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B Salles

Publications and source records attributed to B Salles.

At least 55 records · Page 3Linked to original sources

Double strand breaks in DNA inhibit nucleotide excision repair in vitro.

Nucleotide excision repair (NER) was measured in human cell extracts incubated with either supercoiled or linearized damaged plasmid DNA as repair substrate. NER, as quantified by the extent of repair synthesis activity, was reduced by up to 80% in the case of linearized plasmid DNA when compared with supercoiled DNA. An excess of undamaged linearized plasmid in the repair mixture did not interfere with DNA repair synthesis activity on a supercoiled damaged plasmid, indicating a cis-acting inhibiting effect. In contrast, gaps on circular or linearized plasmids were filled in identically by the DNA polymerases operating in the extracts. When the extent of damage-dependent incision activity was measured, a approximately 70% reduction of repair incision activity by human cell extract was observed on linearized damaged plasmids. Recessed, protruding, or blunt ends were similarly inhibitory. NER activity was partly restored when the extracts were preincubated with autoimmune human sera containing antibodies against the nuclear DNA end-binding heterodimer Ku. In addition, the inhibition of repair activity on linear damaged plasmids was released in extracts from rodent cells deficient in Ku activity but not in extracts from murine scid cells devoid of Ku-associated DNA-dependent kinase activity.

Animals↗

Negative interference of metal (II) ions with nucleotide excision repair in human cell-free extracts.

Inhibition of the nucleotide excision repair (NER) process is believed to cause the potentiation of the genotoxic and mutagenic effects of DNA damaging agents like UV-light or cisplatin by metal ions. However, the precise underlying molecular mechanism of this phenomenon is still unknown. Using in vitro assays, we have determined the potential interference of several metal (II) ions with the lesion recognition and strand incision/displacement steps of the NER mechanism, independently from the DNA polymerization step. When combinations of an optimal Mg2+ concentration and concentrations of various metal ions in a range from 0.1 to 1 mM were tested, all combinations, with Mn2+ and Ni2+ excepted, inhibited specifically the incision repair activity by human protein extracts. There was a good correlation for Cd2+, Co2+, Fe2+, Cu2+, Hg2+, Pb2+ and Zn2+ between an inhibiting effect on the incision activity and a reduced protein binding activity to a damaged DNA probe as assessed by gel mobility shift assay.

Cell-Free System↗

DNA repair activity in protein extracts of fresh human malignant lymphoid cells.

Nucleotide excision repair (NER) activity was investigated in lymphocytes from patients with chronic lymphocytic leukemia (CLL). The NER process consists of two broad stages: incision/excision of the damaged oligonucleotide and resynthesis of the repair patch. NER in CLL lymphocytes was monitored with the use of in vitro biochemical assays, allowing the determination of either the extent of repair synthesis or the incision activity on damaged plasmid DNA during incubation with whole-cell protein extracts. Fresh CLL tumor cells were purified from the blood of 7 untreated patients and 11 patients who had been treated with chemotherapy. No repair activity was found in 14 extracts (7 treated and 7 untreated) or in normal blood peripheral lymphocytes. The defect was at the level of both repair synthesis and incision/excision activity of DNA damage. In contrast, 4 of the extracts exhibited 25-60% of the repair activity measured in an extract from a control repair-proficient cell line. A linear relationship was found between the values of DNA-repair synthesis and incision activities, which indicates that the extent of significant incision was the limiting factor in these protein extracts. All of the extracts that exhibited DNA-repair activity were purified from lymphocytes of treated patients. These data suggest that chemotherapy might exert an effect on the status of repair activity in the lymphoid tumor cells of patients.

Aged↗

Ku protein complex is involved in nucleotide excision repair of DNA.

The repair of UV-C (254 nm) DNA lesions by nucleotide excision repair (NER) has been studied in the rodent cell line xrs6 belonging to complementation group 5 of ionising radiation sensitive (IRs) mutants. xrs6 cell line shows a defect in the DNA-end binding protein complex Ku which is involved in the repair of double-strand breaks (DSB) due to IR. In agreement with IR sensitivity, a bleomycin sensitive phenotype of xrs6 cell line was found as compared to the parental CHO-K1 line (factor > 8 fold). xrs6 exhibited also a slight (factor 2) but reproducible sensitivity to UV-C-light, while a revertant cell line for Ku DNA-end binding activity, xrs6rev, showed a restoration of both IR and UV-C sensitivities to the parental level. The NER activity of these cell lines was measured in vitro in nuclear protein extracts in the presence of plasmid DNA repair substrate damaged with UV-C lesions repaired by NER: xrs6 cell extracts exhibited only 55% of NER activity as compared to the control CHO-K1 and xrs6rev cell extracts. These results indicate that the Ku DSB repair protein is involved also in the NER process.

