Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Alessandra Allione is active.

Publication


Featured researches published by Alessandra Allione.


Mutagenesis | 2010

Variation in the measurement of DNA damage by comet assay measured by the ECVAG inter-laboratory validation trial

Lykke Forchhammer; Clara Johansson; Steffen Loft; Lennart Möller; Roger W. L. Godschalk; Sabine A.S. Langie; George D. D. Jones; Rachel W. L. Kwok; Andrew R. Collins; Amaya Azqueta; David H. Phillips; Osman Sozeri; Maciej Stępnik; Jadwiga Palus; Ulla Vogel; Håkan Wallin; Michael N. Routledge; Catherine Handforth; Alessandra Allione; Giuseppe Matullo; João Paulo Teixeira; Solange Costa; Patrizia Riso; Marisa Porrini; Peter Møller

The comet assay has become a popular method for the assessment of DNA damage in biomonitoring studies and genetic toxicology. However, few studies have addressed the issue of the noted inter-laboratory variability of DNA damage measured by the comet assay. In this study, 12 laboratories analysed the level of DNA damage in monocyte-derived THP-1 cells by either visual classification or computer-aided image analysis of pre-made slides, coded cryopreserved samples of cells and reference standard cells (calibration curve samples). The reference standard samples were irradiated with ionizing radiation (0-10 Gy) and used to construct a calibration curve to calculate the number of lesions per 10(6) base pair. All laboratories detected dose-response relationships in the coded samples irradiated with ionizing radiation (1.5-7 Gy), but there were overt differences in the level of DNA damage reported by the different laboratories as evidenced by an inter-laboratory coefficient of variation (CV) of 47%. Adjustment of the primary comet assay end points by a calibration curve prepared in each laboratory reduced the CV to 28%, a statistically significant reduction (P < 0.05, Levenes test). A large fraction of the inter-laboratory variation originated from differences in image analysis, whereas the intra-laboratory variation was considerably smaller than the variation between laboratories. In summary, adjustment of primary comet assay results by reference standards reduces inter-laboratory variation in the level of DNA damage measured by the alkaline version of the comet assay.


Mutagenesis | 2010

Polymorphic DNA repair and metabolic genes: a multigenic study on gastric cancer

Domenico Palli; Silvia Polidoro; Mariarosaria D'Errico; Calogero Saieva; Simonetta Guarrera; Angelo Calcagnile; Francesco Sera; Alessandra Allione; Simonetta Gemma; Ines Zanna; Alessandro Filomena; E. Testai; Saverio Caini; Renato Moretti; Maria-Jesus Gomez-Miguel; Gabriella Nesi; Ida Luzzi; Laura Ottini; Giovanna Masala; Giuseppe Matullo; Eugenia Dogliotti

Risk factors for gastric cancer (GC) include inter-individual variability in the inflammatory response to Helicobacter pylori infection, in the ability of detoxifying DNA reactive species and repairing DNA damage generated by oxidative stress and dietary carcinogens. To evaluate the association between polymorphic DNA repair genes and GC risk, a case-control study including 314 histologically confirmed GC patients and 548 healthy controls was conducted in a GC high-risk area in Tuscany, Italy. Polymorphic variants of base excision repair (APE1-D148E, XRCC1-R194W, XRCC1-R399Q and OGG1-S326C), nucleotide excision repair (XPC-PAT, XPA-23G>A, ERCC1-19007T>C and XPD-L751Q), recombination (XRCC3-T241M) and alkylation damage reversal (MGMT-L84F) were tested for their potential role in the development of GC by using logistic regression models. The same population was also characterised for GSTT1 and GSTM1 variant alleles to search for possible functional interactions between metabolic and DNA repair genotypes by two-way interactions using multivariate logistic models. No significant association between any single DNA repair genotype and GC risk was detected with a borderline association with the XPC-PAT homozygous genotype [odds ratio (OR) =1.42; 95% confidence interval (CI) 0.94-2.17]. Gene-gene interaction analysis revealed combinations of unfavourable genotypes involving either multiple DNA repair polymorphisms or DNA repair and GST-specific genotypes. The combination of the XPC-PAT and the XPA variant alleles significantly increased GC risk (OR=2.15; 95% CI 1.17-3.93, P=0.0092). A significant interaction was also found between the APE1 wild-type genotype and either the single GSTT1 (OR=4.90; 95% CI 2.38-10.11, P=0.0079) or double GSTM1-GSTT1 null (OR=7.84; 95% CI 3.19-19.22, P=0.0169) genotypes or the XPA-mutant allele (OR=3.56; 95% CI 1.53-8.25, P=0.0012). These findings indicate that a complex interaction between host factors such as oxidative stress, antioxidant capacity and efficiency of multiple DNA repair pathways underlies the inter-individual variability in GC risk.


