36 research outputs found
Assessment of the effect of wave device application on morphological changes in organs and cells of irradiated animals
Aim: To study the effect of the Device for wave influence on biological objects on the prevention of the development of acute radiation sickness and chronic radiation syndrome in vivo. Materials and Methods: The studies were performed on white rats irradiated at a dose of 8 Gy. The experimental group of irradiated rats was treated with a wave Device (Patent of Ukraine No. 53568) once, for 2.5 min, 1.5 h after irradiation. Their organs were processed by standard histologic methods. Results: In the demagnetized rats, dystrophic changes in cells and tissues of liver, lungs, kidneys, brain, bone marrow and spleen were insignificant in 60 days compared to the control non-demagnetized group of animals. Conclusion: The Device reduced the magnetic charge of magneto-containing elements and their compounds in the organism of the irradiated animals, and decreased the formation of reactive oxygen species, which play a key role in the development of radiation-induced diseases
IGHV3-21 gene expression in patients with b-cell chronic lymphocytic leukemia in Ukraine
The aim of the study was to evaluate the frequency of IGHV3-21 gene usage and its clinical significance for patients with B-cell chronic lymphocytic leukemia (CLL) in Ukraine. Patients and Methods: Immunoglobulin variable heavy chain (IGHV) gene repertoire was studied in 189 CLL patients using reverse transcribed polymerase chain reaction and direct sequence of amplified products. Results: IGHV3-21 gene expression was found in 11 cases (5.8%), and its frequency was intermediate between Scandinavian (11.7%) and Mediterranean CLL (2.9%) cohorts. The most of cases (9 of 11) belonged to subset with heterogeneous HCDR3 (heteroHCDR3 subset), and only 2 cases β to subset with classical short ARDANGMDV motif (homHCDR3 subset). Six IGHV3-21 cases were mutated and 5 cases were unmutated. All unmutated cases (all were from heteroHCDR3 subset) had similarity of their HCDR3s with previously published sequences. The differences in overall (OS), progression-free (PFS) and treatment-free survival (TFS) for IGHV3-21 positive patients in comparison with CLL patients expressing the other IGHV genes were