580 research outputs found
Investigation of changes in conductivity of juice during the evaporation process
The creation of this article was the necessity of experimental determination of the electric conductivity of juice depending on the concentration of solids, expressed by the empirical formula, in order to more precisely control specific power supplied to the machine and foaming. Authors of the article held staged experimental studies using apple juice, the juice of red mountain ash, buckthorn and black currant. Found that the relationship between the conductivity of the juice solids content corresponds to the empirical formula of Kohlrausch, however, this formula does not represent the contribution juice acidity value of conductivity, and allows to correlate the specific power input to the device with the concentration of solids. The empirical formulas for the distribution of electrical juice conductivity depending on the acidity and for calculation of the specific power depending on the concentration of dry matter, allows to keep the speed of the foam below its destruction speed in the zone of vigorous reflux
Effect of Corbon Content on the Structure and Mechanical Properties of TI-10V-2Fe-3Al Alloy
The effect of carbon content on microstructure and mechanical properties of the transition (Ξ±+Ξ²)-titanium alloy Tiβ10Vβ2Feβ3Al in a heat-strengthened state was studied. It was established that with the increase of carbon content in the alloy up to the limit of its solubility in a solid solution, the strength of the alloy increases, the plastic characteristics decrease. When the solubility limit of carbon in a solid solution in an alloy is exceeded, the appearance of titanium-based carbide particles was observed, while the strength of the alloy somewhat decreases, due to the decrease of the effect of solid-solution hardening from the elements present in the alloy, which are partially transferred from the solid solution to the titanium-based carbide particles.
Keywords: titanium alloys, titanium carbides, mechanical properties, hardening heat treatment
ΠΠ·Π°ΠΈΠΌΠΎΡΠ²ΡΠ·Ρ ΠΏΠΎΠ»ΠΈΠΌΠΎΡΡΠΈΠ·ΠΌΠΎΠ² Π³Π΅Π½ΠΎΠ² ΡΠΈΡΠΎΠΊΠΈΠ½ΠΎΠ² TNF-Ξ±, IL-10, MBL2, IFN-Ξ³ ΠΈ IL-6 Π² ΡΠ°Π·Π²ΠΈΡΠΈΠΈ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΠΎΠ³ΠΎ ΡΠ΅ΡΠ΅Π½ΠΈΡ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠΈ Ρ ΠΌΡΠΆΡΠΈΠ½