Animals↗

A chemiluminescent microplate assay to detect DNA damage induced by genotoxic treatments.

A damaged DNA detection assay (3D assay) using plasmid DNA adsorbed on sensitized microplates as the substrate for an in vitro repair reaction is presented. DNA lesions are repaired by the excision repair pathway which implies an incision-excision reaction followed by DNA repair synthesis. In the 3D assay, we took advantage of (i) plasmid DNA adsorption on polylysine-coated microplates that allowed various DNA-damaging treatments; (ii) a protein extract that reproduced the repair reaction in vitro; (iii) incorporation of digoxigenylated deoxynucleotide monophosphate during the DNA polymerization step which was quantified by a chemiluminescent reaction. Under experimental conditions for quantitative DNA adsorption, a dose-response relationship between the extent of DNA modification and the repair synthesis activity was found. Optimization of the biochemical parameters with UVC light-induced DNA lesions allowed the detection of about one photoproduct per plasmid circle. This new assay that permits a quick and easy assessment of DNA damage is applicable to the screening of genotoxic compounds and to the testing of DNA-damaging treatments.

Cell Extracts↗

Influence of DNA supercoiling on cisplatin toxicity in Escherichia coli K-12.

DNA supercoiling is known to modulate the activity of numerous promoters in vitro and in vivo. Moreover, it has been reported to modulate the rate of formation of cisplatin/DNA crosslinks in vitro. In order to address the question of how the topology influences CDDP toxicity in E. coli, three mutants with altered gyrase activity which led to a decrease of about 25% in superhelical density were studied. Mutant strains gyrA224 and gyrB225 showed similar sensitivity to CDDP as the parental strain while the gyrB226 mutant was resistant. This resistance was abolished in uvrA (excision-repair) and recA (recombination and SOS processes) mutant derivatives. Thus supercoiling might play a role as an indirect modulator of CDDP toxicity in bacteria by interfering with repair processes.

Adenosine Triphosphatases↗

In vitro eukaryotic DNA excision repair assays: an overview.

Great progress is being made in understanding the process of nucleotide excision repair (NER) in eukaryotes. Different lines of research have been developed, among them an in vitro assay with cell-free extracts has played a major role. This in vitro repair assay takes advantage of a cell-free system that can mediate DNA excision-repair by transcriptionally active protein extracts from mammalian cells incubated in the presence of two plasmids of different sizes, one damaged and the other undamaged as internal control. The extent of repair activity is determined by following the level of radiolabeled incorporation during the repair synthesis step consecutive to the excision of DNA lesions. We discuss the interest and drawbacks of this biochemical assay in light of the main results obtained. We report the modifications that we have undertaken in order to determine repair synthesis activity in a chemiluminescent-directed reaction as well as to assess incision activity in protein extracts.

Animals↗

Deficient nucleotide excision repair activity in protein extracts from normal human lymphocytes.

DNA repair activity in human peripheral blood lymphocytes (PBL) has been investigated by various techniques. Here, we report the use of an in vitro assay in order to assess nucleotide excision repair activity (NER). The mechanism of this major repair process relies on two broad steps: first, recognition, incision and excision of the damaged DNA; second, repair synthesis on the gapped DNA. Briefly, damaged plasmids were incubated with whole cell extracts which allows one to quantify DNA repair synthesis. When NER was determined on plasmid DNA damaged with UV-light or cisplatin, PBL extracts showed no repair synthesis for unstimulated lymphocytes. Using a new in vitro assay measuring only the damage-specific DNA incision activity in cell extracts, we found that the incision step in the repair reaction was blocked in unstimulated PBL. By mixing PBL with XP (group A, B, C, D) extracts, no restoration of NER activity was observed. In addition, these lymphocytes also lacked DNA replication activity as determined with pre-incised plasmid substrate. However, a phytohemagglutinin treatment of PBL led to an extent of repair synthesis similar to that observed with extracts from lymphoblastoid cells. When lymphocytes were incubated in 20% serum medium with and without phytohemagglutinin, the repair activity increased dramatically after 24 h. During the activation of lymphocytes, the extent of repair synthesis was proportional to the percentage of cells in S phase of the cell cycle. Our results suggest that the blockage of the cell cycle in G0/G1 in PBL may be responsible for their lack of NER activity.

Blood Proteins↗

Der(16)t(1;16)(q11;q11) in myelodysplastic syndromes: a new non-random abnormality characterized by cytogenic and fluorescence in situ hybridization studies.