statistically insignificant. These survival parameters were comparable also for CLL patients with mutated IGHV3-21 gene usage and expression the others mutated IGHV genes. But remarkable feature of IGHV3-21 expressing patients was high incidence of solid tumors. They have developed in 4 IGHV3-21 positive cases (36.4%) and in 10 cases with expression of the others IGHV genes (5.6%, p = 0.0002). Furthermore, in small group of 6 patients with mutated IGHV3-21 gene expression, 3 patients had solid tumors and one underwent Richter transformation. Unmutated IGHV3-21 gene expressed patients had worse OS and PFS in comparison with CLL patients that expressed the others unmutated IGHV genes. Conclusion: Presented data are in agrement with the opinion about negative prognostic significance of IGHV3-21 gene expression regardless its mutation status. IGHV3-21 expression was associated with development of secondary solid tumors. Revealed high level of homology in heteroHDR3s subset might suggest about possible antigenic influence also, in addition to homHCDR3 subset that was proposed earlier.Π¦Π΅Π»Ρ: ΠΎΡΠ΅Π½ΠΈΡΡ ΡΠ°ΡΡΠΎΡΡ ΠΈΡΠΏΠΎΠ»ΡΠ·ΠΎΠ²Π°Π½ΠΈΡ Π³Π΅Π½Π° IGHV3-21 ΠΈ Π΅Π³ΠΎ ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΎΠ΅ Π·Π½Π°ΡΠ΅Π½ΠΈΠ΅ Π΄Π»Ρ Π±ΠΎΠ»ΡΠ½ΡΡ
B-ΠΊΠ»Π΅ΡΠΎΡΠ½ΡΠΌ Ρ
ΡΠΎΠ½ΠΈΡΠ΅ΡΠΊΠΈΠΌ
Π»ΠΈΠΌΡΠΎΠ»Π΅ΠΉΠΊΠΎΠ·ΠΎΠΌ (Π₯ΠΠ) Π² Π£ΠΊΡΠ°ΠΈΠ½Π΅. ΠΠΎΠ»ΡΠ½ΡΠ΅ ΠΈ ΠΌΠ΅ΡΠΎΠ΄Ρ ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΡ: ΡΠ΅ΠΏΠ΅ΡΡΡΠ°Ρ Π³Π΅Π½ΠΎΠ² Π²Π°ΡΠΈΠ°Π±Π΅Π»ΡΠ½ΡΡ
ΡΡΠ°ΡΡΠΊΠΎΠ² ΡΡΠΆΠ΅Π»ΡΡ
ΡΠ΅ΠΏΠ΅ΠΉ
ΠΈΠΌΠΌΡΠ½ΠΎΠ³Π»ΠΎΠ±ΡΠ»ΠΈΠ½ΠΎΠ² (IGHV) ΠΈΠ·ΡΡΠ°Π»ΠΈ Ρ 189 Π±ΠΎΠ»ΡΠ½ΡΡ
Ρ Π₯ΠΠ Ρ ΠΏΠΎΠΌΠΎΡΡΡ ΠΏΠΎΠ»ΠΈΠΌΠ΅ΡΠ°Π·Π½ΠΎΠΉ ΡΠ΅ΠΏΠ½ΠΎΠΉ ΡΠ΅Π°ΠΊΡΠΈΠΈ Π½Π° Π±Π°Π·Π΅ ΠΎΠ±ΡΠ°ΡΠ½ΠΎΠΉ ΡΡΠ°Π½ΡΠΊΡΠΈΠΏΡΠΈΠΈ
ΠΈ ΠΏΡΡΠΌΠΎΠ³ΠΎ ΡΠΈΠΊΠ²Π΅Π½ΡΠ° Π°ΠΌΠΏΠ»ΠΈΡΠΈΡΠΈΡΠΎΠ²Π°Π½Π½ΡΡ
ΠΏΡΠΎΠ΄ΡΠΊΡΠΎΠ². Π Π΅Π·ΡΠ»ΡΡΠ°ΡΡ: ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΡ Π³Π΅Π½Π° IGHV3-21 Π²ΡΡΠ²Π»Π΅Π½Π° Ρ 11 ΠΏΠ°ΡΠΈΠ΅Π½ΡΠΎΠ² (5,8%),
ΡΡΠΎ Π·Π°Π½ΠΈΠΌΠ°Π΅Ρ ΠΏΡΠΎΠΌΠ΅ΠΆΡΡΠΎΡΠ½ΠΎΠ΅ ΠΏΠΎΠ»ΠΎΠΆΠ΅Π½ΠΈΠ΅ ΠΌΠ΅ΠΆΠ΄Ρ Π‘ΠΊΠ°Π½Π΄ΠΈΠ½Π°Π²ΡΠΊΠΎΠΉ (11,7%) ΠΈ Π‘ΡΠ΅Π΄ΠΈΠ·Π΅ΠΌΠ½ΠΎΠΌΠΎΡΡΠΊΠΎΠΉ (2,9%) ΠΊΠΎΠ³ΠΎΡΡΠ°ΠΌΠΈ. ΠΠΎΠ»ΡΡΠΈΠ½ΡΡΠ²ΠΎ
ΡΠ»ΡΡΠ°Π΅Π² (9 ΠΈΠ· 11) ΠΎΡΠ½ΠΎΡΠΈΠ»ΠΈΡΡ ΠΊ ΠΏΠΎΠ΄Π³ΡΡΠΏΠΏΠ΅ Ρ Π³Π΅ΡΠ΅ΡΠΎΠ³Π΅Π½Π½ΡΠΌ ΡΡΠ΅ΡΡΠΈΠΌ ΠΊΠΎΠΌΠΏΠ»Π΅ΠΌΠ΅Π½ΡΠ°ΡΠ½ΡΠΌΡΠ΅Π³ΠΈΠΎΠ½ΠΎΠΌ (heteroHCDR3 ΠΏΠΎΠ΄Π³ΡΠΏΠΏΠ°) ΠΈ ΡΠΎΠ»ΡΠΊΠΎ