Mutagenesis | 2010

An ECVAG trial on assessment of oxidative damage to DNA measured by the comet assay

Clara Johansson; Peter Møller; Lykke Forchhammer; Steffen Loft; Roger W. L. Godschalk; Sabine A.S. Langie; Stijn Lumeij; George D. D. Jones; Rachel W. L. Kwok; Amaya Azqueta; David H. Phillips; Osman Sozeri; Michael N. Routledge; Alexander J. Charlton; Patrizia Riso; Marisa Porrini; Alessandra Allione; Giuseppe Matullo; Jadwiga Palus; Maciej Stępnik; Andrew R. Collins; Lennart Möller

The increasing use of single cell gel electrophoresis (the comet assay) highlights its popularity as a method for detecting DNA damage, including the use of enzymes for assessment of oxidatively damaged DNA. However, comparison of DNA damage levels between laboratories can be difficult due to differences in assay protocols (e.g. lysis conditions, enzyme treatment, the duration of the alkaline treatment and electrophoresis) and in the end points used for reporting results (e.g. %DNA in tail, arbitrary units, tail moment and tail length). One way to facilitate comparisons is to convert primary comet assay end points to number of lesions/106 bp by calibration with ionizing radiation. The aim of this study was to investigate the inter-laboratory variation in assessment of oxidatively damaged DNA by the comet assay in terms of oxidized purines converted to strand breaks with formamidopyrimidine DNA glycosylase (FPG). Coded samples with DNA oxidation damage induced by treatment with different concentrations of photosensitizer (Ro 19-8022) plus light and calibration samples irradiated with ionizing radiation were distributed to the 10 participating laboratories to measure DNA damage using their own comet assay protocols. Nine of 10 laboratories reported the same ranking of the level of damage in the coded samples. The variation in assessment of oxidatively damaged DNA was largely due to differences in protocols. After conversion of the data to lesions/106 bp using laboratory-specific calibration curves, the variation between the laboratories was reduced. The contribution of the concentration of photosensitizer to the variation in net FPG-sensitive sites increased from 49 to 73%, whereas the inter-laboratory variation decreased. The participating laboratories were successful in finding a dose–response of oxidatively damaged DNA in coded samples, but there remains a need to standardize the protocols to enable direct comparisons between laboratories.


Cancer Research | 2009

Polymorphisms in DNA repair genes, smoking, and bladder cancer risk: findings from the International Consortium of Bladder Cancer

Mariana C. Stern; Jie Lin; Jonine D. Figueroa; Karl T. Kelsey; Anne E. Kiltie; Jian-Min Yuan; Giuseppe Matullo; Tony Fletcher; Simone Benhamou; Jack A. Taylor; Donatella Placidi; Zuo-Feng Zhang; Gunnar Steineck; Nathaniel Rothman; Manolis Kogevinas; Debra T. Silverman; Núria Malats; Stephen J. Chanock; Xifeng Wu; Margaret R. Karagas; Angeline S. Andrew; Heather H. Nelson; D. Timothy Bishop; Sei C. Sak; Ananya Choudhury; Jennifer H. Barrett; Faye Elliot; Roman Corral; Amit Joshi; Manuela Gago-Dominguez