The der(16)t(1;16)(q11;q11) is a frequent recurrent rearrangement in solid tumours such as breast carcinomas and Ewings sarcomas. Recently, this abnormality was described also in multiple myeloma. We identified a der(16)t(1;16)(q11;q11) in three patients with myelodysplastic syndrome, either during preleukaemic phase (n = 2) or at the time of blastic transformation (n = 1). Breakpoints were ascertained by fluorescence in situ hybridization (FISH) using specific centromeric alpha-satellite probes and whole chromosome painting for chromosome 1 and chromosome 16. These observations, combined with isolated cases of the literature, suggest that der(16)t(1;16)(q11; q11) is a nonrandom abnormality associated with myelodysplastic syndromes.

Adult↗

Properties of damage-dependent DNA incision by nucleotide excision repair in human cell-free extracts.

Nucleotide excision repair (NER) is the primary mechanism for the removal of many lesions from DNA. This repair process can be broadly divided in two stages: first, incision at damaged sites and second, synthesis of new DNA to replace the oligonucleotide removed by excision. In order to dissect the repair mechanism, we have recently devised a method to analyze the incision reaction in vitro in the absence of repair synthesis (1). Damage-specific incisions take place in a repair reaction in which mammalian cell-free extracts are mixed with undamaged and damaged plasmids. Most of the incision events are accompanied by excision. Using this assay, we investigated here various parameters that specifically affect the level of damage-dependent incision activity by cell-free extracts in vitro. We have defined optimal conditions for the reaction and determined the kinetics of the incision with cell-free extracts from human cells. We present direct evidence that the incision step of NER is ATP-dependent. In addition, we observe that Mn2+ but no other divalent cation can substitute for Mg2+ in the incision reaction.

Adenosine Triphosphate↗

Multiple mechanisms of resistance to cisplatin toxicity in an Escherichia coli K12 mutant.

The mechanisms underlying cellular resistance to the antitumor drug cis-diamminedichloro-platinum(II) (CDDP) were studied in Escherichia coli K12. A bacterial strain (MC4100/DDP) was selected from the MC4100 wild-type strain after growth for four cycles in CDDP. MC4100/DDP bacteria showed a high level of resistance and exhibited various modifications including (1) a decrease in drug uptake and platinum/DNA binding which only partly contributed to resistance, (2) an increase in glutathione content not involved in the resistant phenotype, (3) an increase in DNA repair capacity. Resistance was unmodified by introducing a uvrA mutation which neutralizes the excision-repair pathway. In contrast, it was abolished by deletion of the recA gene which abolishes recombination and SOS repair but also by a mutation in the recA gene leading to RecA co-protease minus (no SOS induction). RecA protein was unchanged in MC4100/DDP but the expression of RecA-dependent gene(s) was required for CDDP resistance. The regulation of genes belonging to the SOS regulon was analysed in MC4100/DDP by monitoring the expression of sfiA and recA::lacZ gene fusions after UV irradiation. These gene fusions were derepressed faster and the optimal expression was obtained for a lower number of UV lesions in MC4100/DDP, suggesting a role of RecA co-protease activity in the mechanism of resistance to CDDP in this E. coli strain.

Cisplatin↗

Measurement of damage-specific DNA incision by nucleotide excision repair in vitro.

We have devised a method to evaluate the capacity of mammalian cell extracts to incise damaged DNA in vitro. The assay uses damaged-plasmid DNA as a substrate for nucleotide excision repair by cell extracts. During this process, enzymatic incision of the damaged DNA is followed by DNA resynthesis. Under our assay conditions, the DNA synthesis stage of excision repair is prevented by limiting dNTP concentration and including the specific DNA polymerase inhibitor aphidicolin. Incisions are quantitatively detected by [alpha-32P]dAMP incorporation catalysed by the Klenow fragment of E. coli DNA pol I at nicked sites in plasmids purified from incision reactions. Lesion-specific incision is an ATP-dependent process; it was observed in plasmids modified with three different DNA damaging agents and damage-dependent incisions were abolished with extracts from xeroderma pigmentosum excision-repair deficient cell lines, indicating that this in vitro incision assay is dealing with true nucleotide excision repair.

Adenosine Monophosphate↗

UV induction of excision repair enzymes detected in protein extracts from Schizosaccharomyces pombe.