Goal. To develop a personified approach to the management of men with the urogenital chlamydia infection based on studying the molecular and genetic risk factors of the development of complications. Materials and methods. Patients with the urogenital chlamydia infection (20 men with the urogenital chlamydia infection of the lower urogenital tract and 20 men with complicated forms of the urogenital chlamydia infection) and men without any clinical or laboratory signs of STDs and inflammatory diseases of the urogenital tract. The following methods were used in the study: anamnestic, clinical, instrumental (transrectal ultrasonography) and laboratory (microscopic, bacteriological, molecular and biological (PCR, SNaPshot)). Results. According to the study results, the share of cases of ureteritis caused by C. trachomatis amounted to 10.5% of the total share of cases of ureteritis and 13.0% of cases of non-gonococcal ureteritis. The percentage of complicated urogenital diseases caused by C. trachomatis amounted to 34.5% of the total share of complicated forms and 35.7% of noncomplicated forms of the non-gonococcal origin. Subjective clinical signs of complicated forms of the chlamydia infection did not have any reliable distinctions from those observed in case of non-complicated forms of the disease; the infectious process caused by C. trachomatis was characterized by the absence of leukocytosis in the urethra in 30.0% of men with both non-complicated and complicated forms of the disease. The study of the polymorphism of cytokine genes revealed that the CC genotype of IL-6 gene at the -174 locus can serve as a molecular predictor of the complicated course of urogenital chlamydiosis in men while the GC genotype of IL-6 gene at the -174 locus can serve as a molecular predictor of the non-complicated course of urogenital chlamydiosis in men. Based on these results, the authors developed an algorithm for a differential approach to the management of patients suffering from chlamydia infection. Conclusion. A differential approach to the management of men with the urogenital chlamydia infection depending on the molecular predictor of the complicated course of the disease was developed.Π¦Π΅Π»Ρ. Π Π°Π·ΡΠ°Π±ΠΎΡΠΊΠ° ΠΏΠ΅ΡΡΠΎΠ½Π°Π»ΠΈΠ·ΠΈΡΠΎΠ²Π°Π½Π½ΠΎΠ³ΠΎ ΠΏΠΎΠ΄Ρ
ΠΎΠ΄Π° ΠΊ Π²Π΅Π΄Π΅Π½ΠΈΡ ΠΌΡΠΆΡΠΈΠ½ Ρ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠ΅ΠΉ Π½Π° ΠΎΡΠ½ΠΎΠ²Π°Π½ΠΈΠΈ ΠΈΠ·ΡΡΠ΅Π½ΠΈΡ ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΠΎ-Π³Π΅Π½Π΅ΡΠΈΡΠ΅ΡΠΊΠΈΡ
ΡΠ°ΠΊΡΠΎΡΠΎΠ² ΡΠΈΡΠΊΠ° ΡΠ°Π·Π²ΠΈΡΠΈΡ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½ΠΈΠΉ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡ. ΠΠ°ΡΠ΅ΡΠΈΠ°Π» ΠΈ ΠΌΠ΅ΡΠΎΠ΄Ρ. ΠΠΎΠ»ΡΠ½ΡΠ΅ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠ΅ΠΉ (20 ΠΌΡΠΆΡΠΈΠ½ Ρ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠ΅ΠΉ Π½ΠΈΠΆΠ½ΠΈΡ
ΠΎΡΠ΄Π΅Π»ΠΎΠ² ΠΌΠΎΡΠ΅ΠΏΠΎΠ»ΠΎΠ²ΠΎΠ³ΠΎ ΡΡΠ°ΠΊΡΠ° ΠΈ 20 ΠΌΡΠΆΡΠΈΠ½ Ρ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΠΌΠΈ ΡΠΎΡΠΌΠ°ΠΌΠΈ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠΈ) ΠΈ 20 ΠΌΡΠΆΡΠΈΠ½, Π½Π΅ ΠΈΠΌΠ΅Π²ΡΠΈΡ
ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΈΡ
ΠΈ Π»Π°Π±ΠΎΡΠ°ΡΠΎΡΠ½ΡΡ
ΠΏΡΠΈΠ·Π½Π°ΠΊΠΎΠ² ΠΠΠΠ ΠΈ Π²ΠΎΡΠΏΠ°Π»ΠΈΡΠ΅Π»ΡΠ½ΡΡ
Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΠΉ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠ³ΠΎ ΡΡΠ°ΠΊΡΠ°. Π ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΠΈ ΠΈΡΠΏΠΎΠ»ΡΠ·ΠΎΠ²Π°Π½Ρ ΡΠ»Π΅Π΄ΡΡΡΠΈΠ΅ ΠΌΠ΅ΡΠΎΠ΄Ρ: Π°Π½Π°ΠΌΠ½Π΅ΡΡΠΈΡΠ΅ΡΠΊΠΈΠΉ, ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΈΠΉ, ΠΈΠ½ΡΡΡΡΠΌΠ΅Π½ΡΠ°Π»ΡΠ½ΡΠΉ (Π’Π Π£ΠΠ), Π»Π°Π±ΠΎΡΠ°ΡΠΎΡΠ½ΡΠ΅ (ΠΌΠΈΠΊΡΠΎΡΠΊΠΎΠΏΠΈΡΠ΅ΡΠΊΠΈΠΉ, Π±Π°ΠΊΡΠ΅ΡΠΈΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΈΠΉ, ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΠΎΠ±ΠΈΠΎΠ»ΠΎΠ³ΠΈΡΠ΅ΡΠΊΠΈΠ΅ (ΠΠ¦Π , SNaPshot)). Π Π΅Π·ΡΠ»ΡΡΠ°ΡΡ. Π£ΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΎ, ΡΡΠΎ Π΄ΠΎΠ»Ρ ΡΡΠ΅ΡΡΠΈΡΠΎΠ², ΠΎΠ±ΡΡΠ»ΠΎΠ²Π»Π΅Π½Π½ΡΡ
C. trachomatis, ΡΠΎΡΡΠ°Π²ΠΈΠ»Π° 10,5% ΠΎΡ ΠΎΠ±ΡΠ΅ΠΉ Π΄ΠΎΠ»ΠΈ ΡΡΠ΅ΡΡΠΈΡΠΎΠ² ΠΈ 13,0% ΠΎΡ Π΄ΠΎΠ»ΠΈ Π½Π΅Π³ΠΎΠ½ΠΎΠΊΠΎΠΊΠΊΠΎΠ²ΡΡ
ΡΡΠ΅ΡΡΠΈΡΠΎΠ². ΠΠΎΠ»Ρ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΡΡ
Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΠΉ, ΠΎΠ±ΡΡΠ»ΠΎΠ²Π»Π΅Π½Π½ΡΡ
C. trachomatis, ΡΠΎΡΡΠ°Π²ΠΈΠ»Π° 34,5% ΠΎΡ ΠΎΠ±ΡΠ΅ΠΉ Π΄ΠΎΠ»ΠΈ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌ ΠΈ 35,7% ΠΎΡ Π΄ΠΎΠ»ΠΈ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌ Π½Π΅Π³ΠΎΠ½ΠΎΠΊΠΎΠΊΠΊΠΎΠ²ΠΎΠΉ ΡΡΠΈΠΎΠ»ΠΎΠ³ΠΈΠΈ. Π‘ΡΠ±ΡΠ΅ΠΊΡΠΈΠ²Π½ΡΠ΅ ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΈΠ΅ ΠΏΡΠΈΠ·Π½Π°ΠΊΠΈ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠΈ Π½Π΅ ΠΈΠΌΠ΅Π»ΠΈ Π΄ΠΎΡΡΠΎΠ²Π΅ΡΠ½ΡΡ
ΠΎΡΠ»ΠΈΡΠΈΠΉ ΠΎΡ ΡΠ°ΠΊΠΎΠ²ΡΡ
ΠΏΡΠΈ Π½Π΅ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΡ
ΡΠΎΡΠΌΠ°Ρ
Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡ, ΠΏΡΠΈ ΡΡΠΎΠΌ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠΎΠ½Π½ΡΠΉ ΠΏΡΠΎΡΠ΅ΡΡ, Π²ΡΠ·Π²Π°Π½Π½ΡΠΉ C. trachomatis, Ρ
Π°ΡΠ°ΠΊΡΠ΅ΡΠΈΠ·ΠΎΠ²Π°Π»ΡΡ ΠΎΡΡΡΡΡΡΠ²ΠΈΠ΅ΠΌ Π»Π΅ΠΉΠΊΠΎΡΠΈΡΠΎΠ·Π° Π² ΡΡΠ΅ΡΡΠ΅ Ρ 30,0% ΠΌΡΠΆΡΠΈΠ½ ΠΊΠ°ΠΊ Ρ Π½Π΅ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΠΌΠΈ, ΡΠ°ΠΊ ΠΈ Ρ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΡΠΌΠΈ ΡΠΎΡΠΌΠ°ΠΌΠΈ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡ. ΠΡΠΈ ΠΈΠ·ΡΡΠ΅Π½ΠΈΠΈ ΠΏΠΎΠ»ΠΈΠΌΠΎΡΡΠΈΠ·ΠΌΠΎΠ² Π³Π΅Π½ΠΎΠ² ΡΠΈΡΠΎΠΊΠΈΠ½ΠΎΠ² ΡΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΎ, ΡΡΠΎ ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΡΠΌ ΠΏΡΠ΅Π΄ΠΈΠΊΡΠΎΡΠΎΠΌ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΠΎΠ³ΠΎ ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΎΠ³ΠΎ ΡΠ΅ΡΠ΅Π½ΠΈΡ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠ³ΠΎ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΎΠ·Π° Ρ ΠΌΡΠΆΡΠΈΠ½ ΠΌΠΎΠΆΠ΅Ρ ΡΠ²Π»ΡΡΡΡΡ Π³Π΅Π½ΠΎΡΠΈΠΏ Π‘Π‘ Π³Π΅Π½Π° IL-6 Π² ΠΏΠΎΠ»ΠΎΠΆΠ΅Π½ΠΈΠΈ -174, ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΡΠΌ ΠΏΡΠ΅Π΄ΠΈΠΊΡΠΎΡΠΎΠΌ Π½Π΅ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΠΎΠ³ΠΎ ΠΊΠ»ΠΈΠ½ΠΈΡΠ΅ΡΠΊΠΎΠ³ΠΎ ΡΠ΅ΡΠ΅Π½ΠΈΡ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠ³ΠΎ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΎΠ·Π° Ρ ΠΌΡΠΆΡΠΈΠ½ β Π³Π΅Π½ΠΎΡΠΈΠΏ GC Π³Π΅Π½Π° IL-6 Π² ΠΏΠΎΠ»ΠΎΠΆΠ΅Π½ΠΈΠΈ -174. ΠΠ° ΠΎΡΠ½ΠΎΠ²Π°Π½ΠΈΠΈ ΠΏΠΎΠ»ΡΡΠ΅Π½Π½ΡΡ
Π΄Π°Π½Π½ΡΡ
ΡΠ°Π·ΡΠ°Π±ΠΎΡΠ°Π½ Π°Π»Π³ΠΎΡΠΈΡΠΌ Π΄ΠΈΡΡΠ΅ΡΠ΅Π½ΡΠΈΡΠΎΠ²Π°Π½Π½ΠΎΠΉ ΡΠ°ΠΊΡΠΈΠΊΠΈ Π²Π΅Π΄Π΅Π½ΠΈΡ Π±ΠΎΠ»ΡΠ½ΡΡ
Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠ΅ΠΉ. ΠΠ°ΠΊΠ»ΡΡΠ΅Π½ΠΈΠ΅. Π Π°Π·ΡΠ°Π±ΠΎΡΠ°Π½Π° Π΄ΠΈΡΡΠ΅ΡΠ΅Π½ΡΠΈΡΠΎΠ²Π°Π½Π½Π°Ρ ΡΠ°ΠΊΡΠΈΠΊΠ° Π²Π΅Π΄Π΅Π½ΠΈΡ ΠΌΡΠΆΡΠΈΠ½, Π±ΠΎΠ»ΡΠ½ΡΡ
ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉ Ρ
Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠ΅ΠΉ, Π² Π·Π°Π²ΠΈΡΠΈΠΌΠΎΡΡΠΈ ΠΎΡ Π²ΡΡΠ²Π»Π΅Π½ΠΈΡ ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΠΎΠ³ΠΎ ΠΏΡΠ΅Π΄ΠΈΠΊΡΠΎΡΠ° ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½Π½ΠΎΠ³ΠΎ ΡΠ΅ΡΠ΅Π½ΠΈΡ Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΡ
Operative Treatment of Patients with Pancreatic Pseudocysts
The article presents the results of surgical treatment of patients with pancreatic pseudocysts spent in hospital surgical clinic Siberian State Medical University from 2004 to 2016. 7 (17.5%) patients underwent conservative therapy. In the early postoperative period and in the long term (18 months) the analysis of the effectiveness of different methods of surgical treatment. According to the results of the research, the operations of the internal drainage along with resection and resection-draining interventions in assessing the quality of life showed similar long-term results. In turn, these interventions have provided significantly better quality of life (p> 0.05) than external drainage operation
Unrepairable substrates of nucleotide excision repair and their application to suppress the activity of this repair system
In the previous studies, the DNA with the bulky Fap-dC derivative was demonstrated to be a difficult substrate for the nucleotide excision repair (NER), a system which is involved in the removal of bulky lesions from DNA. This type of compounds could be of particular interest as possible selective NER, considerably reducing the potency of DNA repair due to competitive immobilization of protein factors involved in this process. This approach can be potentially useful to increase the efficiency of chemotherapy. Aim. To identify DNA structures containing multiple bulky adducts that can efficiently inhibit the nucleotide excision repair. Methods. Enzymatic DNA synthesis, PCR, NER-competent cell extract preparation, in vitro NER assay, HPLC. Results. The conditions for the synthesis of extended DNA containing multiple unrepairable lesions were established. A wide range of DNA structures containing modified nucleotides was obtained. All modified DNAs were shown to inhibit the in vitro activity of the NER system. The DNA structure that inhibits the NER activity with the highest efficiency was selected. Conclusions. The model DNA structures effectively inhibiting the activity of NER were found. The new data obtained here can potentially be used for both basic and applied research.Π£ Π½Π°ΡΠΈΡ
ΠΏΠΎΠΏΠ΅ΡΠ΅Π΄Π½ΡΡ
Π΄ΠΎΡΠ»ΡΠ΄ΠΆΠ΅Π½Π½ΡΡ
Π±ΡΠ»ΠΎ ΠΏΠΎΠΊΠ°Π·Π°Π½ΠΎ, ΡΠΎ ΠΠΠ Π· ΠΎΠ±'ΡΠΌΠ½ΠΈΠΌ ΠΏΠΎΡ
ΡΠ΄Π½ΠΈΠΌ Fap-dC Ρ ΡΠΊΠ»Π°Π΄Π½ΠΎΡΠ΅ΠΏΠ°ΡΠΎΠ²Π°Π½ΠΈΠΌ ΡΡΠ±ΡΡΡΠ°ΡΠΎΠΌ Π΄Π»Ρ ΡΠΈΡΡΠ΅ΠΌΠΈ Π΅ΠΊΡΡΠΈΠ·ΡΠΉΠ½ΠΎΡ ΡΠ΅ΠΏΠ°ΡΠ°ΡΡΡ Π½ΡΠΊΠ»Π΅ΠΎΡΠΈΠ΄ΡΠ² (ΠΡΠ½). Π'ΡΠ΄Π½Π°Π½Π½Ρ ΡΠ°ΠΊΠΎΠ³ΠΎ ΡΠΈΠΏΡ ΠΌΠΎΠΆΡΡΡ ΡΡΠ°Π½ΠΎΠ²ΠΈΡΠΈ ΠΎΡΠΎΠ±Π»ΠΈΠ²ΠΈΠΉ ΡΠ½ΡΠ΅ΡΠ΅Ρ ΡΠΊ ΠΌΠΎΠΆΠ»ΠΈΠ²Ρ ΡΠ΅Π»Π΅ΠΊΡΠΈΠ²Π½Ρ ΡΠ½Π³ΡΠ±ΡΡΠΎΡΠΈ ΡΠΈΡΡΠ΅ΠΌΠΈ ΠΡΠ½, Π·Π½Π°ΡΠ½ΠΎ Π·Π½ΠΈΠΆΡΡΡΠΈ Π΅ΡΠ΅ΠΊΡΠΈΠ²Π½ΡΡΡΡ ΡΠ΅ΠΏΠ°ΡΠ°ΡΡΡ ΠΠΠ ΡΠ»ΡΡ
ΠΎΠΌ Π·Π²'ΡΠ·ΡΠ²Π°Π½Π½Ρ Π±ΡΠ»ΠΊΠΎΠ²ΠΈΡ
ΡΠΈΠ½Π½ΠΈΠΊΡΠ², Π·Π°Π»ΡΡΠ΅Π½ΠΈΡ
Π΄ΠΎ Π΄Π°Π½ΠΎΠ³ΠΎ ΠΏΡΠΎΡΠ΅ΡΡ. Π¦Π΅ΠΉ ΠΏΡΠ΄Ρ
ΡΠ΄ ΠΌΠΎΠΆΠ΅ Π±ΡΡΠΈ ΠΏΠΎΡΠ΅Π½ΡΡΠΉΠ½ΠΎ ΠΊΠΎΡΠΈΡΠ½ΠΈΠΉ Π΄Π»Ρ ΠΏΡΠ΄Π²ΠΈΡΠ΅Π½Π½Ρ Π΅ΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΡ Ρ
ΡΠΌΡΠΎΡΠ΅ΡΠ°ΠΏΡΡ. ΠΠ΅ΡΠ°. ΠΠ°Π½Π΅ Π΄ΠΎΡΠ»ΡΠ΄ΠΆΠ΅Π½Π½Ρ ΡΠΏΡΡΠΌΠΎΠ²Π°Π½Π΅ Π½Π° ΠΏΠΎΡΡΠΊ ΠΠΠ-ΡΡΡΡΠΊΡΡΡ, ΡΠΎ ΠΌΡΡΡΡΡΡ ΠΌΠ½ΠΎΠΆΠΈΠ½Π½Ρ ΠΎΠ±'ΡΠΌΠ½Ρ Π°Π΄Π΄ΡΠΊΡΠΈ, ΡΠΊΡ Π· Π½Π°ΠΉΠ±ΡΠ»ΡΡΠΎΡ Π΅ΡΠ΅ΠΊΡΠΈΠ²Π½ΡΡΡΡ ΠΌΠΎΠΆΡΡΡ ΠΏΡΠΈΠ³Π½ΡΡΡΠ²Π°ΡΠΈ Π°ΠΊΡΠΈΠ²Π½ΡΡΡΡ ΡΠΈΡΡΠ΅ΠΌΠΈ. ΠΠ΅ΡΠΎΠ΄ΠΈ. Π€Π΅ΡΠΌΠ΅Π½ΡΠ°ΡΠΈΠ²Π½ΠΈΠΉ ΡΠΈΠ½ΡΠ΅Π· ΠΠΠ, ΠΠΠ , ΠΏΡΠΈΠ³ΠΎΡΡΠ²Π°Π½Π½Ρ ΠΡΠ½-ΠΊΠΎΠΌΠΏΠ΅ΡΠ΅Π½ΡΠ½ΠΈΡ
ΠΊΠ»ΡΡΠΈΠ½Π½ΠΈΡ
Π΅ΠΊΡΡΡΠ°ΠΊΡΡΠ², ΡΠ΅Π°ΠΊΡΡΡ Π²ΠΈΡΡΠ·Π°Π½Π½Ρ, ΡΠΎ ΠΊΠ°ΡΠ°Π»ΡΠ·ΡΡΡΡΡΡ Π±ΡΠ»ΠΊΠ°ΠΌΠΈ ΠΡΠ½ in vitro, ΠΠΠ Π₯. Π Π΅Π·ΡΠ»ΡΡΠ°ΡΠΈ. ΠΡΠΎΠ²Π΅Π΄Π΅Π½ΠΎ ΠΏΡΠ΄Π±ΡΡ ΡΠΌΠΎΠ² ΡΠΈΠ½ΡΠ΅Π·Ρ ΠΏΡΠΎΡΡΠΆΠ½ΠΈΡ
ΠΌΠΎΠ΄Π΅Π»ΡΠ½ΠΈΡ
ΠΠΠ Π· ΠΌΠ½ΠΎΠΆΠΈΠ½Π½ΠΈΠΌ Π²ΠΊΠ»ΡΡΠ΅Π½Π½ΡΠΌ Π½Π΅ΡΠ΅ΠΏΠ°ΡΠΎΠ²Π°Π½ΠΎΠ³ΠΎ ΠΏΠΎΡΠΊΠΎΠ΄ΠΆΠ΅Π½Π½Ρ Fap-dC. ΠΡΡΠΈΠΌΠ°Π½ΠΎ ΡΡΠ΄ ΠΠΠ-ΡΡΡΡΠΊΡΡΡ, ΡΠΎ ΠΌΡΡΡΠΈΡΡ Π² ΡΠ²ΠΎΡΠΌΡ ΡΠΊΠ»Π°Π΄Ρ ΡΡΠ·Π½Ρ ΠΊΡΠ»ΡΠΊΡΡΡΡ ΠΌΠΎΠ΄ΠΈΡΡΠΊΠΎΠ²Π°Π½ΠΈΡ
Π»Π°Π½ΠΎΠΊ. ΠΠΎΠΊΠ°Π·Π°Π½ΠΎ, ΡΠΎ Π²ΡΡ ΠΎΡΡΠΈΠΌΠ°Π½Ρ ΠΠΠ ΠΏΡΠΈΠ³Π½ΡΡΡΡΡΡ Π°ΠΊΡΠΈΠ²Π½ΡΡΡΡ ΡΠΈΡΡΠ΅ΠΌΠΈ ΠΡΠ½ in vitro. ΠΠ±ΡΠ°Π½Π° ΠΠΠ-ΡΡΡΡΠΊΡΡΡΠ°, ΡΠΊΠ° ΠΏΡΠΈΠ³Π½ΡΡΡΡ NER Π½Π°ΠΉΠ±ΡΠ»ΡΡ Π²ΠΈΡΠΎΠΊΠΎΡ Π΅ΡΠ΅ΠΊΡΠΈΠ²Π½ΡΡΡΡ. ΠΠΈΡΠ½ΠΎΠ²ΠΊΠΈ. ΠΠΎΠ΄Π΅Π»ΡΠ½Ρ ΠΠΠ Π· Π½Π΅ΡΠ΅ΠΏΠ°ΡΠΎΠ²Π°Π½ΠΈΠΌΠΈ ΡΡΠΊΠΎΠ΄ΠΆΠ΅Π½Π½ΡΠΌΠΈ, Π·Π΄Π°ΡΠ½Ρ Π²ΠΈΡΠΎΠΊΠΎΡ Π΅ΡΠ΅ΠΊΡΠΈΠ²Π½ΡΡΡΡ ΠΏΡΠΈΠ³Π½ΡΡΡΠ²Π°ΡΠΈ NER, ΠΌΠΎΠΆΡΡΡ ΡΠΎΠ·Π³Π»ΡΠ΄Π°ΡΠΈΡΡ Π² ΡΠΊΠΎΡΡΡ ΡΠ½Π³ΡΠ±ΡΡΠΎΡΡΠ² ΡΠΈΡΡΠ΅ΠΌΠΈ ΠΡΠ½. ΠΠΈΡΠ²Π»Π΅Π½Ρ Π² Π΄Π°Π½ΡΠΉ ΡΠΎΠ±ΠΎΡΡ Π·Π°ΠΊΠΎΠ½ΠΎΠΌΡΡΠ½ΠΎΡΡΡ ΠΏΠΎΡΠ΅Π½ΡΡΠΉΠ½ΠΎ ΠΌΠΎΠΆΡΡΡ Π±ΡΡΠΈ Π²ΠΈΠΊΠΎΡΠΈΡΡΠ°Π½Ρ Π΄Π»Ρ ΠΏΡΠΎΠ²Π΅Π΄Π΅Π½Π½Ρ ΡΠΊ ΡΡΠ½Π΄Π°ΠΌΠ΅Π½ΡΠ°Π»ΡΠ½ΠΈΡ
, ΡΠ°ΠΊ Ρ ΠΏΡΠΈΠΊΠ»Π°Π΄Π½ΠΈΡ
Π΄ΠΎΡΠ»ΡΠ΄ΠΆΠ΅Π½Ρ.Π Π½Π°ΡΠΈΡ
ΠΏΡΠ΅Π΄ΡΠ΄ΡΡΠΈΡ
ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΡΡ
Π±ΡΠ»ΠΎ ΠΏΠΎΠΊΠ°Π·Π°Π½ΠΎ, ΡΡΠΎ ΠΠΠ Ρ ΠΎΠ±ΡΠ΅ΠΌΠ½ΡΠΌ ΠΏΡΠΎΠΈΠ·Π²ΠΎΠ΄Π½ΡΠΌ Fap-dC ΡΠ²Π»ΡΠ΅ΡΡΡ ΡΡΡΠ΄Π½ΠΎΡΠ΅ΠΏΠ°ΡΠΈΡΡΠ΅ΠΌΡΠΌ ΡΡΠ±ΡΡΡΠ°ΡΠΎΠΌ Π΄Π»Ρ ΡΠΈΡΡΠ΅ΠΌΡ ΡΠΊΡΡΠΈΠ·ΠΈΠΎΠ½Π½ΠΎΠΉ ΡΠ΅ΠΏΠ°ΡΠ°ΡΠΈΠΈ Π½ΡΠΊΠ»Π΅ΠΎΡΠΈΠ΄ΠΎΠ² (ΠΠ Π). Π‘ΠΎΠ΅Π΄ΠΈΠ½Π΅Π½ΠΈΡ ΡΠ°ΠΊΠΎΠ³ΠΎ ΡΠΈΠΏΠ° ΠΌΠΎΠ³ΡΡ ΠΏΡΠ΅Π΄ΡΡΠ°Π²Π»ΡΡΡ ΠΎΡΠΎΠ±ΡΠΉ ΠΈΠ½ΡΠ΅ΡΠ΅Ρ ΠΊΠ°ΠΊ Π²ΠΎΠ·ΠΌΠΎΠΆΠ½ΡΠ΅ ΡΠ΅Π»Π΅ΠΊΡΠΈΠ²Π½ΡΠ΅ ΠΈΠ½Π³ΠΈΠ±ΠΈΡΠΎΡΡ ΡΠΈΡΡΠ΅ΠΌΡ ΠΠ Π, Π·Π½Π°ΡΠΈΡΠ΅Π»ΡΠ½ΠΎ ΡΠ½ΠΈΠΆΠ°Ρ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΡ ΡΠ΅ΠΏΠ°ΡΠ°ΡΠΈΠΈ ΠΠΠ ΠΏΡΡΠ΅ΠΌ ΡΠ²ΡΠ·ΡΠ²Π°Π½ΠΈΡ Π±Π΅Π»ΠΊΠΎΠ²ΡΡ
ΡΠ°ΠΊΡΠΎΡΠΎΠ², Π²ΠΎΠ²Π»Π΅ΡΠ΅Π½Π½ΡΡ
Π² ΡΡΠΎΡ ΠΏΡΠΎΡΠ΅ΡΡ. ΠΡΠΎΡ ΠΏΠΎΠ΄Ρ
ΠΎΠ΄ ΠΌΠΎΠΆΠ΅Ρ Π±ΡΡΡ ΠΏΠΎΡΠ΅Π½ΡΠΈΠ°Π»ΡΠ½ΠΎ ΠΏΠΎΠ»Π΅Π·Π΅Π½ Π΄Π»Ρ ΠΏΠΎΠ²ΡΡΠ΅Π½ΠΈΡ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΠΈ Ρ
ΠΈΠΌΠΈΠΎΡΠ΅ΡΠ°ΠΏΠΈΠΈ. Π¦Π΅Π»Ρ.Π’Π΅ΠΊΡΡΠ΅Π΅ ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΠ΅ Π½Π°ΠΏΡΠ°Π²Π»Π΅Π½ΠΎ Π½Π° ΠΏΠΎΠΈΡΠΊ ΠΠΠ-ΡΡΡΡΠΊΡΡΡ, ΡΠΎΠ΄Π΅ΡΠΆΠ°ΡΠΈΡ
ΠΌΠ½ΠΎΠΆΠ΅ΡΡΠ²Π΅Π½Π½ΡΠ΅ ΠΎΠ±ΡΠ΅ΠΌΠ½ΡΠ΅ Π°Π΄Π΄ΡΠΊΡΡ, ΠΊΠΎΡΠΎΡΡΠ΅ Ρ Π½Π°ΠΈΠ±ΠΎΠ»ΡΡΠ΅ΠΉ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΡΡ ΠΌΠΎΠ³ΡΡ ΠΏΠΎΠ΄Π°Π²Π»ΡΡΡ Π°ΠΊΡΠΈΠ²Π½ΠΎΡΡΡ ΡΠΈΡΡΠ΅ΠΌΡ. ΠΠ΅ΡΠΎΠ΄Ρ. Π€Π΅ΡΠΌΠ΅Π½ΡΠ°ΡΠΈΠ²Π½ΡΠΉ ΡΠΈΠ½ΡΠ΅Π· ΠΠΠ, ΠΠ¦Π , ΠΏΡΠΈΠ³ΠΎΡΠΎΠ²Π»Π΅Π½ΠΈΠ΅ ΠΠ Π-ΠΊΠΎΠΌΠΏΠ΅ΡΠ΅Π½ΡΠ½ΡΡ
ΠΊΠ»Π΅ΡΠΎΡΠ½ΡΡ
ΡΠΊΡΡΡΠ°ΠΊΡΠΎΠ², ΡΠ΅Π°ΠΊΡΠΈΡ Π²ΡΡΠ΅Π·Π°Π½ΠΈΡ, ΠΊΠ°ΡΠ°Π»ΠΈΠ·ΠΈΡΡΠ΅ΠΌΠ°Ρ Π±Π΅Π»ΠΊΠ°ΠΌΠΈ ΠΠ Π in vitro, ΠΠΠΠ₯. Π Π΅Π·ΡΠ»ΡΡΠ°ΡΡ. ΠΡΠΎΠ²Π΅Π΄Π΅Π½ ΠΏΠΎΠ΄Π±ΠΎΡ ΡΡΠ»ΠΎΠ²ΠΈΠΉ ΡΠΈΠ½ΡΠ΅Π·Π° ΠΏΡΠΎΡΡΠΆΠ΅Π½Π½ΡΡ
ΠΌΠΎΠ΄Π΅Π»ΡΠ½ΡΡ
ΠΠΠ Ρ ΠΌΠ½ΠΎΠΆΠ΅ΡΡΠ²Π΅Π½Π½ΡΠΌ Π²ΠΊΠ»ΡΡΠ΅Π½ΠΈΠ΅ΠΌ Π½Π΅ΡΠ΅ΠΏΠ°ΡΠΈΡΡΠ΅ΠΌΠΎΠ³ΠΎ ΠΏΠΎΠ²ΡΠ΅ΠΆΠ΄Π΅Π½ΠΈΡ Fap-dC. ΠΠΎΠ»ΡΡΠ΅Π½ ΡΡΠ΄ ΠΠΠ-ΡΡΡΡΠΊΡΡΡ, ΡΠΎΠ΄Π΅ΡΠΆΠ°ΡΠΈΠΉ Π² ΡΠ²ΠΎΠ΅ΠΌ ΡΠΎΡΡΠ°Π²Π΅ ΡΠ°Π·Π»ΠΈΡΠ½ΠΎΠ΅ ΠΊΠΎΠ»ΠΈΡΠ΅ΡΡΠ²ΠΎ ΠΌΠΎΠ΄ΠΈΡΠΈΡΠΈΡΠΎΠ²Π°Π½Π½ΡΡ
Π·Π²Π΅Π½ΡΠ΅Π². ΠΠΎΠΊΠ°Π·Π°Π½ΠΎ, ΡΡΠΎ Π²ΡΠ΅ ΠΏΠΎΠ»ΡΡΠ΅Π½Π½ΡΠ΅ ΠΠΠ ΠΏΠΎΠ΄Π°Π²Π»ΡΡΡ Π°ΠΊΡΠΈΠ²Π½ΠΎΡΡΡ ΡΠΈΡΡΠ΅ΠΌΡ ΠΠ Π in vitro. ΠΡΠ±ΡΠ°Π½Π° ΠΠΠ-ΡΡΡΡΠΊΡΡΡΠ°, ΠΊΠΎΡΠΎΡΠ°Ρ ΠΈΠ½Π³ΠΈΠ±ΠΈΡΡΠ΅Ρ NER Π½Π°ΠΈΠ±ΠΎΠ»Π΅Π΅ Π²ΡΡΠΎΠΊΠΎΠΉ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΡΡ. ΠΡΠ²ΠΎΠ΄Ρ. ΠΠΎΠ΄Π΅Π»ΡΠ½ΡΠ΅ ΠΠΠ Ρ Π½Π΅ΡΠ΅ΠΏΠ°ΡΠΈΡΡΠ΅ΠΌΡΠΌΠΈ ΠΏΠΎΠ²ΡΠ΅ΠΆΠ΄Π΅Π½ΠΈΡΠΌΠΈ, ΡΠΏΠΎΡΠΎΠ±Π½ΡΠ΅ Π²ΡΡΠΎΠΊΠΎΠΉ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎΡΡΡΡ ΠΏΠΎΠ΄Π°Π²Π»ΡΡΡ NER, ΠΌΠΎΠ³ΡΡ ΡΠ°ΡΡΠΌΠ°ΡΡΠΈΠ²Π°ΡΡΡΡ Π² ΠΊΠ°ΡΠ΅ΡΡΠ²Π΅ ΠΈΠ½Π³ΠΈΠ±ΠΈΡΠΎΡΠΎΠ² ΡΠΈΡΡΠ΅ΠΌΡ ΠΠ Π. ΠΠ±Π½Π°ΡΡΠΆΠ΅Π½Π½ΡΠ΅ Π² Π½Π°ΡΡΠΎΡΡΠ΅ΠΉ ΡΠ°Π±ΠΎΡΠ΅ Π·Π°ΠΊΠΎΠ½ΠΎΠΌΠ΅ΡΠ½ΠΎΡΡΠΈ ΠΏΠΎΡΠ΅Π½ΡΠΈΠ°Π»ΡΠ½ΠΎ ΠΌΠΎΠ³ΡΡ Π±ΡΡΡ ΠΈΡΠΏΠΎΠ»ΡΠ·ΠΎΠ²Π°Π½Ρ Π΄Π»Ρ ΠΏΡΠΎΠ²Π΅Π΄Π΅Π½ΠΈΡ Π½Π΅ ΡΠΎΠ»ΡΠΊΠΎ ΡΡΠ½Π΄Π°ΠΌΠ΅Π½ΡΠ°Π»ΡΠ½ΡΡ
, Π½ΠΎ ΠΈ ΠΏΡΠΈΠΊΠ»Π°Π΄Π½ΡΡ
ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΠΉ
Nanostructured metal-fullerene field emission cathode
One of the important properties of carbon nanostructures is their cold electron
emission ability. Carbon nanotubes and other nanostructures are capable of
emitting high currents at relatively low electrical fields. They are already
used in functional devices such as field emitters. The conventional method of
carbon nanostructured cathodes manufacturing is thin film nanocarbon deposition
using CVD process on electrically conducting substrate like metal or doped
silicon plates. The alternative way of manufacturing of carbon field emission
cathodes is based on a special processing of carbon microfibers or composite materials in metal holders. We used the similar approach to produce composite
metal-nanocarbon material which may be easily processed and shaped to
produce an effective field emission cathode which can be easily fixed an any
environment.
When you are citing the document, use the following link http://essuir.sumdu.edu.ua/handle/123456789/2058
THERMAL STEAM PLASMA DECOMPOSITION OF ORGANOCHLORINE COMPOUNDS
The report considers the decomposition of carbon tetrachloride and chlorobenzene by the plasma obtained in an AC plasma torch with separate supply of shielding gas and reaction components.171-17
Harnessing the capabilities of spray granulation in the food industry for the production of functional foods
The article is the literature review of a current state of production technologies of powdery foodstuff, concentrates and multicomponent mixes. The need of the food industry for qualitative methods of processing of raw materials of different physical and chemical structure is noted. The authors give the reasons about need and possibility of a choice of granulation as a method of data processing of products. Physical and chemical features of granulation methods of disperse environments of various aggregate states based on the studied regularities and works of other authors are considered. The authors made the assumption of the application prospects of the method of liquid dispersion on the surface of particles in a suspended state for a granulation of foodstuff and they offered the alternative option. The possibility to use whey as binding element is considered. At the end of article authors draw the conclusion about the prospects of use of a method of dispersion of liquid on the surface of particles in a suspended state for a granulation of foodstuff
USAGE OF AC PLASMA TORCH FOR PRODUCTION OF OXIDE POWDERS
The report deals with the synthesis of oxide materials in a plasma torch with separate injection of plasma-forming gas and solid aerosol of precursors. Thus, it is possible to provide a stability of the plasma torch operation and high degree of mixing of thermal plasma and precursors.188-18
ΠΠ΅ΡΠΎΠ΄ΠΎΠ»ΠΎΠ³ΠΈΡ ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΡ ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΡΡ ΠΌΠ°ΡΠΊΠ΅ΡΠΎΠ² ΠΈΠ½Π΄ΠΈΠ²ΠΈΠ΄ΡΠ°Π»ΡΠ½ΠΎΠ³ΠΎ Π³Π΅Π½Π΅ΡΠΈΡΠ΅ΡΠΊΠΎΠ³ΠΎΡΠΈΡΠΊΠ° ΡΠ°Π·Π²ΠΈΡΠΈΡ ΠΎΡΠ»ΠΎΠΆΠ½Π΅Π½ΠΈΠΉ ΡΡΠΎΠ³Π΅Π½ΠΈΡΠ°Π»ΡΠ½ΠΎΠΉΡ Π»Π°ΠΌΠΈΠ΄ΠΈΠΉΠ½ΠΎΠΉ ΠΈΠ½ΡΠ΅ΠΊΡΠΈΠΈ
The authors present the results of the first four stages of research conducted under Government Contract No.
02.740.11.0774: Development of a Technology for Molecular Diagnostics of the Individual Genetic Risk of Development of
Reproductive Function Disorders Associated with Human Urogenital Chlamydial Infection.ΠΡΠ΅Π΄ΡΡΠ°Π²Π»Π΅Π½Ρ ΡΠ΅Π·ΡΠ»ΡΡΠ°ΡΡ ΠΏΠ΅ΡΠ²ΡΡ
ΡΠ΅ΡΡΡΠ΅Ρ
ΡΡΠ°ΠΏΠΎΠ² Π½Π°ΡΡΠ½ΠΎ-ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°ΡΠ΅Π»ΡΡΠΊΠΎΠΉ ΡΠ°Π±ΠΎΡΡ, Π²ΡΠΏΠΎΠ»Π½ΡΠ΅ΠΌΠΎΠΉ
Π² ΡΠ°ΠΌΠΊΠ°Ρ
ΠΠΎΡΡΠ΄Π°ΡΡΡΠ²Π΅Π½Π½ΠΎΠ³ΠΎ ΠΊΠΎΠ½ΡΡΠ°ΠΊΡΠ° β 02.740.11.0774 Β«Π Π°Π·ΡΠ°Π±ΠΎΡΠΊΠ° ΡΠ΅Ρ
Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ ΠΌΠΎΠ»Π΅ΠΊΡΠ»ΡΡΠ½ΠΎΠΉ Π΄ΠΈΠ°Π³Π½ΠΎΡΡΠΈΠΊΠΈ
ΠΈΠ½Π΄ΠΈΠ²ΠΈΠ΄ΡΠ°Π»ΡΠ½ΠΎΠ³ΠΎ Π³Π΅Π½Π΅ΡΠΈΡΠ΅ΡΠΊΠΎΠ³ΠΎ ΡΠΈΡΠΊΠ° ΡΠ°Π·Π²ΠΈΡΠΈΡ Π½Π°ΡΡΡΠ΅Π½ΠΈΠΉ ΡΠ΅ΠΏΡΠΎΠ΄ΡΠΊΡΠΈΠ²Π½ΠΎΠΉ ΡΡΠ½ΠΊΡΠΈΠΈ, Π°ΡΡΠΎΡΠΈΠΈΡΠΎΠ²Π°Π½Π½ΡΡ
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