Tobacco smoking is the most important and well-established bladder cancer risk factor and a rich source of chemical carcinogens and reactive oxygen species that can induce damage to DNA in urothelial cells. Therefore, common variation in DNA repair genes might modify bladder cancer risk. In this study, we present results from meta-analyses and pooled analyses conducted as part of the International Consortium of Bladder Cancer. We included data on 10 single nucleotide polymorphisms corresponding to seven DNA repair genes from 13 studies. Pooled analyses and meta-analyses included 5,282 cases and 5,954 controls of non-Latino white origin. We found evidence for weak but consistent associations with ERCC2 D312N [rs1799793; per-allele odds ratio (OR), 1.10; 95% confidence interval (95% CI), 1.01-1.19; P = 0.021], NBN E185Q (rs1805794; per-allele OR, 1.09; 95% CI, 1.01-1.18; P = 0.028), and XPC A499V (rs2228000; per-allele OR, 1.10; 95% CI, 1.00-1.21; P = 0.044). The association with NBN E185Q was limited to ever smokers (interaction P = 0.002) and was strongest for the highest levels of smoking dose and smoking duration. Overall, our study provides the strongest evidence to date for a role of common variants in DNA repair genes in bladder carcinogenesis.


Chemical Research in Toxicology | 2010

Malondialdehyde-Deoxyguanosine Adduct Formation in Workers of Pathology Wards. The Role of Air Formaldehyde Exposure

Roberto Bono; Valeria Romanazzi; Armelle Munnia; Sara Piro; Alessandra Allione; Fulvio Ricceri; Simonetta Guarrera; Cristina Pignata; Giuseppe Matullo; Poguang Wang; Roger W. Giese; Marco Peluso

Formaldehyde is an ubiquitous pollutant to which humans are exposed. Pathologists can experience high formaldehyde exposure levels. Formaldehyde-among other properties-induce oxidative stress and free radicals, which react with DNA and lipids, leading to oxidative damage and lipid peroxidation, respectively. We measured the levels of air-formaldehyde exposure in a group of Italian pathologists and controls. We analyzed the effect of formaldehyde exposure on leukocyte malondialdehyde-deoxyguanosine adducts (M(1)-dG), a biomarker of oxidative stress and lipid peroxidation. We studied the relationship between air-formaldehyde and M(1)-dG adducts. Air-formaldehyde levels were measured by personal air samplers. M(1)-dG adducts were analyzed by a (32)P-postlabeling assay. Reduction room pathologists were significantly exposed to air-formaldehyde with respect to controls and to the pathologists working in other laboratory areas (p < 0.001). A significant difference for M(1)-dG adducts between exposed pathologists and controls was found (p = 0.045). The effect becomes stronger when the evaluation of air-formaldehyde exposure was based on personal samplers (p = 0.018). Increased M(1)dG adduct levels were only found in individuals exposed to air-formaldehyde concentrations higher than 66 microg/m(3). When the exposed workers and controls were subgrouped according to smoking, M(1)-dG tended to increase in all of the subjects, but a significant association between M(1)-dG and air-formaldehyde was only found in nonsmokers (p = 0.009). Air-formaldehyde played a role positive but not significant (r = 0.355, p = 0.075, Pearson correlation) in the formation of M(1)-dG, only in nonsmokers. Working in the reduction rooms and exposure to air-formaldehyde concentrations higher than 66 microg/m(3) are associated with increased levels of M(1)-dG adducts.


Mutagenesis | 2012

Inter-laboratory variation in DNA damage using a standard comet assay protocol

Lykke Forchhammer; Clara Ersson; Steffen Loft; Lennart Möller; Roger W. L. Godschalk; Frederik J. Van Schooten; George D. D. Jones; Jennifer A. Higgins; Marcus S. Cooke; Vilas Mistry; Mahsa Karbaschi; Andrew R. Collins; Amaya Azqueta; David H. Phillips; Osman Sozeri; Michael N. Routledge; Kirsty Nelson-Smith; Patrizia Riso; Marisa Porrini; Giuseppe Matullo; Alessandra Allione; Maciej Stępnik; Magdalena Komorowska; João Paulo Teixeira; Solange Costa; L.A. Corcuera; Adela López de Cerain; Blanca Laffon; Vanessa Valdiglesias; Peter Møller