Induction of genes and proteins after DNA damaging treatment is well documented in various biological systems. In order to monitor repair activity in Schizosacchromyces pombe, we adapted the biochemical assay that allowed specific quantification of excision repair in mammalian cells (Wood et al. 1988, Cell, 53, 97-106) to yeast-free extracts. Repair synthesis determined on UV-damaged plasmid DNA with S. pombe total protein extract relied on base excision repair and not nucleotide excision repair. Under conditions that allowed optimal repair activity, an enhanced repair synthesis was found with extract from yeast previously irradiated with UV light (254 nm). A 4-fold induction factor was obtained with 70 J/m2 irradiation dose after 40 min incubation post-irradiation. This base excision repair activity on UV photoproducts was transiently induced since it returned to the level of untreated yeast after about 2 hours post-irradiation.

Cell-Free System↗

Activated ras oncogene and specifically acquired resistance to cisplatin in human mammary epithelial cells: induction of DNA cross-links and their repair.

A human non-malignant mammary epithelial cell line, HBL100, and the ras-transformed HBL100/ras1 cell line were examined for their sensitivity to cis-diamminedichloroplatinum(II) (cisplatin). The clonogenic cell survival assay showed that HBL100/ras1 exhibited a 2.7-fold increased resistance compared to the parental HBL100 cell line. The responses to other agents interacting with DNA, such as mitomycin C, 8-methoxypsoralen plus UVA or doxorubicin, were very similar in both cell lines. The same is true for ionizing radiation (Alapetite et al., Int J. Radiat. Biol., 59, 385-396, 1991). In other words, the mechanism of acquired resistance in HBL100 appears to be limited to cisplatin. No difference was observed between the two cell lines in cisplatin uptake as determined by atomic absorption spectrometry. Alkaline elution showed that less interstrand cross-links were formed by this drug in the resistant HBL100/ras1 cells compared to HBL100 and, moreover, the removal of these adducts was clearly more efficient in the former cell line. This was confirmed by an in vitro excision repair assay which revealed a 2.2-fold increase in DNA repair activity in the extracts from HBL100/ras1 versus HBL100 cells. It is concluded that the transformation of human epithelial HBL100 cells by the ras gene resulted in an acquired resistance apparently limited to cisplatin, a feature associated with a reduced proportion of induced interstrand cross-links and a higher efficiency in their removal. The mechanism of involvement of the ras gene product in this process is still a matter of speculation.

Breast↗

A cisplatin-resistant murine leukemia cell line exhibits increased topoisomerase II activity.

cis-Dichlorodiammineplatinum(II) (CDDP) resistance in L1210/10 murine leukemia cells is multifactorial and involves decreased drug uptake, increased glutathione content, and enhanced DNA repair activity. We show here that 0.35 M NaCl nuclear extracts from L1210/10 cells possess an approximately 3-fold increase in DNA topoisomerase II activity, compared with parental L1210 cells, as measured by decatenation of kinetoplast DNA. No difference in topoisomerase I activity is observed between the two cell lines. Immunoblot analysis of topoisomerase II protein in resistant and sensitive cells suggests that the observed differences in topoisomerase II activity cannot be explained by differences in the level of protein expressed. L1210/10 cells are 2.5-fold more sensitive than L1210 cells to the cytotoxic effects of the topoisomerase II inhibitor 4'-(9-acridylamino)methane-sulfon-m-anisidide. Sequential treatment with 4'-(9-acridyl-amino)methanesulfon-m-anisidide and CDDP leads to an additive cytotoxic effect of the two drugs in sensitive L1210 cells, as determined by colony formation in semi-solid medium. In contrast, the same treatment leads to a supra-additive effect in L1210/10 cells, which strongly suggests a role for topoisomerase II in the CDDP resistance of this cell line.

Amino Acid Sequence↗

DNA excision-repair synthesis is enhanced in a murine leukemia L1210 cell line resistant to cisplatin.

Among various molecular mechanisms of cell resistance to antitumor agents such as cisplatin, it has recently been suggested that enhanced DNA-repair activity might be involved in the resistant phenotype of cell lines. Mouse leukemia-cisplatin-resistant cell lines L1210/10 (adapted in vitro) and L1210/DDP (adapted in vivo) have been reported to exhibit an increase DNA-repair activity, as determined by host-cell reactivation after transformation with damaged plasmids. In this paper, excision-repair activity was monitored by an in-vitro assay allowing quantification of DNA-repair synthesis in cell extracts from resistant and sensitive parental cells (L1210/10 versus L1210/0 and L1210/DDP versus L1210/S). Experimental conditions for optimal repair-synthesis activity were found to be different from these reported with human cell-line extracts. L1210/S sensitive cell line, grown in vivo by a weekly intraperitoneal graft in mice, displayed a repair activity about fourfold lower than the same cell line maintained in vitro or than L1210/0 cell grown in vitro. The repair activity was found similar in a L1210/10 and L1210/0 cell lines, but it was enhanced in L1210/DDP resistant cell line when compared with its parental line.

Animals↗