmed that the DNA-binding and 3' --> 5' exonuclease activity of human NDK1 is an intri
55                                 Finally, the 3' --> 5' exonuclease activity of PolB1 was the highest
56 te-bearing terminal nucleotide by way of the 3' --> 5' exonuclease activity of polymerase I.
57                                          The 3' --> 5' exonuclease activity on double-stranded DNA is
58          Replicative DNA polymerases possess 3' --> 5' exonuclease activity to reduce misincorporatio
59          The role of photoproduct structure, 3' --> 5' exonuclease activity, and processivity on poly
60  show that in addition to attenuation of the 3' --> 5' exonuclease activity, recognition of chi by th
61 find that human NDK5, NDK7, and NDK8 contain 3' --> 5' exonuclease activity.
62 man NDK1 (NM23-H1) has been reported to have 3' --> 5' exonuclease activity.
63 xamined on Klenow fragments with and without 3' --> 5' exonuclease activity.
64        Pol B100 retains a wild-type level of 3' --> 5' exonuclease activity.
65 is intermediate product is then trimmed by a 3' -->5' exonuclease activity.
66 AMHD1 protein also possesses metal-dependent 3'-->5' exonuclease activity against single-stranded DNA
67           AP endonuclease 1, which possesses 3'-->5' exonuclease activity and potentially serves as a
68                                Inhibition of 3'-->5' exonuclease activity by guanosine monophosphate
69    The TREX enzymes process DNA as the major 3'-->5' exonuclease activity in mammalian cells.
70               These results demonstrate that 3'-->5' exonuclease activity is an important prerequisit
71 e only biological function attributed to the 3'-->5' exonuclease activity of DNA polymerases was proo
72                                          The 3'-->5' exonuclease activity of hPol further enhances po
73      Quantitative analyses revealed that the 3'-->5' exonuclease activity of p53 effectively removed
74                                          The 3'-->5' exonuclease activity of p53 has recently been re
75 genesis in yeast strains with defects in the 3'-->5' exonuclease activity of replicative DNA polymera
76 ny replicative polymerases have an efficient 3'-->5' exonuclease activity that excises misincorporate
77  protect otherwise unstable transcripts from 3'-->5' exonuclease activity, a phenomenon that may occu
78 nsistent with this result, in the absence of 3'-->5' exonuclease activity, both primers were extended
79 tains both a 3'-->5' helicase activity and a 3'-->5' exonuclease activity, the stimulating activity w
80                Yet the mutants retain robust 3'-->5' exonuclease activity.
81 ssays, both long isoforms were shown to have 3'-->5' exonuclease activity.
82 ML cells treated with STI-571 show increased 3'-->5' exonuclease activity.
83 ers of the recQ family, it contains a unique 3'-->5' exonuclease activity.
84 NA with 3'-->5' polarity, and also possesses 3'-->5' exonuclease activity.
85 polymerase (pol) alpha, an enzyme that lacks 3'-->5' exonuclease activity.
86 utD5 holoenzyme to have a 30-50-fold reduced 3'-->5'-exonuclease activity.
87  activity, since reverse transcriptases lack 3'-5' exonuclease activity and generally have low fideli
88 se 1 (APE1) prevented TNR expansions via its 3'-5' exonuclease activity and stimulatory effect on DNA
89 (hWRN-N(70-240)), exhibits the same level of 3'-5' exonuclease activity as the previously described e
90 rdinating with flap endonuclease 1, the APE1 3'-5' exonuclease activity cleaves the annealed upstream
91 Spo11--but a specific function for the Mre11 3'-5' exonuclease activity has remained elusive.
92 s that are homologous to those important for 3'-5' exonuclease activity in other polymerases.
93 ests that POLG1 requires both polymerase and 3'-5' exonuclease activity in the same molecule.
94 tase domain of OsCCR4a and OsCCR4b exhibited 3'-5' exonuclease activity in vitro, and point mutation
95 CAF1B, rOsCAF1G, and rOsCAF1H, all exhibited 3'-5' exonuclease activity in vitro.
96                APE2 3'-phosphodiesterase and 3'-5' exonuclease activity is essential for single-stran
97 ded strand displacement synthesis unless its 3'-5' exonuclease activity is removed.
98                 However, inactivation of the 3'-5' exonuclease activity is sufficient to allow the po
99                    HmtSSB enhances intrinsic 3'-5' exonuclease activity of p53, particularly in hydro
100 rporated nucleotides are excised through the 3'-5' exonuclease activity of the DNA polymerase holoenz
101                         The mechanism of the 3'-5' exonuclease activity of the Klenow fragment of DNA
102 were constructed in an attempt to reduce the 3'-5' exonuclease activity of Thermococcus sp. 9 degrees
103                           Abolishment of the 3'-5' exonuclease activity of wild-type pol I increased
104       DSBs stimulate the phosphorylation and 3'-5' exonuclease activity of X-Mre11 complex.
105                                 However, the 3'-5' exonuclease activity on polynucleotide substrates
106 and within single-stranded DNA, as well as a 3'-5' exonuclease activity on single-stranded DNA.
107 olymerase is often used either alone for its 3'-5' exonuclease activity or together with a 5'-3' exon
108 as evidenced by the significant reduction in 3'-5' exonuclease activity resulting from a Lys(12) to g
109 Many DNA polymerases also possess a separate 3'-5' exonuclease activity that is used to remove misinc
110 irected synthesis of DNA and uses a separate 3'-5' exonuclease activity to edit misincorporated bases
111                                          The 3'-5' exonuclease activity was assigned to NM23-H1 by vi
112   Single-strand- and double-strand-dependent 3'-5' exonuclease activity was detected, as was a margin
113 UVC-induced (254 nm) DNA damage, whereas its 3'-5' exonuclease activity was dominant in the suppressi
114 change the polymerase activity; however, the 3'-5' exonuclease activity was reduced 2-29-fold, depend
115         We now show that inhibition of MRE11 3'-5' exonuclease activity with Mirin reduces the freque
116 ds DNA replication, mediated by an intrinsic 3'-5' exonuclease activity within its PHP domain.
117 ase with efficient reverse transcriptase and 3'-5' exonuclease activity, a family of mutant DNA polym
118 p53 present in the protein complex exhibited 3'-5' exonuclease activity, it was incapable of excising
119 ount of an Archaea DNA polymerase possessing 3'-5' exonuclease activity, since reverse transcriptases
120 ect the inhibitor from excision by the viral 3'-5' exonuclease activity.
121                  AN34 also displays enhanced 3'-5' exonuclease activity.
122 nt, leading to their eventual removal by the 3'-5' exonuclease activity.
123 eplicative DNA polymerase with an associated 3'-5' exonuclease activity.
124 fied enzyme demonstrated both polymerase and 3'-5' exonuclease activity.
125  kinetics, strand displacement synthesis and 3'-5' exonuclease activity.
126 lso possesses single-stranded DNA and/or RNA 3'-5' exonuclease activity.
127 OB binds to single-stranded DNA and exhibits 3'-5' exonuclease activity.
128 ng recombinant protein we confirmed that the 3'-5'-exonuclease activity of Pol delta can efficiently
129 n-terminated 3'-end of the DNA primer by the 3'-5'-exonuclease activity of Pol gamma were similar (0.
130  the ability of Pol delta to back up via its 3'-5'-exonuclease activity, a process called idling, mai
131 d RNA editing exonuclease 1 (REX1), exhibits 3'-5'-exonuclease activity.
132                                Together, the 3'->5' exonuclease activity and the variable mismatch ex
133 C and the three small subunits regulates the 3'->5' exonuclease activity of the hPolepsilon holoenzym
134                            Surprisingly, the 3'->5' exonuclease activity of the hPolepsilon holoenzym
135 e that the three biological functions of the 3'-->5' exonuclease addressed in this study are performe
136 t catalyzes three DNA-dependent reactions: a 3'-5'-exonuclease, an ATPase, and a 3'-5'-helicase.
137 y deficiency of the WRN protein that harbors 3' -->5' exonuclease and RecQ-type 3' --> 5' helicase ac
138 codes a multifunctional nuclear protein with 3'-->5' exonuclease and 3'-->5' helicase activities.
139             Importantly, PCNA stimulates the 3'-->5' exonuclease and 3'-phosphodiesterase activities
140 protein of Saccharomyces cerevisiae contains 3'-->5' exonuclease and 3'-phosphodiesterase activities,
141 ination hot spot chi, RecBCD enzyme has both 3'-->5' exonuclease and a weaker 5'-->3' exonuclease act
142 s preferentially on single-stranded DNA as a 3'-->5' exonuclease and also functions as a 3'-phosphodi
143                 We therefore examined WRN, a 3'-->5' exonuclease and helicase mutated in Werner syndr
144 odes a nuclear protein (WRN) which possesses 3'-5' exonuclease and ATPase-dependent 3'-5' helicase ac
145 es sequential detection of the activities of 3'-5' exonuclease and DNase I in cell lysates.
146 o of its attendant enzymatic activities, the 3'-5' exonuclease and nucleoside diphosphate kinase, are
147 eplication by ISG20 and PKR depends on their 3'-5' exonuclease and protein kinase activities, respect
148 by the Escherichia coli Klenow fragment (KF) 3'-5' exonuclease and snake venom phosphodiesterase.
149 imers is possible only by cooperation of the 3'-5'-exonuclease and DNA polymerase activities of the e
150 endence of Escherichia coli exonuclease III, 3'-5'-exonuclease and exoribonuclease H activities is re
151  only) and recJ (5'-->3' exonuclease), xonA (3'-->5' exonuclease) and partially dependent on recQ (he
152 a subunit (polymerase), the epsilon subunit (3'-->5' exonuclease), and the theta subunit, in the line
153 ture is folded into NH(2)- terminal, editing 3'-5' exonuclease, and polymerase domains that are topol
154 rotein complex composed of RET1 TUTase, DSS1 3'-5' exonuclease, and three additional subunits.
155  formamido-pyrimidine-DNA glycosylase (FPG), 3'-5' exonucleases, and enzymes with template-independen
156                 Related exosome complexes of 3'-->5' exonucleases are present in the nucleus and the
157                                              3'-5' Exonucleases are believed to play an important rol
158 re, we identified PNLDC1, an uncharacterized 3'-5' exonuclease, as Trimmer in silkworms.
159   This enzyme was originally identified as a 3' --> 5' exonuclease, but we show here that NrnA is bid
160   We have defined NM23-H1 biochemically as a 3'-5' exonuclease by virtue of its ability in stoichiome
161  beta long noncoding RNAs are protected from 3'-5' exonucleases by highly conserved triple helical st
162 s is required before RNase P and the various 3' --> 5' exonucleases can complete tRNA maturation.
163 lian TREX1 and TREX2 proteins contain potent 3'-->5' exonucleases capable of functioning in this capa
164                                          The 3'-->5' exonucleases catalyze the excision of nucleoside
165                       Kinetic parameters for 3'-5' exonuclease cleavage of single- and double-strande
166 y impaired exonuclease activity and that the 3'-5' exonuclease contributes substantially to the fidel
167  suggest the existence of a highly conserved 3'-5' exonuclease core domain within Rrp6p.
168 sing exonuclease III and T4 DNA polymerase's 3'-->5' exonuclease, covers approximately 35 base pairs
169 Nase I, lambda exonuclease and T4 polymerase 3'-->5'exonuclease, covers approximately 40 nt and is ne
170 ine leukemia virus reverse transcriptase and 3' --> 5' exonuclease-deficient (exo-) Vent polymerase w
171            However, it has been shown that a 3'-->5' exonuclease-deficient form of the Klenow fragmen
172 olymerases Sequenase 1.0, Sequenase 2.0, and 3'-->5' exonuclease-deficient Klenow fragment greatly de
173   Primer extension studies, catalyzed by the 3'-->5' exonuclease-deficient Klenow fragment of Escheri
174 igonucleotides by both primer extension with 3'-->5'exonuclease-deficient Klenow fragment or T4 polym
175 template-directed nucleotide addition by the 3'-5' exonuclease-deficient large fragment of Escherichi
176  substitutions in the polymerase domain of a 3'-5'-exonuclease-deficient Klenow fragment.
177  OLE1 transcript acts by activating exosomal 3' --> 5'-exonuclease degradation activity.
178 s greatly elevated in phage deficient in the 3'-5' exonuclease, DexA, suggesting that the length of 3
179  the role of the Perlman syndrome-associated 3'-5' exonuclease Dis3l2 in rRNA processing.
180  PCR assays, we show here that the bacterial 3'-5' exonucleases DnaQ and ExoT can trim long 3' overha
181      Our findings implicate the E. coli host 3'-5' exonucleases DnaQ and ExoT in spacer adaptation an
182  even a heterozygous pol3-01 mutation in the 3'-->5' exonuclease domain of DNA polymerase delta.
183 main homologous to bacterial RNase D and the 3'-5' exonuclease domain of DNA polymerase I in the Wern
184                                  The editing 3'-5' exonuclease domain of gp43 is homologous to that o
185 rtitioning of DNA to the spatially separated 3'-5' exonuclease domain, providing an additional mechan
186                                        EXD2 (3'-5' exonuclease domain-containing protein 2) is an ess
187 l protein with a conserved DEDDy superfamily 3'-5' exonuclease domain.
188 ion of the WS protein containing a potential 3'-5' exonuclease domain.
189                The D368A mutation within the 3'-5'-exonuclease domain of the herpes simplex type 1 DN
190 rone, owing to their lack of a proofreading (3'- 5' exonuclease) domain.
191 n each of the three DNA polymerase and three 3' --> 5' exonuclease domains identified by biochemical
192 chondrial degradosome, which also includes a 3' --> 5' exonuclease, Dss1p.
193  polymerase subunit, alpha, the proofreading 3'-->5' exonuclease, epsilon, and a subunit of unknown f
194  (pol) site, DNA polymerases have a separate 3' --> 5' exonuclease (exo) editing activity that is inv
195 Many DNA polymerases (Pol) have an intrinsic 3'-->5' exonuclease (Exo) activity which corrects polyme
196 mulate the polymerase (pol) activity and the 3'-5' exonuclease (exo) activity of T4 DNA polymerase (4
197  of a replicase generally have a more potent 3'-5' exonuclease (exo) activity than A family DNA polym
198 ent failures, result in substitutions in the 3'-5' exonuclease (Exo) domain of the catalytic subunit
199 d by both the 5'-3' exonuclease RecJ and the 3'-5' exonuclease ExoI, observations that suggest the im
200 at of other RNA viruses and is mediated by a 3'-->5' exonuclease (ExoN) activity that probably functi
201                      PAP I competes with the 3' -> 5' exonucleases for pre-tRNA substrates adding sho
202                                     When the 3'-->5' exonuclease free (exo-) Klenow fragment of DNA p
203  primer extension reactions catalyzed by the 3' --> 5' exonuclease-free (exo(-)) Klenow fragment of E
204  primer extension reactions catalyzed by the 3'-->5' exonuclease-free Klenow fragment of Escherichia
205 insight into the mechanism for Nfo-catalyzed 3'-->5' exonuclease function and its inhibition by 3'-te
206  D-loop structure is readily attacked by the 3'-->5' exonuclease function of WRN.
207    Unlike gamma DNA polymerases, ablation of 3'-5' exonuclease function resulted in a modest 5-8-fold
208 es 3'-phosphodiesterase, 3'-phosphatase, and 3'-->5'-exonuclease functions specific for the 3' termin
209 y I-RNase is non-specific; I-RNase acts as a 3'-->5' exonuclease generating 5'-NMPs as products.
210   Here we identify oligoribonuclease (Orn)-a 3'-->5' exonuclease highly conserved among Actinobacteri
211 te internucleotide linkages are resistant to 3'-->5' exonuclease hydrolysis, rendering the target DNA
212 d-type 9 degrees N polD were used to examine 3'-5' exonuclease hydrolysis activity in the presence of
213  a cell death process implicating this major 3' --> 5' exonuclease in genomic DNA degradation to mini
214        Both the 5' --> 3' DNA polymerase and 3' --> 5' exonuclease in pol gamma are stimulated 15-20-
215 monstrated both 5' --> 3' DNA polymerase and 3' --> 5' exonuclease in the recombinant polypeptide.
216 (U) tracts protected RNA substrates from the 3'-->5' exonuclease in a protein-dependent fashion.
217 il blocks the activity of a highly efficient 3'-->5' exonuclease in HeLa extracts.
218 e to dnaQ, encoding the epsilon proofreading 3'-5'-exonuclease, interacts with alpha but does not for
219 hereby RNase T and RNase PH, the two primary 3' --> 5' exonucleases involved in the final step of 3'-
220 ither RNase T and/or RNase PH, the two major 3' --> 5' exonucleases involved in the final step of tRN
221            The yeast exosome is a complex of 3'-->5' exonucleases involved in RNA processing and degr
222                     Subsequently, a group of 3' -> 5' exonucleases mature the 3' ends of the majority
223 e to natural substrates, indicating that the 3' --> 5' exonuclease may contribute to DNA synthesis in
224                     Six substitutions in the 3'-5' exonuclease motif I were constructed in an attempt
225  of more than 100 bases per second and has a 3'-->5' exonuclease (nucleotide removing) activity at a
226 erminus unstacking, and base excision by the 3' --> 5' exonuclease of bacteriophage T4 (T4 pol) was e
227   We show that this mutation inactivates the 3' --> 5' exonuclease of poldelta and causes a mutator a
228 trosourea (MNU)-treated DNA templates by the 3' --> 5' exonuclease of T4 DNA polymerase.
229 lso overcomes this inhibition to promote the 3' -> 5' exonuclease of MRX, which requires ATP hydrolys
230 These results suggest a possibility that the 3'-->5' exonuclease of the wt p53 protein might provide
231 d on genetic and biochemical analysis of the 3'-->5' exonuclease of yeast DNA polymerase delta (Pol d
232 it mechanistic requirement for the intrinsic 3'-5'-exonuclease of pol delta.
233  In Escherichia coli, the effects of several 3'-5' exonucleases on RecA loading were studied by assay
234 pically contained a DNA polymerase devoid of 3'-5' exonuclease, or "proofreading", activity blended w
235                       The exosome complex of 3'-5' exonucleases participates in RNA maturation and qu
236 lease activity of T4 DNA polymerase (43Exo), 3'-5' exonucleases, play a role in intron homing.
237                                          The 3' --> 5'-exonucleases process DNA ends in many DNA repa
238      Furthermore, ExoI, ExoIII and the other 3'-5' exonucleases process these DSBs, antagonizing the
239 Zf-GRF mutations impact APE2 DNA binding and 3'-5' exonuclease processing, and also prevent efficient
240 erted ribonucleotides escape proofreading by 3' --> 5' exonuclease-proficient Pol epsilon, indicating
241  yeast Saccharomyces cerevisiae that possess 3' --> 5' exonuclease proofreading activity.
242 ur in the absence of the Umu proteins if the 3'-5' exonuclease proofreading activity of the pol III e
243 family of proteins that have homology to the 3'-5' exonuclease proofreading subunit (DnaQ) of E. coli
244                                          The 3'-5' exonuclease rate was measured at 0.18 s-1.
245 ing that the N420 side chain facilitates the 3'-5' exonuclease reaction by introducing strain into th
246 RNA polymerases based on the analysis of its 3'-5' exonuclease reaction in the context of crystal str
247 kpoint protein Rad17 and the Ustilago maydis 3' --> 5' exonuclease, Rec1.
248 ation and characterization of a nonexosomal, 3'-->5' exonuclease required for SL RNA 3'-end formation
249               Here we identify Dis3l2 as the 3'-5' exonuclease responsible for the decay of uridylate
250                       Here, we show that the 3'-->5' exonuclease RNase II plays an important role in
251  has become standard in the field to use the 3'-5' exonuclease RNase R.
252 pathway that does not involve any of the six 3' --> 5' exonucleases (RNase T, RNase PH, RNase D, RNas
253 sites, a DNA polymerization site (pol) and a 3'-5' exonuclease site (exo) for proofreading.
254  partitioning of the DNA substrates into the 3'-5' exonuclease site by 3-7-fold, relative to the perf
255 ed the level of partitioning of DNA into the 3'-5' exonuclease site by 8- and 18-fold, respectively,
256 ases to promote partitioning of DNA into the 3'-5' exonuclease site decreased in the following order:
257 er 3' terminus in the polymerase site or the 3'-5' exonuclease site of the enzyme, respectively.
258 o the binding of DNA primer-templates to the 3'-5' exonuclease site of the large proteolytic fragment
259  binding of mismatched DNA substrates to the 3'-5' exonuclease site relative to DNA bound at the poly
260 partitioning of bulged DNA substrates to the 3'-5' exonuclease site relative to that of properly base
261 ands to two divalent metal ions bound at the 3'-5' exonuclease site, designated A and B, indicated th
262 d a surprising preference for binding at the 3'-5' exonuclease site, despite the absence of mismatche
263 trates increased their partitioning into the 3'-5' exonuclease site, in accord with the results of an
264  promotes transfer of a DNA substrate to the 3'-5' exonuclease site, suggesting that the premutationa
265  the partitioning of mismatched DNA into the 3'-5' exonuclease site, suggesting that the tyrosine sid
266 , yielding a polymerizing complex, or to the 3'-5' exonuclease site, yielding an editing complex.
267 phically defined DNA-protein contacts at the 3'-5' exonuclease site.
268  proximity to a DNA 3' terminus bound at the 3'-5' exonuclease site.
269 d that metal A also helps to bind DNA to the 3'-5' exonuclease site.
270 ects on the binding of mismatched DNA to the 3'-5' exonuclease site.
271  primer/template to the 5'-3' polymerase and 3'-5' exonuclease sites of KF.
272 fractional occupancies of the polymerase and 3'-5' exonuclease sites of the enzyme for DNA substrates
273 a distribution of DNA between polymerase and 3'-5' exonuclease sites that was similar to that observe
274 e and revealed its association with Rrp6p, a 3'-->5' exonuclease specific to the nuclear exosome frac
275         TREX2 is an autonomous nonprocessive 3' --> 5' exonuclease, suggesting that it maintains geno
276                        Furthermore, TREX2 (a 3'-->5' exonuclease) suppressed identical repeat fusion
277  by approximately threefold and was the only 3'-5' exonuclease tested that did not deleteriously affe
278                            TREX1 is a potent 3' --> 5' exonuclease that degrades single- and double-s
279                                   Trex2 is a 3' --> 5' exonuclease that removes 3'-mismatched sequenc
280     Mre11 from Saccharomyces cerevisiae is a 3' -> 5' exonuclease that is responsible for 5' end degr
281 w here, in vitro and in vivo, that TdTL is a 3'-->5' exonuclease that catalyzes the deletion of nucle
282 uplication of the bacterial chromosome, is a 3'-->5' exonuclease that functions as a proofreader for
283 was isolated as a major nuclear DNA-specific 3'-->5' exonuclease that is widely distributed in both p
284 terfere with replication, whereas TREX2 is a 3'-->5' exonuclease that removes 3' mismatched nucleotid
285 is thaliana AtRrp4p is shown to be an active 3'-->5' exonuclease that requires a free 3'-hydroxyl and
286 inant holoenzyme contains DNA polymerase and 3'-5' exonuclease that are stimulated substantially by b
287 ty DNA replication depends on a proofreading 3'-5' exonuclease that is associated with the replicativ
288          We showed that these are U-specific 3'-5'-exonucleases that are inhibited by base pairing of
289 ut distinct forms of a complex containing 10 3'-->5' exonucleases, the exosome, are found in yeast nu
290 el to explain RecBCD's transformation from a 3' --> 5' exonuclease to a helicase when it meets a chi
291 ically increased the ability of the enzyme's 3'-->5' exonuclease to remove mispaired 3' bases in a pr
292 h mutations identified in genes encoding the 3'-->5' exonuclease TREX1 and the three subunits of the
293 these DNA fragments and that the cytoplasmic 3'-5' exonuclease Trex1 is required for their degradatio
294 e identified the cDNA sequences encoding two 3'-->5' exonucleases (TREX1 and TREX2) from mammalian ce
295         The size of fragments protected from 3'-->5' exonuclease trimming increases with increasing i
296 ral autonomous and DNA polymerase-associated 3'-5' exonucleases using a lacZ forward mutation assay.
297 otifs of B (alpha-)-type DNA polymerases and 3'-5' exonuclease were identified in the 845-amino-acid
298                                  A number of 3'-5' exonucleases were found to lower the error rate of
299 her show that the mouse WRN (mWRN) is also a 3'-->5' exonuclease, with substrate specificity similar
300 eas the combination of I709F and lack of the 3'-5' exonuclease yielded a 400-fold increase.

 
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