There are substantial inter-laboratory variations in the levels of DNA damage measured by the comet assay. The aim of this study was to investigate whether adherence to a standard comet assay protocol would reduce inter-laboratory variation in reported values of DNA damage. Fourteen laboratories determined the baseline level of DNA strand breaks (SBs)/alkaline labile sites and formamidopyrimidine DNA glycosylase (FPG)-sensitive sites in coded samples of mononuclear blood cells (MNBCs) from healthy volunteers. There were technical problems in seven laboratories in adopting the standard protocol, which were not related to the level of experience. Therefore, the inter-laboratory variation in DNA damage was only analysed using the results from laboratories that had obtained complete data with the standard comet assay protocol. This analysis showed that the differences between reported levels of DNA SBs/alkaline labile sites in MNBCs were not reduced by applying the standard assay protocol as compared with the laboratorys own protocol. There was large inter-laboratory variation in FPG-sensitive sites by the laboratory-specific protocol and the variation was reduced when the samples were analysed by the standard protocol. The SBs and FPG-sensitive sites were measured in the same experiment, indicating that the large spread in the latter lesions was the main reason for the reduced inter-laboratory variation. However, it remains worrying that half of the participating laboratories obtained poor results using the standard procedure. This study indicates that future comet assay validation trials should take steps to evaluate the implementation of standard procedures in participating laboratories.


Mutagenesis | 2013

An ECVAG inter-laboratory validation study of the comet assay: inter-laboratory and intra-laboratory variations of DNA strand breaks and FPG-sensitive sites in human mononuclear cells

Clara Ersson; Peter Møller; Lykke Forchhammer; Steffen Loft; Amaya Azqueta; Roger W. L. Godschalk; Frederik-Jan van Schooten; George D. D. Jones; Jennifer A. Higgins; Marcus S. Cooke; Vilas Mistry; Mahsa Karbaschi; David H. Phillips; Osman Sozeri; Michael N. Routledge; Kirsty Nelson-Smith; Patrizia Riso; Marisa Porrini; Giuseppe Matullo; Alessandra Allione; Maciej Stępnik; Magdalena Ferlińska; João Paulo Teixeira; Solange Costa; L.A. Corcuera; Adela López de Cerain; Blanca Laffon; Vanessa Valdiglesias; Andrew R. Collins; Lennart Möller

The alkaline comet assay is an established, sensitive method extensively used in biomonitoring studies. This method can be modified to measure a range of different types of DNA damage. However, considerable differences in the protocols used by different research groups affect the inter-laboratory comparisons of results. The aim of this study was to assess the inter-laboratory, intra-laboratory, sample and residual (unexplained) variations in DNA strand breaks and formamidopyrimidine DNA glycosylase (FPG)-sensitive sites measured by the comet assay by using a balanced Latin square design. Fourteen participating laboratories used their own comet assay protocols to measure the level of DNA strand breaks and FPG-sensitive sites in coded samples containing peripheral blood mononuclear cells (PBMC) and the level of DNA strand breaks in coded calibration curve samples (cells exposed to different doses of ionising radiation) on three different days of analysis. Eleven laboratories found dose-response relationships in the coded calibration curve samples on two or three days of analysis, whereas three laboratories had technical problems in their assay. In the coded calibration curve samples, the dose of ionising radiation, inter-laboratory variation, intra-laboratory variation and residual variation contributed to 60.9, 19.4, 0.1 and 19.5%, respectively, of the total variation. In the coded PBMC samples, the inter-laboratory variation explained the largest fraction of the overall variation of DNA strand breaks (79.2%) and the residual variation (19.9%) was much larger than the intra-laboratory (0.3%) and inter-subject (0.5%) variation. The same partitioning of the overall variation of FPG-sensitive sites in the PBMC samples indicated that the inter-laboratory variation was the strongest contributor (56.7%), whereas the residual (42.9%), intra-laboratory (0.2%) and inter-subject (0.3%) variations again contributed less to the overall variation. The results suggest that the variation in DNA damage, measured by comet assay, in PBMC from healthy subjects is assay variation rather than variation between subjects.


