Exonuclease 1 (Exo1) Participates in Mammalian Non-Homologous End Joining and Contributes to Drug Resistance in Ovarian Cancer
MEDICAL SCIENCE MONITOR
Authors: He, Dongyun; Li, Tao; Sheng, Minjia; Yang, Ben
Abstract
Background: Exonuclease 1 (Exo1) participates in a variety of DNA damage repair, including mismatch repair, nucleotide ex- cision repair, and homologous recombination. Genetic study in yeast indicates a role of Exo1 in non-homologous end joining (NHEJ), acting as a regulator for accuracy repairing DNA. This study aimed to investigate the effects of human Exo1 in NHEJ and drug resistance in ovarian cells. Material/Methods: Ectopic expression of Exo1 was carried out using pcDNA3.1-EXO1 plasmid in SKOV3 cells. GST-tagged human Exo1 was purified using pTX61-gst-EXO1 and the his-tagged-Ku was collected using pET15b.his.Ku. Exo1 and Ku70 proteins expressed in bacteria were harvested and purified. DNA-protein binding was examined using affinity capture assay. The cells were treated using drugs for 72 hours. Then, the viabilities of cells were evaluated with sulforhodamine B cell viability analysis. The protein expression was evaluated using western blot assay. Results: As expected, human cells that deficient of Exo1 were sensitive to ionizing radiation and DNA damaging drugs (cisplatin and doxorubicin). Cisplatin resistant ovarian cancer cell line and Exo1 deficient cell lines were successfully generated. Exo1 interacts with NHEJ required factor Ku70 and affects NHEJ efficiency. We observed that Exo1 expression level was upregulated in drug resistant cell line and knockdown of Exo1 in drug resistant cells sensitized cells to cisplatin and doxorubicin. Conclusions: Exo1 participated in mammalian non-homologous end joining and contributed to drug resistance in ovarian cancer.
pH-triggered endosomal escape of pore-forming Listeriolysin O toxin-coated gold nanoparticles
JOURNAL OF NANOBIOTECHNOLOGY
Authors: Plaza-Ga, Ismael; Manzaneda-Gonzalez, Vanesa; Kisovec, Matic; Almendro-Vedia, Victor; Munoz-Ubeda, Monica; Anderluh, Gregor; Guerrero-Martinez, Andres; Natale, Paolo; Lopez Montero, Ivan
Abstract
Background A major bottleneck in drug delivery is the breakdown and degradation of the delivery system through the endosomal/lysosomal network of the host cell, hampering the correct delivery of the drug of interest. In nature, the bacterial pathogen Listeria monocytogenes has developed a strategy to secrete Listeriolysin O (LLO) toxin as a tool to escape the eukaryotic lysosomal system upon infection, allowing it to grow and proliferate unharmed inside the host cell. Results As a "proof of concept", we present here the use of purified His-LLO H311A mutant protein and its conjugation on the surface of gold nanoparticles to promote the lysosomal escape of 40 nm-sized nanoparticles in mouse embryonic fibroblasts. Surface immobilization of LLO was achieved after specific functionalization of the nanoparticles with nitrile acetic acid, enabling the specific binding of histidine-tagged proteins. Conclusions Endosomal acidification leads to release of the LLO protein from the nanoparticle surface and its self-assembly into a 300 angstrom pore that perforates the endosomal/lysosomal membrane, enabling the escape of nanoparticles.