111 research outputs found

    Value-focused approach in social and occupational mobility

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    It is offered to take into account value-focused thinking when a problem of social and occupational mobility in higher education institutions is considered. It is explored that professional education plays the most important role to form competences of the citizens allowing to adapt flexibly to changes – their social and occupational mobility. It is necessary to base on the values of the educational organization to provide a goal-setting in this organization: from strategic aims to the objectives of a certain discipline or educational programsРассматриваСтся Ρ†Π΅Π»Π΅ΡΠΎΠΎΠ±Ρ€Π°Π·Π½ΠΎΡΡ‚ΡŒ цСнностно-ΠΎΡ€ΠΈΠ΅Π½Ρ‚ΠΈΡ€ΠΎΠ²Π°Π½Π½ΠΎΠ³ΠΎ ΠΌΡ‹ΡˆΠ»Π΅Π½ΠΈΡ ΠΏΡ€ΠΈ Ρ€Π΅ΡˆΠ΅Π½ΠΈΠΈ Π·Π°Π΄Π°Ρ‡ΠΈ формирования Ρƒ студСнтов ΡΠΎΡ†ΠΈΠ°Π»ΡŒΠ½ΠΎ-ΠΏΡ€ΠΎΡ„Π΅ΡΡΠΈΠΎΠ½Π°Π»ΡŒΠ½ΠΎΠΉ ΠΌΠΎΠ±ΠΈΠ»ΡŒΠ½ΠΎΡΡ‚ΠΈ. УказываСтся, Ρ‡Ρ‚ΠΎ ΠΏΡ€ΠΎΡ„Π΅ΡΡΠΈΠΎΠ½Π°Π»ΡŒΠ½ΠΎΠ΅ ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Π½ΠΈΠ΅ ΠΈΠ³Ρ€Π°Π΅Ρ‚ Π²Π°ΠΆΠ½Π΅ΠΉΡˆΡƒΡŽ Ρ€ΠΎΠ»ΡŒ Π² Ρ„ΠΎΡ€ΠΌΠΈΡ€ΠΎΠ²Π°Π½ΠΈΠΈ Ρƒ Π³Ρ€Π°ΠΆΠ΄Π°Π½ ΠΊΠΎΠΌΠΏΠ΅Ρ‚Π΅Π½Ρ†ΠΈΠΉ, ΠΏΠΎΠ·Π²ΠΎΠ»ΡΡŽΡ‰ΠΈΡ… Π³ΠΈΠ±ΠΊΠΎ ΠΏΡ€ΠΈΡΠΏΠΎΡΠ°Π±Π»ΠΈΠ²Π°Ρ‚ΡŒΡΡ ΠΊ измСнСниям, – ΠΈΡ… ΡΠΎΡ†ΠΈΠ°Π»ΡŒΠ½ΠΎ-ΠΏΡ€ΠΎΡ„Π΅ΡΡΠΈΠΎΠ½Π°Π»ΡŒΠ½ΠΎΠΉ ΠΌΠΎΠ±ΠΈΠ»ΡŒΠ½ΠΎΡΡ‚ΠΈ. ДСлаСтся Π²Ρ‹Π²ΠΎΠ΄, Ρ‡Ρ‚ΠΎ Π½Π° основС цСнностСй ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Ρ‚Π΅Π»ΡŒΠ½ΠΎΠΉ ΠΎΡ€Π³Π°Π½ΠΈΠ·Π°Ρ†ΠΈΠΈ Π½Π΅ΠΎΠ±Ρ…ΠΎΠ΄ΠΈΠΌΠΎ ΠΎΠ±Π΅ΡΠΏΠ΅Ρ‡ΠΈΠ²Π°Ρ‚ΡŒ Π΅Π΅ Ρ†Π΅Π»Π΅ΠΏΠΎΠ»Π°Π³Π°Π½ΠΈΠ΅ – ΠΎΡ‚ стратСгичСских Ρ†Π΅Π»Π΅ΠΉ Π΄ΠΎ Ρ†Π΅Π»Π΅ΠΉ ΠΊΠΎΠ½ΠΊΡ€Π΅Ρ‚Π½Ρ‹Ρ… дисциплин ΠΈ ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Ρ‚Π΅Π»ΡŒΠ½Ρ‹Ρ… ΠΏΡ€ΠΎΠ³Ρ€Π°ΠΌ

    Adaptive Lattice Filters for Band-Inverse Covariance Matrix Approximations

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    It has been known since 1981 at least, that the Levinson (and Shur) algorithm can be applied to a non-stationary process with its associated arbitrary non-Toeplitz covariance matrix. However, in general case this generalized Levinson algorithm involves O(N 3 ) computations, so that there are no particular advantages over the usual methods of Choleski decomposition or of matrix inversion. Therefore, the main attention devoted to a special class of non-stationary processes with covariance matrices that have a finite "displacement rank" (or equivalently "Toeplitz distance"). For this class of non-stationary processes, adaptive lattice filters retained most of their computational and structural advantages. Another type of approximations for an arbitrary Hermitian covariance matrices that is based upon the so-called bandinverse extension, developed by H. Dym and I. Gohberg in Yet, long before these results of H. Dym and I. Gohberg were considered for applications in adaptive processing in [5]

    Supramolecular recognition of estrogens via molecularly imprinted polymers

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    The isolation and preconcentration of estrogens from new types of biological samples (acellular and protein-free simulated body fluid) by molecularly imprinted solid-phase extraction has been described. In this technique, supramolecular receptors, namely molecularly imprinted polymers (MIPs) are used as a sorbent material. The recognition sites of MIPs were prepared by non-covalent multiple interactions and formed with the target 17Ξ²-estradiol as a template molecule. High-performance liquid chromatography with spectroscopic UV, selective, and a sensitive electrochemical CoulArray detector was used for the determination of 17Ξ²-estradiol, estrone, and estriol in simulated body fluid which mimicked human plasma

    Π’Π›Π˜Π―ΠΠ˜Π• Π ΠΠ—Π›Π˜Π§ΠΠ«Π₯ Π’Π•Π₯ΠΠžΠ›ΠžΠ“Π˜Π™ Π‘ΠžΠ”Π•Π Π–ΠΠΠ˜Π― НА Π€Π˜Π—Π˜Π§Π•Π‘ΠšΠžΠ• И Π€Π˜Π—Π˜ΠžΠ›ΠžΠ“Π˜Π§Π•Π‘ΠšΠžΠ• Π ΠΠ—Π’Π˜Π’Π˜Π• Π Π•ΠœΠžΠΠ’ΠΠ«Π₯ Π‘Π’Π˜ΠΠžΠš

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    The paper find out the regularities of physical and physiological development of the replacement young pigs, bred at different housing technologies. The experiment was conducted in OOO β€œSVK” Krasnogvardeyskiy district (industrial technology) and β€œSHP Svobodny trud” (traditional technology) of Novoselytsya districts of Stavropol Territory. In order to conduct the experiment on the basis of analogues, the Company selected bipedal pigs (50% large white (CB) + 50% Landrace (L)) aged one month. Each group had 25 pigs. In order to study the development of reproductive organs at the age of 6 and 8 months, a control slaughter of experimental animals was carried out (3 pigs from each group). The live body weight of 6-month-old pigs in OOO β€œSVK” averaged 110 kg, while in OOO β€œSHP β€œSvobodnyy trud” the animals weight was 67-70 kg. At the age of 8 months, the weight of animals in β€œSHP β€œSvobodnyy trud” was 103-110 kg, and in OOO β€œSVK” - 145-150 kg. At the age of 180 days the animal reproductive organs were at the initial stage of development. Only primary follicles of 0.1-0.3 cm in diameter were observed in ovaries weighing 3.1-3.5 g. The bipedal hybrids grown on the intensive technology were inferior to the pigs with the traditional technology of breeding for the development of reproductive organs. They had a lower uterine weight by 9.1%, ovarian weight by 12.9%, and the length of uterine and ovarian horns by 10.9 and 8.6%, respectively. Repair pigs grown according to the traditional technology had ovaries weighing 9.2 g and had fresh yellow bodies. When growing guinea pigs under industrial technology, the rejection of first-pigs amounted to 63.6%, while in the case of animals grown under traditional technology, this indicator was within 26.6%.ЦСлью Ρ€Π°Π±ΠΎΡ‚Ρ‹ являлось установлСниС закономСрностСй физичСского ΠΈ физиологичСского развития Ρ€Π΅ΠΌΠΎΠ½Ρ‚Π½ΠΎΠ³ΠΎ молодняка свинСй, Π²Ρ‹Ρ€Π°Ρ‰ΠΈΠ²Π°Π΅ΠΌΡ‹Ρ… ΠΏΡ€ΠΈ Ρ€Π°Π·Π»ΠΈΡ‡Π½Ρ‹Ρ… тСхнологиях содСрТания. ΠžΠΏΡ‹Ρ‚ проводился Π² ООО Β«Π‘Π’ΠšΒ» ΠšΡ€Π°ΡΠ½ΠΎΠ³Π²Π°Ρ€Π΄Π΅ΠΉΡΠΊΠΎΠ³ΠΎ (ΠΏΡ€ΠΎΠΌΡ‹ΡˆΠ»Π΅Π½Π½Π°Ρ тСхнология) ΠΈ ООО Β«Π‘Π₯П β€œΠ‘Π²ΠΎΠ±ΠΎΠ΄Π½Ρ‹ΠΉ труд”» (традиционная тСхнология) НовосСлицкого Ρ€Π°ΠΉΠΎΠ½ΠΎΠ² Π‘Ρ‚Π°Π²Ρ€ΠΎΠΏΠΎΠ»ΡŒΡΠΊΠΎΠ³ΠΎ края. Для провСдСния ΠΎΠΏΡ‹Ρ‚Π° ΠΏΠΎ ΠΏΡ€ΠΈΠ½Ρ†ΠΈΠΏΡƒ Π°Π½Π°Π»ΠΎΠ³ΠΎΠ² ΠΎΡ‚ΠΎΠ±Ρ€Π°Π»ΠΈ Π΄Π²ΡƒΡ…ΠΏΠΎΡ€ΠΎΠ΄Π½Ρ‹Ρ… свинок (50% крупная бСлая (ΠšΠ‘) +50% ландрас (Π›)) Π² возрастС ΠΎΠ΄Π½ΠΎΠ³ΠΎ мСсяца. Π’ ΠΊΠ°ΠΆΠ΄ΠΎΠΉ Π³Ρ€ΡƒΠΏΠΏΠ΅ Π±Ρ‹Π»ΠΎ ΠΏΠΎ 25 свинок. Π‘ Ρ†Π΅Π»ΡŒΡŽ изучСния развития Ρ€Π΅ΠΏΡ€ΠΎΠ΄ΡƒΠΊΡ‚ΠΈΠ²Π½Ρ‹Ρ… ΠΎΡ€Π³Π°Π½ΠΎΠ² Π² возрастС 6 ΠΈ 8 мСсяцСв ΠΏΡ€ΠΎΠ²Π΅Π»ΠΈ ΠΊΠΎΠ½Ρ‚Ρ€ΠΎΠ»ΡŒΠ½Ρ‹ΠΉ ΡƒΠ±ΠΎΠΉ ΠΏΠΎΠ΄ΠΎΠΏΡ‹Ρ‚Π½Ρ‹Ρ… ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… (ΠΏΠΎ 3 Π³ΠΎΠ»ΠΎΠ²Ρ‹ ΠΈΠ· ΠΊΠ°ΠΆΠ΄ΠΎΠΉ Π³Ρ€ΡƒΠΏΠΏΡ‹). Живая масса 6-мСсячных свинок Π² ООО Β«Π‘Π’ΠšΒ» составила Π² срСднСм 110 ΠΊΠ³, Π² Ρ‚ΠΎ врСмя ΠΊΠ°ΠΊ Π² ООО Β«Π‘Π₯П β€œΠ‘Π²ΠΎΠ±ΠΎΠ΄Π½Ρ‹ΠΉ труд”» масса ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… Ρ€Π°Π²Π½ΡΠ»Π°ΡΡŒ 67– 70 ΠΊΠ³. Π’ 8-мСсячном возрастС масса ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… Π² ООО Β«Π‘Π₯П β€œΠ‘Π²ΠΎΠ±ΠΎΠ΄Π½Ρ‹ΠΉ труд”» составила 103–110, Π° Π² ООО Β«Π‘Π’ΠšΒ» – 145-150 ΠΊΠ³. Π’ возрастС 180 Π΄Π½Π΅ΠΉ Ρ€Π΅ΠΏΡ€ΠΎΠ΄ΡƒΠΊΡ‚ΠΈΠ²Π½Ρ‹Π΅ ΠΎΡ€Π³Π°Π½Ρ‹ ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… находятся Π½Π° Π½Π°Ρ‡Π°Π»ΡŒΠ½ΠΎΠΉ стадии развития. Π’ яичниках массой 3,1–3,5 Π³ наблюдались Ρ‚ΠΎΠ»ΡŒΠΊΠΎ ΠΏΠ΅Ρ€Π²ΠΈΡ‡Π½Ρ‹Π΅ Ρ„ΠΎΠ»Π»ΠΈΠΊΡƒΠ»Ρ‹ Π΄ΠΈΠ°ΠΌΠ΅Ρ‚Ρ€ΠΎΠΌ 0,1–0,3 см. Π”Π²ΡƒΡ…ΠΏΠΎΡ€ΠΎΠ΄Π½Ρ‹Π΅ Π³ΠΈΠ±Ρ€ΠΈΠ΄Ρ‹, Π²Ρ‹Ρ€Π°Ρ‰Π΅Π½Π½Ρ‹Π΅ ΠΏΠΎ интСнсивной Ρ‚Π΅Ρ…Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ, уступали свинкам с Ρ‚Ρ€Π°Π΄ΠΈΡ†ΠΈΠΎΠ½Π½ΠΎΠΉ Ρ‚Π΅Ρ…Π½ΠΎΠ»ΠΎΠ³ΠΈΠ΅ΠΉ выращивания ΠΏΠΎ Ρ€Π°Π·Π²ΠΈΡ‚ΠΈΡŽ ΠΎΡ€Π³Π°Π½ΠΎΠ² Ρ€Π΅ΠΏΡ€ΠΎΠ΄ΡƒΠΊΡ†ΠΈΠΈ. Масса ΠΌΠ°Ρ‚ΠΊΠΈ Ρƒ Π½ΠΈΡ… Π±Ρ‹Π»Π° мСньшС Π½Π° 9,1%, масса яичников – Π½Π° 12,9, Π° Π΄Π»ΠΈΠ½Π° Ρ€ΠΎΠ³ΠΎΠ² ΠΌΠ°Ρ‚ΠΊΠΈ ΠΈ яйцСводов мСньшС соотвСтствСнно Π½Π° 10,9 ΠΈ 8,6%. Π£ Ρ€Π΅ΠΌΠΎΠ½Ρ‚Π½Ρ‹Ρ… свинок, Π²Ρ‹Ρ€Π°Ρ‰Π΅Π½Π½Ρ‹Ρ… ΠΏΠΎ Ρ‚Ρ€Π°Π΄ΠΈΡ†ΠΈΠΎΠ½Π½ΠΎΠΉ Ρ‚Π΅Ρ…Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ, масса яичников составляла 9,2 Π³ ΠΈ Π² Π½ΠΈΡ… имСлись свСТиС ΠΆΠ΅Π»Ρ‚Ρ‹Π΅ Ρ‚Π΅Π»Π°. ΠŸΡ€ΠΈ Π²Ρ‹Ρ€Π°Ρ‰ΠΈΠ²Π°Π½ΠΈΠΈ Ρ€Π΅ΠΌΠΎΠ½Ρ‚Π½Ρ‹Ρ… свинок ΠΏΡ€ΠΈ ΠΏΡ€ΠΎΠΌΡ‹ΡˆΠ»Π΅Π½Π½ΠΎΠΉ Ρ‚Π΅Ρ…Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ Π²Ρ‹Π±Ρ€Π°ΠΊΠΎΠ²ΠΊΠ° свиноматок-пСрвоопоросок составила 63,6%, Π² Ρ‚ΠΎ врСмя ΠΊΠ°ΠΊ Ρƒ ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ…, Π²Ρ‹Ρ€Π°Ρ‰Π΅Π½Π½Ρ‹Ρ… ΠΏΠΎ Ρ‚Ρ€Π°Π΄ΠΈΡ†ΠΈΠΎΠ½Π½ΠΎΠΉ Ρ‚Π΅Ρ…Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ, этот ΠΏΠΎΠΊΠ°Π·Π°Ρ‚Π΅Π»ΡŒ Π±Ρ‹Π» Π² ΠΏΡ€Π΅Π΄Π΅Π»Π°Ρ… 26,6%

    МРВ ΠΈ КВ-вСнография Π² диагностикС гСмодинамичСских Π½Π°Ρ€ΡƒΡˆΠ΅Π½ΠΈΠΉ Ρƒ ΠΏΠ°Ρ†ΠΈΠ΅Π½Ρ‚ΠΎΠ² с хроничСскими заболСваниями Π²Π΅Π½ Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй. Π§Π°ΡΡ‚ΡŒ III. ВозмоТности КВ-исслСдований Π² диагностикС Π½Π°Ρ€ΡƒΡˆΠ΅Π½ΠΈΠΉ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠΉ Π³Π΅ΠΌΠΎΠ΄ΠΈΠ½Π°ΠΌΠΈΠΊΠΈ

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    As a result of solving a large number of technical problems (increasing the area of anatomical coverage and scanning speed, increasing the signal-to-noise ratio, improving spatial and contrast resolution, building a color image quality in 3D mode, significantly reducing the radiation dose), the method of computed tomography imaging of the vascular system has won a leading position in the world today. However, if CT Angiography is used everywhere and daily in the diagnosis of arterial pathology, this method has not yet received clinical recognition in patients with chronic venous diseases.This review of the literature analyzes the scientific data published in the world on the results of CT Venography. Methods of indirect and direct contrast CT Venography are described. The possibility of using contrast CT Venography in the diagnosis of deep vein thrombosis is shown, where the accuracy, sensitivity and specificity of the method according to foreign authors is up to 97.9%, 96.8% and 100%, respectively. This method acquires particular importance in the diagnosis of pelvic vein thrombosis and inferior Vena cava, where the informative value of USDS is lower. The second clinical direction that is actively developing today is the combined use of CT Venography and CT Angiopulmonography in the diagnosis of a deadly complication of pulmonary embolism. The prospects of these attempts are preferable by the following advantages: the single-time study and the absence of the need for additional administration of contrast agents, the speed of scanning, and obtaining additional information about the state of the peripheral venous system in patients with venous thromboembolism.Another and irreplaceable tool of contrast-enhanced CT Venography can become in the study of the features of the topographic and anatomical structure of the venous bed. Using their own research, the authors demonstrate the possibilities of direct CT Venography in the visualization of the venous system of the lower extremities.The need for more accurate topical diagnostics with 3D visualization of the venous system of the lower extremities and pelvis by CT-Venography is due to the growing interest in recent years of vascular and interventional surgeons to test and more actively implement endovasal methods of correction of venous blood flow in phlebological practice.Π’ Ρ€Π΅Π·ΡƒΠ»ΡŒΡ‚Π°Ρ‚Π΅ Ρ€Π΅ΡˆΠ΅Π½ΠΈΡ большого количСства тСхничСских Π·Π°Π΄Π°Ρ‡ (ΡƒΠ²Π΅Π»ΠΈΡ‡Π΅Π½ΠΈΠ΅ Π·ΠΎΠ½Ρ‹ анатомичСского покрытия, скорости сканирования ΠΈ ΠΎΡ‚Π½ΠΎΡˆΠ΅Π½ΠΈΡ сигнал/ΡˆΡƒΠΌ, ΡƒΠ»ΡƒΡ‡ΡˆΠ΅Π½ΠΈΠ΅ пространствСнного ΠΈ контрастного Ρ€Π°Π·Ρ€Π΅ΡˆΠ΅Π½ΠΈΡ, построСниС Ρ†Π²Π΅Ρ‚ΠΎΠ²ΠΎΠ³ΠΎ качСствСнного изобраТСния Π² 3D-Ρ€Π΅ΠΆΠΈΠΌΠ΅, Π·Π½Π°Ρ‡ΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΠ΅ сниТСниС Π΄ΠΎΠ·Ρ‹ облучСния) ΠΌΠ΅Ρ‚ΠΎΠ΄ ΠΊΠΎΠΌΠΏΡŒΡŽΡ‚Π΅Ρ€Π½ΠΎ-томографичСской Π²ΠΈΠ·ΡƒΠ°Π»ΠΈΠ·Π°Ρ†ΠΈΠΈ сосудистой систСмы Π·Π°Π²ΠΎΠ΅Π²Π°Π» Π½Π° сСгодня Π² ΠΌΠΈΡ€Π΅ Π»ΠΈΠ΄ΠΈΡ€ΡƒΡŽΡ‰ΡƒΡŽ ΠΏΠΎΠ·ΠΈΡ†ΠΈΡŽ. Однако Ссли Π² диагностикС Π°Ρ€Ρ‚Π΅Ρ€ΠΈΠ°Π»ΡŒΠ½ΠΎΠΉ ΠΏΠ°Ρ‚ΠΎΠ»ΠΎΠ³ΠΈΠΈ КВ-ангиография ΠΈΡΠΏΠΎΠ»ΡŒΠ·ΡƒΠ΅Ρ‚ΡΡ повсСмСстно ΠΈ Π΅ΠΆΠ΅Π΄Π½Π΅Π²Π½ΠΎ, Ρ‚ΠΎ Ρƒ ΠΏΠ°Ρ†ΠΈΠ΅Π½Ρ‚ΠΎΠ² с хроничСскими заболСваниями Π²Π΅Π½ Π΄Π°Π½Π½Ρ‹ΠΉ ΠΌΠ΅Ρ‚ΠΎΠ΄ Π΄ΠΎ сих ΠΏΠΎΡ€ Π½Π΅ ΠΏΠΎΠ»ΡƒΡ‡ΠΈΠ» клиничСского признания.Π’ Π΄Π°Π½Π½ΠΎΠΌ ΠΎΠ±Π·ΠΎΡ€Π΅ Π»ΠΈΡ‚Π΅Ρ€Π°Ρ‚ΡƒΡ€Ρ‹ проводится Π°Π½Π°Π»ΠΈΠ· ΠΎΠΏΡƒΠ±Π»ΠΈΠΊΠΎΠ²Π°Π½Π½Ρ‹Ρ… Π² ΠΌΠΈΡ€Π΅ Π½Π°ΡƒΡ‡Π½Ρ‹Ρ… Π΄Π°Π½Π½Ρ‹Ρ… ΠΎ Ρ€Π΅Π·ΡƒΠ»ΡŒΡ‚Π°Ρ‚Π°Ρ… использования КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ. ΠžΠΏΠΈΡΠ°Π½Ρ‹ ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΈΠΊΠΈ провСдСния нСпрямой ΠΈ прямой контрастной КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ. ΠŸΠΎΠΊΠ°Π·Π°Π½Ρ‹ возмоТности использования контрастной КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ Π² диагностикС Ρ‚Ρ€ΠΎΠΌΠ±ΠΎΠ·Π° Π³Π»ΡƒΠ±ΠΎΠΊΠΈΡ… Π²Π΅Π½, Π³Π΄Π΅ Ρ‚ΠΎΡ‡Π½ΠΎΡΡ‚ΡŒ, Ρ‡ΡƒΠ²ΡΡ‚Π²ΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΡΡ‚ΡŒ ΠΈ ΡΠΏΠ΅Ρ†ΠΈΡ„ΠΈΡ‡Π½ΠΎΡΡ‚ΡŒ ΠΌΠ΅Ρ‚ΠΎΠ΄Π°, ΠΏΠΎ Π΄Π°Π½Π½Ρ‹ΠΌ Π·Π°Ρ€ΡƒΠ±Π΅ΠΆΠ½Ρ‹Ρ… Π°Π²Ρ‚ΠΎΡ€ΠΎΠ², ΡΠΎΡΡ‚Π°Π²Π»ΡΡŽΡ‚ Π΄ΠΎ 97,9, 96,8 ΠΈ 100% соотвСтствСнно. ОсобоС Π·Π½Π°Ρ‡Π΅Π½ΠΈΠ΅ Π΄Π°Π½Π½Ρ‹ΠΉ ΠΌΠ΅Ρ‚ΠΎΠ΄ ΠΏΡ€ΠΈΠΎΠ±Ρ€Π΅Ρ‚Π°Π΅Ρ‚ Π² диагностикС Ρ‚Ρ€ΠΎΠΌΠ±ΠΎΠ·Π° Π²Π΅Π½ Ρ‚Π°Π·Π° ΠΈ Π½ΠΈΠΆΠ½Π΅ΠΉ ΠΏΠΎΠ»ΠΎΠΉ Π²Π΅Π½Ρ‹, Π³Π΄Π΅ ΠΈΠ½Ρ„ΠΎΡ€ΠΌΠ°Ρ‚ΠΈΠ²Π½ΠΎΡΡ‚ΡŒ Π£Π—Π”Π‘ оказываСтся Π½ΠΈΠΆΠ΅. Π’Ρ‚ΠΎΡ€Ρ‹ΠΌ клиничСским Π½Π°ΠΏΡ€Π°Π²Π»Π΅Π½ΠΈΠ΅ΠΌ, ΠΈΠΌΠ΅ΡŽΡ‰ΠΈΠΌ Π°ΠΊΡ‚ΠΈΠ²Π½ΠΎΠ΅ Ρ€Π°Π·Π²ΠΈΡ‚ΠΈΠ΅ сСгодня, являСтся ΠΊΠΎΠΌΠ±ΠΈΠ½ΠΈΡ€ΠΎΠ²Π°Π½Π½ΠΎΠ΅ использованиС КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ ΠΈ КВ-Π°Π½Π³ΠΈΠΎΠΏΡƒΠ»ΡŒΠΌΠΎΠ½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ Π² диагностикС ΡΠΌΠ΅Ρ€Ρ‚Π΅Π»ΡŒΠ½ΠΎ опасного ослоТнСния тромбоэмболии Π»Π΅Π³ΠΎΡ‡Π½ΠΎΠΉ Π°Ρ€Ρ‚Π΅Ρ€ΠΈΠΈ. ΠŸΠ΅Ρ€ΡΠΏΠ΅ΠΊΡ‚ΠΈΠ²Π½ΠΎΡΡ‚ΡŒ этих ΠΏΠΎΠΏΡ‹Ρ‚ΠΎΠΊ ΠΏΡ€ΠΎΠ΄ΠΈΠΊΡ‚ΠΎΠ²Π°Π½Π° ΡΠ»Π΅Π΄ΡƒΡŽΡ‰ΠΈΠΌΠΈ прСимущСствами: ΠΎΠ΄Π½ΠΎΠΊΡ€Π°Ρ‚Π½ΠΎΡΡ‚ΡŒΡŽ исслСдования ΠΈ отсутствиСм нСобходимости использования Π΄ΠΎΠΏΠΎΠ»Π½ΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΠ³ΠΎ ввСдСния контрастного ΠΏΡ€Π΅ΠΏΠ°Ρ€Π°Ρ‚Π°, ΡΠΊΠΎΡ€ΠΎΡΡ‚ΡŒΡŽ выполнСния сканирования, ΠΏΠΎΠ»ΡƒΡ‡Π΅Π½ΠΈΠ΅ΠΌ Π΄ΠΎΠΏΠΎΠ»Π½ΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΠΉ ΠΈΠ½Ρ„ΠΎΡ€ΠΌΠ°Ρ†ΠΈΠΈ ΠΎ состоянии пСрифСричСской Π²Π΅Π½ΠΎΠ·Π½ΠΎΠΉ систСмы ΠΏΡ€ΠΈ Π½Π°Π»ΠΈΡ‡ΠΈΠΈ Ρƒ ΠΏΠ°Ρ†ΠΈΠ΅Π½Ρ‚ΠΎΠ² Π²Π΅Π½ΠΎΠ·Π½ΠΎΠΉ тромбоэмболии.Π•Ρ‰Π΅ ΠΎΠ΄Π½ΠΈΠΌ ΠΈ Π½Π΅Π·Π°ΠΌΠ΅Π½ΠΈΠΌΡ‹ΠΌ инструмСнтом контрастно-усилСнная КВ-вСнография ΠΌΠΎΠΆΠ΅Ρ‚ ΡΡ‚Π°Ρ‚ΡŒ Π² ΠΈΠ·ΡƒΡ‡Π΅Π½ΠΈΠΈ особСнностСй топографоанатомичСского строСния Π²Π΅Π½ΠΎΠ·Π½ΠΎΠ³ΠΎ русла. На ΠΏΡ€ΠΈΠΌΠ΅Ρ€Π΅ собствСнных исслСдований Π°Π²Ρ‚ΠΎΡ€Ρ‹ Π΄Π΅ΠΌΠΎΠ½ΡΡ‚Ρ€ΠΈΡ€ΡƒΡŽΡ‚ возмоТности прямой КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ Π² Π²ΠΈΠ·ΡƒΠ°Π»ΠΈΠ·Π°Ρ†ΠΈΠΈ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠΉ систСмы Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй.ΠΠ΅ΠΎΠ±Ρ…ΠΎΠ΄ΠΈΠΌΠΎΡΡ‚ΡŒ Π±ΠΎΠ»Π΅Π΅ Ρ‚ΠΎΡ‡Π½ΠΎΠΉ топичСской диагностики с 3D-Π²ΠΈΠ·ΡƒΠ°Π»ΠΈΠ·Π°Ρ†ΠΈΠ΅ΠΉ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠΉ систСмы Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй ΠΈ Ρ‚Π°Π·Π° посрСдством КВ-Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ обусловлСна Π½Π°Ρ€Π°ΡΡ‚Π°ΡŽΡ‰ΠΈΠΌ интСрСсом Π² послСдниС Π³ΠΎΠ΄Ρ‹ сосудистых ΠΈ ΠΈΠ½Ρ‚Π΅Ρ€Π²Π΅Π½Ρ†ΠΈΠΎΠ½Π½Ρ‹Ρ… Ρ…ΠΈΡ€ΡƒΡ€Π³ΠΎΠ² ΠΊ Π°ΠΏΡ€ΠΎΠ±Π°Ρ†ΠΈΠΈ ΠΈ Π±ΠΎΠ»Π΅Π΅ Π°ΠΊΡ‚ΠΈΠ²Π½ΠΎΠΌΡƒ Π²Π½Π΅Π΄Ρ€Π΅Π½ΠΈΡŽ Π²ΠΎ Ρ„Π»Π΅Π±ΠΎΠ»ΠΎΠ³ΠΈΡ‡Π΅ΡΠΊΡƒΡŽ ΠΏΡ€Π°ΠΊΡ‚ΠΈΠΊΡƒ ΡΠ½Π΄ΠΎΠ²Π°Π·Π°Π»ΡŒΠ½Ρ‹Ρ… ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠ² ΠΊΠΎΡ€Ρ€Π΅ΠΊΡ†ΠΈΠΈ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠ³ΠΎ ΠΊΡ€ΠΎΠ²ΠΎΡ‚ΠΎΠΊΠ°

    МРВ- И КВ-вСнография Π² диагностикС гСмодинамичСских Π½Π°Ρ€ΡƒΡˆΠ΅Π½ΠΈΠΉ Ρƒ ΠΏΠ°Ρ†ΠΈΠ΅Π½Ρ‚ΠΎΠ² с хроничСскими заболСваниями Π²Π΅Π½ Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй Π§Π°ΡΡ‚ΡŒ II. ВозмоТности МРВ-исслСлований Π² диагностикС Ρ‚Ρ€ΠΎΠΌΠ±ΠΎΠ·Π° Π³Π»ΡƒΠ±ΠΎΠΊΠΈΡ… Π²Π΅Π½

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    In this literature review, the analysis of the studies of venous blood flow pathology in the inferior Vena cava system using magnetic resonance imaging (MRI) is carried out. Special attention is paid to the attempts made to use this method in the diagnosis of chronic lower limb vein disorders (CVD) through magnetic resonance venography (MRV). Historically and methodically, the gradual introduction of MRV methods in the diagnosis of lower limb vein thrombosis (LEDVT) and venous thromboembolism (VTE) has been shown.Methods of non-contrast MRV based on the effect of blood flow, as in the case of MR-Angiography, are divided into two principal groups: methods based on the amplitude effects of Time-of-Flight (TOF) and methods based on Phase Contrast effects (PC). Techniques for conducting contrast-free MRV are described in detail. Attention is paid to pulse sequences used in the world for visualization of veins in contrast-free MRV in TOF and PC mode (FR-FBI, SPADE, SSFP) and post-processing methods: 2D-TOF MRV FLASH, 2D-TOF MRV CRASS, FIPS, VED, VENS.Contrast-enhanced MRV (CE MRV) is based on the use of β€œblood pool” contrast agents, which feature the ability to form stable compounds with blood plasma proteins. Worldwidesubstances with magnetic and supermagnetic properties based on gadolinium or iron oxide are used as contrast agents for CE MRV. The result of using these contrast agents is an increase in the quality of visualization due to a better signal to noise ratio (SNR) using 3D image processing (3D CE MRV) using fast sequences: GRE, TFLAS, VESPA, CAT, in conditions of direct and indirect CE MRV.It is noted that in recent years, certain restrictions have been imposed on certain linear contrast agents containing gadolinium in their further use. Therefore, for the purpose of CE MRV, it is efficientl to use only cyclic contrast agents to avoid unnecessary risks.Contrast-free MRV has again received intensive development in recent years, due to the restrictions imposed, one of these methods is direct thrombus imaging (Direct Thrombus Imaging – DTI or Magnetic Resonance Direct Thrombus Imaging - MRDTI) using fast pulse sequences: bSSFP, BBTI, DANTE. The latest research on this LEDVT diagnostic method was published in 2019 and has shown high diagnostic value.For all the most commonly used methods of MRV, specificity and sensitivity are shown.Further MRV in patients with CVD and DVT is a promising diagnostic task in modern phlebology. MRV should be introduced into clinical practice more actively than it is today.Π’ Π΄Π°Π½Π½ΠΎΠΌ ΠΎΠ±Π·ΠΎΡ€Π΅ Π»ΠΈΡ‚Π΅Ρ€Π°Ρ‚ΡƒΡ€Ρ‹ проводится Π°Π½Π°Π»ΠΈΠ· исслСдований ΠΏΠ°Ρ‚ΠΎΠ»ΠΎΠ³ΠΈΠΈ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠ³ΠΎ ΠΊΡ€ΠΎΠ²ΠΎΡ‚ΠΎΠΊΠ° Π² систСмС Π½ΠΈΠΆΠ½Π΅ΠΉ ΠΏΠΎΠ»ΠΎΠΉ Π²Π΅Π½Ρ‹ с ΠΏΠΎΠΌΠΎΡ‰ΡŒΡŽ ΠΌΠ°Π³Π½ΠΈΡ‚Π½ΠΎ-рСзонансной Ρ‚ΠΎΠΌΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ (Magnetic Resonance Imaging – MRI). ОсобоС Π²Π½ΠΈΠΌΠ°Π½ΠΈΠ΅ удСляСтся прСдпринятым ΠΏΠΎΠΏΡ‹Ρ‚ΠΊΠ°ΠΌ использования этого ΠΌΠ΅Ρ‚ΠΎΠ΄Π° Π² диагностикС хроничСских Π·Π°Π±ΠΎΠ»Π΅Π²Π°Π½ΠΈΠΉ Π²Π΅Π½ Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй (Chronic Venous Disorders – CVD) посрСдством провСдСния ΠΌΠ°Π³Π½ΠΈΡ‚Π½ΠΎ-рСзонансной Π²Π΅Π½ΠΎΠ³Ρ€Π°Ρ„ΠΈΠΈ (MRV). Π˜ΡΡ‚ΠΎΡ€ΠΈΡ‡Π΅ΡΠΊΠΈ ΠΈ мСтодичСски ΠΏΠΎΠΊΠ°Π·Π°Π½ΠΎ поэтапноС Π²Π½Π΅Π΄Ρ€Π΅Π½ΠΈΠ΅ ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠ² MRV Π² диагностику Ρ‚Ρ€ΠΎΠΌΠ±ΠΎΠ·Π° Π²Π΅Π½ Π½ΠΈΠΆΠ½ΠΈΡ… конСчностСй (LEDVT) ΠΈ Π²Π΅Π½ΠΎΠ·Π½ΠΎΠ³ΠΎ тромбоэмболизма (VTE).ΠœΠ΅Ρ‚ΠΎΠ΄Ρ‹ бСсконтрастной MRV, основанныС Π½Π° эффСктС ΠΏΠΎΡ‚ΠΎΠΊΠ° ΠΊΡ€ΠΎΠ²ΠΈ, ΠΊΠ°ΠΊ ΠΈ Π² случаС примСнСния MR-Angiography, ΠΏΠΎΠ΄Ρ€Π°Π·Π΄Π΅Π»ΡΡŽΡ‚ΡΡ Π½Π° Π΄Π²Π΅ ΠΏΡ€ΠΈΠ½Ρ†ΠΈΠΏΠΈΠ°Π»ΡŒΠ½Ρ‹Π΅ Π³Ρ€ΡƒΠΏΠΏΡ‹: ΠΌΠ΅Ρ‚ΠΎΠ΄Ρ‹, основанныС Π½Π° Π°ΠΌΠΏΠ»ΠΈΡ‚ΡƒΠ΄Π½Ρ‹Ρ… эффСктах врСмя-ΠΏΡ€ΠΎΠ»Π΅Ρ‚Π° (Time-of-Flight – TOF), ΠΈ ΠΌΠ΅Ρ‚ΠΎΠ΄Ρ‹, основанныС Π½Π° Ρ„Π°Π·ΠΎΠ²Ρ‹Ρ… эффСктах (Phase Contrast – PC). Π’Π΅Ρ…Π½ΠΈΠΊΠΈ провСдСния бСсконтрастной MRV ΠΏΠΎΠ΄Ρ€ΠΎΠ±Π½ΠΎ описаны. Π£Π΄Π΅Π»Π΅Π½ΠΎ Π²Π½ΠΈΠΌΠ°Π½ΠΈΠ΅ ΠΈΠΌΠΏΡƒΠ»ΡŒΡΠ½Ρ‹ΠΌ ΠΏΠΎΡΠ»Π΅Π΄ΠΎΠ²Π°Ρ‚Π΅Π»ΡŒΠ½ΠΎΡΡ‚ΡΠΌ, ΠΈΡΠΏΠΎΠ»ΡŒΠ·ΡƒΠ΅ΠΌΡ‹ΠΌ Π² ΠΌΠΈΡ€Π΅ для Π²ΠΈΠ·ΡƒΠ°Π»ΠΈΠ·Π°Ρ†ΠΈΠΈ Π²Π΅Π½ ΠΏΡ€ΠΈ бСсконтрастной MRV Π² Ρ€Π΅ΠΆΠΈΠΌΠ΅ TOF ΠΈ Π Π‘ (FR-FBI, SPADE, SSFP), ΠΈ ΠΌΠ΅Ρ‚ΠΎΠ΄Π°ΠΌ постобработки изобраТСния: 2D-TOF MRV FLASH, 2D-TOF MRV CRASS, FIPS, VED, VENS.Π’ основС выполнСния контрастно-усилСнной MRV (Contrast-Enhanced MRV – CE MRV) Π»Π΅ΠΆΠΈΡ‚ использованиС контрастных ΠΏΡ€Π΅ΠΏΠ°Ρ€Π°Ρ‚ΠΎΠ² β€œΠΏΡƒΠ»Π° крови”, ΠΎΡΠΎΠ±Π΅Π½Π½ΠΎΡΡ‚ΡŒΡŽ ΠΊΠΎΡ‚ΠΎΡ€Ρ‹Ρ… являСтся ΡΠΏΠΎΡΠΎΠ±Π½ΠΎΡΡ‚ΡŒ ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Ρ‹Π²Π°Ρ‚ΡŒ устойчивыС соСдинСния с Π±Π΅Π»ΠΊΠ°ΠΌΠΈ ΠΏΠ»Π°Π·Ρ‹ ΠΊΡ€ΠΎΠ²ΠΈ. Π’ ΠΌΠΈΡ€Π΅ Π² качСствС контрастных ΠΏΡ€Π΅ΠΏΠ°Ρ€Π°Ρ‚ΠΎΠ² для CE MRV ΠΈΡΠΏΠΎΠ»ΡŒΠ·ΡƒΡŽΡ‚ΡΡ вСщСства, ΠΎΠ±Π»Π°Π΄Π°ΡŽΡ‰ΠΈΠ΅ ΠΌΠ°Π³Π½ΠΈΡ‚Π½Ρ‹ΠΌΠΈ ΠΈ супСрмагнитными свойствами Π½Π° основС гадолиния ΠΈΠ»ΠΈ оксида ΠΆΠ΅Π»Π΅Π·Π°. Π Π΅Π·ΡƒΠ»ΡŒΡ‚Π°Ρ‚ΠΎΠΌ использования Π΄Π°Π½Π½Ρ‹Ρ… контрастных ΠΏΡ€Π΅ΠΏΠ°Ρ€Π°Ρ‚ΠΎΠ² являСтся ΠΏΠΎΠ²Ρ‹ΡˆΠ΅Π½ΠΈΠ΅ качСства Π²ΠΈΠ·ΡƒΠ°Π»ΠΈΠ·Π°Ρ†ΠΈΠΈ Π·Π° счСт Π»ΡƒΡ‡ΡˆΠ΅Π³ΠΎ ΡΠΎΠΎΡ‚Π½ΠΎΡˆΠ΅Π½ΠΈΡ сигнал/ΡˆΡƒΠΌ (Signal to Noise Ratio – SNR) с использованиСм ΠΎΠ±Ρ€Π°Π±ΠΎΡ‚ΠΊΠΈ изобраТСния Π² Ρ€Π΅ΠΆΠΈΠΌΠ΅ 3D (3D-CE MRV) с использованиСм быстрых ΠΏΠΎΡΠ»Π΅Π΄ΠΎΠ²Π°Ρ‚Π΅Π»ΡŒΠ½ΠΎΡΡ‚Π΅ΠΉ: GRE, TFLAS, VESPA, CAT Π² условиях провСдСния прямой ΠΈ нСпрямой Π‘E MRV.ΠžΡ‚ΠΌΠ΅Ρ‡Π΅Π½ΠΎ, Ρ‡Ρ‚ΠΎ Π² послСднСС врСмя Π² ΠΎΡ‚Π½ΠΎΡˆΠ΅Π½ΠΈΠΈ Π½Π΅ΠΊΠΎΡ‚ΠΎΡ€Ρ‹Ρ… Π»ΠΈΠ½Π΅ΠΉΠ½Ρ‹Ρ… контрастных ΠΏΡ€Π΅ΠΏΠ°Ρ€Π°Ρ‚ΠΎΠ², содСрТащих Π³Π°Π΄ΠΎΠ»ΠΈΠ½ΠΈΠΉ, Π² ΠΈΡ… дальнСйшСм использовании прСдприняты ΠΎΠΏΡ€Π΅Π΄Π΅Π»Π΅Π½Π½Ρ‹Π΅ ограничСния. Π’ связи с этим с Ρ†Π΅Π»ΡŒΡŽ провСдСния Π‘E MRV Ρ€Π°Ρ†ΠΈΠΎΠ½Π°Π»ΡŒΠ½ΠΎ ΠΏΡ€ΠΈΠΌΠ΅Π½ΡΡ‚ΡŒ Ρ‚ΠΎΠ»ΡŒΠΊΠΎ цикличСскиС контрастныС вСщСства, Ρ‡Ρ‚ΠΎΠ±Ρ‹ ΠΈΠ·Π±Π΅ΠΆΠ°Ρ‚ΡŒ Π½Π΅ΠΎΠΏΡ€Π°Π²Π΄Π°Π½Π½Ρ‹Ρ… рисков.БСсконтрастная MRV вновь ΠΏΠΎΠ»ΡƒΡ‡ΠΈΠ»Π° интСнсивноС Ρ€Π°Π·Π²ΠΈΡ‚ΠΈΠ΅ Π² послСдниС Π³ΠΎΠ΄Ρ‹ Π² связи с Π²Π²Π΅Π΄Π΅Π½Π½Ρ‹ΠΌΠΈ ограничСниями. Одним ΠΈΠ· Ρ‚Π°ΠΊΠΈΡ… ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠ² стал прямая визуализация Ρ‚Ρ€ΠΎΠΌΠ±Π° (Direct Thrombus Imaging – DTI ΠΈΠ»ΠΈ Magnetic Resonance Direct Thrombus Imaging – MRDTI) с использованиС быстрых ΠΈΠΌΠΏΡƒΠ»ΡŒΡΠ½Ρ‹Ρ… ΠΏΠΎΡΠ»Π΅Π΄ΠΎΠ²Π°Ρ‚Π΅Π»ΡŒΠ½ΠΎΡΡ‚Π΅ΠΉ: bSSFP, BBTI, DANTE. ПослСдниС исслСдования Π² ΠΎΡ‚Π½ΠΎΡˆΠ΅Π½ΠΈΠΈ этого ΠΌΠ΅Ρ‚ΠΎΠ΄Π° диагностики LEDVT Π±Ρ‹Π»ΠΈ ΠΎΠΏΡƒΠ±Π»ΠΈΠΊΠΎΠ²Π°Π½Ρ‹ Π² 2019 Π³. ΠΈ ΠΏΠΎΠΊΠ°Π·Π°Π»ΠΈ Π²Ρ‹ΡΠΎΠΊΡƒΡŽ Π΄ΠΈΠ°Π³Π½ΠΎΡΡ‚ΠΈΡ‡Π΅ΡΠΊΡƒΡŽ Ρ†Π΅Π½Π½ΠΎΡΡ‚ΡŒ.Π’ ΠΎΡ‚Π½ΠΎΡˆΠ΅Π½ΠΈΠΈ всСх Π½Π°ΠΈΠ±ΠΎΠ»Π΅Π΅ часто ΠΈΡΠΏΠΎΠ»ΡŒΠ·ΡƒΠ΅ΠΌΡ‹Ρ… ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠ² провСдСния MRV ΠΏΠΎΠΊΠ°Π·Π°Π½Π° ΡΠΏΠ΅Ρ†ΠΈΡ„ΠΈΡ‡Π½ΠΎΡΡ‚ΡŒ ΠΈ Ρ‡ΡƒΠ²ΡΡ‚Π²ΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΡΡ‚ΡŒ.Π”Π°Π»ΡŒΠ½Π΅ΠΉΡˆΠ΅Π΅ ΠΏΡ€ΠΎΠ²Π΅Π΄Π΅Π½ΠΈΠ΅ MRV Ρƒ ΠΏΠ°Ρ†ΠΈΠ΅Π½Ρ‚ΠΎΠ² с CVD ΠΈ DVT являСтся пСрспСктивной диагностичСской Π·Π°Π΄Π°Ρ‡Π΅ΠΉ Π² соврСмСнной Ρ„Π»Π΅Π±ΠΎΠ»ΠΎΠ³ΠΈΠΈ. MRV Π΄ΠΎΠ»ΠΆΠ½Π° Π²Π½Π΅Π΄Ρ€ΡΡ‚ΡŒΡΡ Π² ΠΊΠ»ΠΈΠ½ΠΈΡ‡Π΅ΡΠΊΡƒΡŽ ΠΏΡ€Π°ΠΊΡ‚ΠΈΠΊΡƒ Π±ΠΎΠ»Π΅Π΅ Π°ΠΊΡ‚ΠΈΠ²Π½ΠΎ, Ρ‡Π΅ΠΌ это происходит сСгодня

    Polymers imprinted with three REG1B peptides for electrochemical determination of Regenerating Protein 1B, a urinary biomarker for pancreatic ductal adenocarcinoma

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    Three peptides (each containing 13–18 amino acids) were synthesized and used as templates for molecular imprinting and epitope recognition of the Regenerating Protein 1B (REG1B), which is one of the urinary biomarkers for pancreatic ductal adenocarcinoma (PDAC). Poly(ethylene-co-vinyl alcohol)s were employed as the host for molecular imprinting of the peptides. Following their preparation, the molecularly imprinted polymers (MIP) were examined by cyclic voltammetry. The electrochemical responses of a screen-printed gold substrate coated with the MIP were measured at a working voltage of 300 mV (vs. Ag/AgCl); the entire protein and the peptides gave similar responses at concentrations of <1.0 pgβ‹…mLβˆ’1, with detection limits as low as 0.1 pgβ‹…mLβˆ’1. Urine samples from healthy and PDAC patients were then analyzed by using this modified gold electrode, and the results are in agreement with data obtained with ELISA
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