2 ΡΠ»ΡΡΠ°Ρ β ΠΊ ΠΏΠΎΠ΄Π³ΡΡΠΏΠΏΠ΅ Ρ ΠΊΠΎΡΠΎΡΠΊΠΈΠΌ ΠΊΠ»Π°ΡΡΠΈΡΠ΅ΡΠΊΠΈΠΌ ARDANGMDV ΠΌΠΎΡΠΈΠ²ΠΎΠΌ (homHCDR ΡΠΏΠΏΠ°). Π΅ΡΡΡ IGHV3-21-ΠΏΠΎΠ·ΠΈΡΠΈΠ²Π½ΡΡ
ΡΠ»ΡΡΠ°Π΅Π² Π±ΡΠ»ΠΈ ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΠΌΠΈ ΠΈ 5 β Π½Π΅ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΠΌΠΈ. ΠΡΠ΅ Π½Π΅ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΠ΅ ΡΠ»ΡΡΠ°ΠΈ (Π²ΡΠ΅ ΠΈΠ· heteroHCDR ΡΠΏΠΏΡ)
ΠΈΠΌΠ΅Π»ΠΈ ΡΡ
ΠΎΠ΄ΡΡΠ²ΠΎ HCDR3 Ρ Π°Π½Π΅Π΅ ΠΎΠΏΠΈΡΠ°Π½Π½ΡΠΌΠΈ ΠΏΠΎΡΠ»Π΅Π΄ΠΎΠ²Π°ΡΠ΅Π»ΡΠ½ΠΎΡΡΡΠΌΠΈ. Π Π°Π·Π»ΠΈΡΠΈΡ Π² ΠΎΠ±ΡΠ΅ΠΉ Π²ΡΠΆΠΈΠ²Π°Π΅ΠΌΠΎΡΡΠΈ (OS), Π΄Π»ΠΈΡΠ΅Π»ΡΠ½ΠΎΡΡΠΈ
ΠΏΠ΅ΡΠΈΠΎΠ΄Π° Π΄ΠΎ ΠΏΡΠΎΠ³ΡΠ΅ΡΡΠΈΠΈ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡ (PFS) ΠΈ Π½Π°ΡΠ°Π»Π° Π»Π΅ΡΠ΅Π½ΠΈΡ (TFS) Π΄Π»Ρ IGHV3-21-ΠΏΠΎΠ·ΠΈΡΠΈΠ²Π½ΡΡ
Π±ΠΎΠ»ΡΠ½ΡΡ
Π±ΡΠ»ΠΈ ΡΡΠ°ΡΠΈΡΡΠΈΡΠ΅ΡΠΊΠΈ
Π½Π΅Π·Π½Π°ΡΠΈΠΌΡ ΠΏΠΎ ΡΡΠ°Π²Π½Π΅Π½ΠΈΡ Ρ ΠΏΠ°ΡΠΈΠ΅Π½ΡΠ°ΠΌΠΈ Ρ Π₯ΠΠ Ρ ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ Π΄ΡΡΠ³ΠΈΡ
IGHV-Π³Π΅Π½ΠΎΠ². Π£ΠΊΠ°Π·Π°Π½Π½ΡΠ΅ ΠΏΠ°ΡΠ°ΠΌΠ΅ΡΡΡ ΡΠ°ΠΊΠΆΠ΅ ΡΡΠ°Π²Π½ΠΈΠ²Π°Π»ΠΈ
ΠΌΠ΅ΠΆΠ΄Ρ Π±ΠΎΠ»ΡΠ½ΡΠΌΠΈ Π₯ΠΠ Ρ ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΡ
IGHV3-21- ΠΈ Π΄ΡΡΠ³ΠΈΡ
IGHV-Π³Π΅Π½ΠΎΠ². ΠΡΠ»ΠΈΡΠΈΡΠ΅Π»ΡΠ½ΠΎΠΉ ΡΠ΅ΡΡΠΎΠΉ ΠΏΠ°ΡΠΈΠ΅Π½ΡΠΎΠ² Ρ
ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ IGHV3-Π³Π΅Π½Π° Π±ΡΠ»Π° Π²ΡΡΠΎΠΊΠ°Ρ Π²ΡΡΡΠ΅ΡΠ°Π΅ΠΌΠΎΡΡΡ ΡΠΎΠ»ΠΈΠ΄Π½ΡΡ
ΠΎΠΏΡΡ
ΠΎΠ»Π΅ΠΉ. ΠΠ½ΠΈ ΡΠ°Π·Π²ΠΈΠ»ΠΈΡΡ Π² 4 IGHV3-21-ΠΏΠΎΠ·ΠΈΡΠΈΠ²Π½ΡΡ
ΡΠ»ΡΡΠ°ΡΡ
(36,4%) ΠΈ Π² 10 ΡΠ»ΡΡΠ°ΡΡ
Ρ ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ Π΄ΡΡΠ³ΠΈΡ
IGHV-Π³Π΅Π½ΠΎΠ² (5,6%, p = 0,0002). ΠΡΠΎΠΌΠ΅ ΡΠΎΠ³ΠΎ, Π² Π½Π΅Π±ΠΎΠ»ΡΡΠΎΠΉ Π³ΡΡΠΏΠΏΠ΅ Π±ΠΎΠ»ΡΠ½ΡΡ
(6) Ρ
ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΠΎΠ³ΠΎ IGHV3-21-Π³Π΅Π½Π° Ρ 3 Π²ΠΎΠ·Π½ΠΈΠΊΠ»ΠΈ ΡΠΎΠ»ΠΈΠ΄Π½ΡΠ΅ ΠΎΠΏΡΡ
ΠΎΠ»ΠΈ ΠΈ 1 ΠΏΠ°ΡΠΈΠ΅Π½ΡΠ° β ΡΠΈΠ½Π΄ΡΠΎΠΌ Π ΠΈΡ
ΡΠ΅ΡΠ°. Π£ Π±ΠΎΠ»ΡΠ½ΡΡ
Ρ
ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ Π½Π΅ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΠΎΠ³ΠΎ IGHV3-21-Π³Π΅Π½Π° ΠΎΠΏΡΠ΅Π΄Π΅Π»ΡΠ»ΠΈ Ρ
ΡΠ΄ΡΠΈΠ΅ ΠΏΠΎΠΊΠ°Π·Π°ΡΠ΅Π»ΠΈ OS ΠΈ PFS ΠΏΠΎ ΡΠ°Π²Π½Π΅Π½ΠΈΡ Ρ ΠΏΠ°ΡΠΈΠ΅Π½ΡΠ°ΠΌΠΈ Ρ ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠ΅ΠΉ
Π΄ΡΡΠ³ΠΈΡ
Π½Π΅ΠΌΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΡ
IGHV-Π³Π΅Π½ΠΎΠ². ΠΡΠ²ΠΎΠ΄Ρ: ΠΏΡΠ΅Π΄ΡΡΠ°Π²Π»Π΅Π½Π½ΡΠ΅ Π΄Π°Π½Π½ΡΠ΅ ΡΠΎΠ³Π»Π°ΡΡΡΡΡΡ Ρ ΠΌΠ½Π΅Π½ΠΈΠ΅ΠΌ ΠΎ ΡΠ°ΠΌΠΎΡΡΠΎΡΡΠ΅Π»ΡΠ½ΠΎΠΌ
Π½Π΅Π³Π°ΡΠΈΠ²Π½ΠΎΠΌ ΠΏΡΠΎΠ³Π½ΠΎΡΡΠΈΡΠ΅ΡΠΊΠΎΠΌ Π·Π½Π°ΡΠ΅Π½ΠΈΠΈ Π΄Π»Ρ Π±ΠΎΠ»ΡΠ½ΡΡ
Ρ Π₯ΠΠ ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΠΈ IGHV3-21-Π³Π΅Π½Π° Π²Π½Π΅ Π·Π°Π²ΠΈΡΠΈΠΌΠΎΡΡΠΈ ΠΎΡ Π΅Π³ΠΎ ΠΌΡΡΠ°ΡΠΈΠΎΠ½Π½ΠΎΠ³ΠΎ
ΡΡΠ°ΡΡΡΠ°. IGHV3-21-ΡΠΊΡΠΏΡΠ΅ΡΡΠΈΡ Π±ΡΠ»Π° Π°ΡΡΠΎΡΠΈΠΈΡΠΎΠ²Π°Π½Π° Ρ ΡΠ°Π·Π²ΠΈΡΠΈΠ΅ΠΌ Π²ΡΠΎΡΠΈΡΠ½ΡΡ
ΡΠΎΠ»ΠΈΠ΄Π½ΡΡ
ΠΎΠΏΡΡ
ΠΎΠ»Π΅ΠΉ. ΠΡΡΠ²Π»Π΅Π½Π½ΡΠΉ Π²ΡΡΠΎΠΊΠΈΠΉ ΡΡΠΎΠ²Π΅Π½Ρ
Π³ΠΎΠΌΠΎΠ»ΠΎΠ³ΠΈΠΈ Π² heteroHDR3s-ΠΏΠΎΠ΄Π³ΡΡΠΏΠΏΠ΅ ΠΌΠΎΠΆΠ΅Ρ ΡΠ²ΠΈΠ΄Π΅ΡΠ΅Π»ΡΡΡΠ²ΠΎΠ²Π°ΡΡ ΠΎ Π²ΠΎΠ·ΠΌΠΎΠΆΠ½ΠΎΠΌ Π°Π½ΡΠΈΠ³Π΅Π½Π½ΠΎΠΌ Π²Π»ΠΈΡΠ½ΠΈΠΈ Π² Π΄ΠΎΠΏΠΎΠ»Π½Π΅Π½ΠΈΠ΅ ΠΊ Π°Π½ΡΠΈΠ³Π΅Π½Π½ΠΎΠΌΡ
Π²Π»ΠΈΡΠ½ΠΈΡ Π² homHCDR ΡΠΏΠΏΠ΅, ΡΡΠΎ Π±ΡΠ»ΠΎ ΡΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΎ ΡΠ°Π½Π΅
Application of a Convolutional Neural Network with a Module of Elementary Graphic Primitive Classifiers in the Problems of Recognition of Drawing Documentation and Transformation of 2d to 3d Models
his paper presents the results of the research related to the design of a convolutional neural network with a module of graphic primitives elementary classifiers (EC) in the tasks of drawing documentation recognition and transformation of the 2D into 3D models. An architecture of a convolutional neural network with an elementary classifiers module of graphic primitives was proposed for solving the drawing recognition and 2 β 3 transformation problem. A graphic image classifier model based on covered classes and elementary primitive classifiers has been developed to increase the effectiveness of CNN training
ΠΠΎΠ²ΡΠ΅ ΠΏΡΠ±Π»ΠΈΠΊΠ°ΡΠΈΠΈ ΠΏΠΎ ΡΡΠ΄Π΅Π±Π½ΠΎΠΉ ΡΠΊΡΠΏΠ΅ΡΡΠΈΠ·Π΅
Β This section presents translated abstracts of selected papers that appeared in the following periodicals: Forensic Science InternationalΒ [www.elsevier.com/locate/forsciint], Forensic Science International: Digital Investigation [www.elsevier.com/locate/j.fsidi], Journal of Forensic Sciences [www.onlinelibrary.wiley.com] and Science & Justice [www.elsevier.com/locate/ scijus].Β Β ΠΡΠ΅Π΄ΡΡΠ°Π²Π»Π΅Π½Ρ ΠΏΠ΅ΡΠ΅Π²ΠΎΠ΄Ρ ΡΠ΅ΡΠ΅ΡΠ°ΡΠΎΠ² ΠΈΠ·Π±ΡΠ°Π½Π½ΡΡ
ΡΡΠ°ΡΠ΅ΠΉ, ΠΎΠΏΡΠ±Π»ΠΈΠΊΠΎΠ²Π°Π½Π½ΡΡ
Π² Π·Π°ΡΡΠ±Π΅ΠΆΠ½ΡΡ
ΠΏΠ΅ΡΠΈΠΎΠ΄ΠΈΡΠ΅ΡΠΊΠΈΡ
ΠΈΠ·Π΄Π°Π½ΠΈΡΡ
: Forensic Science International [www.elsevier.com/locate/forsciint], Forensic Science International: Digital Investigation [www.elsevier.com/locate/j.fsidi], Journal of Forensic Sciences [www.onlinelibrary.wiley.com] ΠΈ Science & JusticeΒ [www.elsevier.com/locate/scijus].
Application of Game Theory, Fuzzy Logic and Neural Networks for Assessing Risks and Forecasting Rates of Digital Currency
In this scientific work is aimed to obtain mathematical tools for solving the problem of finding optimal investment strategies in digital cryptocurrencies (hereinafter referred to as the CX) or a CX set from the side of investor/investors were proposed. The solution was found on the basis of the application of the games theory, the theory of fuzzy sets and artificial neural networks (ANN). The developed model, which allows one to obtain an algorithm for the success forecast assessment of the investment procedure in the CX by the investor, which can be then implemented in one of the modules of the intellectual information system for the CX rates forecasting. The scientific novelty of the results is that for the first time to solve the problem of the CX market evaluation in the context of the CX investment problem, gaming approaches based on solving a bilinear quality game in fuzzy production, as well as ANN were used
Π ΠΠΠΠΠΠΠΠΠ§ΠΠ‘ΠΠΠ Π ΠΠΠΠΠ¦ΠΠΠ‘ΠΠΠ ΠΠΠ‘ΠΠΠΠ‘Π’ΠΠΠ― Π§ΠΠ ΠΠΠΠ«ΠΠ¬Π‘ΠΠΠ ΠΠΠ’ΠΠ‘Π’Π ΠΠ€Π«
From the position of a 25-yearsβ experience to overcome the health effects of Chernobyl the dynamics of the radiation environment, the first summarizing at the international level (1988), the results of completed research and practical monitoring are analyzed. Cohort of acute radiation syndrome (ARS) survivors under medical observation at the S.I. "Research Center for Radiation Medicine of the National Academy of Medical Sciences of Ukraine" is the largest. Within the 25 years the functional state of the major organs and body systems, and metabolic homeostasis for this category of persons were studied, a comprehensive assessment of their health, mental and physical performance were given, and risk factors and peculiarities of stochastic and non-stochastic pathology courses were identified, as well as a system of rehabilitation patients after ARS was developed. ARS survivors are suffering from chronic diseases of internal organs and systems (from 5-7 to 10-12 diagnoses at the same time). A correlation between acute radiation effects and specific HLA phenotypes were revealed. The dynamics of the immune system recovery after irradiation was studied. The role and prognostic value of telomere length and programmed cell death of lymphocytes in the formation of the cellular effects of ionizing radiation were determined for the first time. Differences between spontaneous and radiation-induced acute myeloid leukemias were found. Dose-dependent neuropsychiatric, neurophysiological, neuropsychological and neuroimaging deviations were identified after irradiation at doses above 0.3 Sv. It was shown that the lymphocytes of Chernobyl clean-up workers with doses 350 β 690 mGy can induce "the bystander effect" in the non-irradiated cells even after 19 years after exposure. The rates of cancer incidence and mortality of victims, the lessons and key problems to be solved in the third decade after the Chernobyl accident are considered.Π‘ ΠΏΠΎΠ·ΠΈΡΠΈΠΉ 25-Π»Π΅ΡΠ½Π΅Π³ΠΎ ΠΎΠΏΡΡΠ° ΠΏΡΠ΅ΠΎΠ΄ΠΎΠ»Π΅Π½ΠΈΡ ΠΌΠ΅Π΄ΠΈΡΠΈΠ½ΡΠΊΠΈΡ
ΠΏΠΎΡΠ»Π΅Π΄ΡΡΠ²ΠΈΠΉ Π°Π²Π°ΡΠΈΠΈ Π½Π° Π§Π΅ΡΠ½ΠΎΠ±ΡΠ»ΡΡΠΊΠΎΠΉ ΠΠΠ‘ ΠΏΡΠΎΠ°Π½Π°Π»ΠΈΠ·ΠΈΡΠΎΠ²Π°Π½Π° Π΄ΠΈΠ½Π°ΠΌΠΈΠΊΠ° ΡΠ°Π΄ΠΈΠ°ΡΠΈΠΎΠ½Π½ΠΎΠΉ ΠΎΠ±ΡΡΠ°Π½ΠΎΠ²ΠΊΠΈ, ΠΏΠ΅ΡΠ²ΡΠ΅ ΠΎΠ±ΠΎΠ±ΡΠ΅Π½ΠΈΡ Π½Π° ΠΌΠ΅ΠΆΠ΄ΡΠ½Π°ΡΠΎΠ΄Π½ΠΎΠΌ ΡΡΠΎΠ²Π½Π΅ (1988 Π³.), ΠΈΡΠΎΠ³ΠΈ Π²ΡΠΏΠΎΠ»Π½Π΅Π½Π½ΡΡ
Π½Π°ΡΡΠ½ΡΡ
ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΠΉ ΠΈ ΠΏΡΠ°ΠΊΡΠΈΡΠ΅ΡΠΊΠΎΠ³ΠΎ ΠΌΠΎΠ½ΠΈΡΠΎΡΠΈΠ½Π³Π°. ΠΠΎΠ³ΠΎΡΡΠ° Π±ΠΎΠ»ΡΠ½ΡΡ
, ΠΏΠ΅ΡΠ΅Π½Π΅ΡΡΠΈΡ
ΠΠΠ ΠΈ Π½Π°Ρ
ΠΎΠ΄ΡΡΠΈΡ
ΡΡ ΠΏΠΎΠ΄ Π΄ΠΈΡΠΏΠ°Π½ΡΠ΅ΡΠ½ΡΠΌ Π½Π°Π±Π»ΡΠ΄Π΅Π½ΠΈΠ΅ΠΌ Π² ΠΠ£ Β«ΠΠ°ΡΡΠ½ΡΠΉ ΡΠ΅Π½ΡΡ ΡΠ°Π΄ΠΈΠ°ΡΠΈΠΎΠ½Π½ΠΎΠΉ ΠΌΠ΅Π΄ΠΈΡΠΈΠ½Ρ ΠΠΠΠ Π£ΠΊΡΠ°ΠΈΠ½ΡΒ», Π² Π£ΠΊΡΠ°ΠΈΠ½Π΅ ΠΎΡΡΠ°Π΅ΡΡΡ ΡΠ°ΠΌΠΎΠΉ ΠΌΠ½ΠΎΠ³ΠΎΡΠΈΡΠ»Π΅Π½Π½ΠΎΠΉ. ΠΠ° 25 Π»Π΅Ρ ΠΈΠ·ΡΡΠ΅Π½ΠΎ ΡΡΠ½ΠΊΡΠΈΠΎΠ½Π°Π»ΡΠ½ΠΎΠ΅ ΡΠΎΡΡΠΎΡΠ½ΠΈΠ΅ ΠΎΡΠ½ΠΎΠ²Π½ΡΡ
ΠΎΡΠ³Π°Π½ΠΎΠ² ΠΈ ΡΠΈΡΡΠ΅ΠΌ ΠΎΡΠ³Π°Π½ΠΈΠ·ΠΌΠ°, ΠΌΠ΅ΡΠ°Π±ΠΎΠ»ΠΈΡΠ΅ΡΠΊΠΈΡ
ΠΏΡΠΎΡΠ΅ΡΡΠΎΠ² ΠΈ Π³ΠΎΠΌΠ΅ΠΎΡΡΠ°Π·Π° Ρ Π΄Π°Π½Π½ΠΎΠΉ ΠΊΠ°ΡΠ΅Π³ΠΎΡΠΈΠΈ Π»ΠΈΡ; Π΄Π°Π½Π° ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡΠ½Π°Ρ ΠΎΡΠ΅Π½ΠΊΠ° ΡΠΎΡΡΠΎΡΠ½ΠΈΡ ΠΈΡ
Π·Π΄ΠΎΡΠΎΠ²ΡΡ, ΡΠΌΡΡΠ²Π΅Π½Π½ΠΎΠΉ ΠΈ ΡΠΈΠ·ΠΈΡΠ΅ΡΠΊΠΎΠΉ ΡΠ°Π±ΠΎΡΠΎΡΠΏΠΎΡΠΎΠ±Π½ΠΎΡΡΠΈ, Π° ΡΠ°ΠΊΠΆΠ΅ ΠΎΠΏΡΠ΅Π΄Π΅Π»Π΅Π½Ρ ΡΠ°ΠΊΡΠΎΡΡ ΡΠΈΡΠΊΠ° ΡΠ°Π·Π²ΠΈΡΠΈΡ ΠΈ ΠΎΡΠΎΠ±Π΅Π½Π½ΠΎΡΡΠΈ ΡΠ΅ΡΠ΅Π½ΠΈΡ ΡΡΠΎΡ
Π°ΡΡΠΈΡΠ΅ΡΠΊΠΎΠΉ ΠΈ Π½Π΅ΡΡΠΎΡ
Π°ΡΡΠΈΡΠ΅ΡΠΊΠΎΠΉ ΠΏΠ°ΡΠΎΠ»ΠΎΠ³ΠΈΠΈ, ΡΠ°Π·ΡΠ°Π±ΠΎΡΠ°Π½Π° ΡΠΈΡΡΠ΅ΠΌΠ° ΡΠ΅Π°Π±ΠΈΠ»ΠΈΡΠ°ΡΠΈΠΈ Π±ΠΎΠ»ΡΠ½ΡΡ
, ΠΏΠ΅ΡΠ΅Π½Π΅ΡΡΠΈΡ
ΠΎΡΡΡΡΡ Π»ΡΡΠ΅Π²ΡΡ Π±ΠΎΠ»Π΅Π·Π½Ρ (ΠΠΠ). ΠΠ΅ΡΠ΅Π½Π΅ΡΡΠΈΠ΅ ΠΠΠ ΠΈ ΠΎΡΡΠ°Π²ΡΠΈΠ΅ΡΡ ΠΆΠΈΠ²ΡΠΌΠΈ ΡΡΡΠ°Π΄Π°ΡΡ Ρ
ΡΠΎΠ½ΠΈΡΠ΅ΡΠΊΠΈΠΌΠΈ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡΠΌΠΈ Π²Π½ΡΡΡΠ΅Π½Π½ΠΈΡ
ΠΎΡΠ³Π°Π½ΠΎΠ² ΠΈ ΡΠΈΡΡΠ΅ΠΌ (ΠΎΡ 5β7 Π΄ΠΎ 10β12 Π΄ΠΈΠ°Π³Π½ΠΎΠ·ΠΎΠ² ΠΎΠ΄Π½ΠΎΠ²ΡΠ΅ΠΌΠ΅Π½Π½ΠΎ). ΠΡΡΠ²Π»Π΅Π½Ρ ΠΊΠΎΡΡΠ΅Π»ΡΡΠΈΠ²Π½ΡΠ΅ ΡΠ²ΡΠ·ΠΈ ΠΌΠ΅ΠΆΠ΄Ρ ΠΎΡΡΡΡΠΌ ΡΠ°Π΄ΠΈΠ°ΡΠΈΠΎΠ½Π½ΡΠΌ ΡΡΡΠ΅ΠΊΡΠΎΠΌ ΠΈ ΠΎΠΏΡΠ΅Π΄Π΅Π»Π΅Π½Π½ΡΠΌΠΈ HLAΡΠ΅Π½ΠΎΡΠΈΠΏΠ°ΠΌΠΈ. ΠΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½Π° Π΄ΠΈΠ½Π°ΠΌΠΈΠΊΠ° Π²ΠΎΡΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΈΡ ΠΈΠΌΠΌΡΠ½Π½ΠΎΠΉ ΡΠΈΡΡΠ΅ΠΌΡ ΠΏΠΎΡΠ»Π΅ ΠΎΠ±Π»ΡΡΠ΅Π½ΠΈΡ. ΠΠΏΠ΅ΡΠ²ΡΠ΅ ΡΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½Ρ ΡΠΎΠ»Ρ ΠΈ ΠΏΡΠΎΠ³Π½ΠΎΡΡΠΈΡΠ΅ΡΠΊΠΎΠ΅ Π·Π½Π°ΡΠ΅Π½ΠΈΠ΅ Π΄Π»ΠΈΠ½Ρ ΡΠ΅Π»ΠΎΠΌΠ΅Ρ ΠΈ Π·Π°ΠΏΡΠΎΠ³ΡΠ°ΠΌΠΌΠΈΡΠΎΠ²Π°Π½Π½ΠΎΠΉ ΠΊΠ»Π΅ΡΠΎΡΠ½ΠΎΠΉ Π³ΠΈΠ±Π΅Π»ΠΈ Π»ΠΈΠΌΡΠΎΡΠΈΡΠΎΠ² Π² ΡΠΎΡΠΌΠΈΡΠΎΠ²Π°Π½ΠΈΠΈ ΠΊΠ»Π΅ΡΠΎΡΠ½ΡΡ
ΡΡΡΠ΅ΠΊΡΠΎΠ² ΠΈΠΎΠ½ΠΈΠ·ΠΈΡΡΡΡΠ΅Π³ΠΎ ΠΎΠ±Π»ΡΡΠ΅Π½ΠΈΡ. ΠΠ°ΠΉΠ΄Π΅Π½Ρ ΡΠ°Π·Π»ΠΈΡΠΈΡ ΠΌΠ΅ΠΆΠ΄Ρ ΡΠΏΠΎΠ½ΡΠ°Π½Π½ΡΠΌΠΈ ΠΈ ΡΠ°Π΄ΠΈΠ°ΡΠΈΠΎΠ½Π½ΠΎ-ΠΈΠ½Π΄ΡΡΠΈΡΠΎΠ²Π°Π½Π½ΡΠΌΠΈ ΠΎΡΡΡΡΠΌΠΈ ΠΌΠΈΠ΅Π»ΠΎΠΈΠ΄Π½ΡΠΌΠΈ Π»Π΅ΠΉΠΊΠ΅ΠΌΠΈΡΠΌΠΈ. ΠΠΎΠ·ΠΎΠ·Π°Π²ΠΈΡΠΈΠΌΡΠ΅ Π½Π΅ΠΉΡΠΎΠΏΡΠΈΡ
ΠΈΠ°ΡΡΠΈΡΠ΅ΡΠΊΠΈΠ΅, Π½Π΅ΠΉΡΠΎΡΠΈΠ·ΠΈΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΈΠ΅, Π½Π΅ΠΉΡΠΎΠΏΡΠΈΡ
ΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΈΠ΅ ΠΈ Π½Π΅ΠΉΡΠΎΠ²ΠΈΠ·ΡΠ°Π»ΠΈΠ·Π°ΡΠΈΠΎΠ½Π½ΡΠ΅ ΠΎΡΠΊΠ»ΠΎΠ½Π΅Π½ΠΈΡ Π²ΡΡΠ²Π»Π΅Π½Ρ ΠΏΠΎΡΠ»Π΅ ΠΎΠ±Π»ΡΡΠ΅Π½ΠΈΡ Π² Π΄ΠΎΠ·Π°Ρ
ΡΠ²ΡΡΠ΅ 0,3 ΠΠ². ΠΠΎΠΊΠ°Π·Π°Π½ΠΎ, ΡΡΠΎ Π»ΠΈΠΌΡΠΎΡΠΈΡΡ ΡΡΠ°ΡΡΠ½ΠΈΠΊΠΎΠ² Π»ΠΈΠΊΠ²ΠΈΠ΄Π°ΡΠΈΠΈ ΠΏΠΎΡΠ»Π΅Π΄ΡΡΠ²ΠΈΠΉ Π°Π²Π°ΡΠΈΠΈ Π½Π° Π§ΠΠΠ‘ Ρ Π΄ΠΎΠ·Π°ΠΌΠΈ ΠΎΠ±Π»ΡΡΠ΅Π½ΠΈΡ 350β690 ΠΌΠΡ ΡΠΏΠΎΡΠΎΠ±Π½Ρ ΠΈΠ½Π΄ΡΡΠΈΡΠΎΠ²Π°ΡΡ Β«ΡΡΡΠ΅ΠΊΡ ΡΠ²ΠΈΠ΄Π΅ΡΠ΅Π»ΡΒ» Π² Π½Π΅ΠΎΠ±Π»ΡΡΠ΅Π½Π½ΡΡ
ΠΊΠ»Π΅ΡΠΊΠ°Ρ
Π΄Π°ΠΆΠ΅ ΡΠ΅ΡΠ΅Π· 19 Π»Π΅Ρ ΠΏΠΎΡΠ»Π΅ Π²ΠΎΠ·Π΄Π΅ΠΉΡΡΠ²ΠΈΡ ΡΠ°Π΄ΠΈΠ°ΡΠΈΠΈ. Π Π°ΡΡΠΌΠΎΡΡΠ΅Π½Ρ ΠΏΠΎΠΊΠ°Π·Π°ΡΠ΅Π»ΠΈ ΠΎΠ½ΠΊΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΎΠΉ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π΅ΠΌΠΎΡΡΠΈ, ΡΠΌΠ΅ΡΡΠ½ΠΎΡΡΠΈ ΠΏΠΎΡΡΡΠ°Π΄Π°Π²ΡΠΈΡ
, ΡΡΠΎΠΊΠΈ ΠΈ ΠΎΡΠ½ΠΎΠ²Π½ΡΠ΅ ΠΏΡΠΎΠ±Π»Π΅ΠΌΡ Π΄Π»Ρ ΡΠ΅ΡΠ΅Π½ΠΈΡ Π² ΡΡΠ΅ΡΡΠ΅ΠΌ Π΄Π΅ΡΡΡΠΈΠ»Π΅ΡΠΈΠΈ ΠΏΠΎΡΠ»Π΅ Π§Π΅ΡΠ½ΠΎΠ±ΡΠ»ΡΡΠΊΠΎΠΉ ΠΊΠ°ΡΠ°ΡΡΡΠΎΡΡ
Radiation and the Risk of Chronic Lymphocytic and Other Leukemias among Chornobyl Cleanup Workers
Background: Risks of most types of leukemia from exposure to acute high doses of ionizing radiation are well known, but risks associated with protracted exposures, as well as associations between radiation and chronic lymphocytic leukemia (CLL), are not clear.β©
Objectives: We estimated relative risks of CLL and non-CLL from protracted exposures to low-dose ionizing radiation.β©
Methods: A nested caseβcontrol study was conducted in a cohort of 110,645 Ukrainian cleanup workers of the 1986 Chornobyl nuclear power plant accident. Cases of incident leukemia diagnosed in 1986β2006 were confirmed by a panel of expert hematologists/hematopathologists. Controls were matched to cases on place of residence and year of birth. We estimated individual bone marrow radiation doses by the Realistic Analytical Dose Reconstruction with Uncertainty Estimation (RADRUE) method. We then used a conditional logistic regression model to estimate excess relative risk of leukemia per gray (ERR/Gy) of radiation dose.β©
Results: We found a significant linear dose response for all leukemia [137 cases, ERR/Gy = 1.26 (95% CI: 0.03, 3.58]. There were nonsignificant positive dose responses for both CLL and non-CLL (ERR/Gy = 0.76 and 1.87, respectively). In our primary analysis excluding 20 cases with direct in-person interviews less than 2 years from start of chemotherapy with an anomalous finding of ERR/Gy = β0.47 (95% CI: less than β0.47, 1.02), the ERR/Gy for the remaining 117 cases was 2.38 (95% CI: 0.49, 5.87). For CLL, the ERR/Gy was 2.58 (95% CI: 0.02, 8.43), and for non-CLL, ERR/Gy was 2.21 (95% CI: 0.05, 7.61). Altogether, 16% of leukemia cases (18% of CLL, 15% of non-CLL) were attributed to radiation exposure.β©
Conclusions: Exposure to low doses and to low dose-rates of radiation from post-Chornobyl cleanup work was associated with a significant increase in risk of leukemia, which was statistically consistent with estimates for the Japanese atomic bomb survivors. Based on the primary analysis, we conclude that CLL and non-CLL are both radiosensitive.
ASSESSMENT OF THE EFFECT OF WAVE DEVICE APPLICATION ON MORPHOLOGICAL CHANGES IN ORGANS AND CELLS OF IRRADIATED ANIMALS
Aim: To study the effect of the Device for wave influence on biological objects on the prevention of the development of acute radiation sickness and chronic radiation syndrome in vivo. Materials and Methods: The studies were performed on white rats irradiated at a dose of 8 Gy. The experimental group of irradiated rats was treated with a wave Device (Patent of Ukraine No. 53568) once, for 2.5 min, 1.5 h after irradiation. Their organs were processed by standard histologic methods. Results: In the demagnetized rats, dystrophic changes in cells and tissues of liver, lungs, kidneys, brain, bone marrow and spleen were insignificant in 60 days compared to the control non-demagnetized group of animals. Conclusion: The Device reduced the magnetic charge of magneto-containing elements and their compounds in the organism of the irradiated animals, and decreased the formation of reactive oxygen species, which play a key role in the development of radiation-induced diseases