Journal of Cellular Physiology | 1999

NEGATIVE CELL CYCLE CONTROL OF HUMAN T CELLS BY BETA -GALACTOSIDE BINDING PROTEIN (BETA GBP): INDUCTION OF PROGRAMMED CELL DEATH IN LEUKAEMIC CELLS

Francesco Novelli; Alessandra Allione; Valerie Wells; Guido Forni; Livio Mallucci

The cell cycle is negatively regulated by diverse molecular events which originate in part from the interaction of secreted proteins with specific cell surface receptors. By exerting negative control on cell proliferation, these factors can help maintain cell number balance both through growth restraints and the induction of apoptosis and may thus contribute to prevent or control tumourigenesis. Here we report that βGBP, a negative growth factor which controls transition from S phase into G2, causes an S/G2 growth arrest in both normal and leukaemic T cells. However, in leukaemic T cells but not in normal T lymphocytes, growth arrest is followed by apoptosis. Analysis of possible mechanisms of induction of apoptosis does not support Fas and Fas L as having a main role but points instead to Bcl‐2 and Bax. The induction of apoptosis in leukaemic T cells is characterised by the decrease of Bcl‐2 and consequent predominance of Bax. By contrast, in the normal T cells, which do not enter apoptosis, the quantitative relationship of Bcl‐2 to Bax remains unchanged. The ability of βGBP to selectively induce apoptosis in leukaemic cells suggests that βGBP may play a role in cancer surveillance and that its use has potential therapeutic implications. J Cell Physiol 178:102–108, 1999.


Journal of Immunotherapy | 1993

Cytokine-Induced Tumor Immunogenicity: From Exogenous Cytokines to Gene Therapy

Guido Forni; Mirella Giovarelli; Federica Cavallo; Manuela Consalvo; Alessandra Allione; Andrea Modesti; Piero Musiani; Mario P. Colombo

The local presence of cytokines can drastically alter tumor host immune relations and activate a nonspecific reaction that in some cases leads to induction of specific responses to otherwise nonimmunogenic tumors. The employment of cytokines in the creation of new antitumor vaccines is thus a tempting prospect. Analogous effects have been obtained with cytokines inoculated locally and cytokines released from tumor cells engineered to produce them. An account is given of some mechanisms whereby this cytokine-induced reaction results in increased tumor immunogenicity. However, the real value of this potential form of vaccine in inducing the regression of incipient or established tumors remains to be established.


DNA Repair | 2010

ERCC1 haplotypes modify bladder cancer risk: a case-control study.

Fulvio Ricceri; Simonetta Guarrera; Carlotta Sacerdote; Silvia Polidoro; Alessandra Allione; Dario Fontana; P. Destefanis; Alessandro Tizzani; Giovanni Casetta; Giuseppina Cucchiarale; Paolo Vineis; Giuseppe Matullo

Bladder cancer risk is highly influenced by environmental and/or predisposing genetic factors. In the last decades growing evidence of the major role played by DNA repair systems in the developing of bladder cancer has been provided. To better investigate the involvement of DNA repair genes previously reported to be significantly associated with bladder cancer risk, we examined in a case-control study (456 cases and 376 hospital controls) 36 single nucleotide polymorphisms (SNPs) in 10 DNA repair genes, through a better gene coverage and a deep investigation of the haplotype role. A single SNP analysis showed a significantly increased risk given by XRCC1-rs915927 G allele (OR=1.55, CI 95% 1.02-2.37 for dominant model) and a protective effect of the rare alleles of 3 ERCC1 SNPs: rs967591 (OR=0.66, CI 95% 0.46-0.95), rs735482 (OR=0.62, CI 95% 0.42-0.90) and rs2336219 (OR=0.63, CI 95% 0.43-0.93). Haplotype analysis revealed that cases had a statistically significant excess of XRCC3-TAGT and ERCC1-GAT haplotypes, whereas ERCC1-AAC, MGMT-TA, XRCC1-TGCC and ERCC2-TGAA haplotypes were significantly underrepresented. Together with other published data on large case-control studies, our findings provide epidemiological evidence supporting a link between DNA repair gene variants and bladder cancer development, and suggest that the effects of high-order interactions should be taken into account as modulating factors affecting bladder cancer risk. A detailed characterization of DNA repair genetic variation is warranted and might ultimately help to identify multiple susceptibility variants that could be responsible for joint effects on the risk.

Collaboration


Dive into the Alessandra Allione's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Paolo Vineis

Imperial College London

View shared research outputs
Top Co-Authors

Avatar

Fulvio Ricceri

Institute for Scientific Interchange

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Barbara Pardini

Academy of Sciences of the Czech Republic

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge