37 research outputs found
The use of premature chromosome condensation to study in interphase cells the influence of environmental factors on human genetic material
Nowadays, there is a constantly increasing concern regarding the mutagenic and carcinogenic potential of a variety of harmful environmental factors to which humans are exposed in their natural and anthropogenic environment. These factors exert their hazardous potential in humans' personal (diet, smoking, pharmaceuticals, cosmetics) and occupational environment that constitute part of the anthropogenic environment. It is well known that genetic damage due to these factors has dramatic implications for human health. Since most of the environmental genotoxic factors induce arrest or delay in cell cycle progression, the conventional analysis of chromosomes at metaphase may underestimate their genotoxic potential. Premature Chromosome Condensation (PCC) induced either by means of cell fusion or specific chemicals, enables the microscopic visualization of interphase chromosomes whose morphology depends on the cell cycle stage, as well as the analysis of structural and numerical aberrations at the G1 and G2 phases of the cell cycle. The PCC has been successfully used in problems involving cell cycle analysis, diagnosis and prognosis of human leukaemia, assessment of interphase chromosome malformations resulting from exposure to radiation or chemicals, as well as elucidation of the mechanisms underlying the conversion of DNA damage into chromosomal damage. In this report, particular emphasis is given to the advantages of the PCC methodology used as an alternative to conventional metaphase analysis in answering questions in the fields of radiobiology, biological dosimetry, toxicogenetics, clinical cytogenetics and experimental therapeutics
Detection and Automated Scoring of Dicentric Chromosomes in Nonstimulated Lymphocyte Prematurely Condensed Chromosomes After Telomere and Centromere Staining
PurposeTo combine telomere and centromere (TC) staining of premature chromosome condensation (PCC) fusions to identify dicentrics, centric rings, and acentric chromosomes, making possible the realization of a dose–response curve and automation of the process.Methods and MaterialsBlood samples from healthy donors were exposed to 60Co irradiation at varying doses up to 8 Gy, followed by a repair period of 8 hours. Premature chromosome condensation fusions were carried out, and TC staining using peptide nucleic acid probes was performed. Chromosomal aberration (CA) scoring was carried out manually and automatically using PCC-TCScore software, developed in our laboratory.ResultsWe successfully optimized the hybridization conditions and image capture parameters, to increase the sensitivity and effectiveness of CA scoring. Dicentrics, centric rings, and acentric chromosomes were rapidly and accurately detected, leading to a linear-quadratic dose–response curve by manual scoring at up to 8 Gy. Using PCC-TCScore software for automatic scoring, we were able to detect 95% of dicentrics and centric rings.ConclusionThe introduction of TC staining to the PCC fusion technique has made possible the rapid scoring of unstable CAs, including dicentrics, with a level of accuracy and ease not previously possible. This new approach can be used for biological dosimetry in radiation emergency medicine, where the rapid and accurate detection of dicentrics is a high priority using automated scoring. Because there is no culture time, this new approach can also be used for the follow-up of patients treated by genotoxic therapy, creating the possibility to perform the estimation of induced chromosomal aberrations immediately after the blood draw
Dose assessment intercomparisons within the RENEB network using G0-lymphocyte prematurely condensed chromosomes (PCC assay)
Purpose: Dose assessment intercomparisons within the RENEB network were performed for triage biodosimetry analyzing G0-lymphocyte PCC for harmonization, standardization and optimization of the PCC assay.
Materials and methods: Comparative analysis among different partners for dose assessment included shipment of PCC-slides and captured images to construct dose-response curves for up to 6 Gy c-rays. Accident simulation exercises were performed to assess the suitability of the PCC assay by detecting speed of analysis and minimum number of cells required for categorization of potentially exposed individuals.
Results: Calibration data based on Giemsa-stained fragments in excess of 46 PCC were obtained by different partners using galleries of PCC images for each dose-point. Mean values derived from all scores yielded a linear dose-response with approximately 4 excess-fragments/cell/Gy. To unify scoring criteria, exercises were carried out using coded PCC-slides and/or coded irradiated blood samples. Analysis of samples received 24 h post-exposure was successfully performed using Giemsa staining (1 excess-fragment/cell/Gy) or centromere/telomere FISH-staining for dicentrics.
Conclusions: Dose assessments by RENEB partners using appropriate calibration curves were mostly in good agreement. The PCC assay is quick and reliable for whole- or partial-body triage biodosimetry by scoring excess-fragments or dicentrics in G0-lymphocytes. Particularly, analysis of Giemsa-stained excess PCC-fragments is simple, inexpensive and its automation could increase throughput and scoring objectivity of the PCC assay
RENEB accident simulation exercise
Purpose: The RENEB accident exercise was carried out in order to train the RENEB participants in coordinating and managing potentially large data sets that would be generated in case of a major radiological event.
Materials and methods: Each participant was offered the possibility to activate the network by sending an alerting email about a simulated radiation emergency. The same participant had to collect, compile and report capacity, triage categorization and exposure scenario results obtained from all other participants. The exercise was performed over 27 weeks and involved the network consisting of 28 institutes: 21 RENEB members, four candidates and three non-RENEB partners.
Results: The duration of a single exercise never exceeded 10 days, while the response from the assisting laboratories never came later than within half a day. During each week of the exercise, around 4500 samples were reported by all service laboratories (SL) to be examined and 54 scenarios were coherently estimated by all laboratories (the standard deviation from the mean of all SL answers for a given scenario category and a set of data was not larger than 3 patient codes).
Conclusions: Each participant received training in both the role of a reference laboratory (activating the network) and of a service laboratory (responding to an activation request). The procedures in the case of radiological event were successfully established and tested
Integration of new biological and physical retrospective dosimetry methods into EU emergency response plans : joint RENEB and EURADOS inter-laboratory comparisons
Purpose: RENEB, 'Realising the European Network of Biodosimetry and Physical Retrospective Dosimetry,' is a network for research and emergency response mutual assistance in biodosimetry within the EU. Within this extremely active network, a number of new dosimetry methods have recently been proposed or developed. There is a requirement to test and/or validate these candidate techniques and inter-comparison exercises are a well-established method for such validation.
Materials and methods: The authors present details of inter-comparisons of four such new methods: dicentric chromosome analysis including telomere and centromere staining; the gene expression assay carried out in whole blood; Raman spectroscopy on blood lymphocytes, and detection of radiation induced thermoluminescent signals in glass screens taken from mobile phones.
Results: In general the results show good agreement between the laboratories and methods within the expected levels of uncertainty, and thus demonstrate that there is a lot of potential for each of the candidate techniques.
Conclusions: Further work is required before the new methods can be included within the suite of reliable dosimetry methods for use by RENEB partners and others in routine and emergency response scenarios
Use of human lymphocyte G0 PCCs to detect intra- and inter-chromosomal aberrations for early radiation biodosimetry and retrospective assessment of radiation-induced effects.
A sensitive biodosimetry tool is required for rapid individualized dose estimation and risk assessment in the case of radiological or nuclear mass casualty scenarios to prioritize exposed humans for immediate medical countermeasures to reduce radiation related injuries or morbidity risks. Unlike the conventional Dicentric Chromosome Assay (DCA), which takes about 3-4 days for radiation dose estimation, cell fusion mediated Premature Chromosome Condensation (PCC) technique in G0 lymphocytes can be rapidly performed for radiation dose assessment within 6-8 hrs of sample receipt by alleviating the need for ex vivo lymphocyte proliferation for 48 hrs. Despite this advantage, the PCC technique has not yet been fully exploited for radiation biodosimetry. Realizing the advantage of G0 PCC technique that can be instantaneously applied to unstimulated lymphocytes, we evaluated the utility of G0 PCC technique in detecting ionizing radiation (IR) induced stable and unstable chromosomal aberrations for biodosimetry purposes. Our study demonstrates that PCC coupled with mFISH and mBAND techniques can efficiently detect both numerical and structural chromosome aberrations at the intra- and inter-chromosomal levels in unstimulated T- and B-lymphocytes. Collectively, we demonstrate that the G0 PCC technique has the potential for development as a biodosimetry tool for detecting unstable chromosome aberrations (chromosome fragments and dicentric chromosomes) for early radiation dose estimation and stable chromosome exchange events (translocations) for retrospective monitoring of individualized health risks in unstimulated lymphocytes
Photodynamic treatment of pancreatic cancer cells: Genotoxicity and chromosome damage induced by red light and zinc tetrasulfonated phthalocyanines (ZnPcS4)
Chromatin dynamics during cell cycle mediate conversion of DNA damage into chromatid breaks and affect formation of chromosomal aberrations: Biological and clinical significance
The formation of diverse chromosomal aberrations following irradiation
and the variability in radiosensitivity at different cell-cycle stages
remain a long standing controversy, probably because most of the studies
have focused on elucidating the enzymatic mechanisms involved using
simple DNA substrates. Yet, recognition, processing and repair of DNA
damage occur within the nucleoprotein complex of chromatin which is
dynamic in nature, capable of rapid unfolding, disassembling, assembling
and refolding. The present work reviews experimental work designed to
investigate the impact of chromatin dynamics and chromosome conformation
changes during cell-cycle in the formation of chromosomal aberrations.
Using conventional cytogenetics and premature chromosome condensation to
visualize interphase chromatin, the data presented support the
hypothesis that chromatin dynamic changes during cell-cycle are
important determinants in the conversion of sub-microscopic DNA lesions
into chromatid breaks. Consequently, the type and yield of
radiation-induced chromosomal aberrations at a given cell-cycle-stage
depends on the combined effect of DNA repair processes and chromatin
dynamics, which is cell-cycle-regulated and subject to up- or
down-regulation following radiation exposure or genetic alterations.
This new hypothesis is used to explain the variability in
radiosensitivity observed at various cell-cycle-stages, among mutant
cells and cells of different origin, or among different individuals, and
to revisit unresolved issues and unanswered questions. In addition, it
is used to better understand hypersensitivity of AT cells and to provide
an improved predictive G2-assay for evaluating radiosensitivity at
individual level. Finally, experimental data at single cell level
obtained using hybrid cells suggest that the proposed hypothesis applies
only to the irradiated component of the hybrid. (C) 2010 Elsevier B.V.
All rights reserved
Mitochondria malfunctions as mediators of stem-cells' related carcinogenesis: A hypothesis that supports the highly conserved profile of carcinogenesis
Cancer development is an evolutionary process that has been highly
conserved among centuries within organisms. Based on this, the interest
in cancer research focuses on cells, organelles and genes that possess a
genetic conservatism from yeasts to human. Towards this thought,
mitochondria, the highly conserved and responsible for the cellular
bioenergetic activity organelles, might play crucial role in
carcinogenesis. Interestingly, tumors with low bioenergetic signature
have worse prognosis and show a decreased expression of ATPase protein.
Furthermore, according to the stem-cell theory of carcinogenesis,
aggressive tumors are characterized by an increase number of malignant
stem-like cell population and their resistance to chemotherapy has been
found to be mitochondrially driven.
The above considerations triggered us to hypothesize that mitochondrial
bioenergetic processes in stem-like cancer cells plays a crucial role in
the highly conserved process of carcinogenesis. Specifically, we support
that mitochondrial and/or nuclear DNA alterations that control stem
cells’ ATP production drive stem cells to “immortalization” (Otto
Warburg theory) that mediates cancer initiation and progression.
Substantiation of our hypothesis requires evidence that: (1) alterations
in mitochondria bioenergetic metabolites and enzymes encoded either from
the mtDNA or the nuclear DNA are linked to human cancer and (2)
mitochondrial functions are regulated by highly conserved genes involved
in cancer-related cellular processes such as apoptosis, aging and
autophagy. Experimental approach on how this hypothesis might be tested
and promising strategies in cancer therapeutics are also discussed. In
case the hypothesis of stem-cell bioenergetic malformations’ related
carcinogenesis proves to be correct, it would contribute to the
development of new prognostic, diagnostic and even more effective
therapeutic interventions against various types of cancer. (C) 2012
Elsevier Ltd. All rights reserved