scholarly journals Base-pairing properties of O6-methylguanine in template DNA during in vitro DNA replication.

1984 ◽  
Vol 259 (13) ◽  
pp. 8095-8100
Author(s):  
E T Snow ◽  
R S Foote ◽  
S Mitra
2021 ◽  
Author(s):  
Katie H. Jameson ◽  
Christian J. Rudolph ◽  
Michelle Hawkins

ABSTRACTThe complete and accurate duplication of genomic information is vital to maintain genome stability in all domains of life. In Escherichia coli, replication termination, the final stage of the duplication process, is confined to the ‘replication fork trap’ region by multiple unidirectional fork barriers formed by the binding of Tus protein to genomic ter sites. Termination typically occurs away from Tus-ter complexes, but they become part of the fork fusion process when a delay to one replisome allows the second to travel more than halfway around the chromosome. In this instance, replisome progression is blocked at the non-permissive interface of Tus-ter and termination occurs when a converging replisome meets the non-permissive interface. To investigate the consequences of replication fork fusion at Tus-ter complexes, we established a plasmid-based replication system where we could mimic the termination process at Tus-ter in vitro. We developed a termination mapping assay to measure leading strand replication fork progression and demonstrate that the DNA template is under-replicated by 15-24 bases when replication forks fuse at Tus-ter complexes. This gap could not be closed by the inclusion of lagging strand processing enzymes as well as several helicases that promote DNA replication. Our results indicate that accurate fork fusion at Tus-ter barriers requires further enzymatic processing, highlighting large gaps that still exist in our understanding of the final stages of chromosome duplication and the evolutionary advantage of having a replication fork trap.


1981 ◽  
Vol 39 (1) ◽  
pp. 11-20 ◽  
Author(s):  
M Närkhammar-Meuth ◽  
R Eliasson ◽  
G Magnusson
Keyword(s):  

1992 ◽  
Vol 267 (8) ◽  
pp. 5361-5365
Author(s):  
M Hidaka ◽  
T Kobayashi ◽  
Y Ishimi ◽  
M Seki ◽  
T Enomoto ◽  
...  

1986 ◽  
Vol 261 (23) ◽  
pp. 10506-10510
Author(s):  
J K Rist ◽  
M Pearle ◽  
A Sugino ◽  
L B Rothman-Denes

1983 ◽  
Vol 258 (7) ◽  
pp. 4293-4297
Author(s):  
N P Higgins ◽  
D Moncecchi ◽  
P Manlapaz-Ramos ◽  
B M Olivera

BioEssays ◽  
2021 ◽  
Vol 43 (5) ◽  
pp. 2000309
Author(s):  
Jorge B. Schvartzman ◽  
Víctor Martínez ◽  
Pablo Hernández ◽  
Dora B. Krimer ◽  
María‐José Fernández‐Nestosa

2021 ◽  
Vol 19 ◽  
pp. 2057-2069
Author(s):  
Rebeca Bocanegra ◽  
G.A. Ismael Plaza ◽  
Carlos R. Pulido ◽  
Borja Ibarra

Viruses ◽  
2021 ◽  
Vol 13 (2) ◽  
pp. 196
Author(s):  
Sara Artusi ◽  
Emanuela Ruggiero ◽  
Matteo Nadai ◽  
Beatrice Tosoni ◽  
Rosalba Perrone ◽  
...  

The herpes simplex virus 1 (HSV-1) genome is extremely rich in guanine tracts that fold into G-quadruplexes (G4s), nucleic acid secondary structures implicated in key biological functions. Viral G4s were visualized in HSV-1 infected cells, with massive virus cycle-dependent G4-formation peaking during viral DNA replication. Small molecules that specifically interact with G4s have been shown to inhibit HSV-1 DNA replication. We here investigated the antiviral activity of TMPyP4, a porphyrin known to interact with G4s. The analogue TMPyP2, with lower G4 affinity, was used as control. We showed by biophysical analysis that TMPyP4 interacts with HSV-1 G4s, and inhibits polymerase progression in vitro; in infected cells, it displayed good antiviral activity which, however, was independent of inhibition of virus DNA replication or entry. At low TMPyP4 concentration, the virus released by the cells was almost null, while inside the cell virus amounts were at control levels. TEM analysis showed that virus particles were trapped inside cytoplasmatic vesicles, which could not be ascribed to autophagy, as proven by RT-qPCR, western blot, and immunofluorescence analysis. Our data indicate a unique mechanism of action of TMPyP4 against HSV-1, and suggest the unprecedented involvement of currently unknown G4s in viral or antiviral cellular defense pathways.


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