Все выпуски

Транспорт и адгезия тромбоцитов в условиях потока крови: роль эритроцитов

 pdf (1379K)  / Аннотация

Список литературы:

  1. В. Н. Буравцев, А. И. Лобанов, А. В. Украинец. Математическая модель роста тромбоцитарного тромба // Математическое моделирование. — 2009. — Т. 21, № 3. — С. 109 — 119.
  2. В. Н. Буравцев, А. В. Николаев, А. В. Украинец. Влияние столкновений на распределение тромбоцитов в кровотоке // Вестник Московского университета. Серия 3: Физика. Астрономия. — 2009. — Т. 4. — С. 81 — 84.
  3. А. Х. Воробьёв. Диффузионные задачи в химической кинетике. — М: Издательство Московского университета, 2003.
  4. В. А. Левтов, С. А. Регирер, Н. Х. Шадрина. Реология крови. — М: Медицина, 1982.
  5. Г. М. Панченков, В. П. Лебедев. Химическая кинетика и катализ. — М: Химия, 1985.
  6. И. А. Семиохин, Б. В. Страхов, А. И. Осипов. Кинетика химических реакций. — М: Издательство Московского университета, 1995.
  7. P. A. Aarts, P. A. Bolhuis, K. S. Sakariassen, R. M. Heethaar, J. J. Sixma. Red blood cell size is important for adherence of blood platelets to artery subendothelium // Blood. — 1983. — V. 62, no. 1. — P. 214 — 217.
  8. P. A. Aarts, P. Steendijk, J. J. Sixma, R. M. Heethaar. Fluid shear as a possible mechanism for platelet diffusivity in flowing blood // J. Biomech. — 1986. — V. 19, no. 10. — P. 799 — 805. — DOI: 10.1016/0021-9290(86)90130-2.
  9. P. A. Aarts, S. A. van den Broek, G. W. Prins, G. D. Kuiken, J. J. Sixma, R. M. Heethaar. Blood platelets are concentrated near the wall and red blood cells, in the center in flowing blood // Arteriosclerosis. — 1988. — V. 8, no. 6. — P. 819 — 824. — DOI: 10.1161/01.ATV.8.6.819.
  10. E. Anczurowski, R. G. Cox, S. G. Mason. The kinetics of flowing dispersions: IV. Transient orientations of cylinders // Journal of Colloid and Interface Science. — 1967. — V. 23, no. 4. — P. 547 — 562. — DOI: 10.1016/0021-9797(67)90201-9. — ads: 1967JCIS...23..547A.
  11. G. Antonini, G. Guiffant, D. Quemada, A. M. Dosne. Estimation of platelet diffusivity in flowing blood // Biorheology. — 1978. — V. 15, no. 2. — P. 111 — 562. — DOI: 10.3233/BIR-1978-15205.
  12. H. Aref, S. W. Jones. Enhanced separation of diffusing particles by chaotic advection // Phys. Fluids A. — 1989. — V. 1, no. 3. — P. 470 — 474. — DOI: 10.1063/1.857416. — MathSciNet: MR1021636. — ads: 1989PhFl....1..470A.
  13. E. F. Bernstein, P. L. Blackshear, Keller K. H. Jr. Factors influencing erythrocyte destruction in artificial organs // Am. J. Surg. — 1967. — V. 114, no. 1. — P. 126 — 138. — DOI: 10.1016/0002-9610(67)90047-5.
  14. D. L. Bilsker, C. M. Waters, J. S. Kippenhan, E. C. Eckstein. A freeze-capture method for the study of platelet-sized particle distributions // Biorheology. — 1989. — V. 26, no. 6. — P. 1031 — 1040. — DOI: 10.3233/BIR-1989-26606.
  15. J. J. Bishop, P. R. Nance, A. S. Popel, M. Intaglietta, P. C. Johnson. Effect of erythrocyte aggregation on velocity profiles in venules // Am. J. Physiol Heart Circ.Physiol. — 2001. — V. 280, no. 1. — P. H222 — H236. — DOI: 10.1152/ajpheart.2001.280.1.H222.
  16. J. J. Bishop, A. S. Popel, M. Intaglietta, P. C. Johnson. Effect of aggregation and shear rate on the dispersion of red blood cells flowing in venules // Am. J. Physiol Heart Circ. Physiol. — 2002. — V. 283, no. 5. — P. H1985 — H1996. — DOI: 10.1152/ajpheart.00888.2001.
  17. J. J. Bishop, A. S. Popel, M. Intaglietta, P. C. Johnson. Effects of erythrocyte aggregation and venous network geometry on red blood cell axial migration // American Journal of Physiology — Heart and Circulatory Physiology. — 2001. — V. 281, no. 2. — P. H939 — H950. — DOI: 10.1152/ajpheart.2001.281.2.H939.
  18. P. L. Jr. Blackshear, K. W. Bartelt, R. J. Forstrom. Fluid dynamic factors affecting particle capture and retention // Ann.N.Y.Acad.Sci. — 1977. — V. 283. — P. 270 — 279. — DOI: 10.1111/j.1749-6632.1977.tb41772.x. — ads: 1977NYASA.283..270B.
  19. J. R. Jr. Buchanan, C. Kleinstreuer. Simulation of particle-hemodynamics in a partially occluded artery segment with implications to the initiation of microemboli and secondary stenoses // J. Biomech.Eng. — 1998. — V. 120, no. 4. — P. 446 — 454. — DOI: 10.1115/1.2798013.
  20. Y. Cadroy, S. R. Hanson. Effects of red blood cell concentration on hemostasis and thrombus formation in a primate model // Blood. — 1990. — V. 75, no. 11. — P. 2185 — 2193.
  21. L. Crowl, A. L. Fogelson. Analysis of Mechanisms for Platelet Near-Wall Excess Under Arterial Blood Flow Conditions // Journal of Fluid Mechanics. — 2011. — V. 676. — P. 348–375. — Available on CJO2006. — MathSciNet: MR2804454.
  22. T. David, S. Thomas, P. G. Walker. Platelet deposition in stagnation point flow: an analytical and computational simulation // Med.Eng Phys. — 2001. — V. 23, no. 5. — P. 299 — 312. — DOI: 10.1016/S1350-4533(01)00047-9.
  23. T. E. Diller. Comparison of red cell augmented diffusion and platelet transport // J. Biomech. Eng. — 1988. — V. 110, no. 2. — P. 161 — 163. — DOI: 10.1115/1.3108422.
  24. E. C. Eckstein, D. G. Bailey, A. H. Shapiro. Self-diffusion of particles in shear flow of a suspension // Journal of Fluid Mechanics. — 1977. — V. 79. — P. 191 — 208. — DOI: 10.1017/S0022112077000111. — ads: 1977JFM....79..191E.
  25. E. C. Eckstein, F. Belgacem. Model of platelet transport in flowing blood with drift and diffusion terms // Biophys. J. — 1991. — V. 60, no. 1. — P. 53 — 69. — DOI: 10.1016/S0006-3495(91)82030-6.
  26. E. C. Eckstein, D. L. Bilsker, C. M. Waters, J. S. Kippenhan, A. W. Tilles. Transport of platelets in flowing blood // Ann. N.Y. Acad. Sci. — 1987. — V. 516. — P. 442 — 452. — DOI: 10.1111/j.1749-6632.1987.tb33065.x. — ads: 1987NYASA.516..442E.
  27. E. C. Eckstein, A. W. Tilles, Millero F. J. III. Conditions for the occurrence of large near-wall excesses of small particles during blood flow // Microvasc.Res. — 1988. — V. 36, no. 1. — P. 31 — 39. — DOI: 10.1016/0026-2862(88)90036-2.
  28. M. L. Ellsworth, R. N. Pittman. Evaluation of photometric methods for quantifying convective mass transport in microvessels // Am.J.Physiol. — 1986. — V. 251. — P. H869 — H879.
  29. I. A. Feuerstein, J. M. Brophy, J. L. Brash. Platelet transport and adhesion to reconstituted collagen and artificial surfaces // Trans. Am. Soc. Artif. Intern. Organs. — 1975. — V. 21. — P. 427 — 435.
  30. H. L. Goldsmith. Red cell motions and wall interactions in tube flow // Fed.Proc. — 1971. — V. 30, no. 5. — P. 1578 — 1590.
  31. H. L. Goldsmith. The Microcirculatory Society Eugene M. Landis Award lecture. The microrheology of human blood // Microvasc.Res. — 1986. — V. 31, no. 2. — P. 121 — 142. — DOI: 10.1016/0026-2862(86)90029-4.
  32. H. L. Goldsmith, J. C. Marlow. Flow behavior of erythrocytes. II. Particle motions in concentrated suspensions of ghost cells // Journal of Colloid and Interface Science. — 1979. — V. 71, no. 2. — P. 383 — 407. — DOI: 10.1016/0021-9797(79)90248-0. — ads: 1979JCIS...71..383G.
  33. H. L. Goldsmith, V. T. Turitto. Rheological aspects of thrombosis and haemostasis: basic principles and applications. ICTH-Report–Subcommittee on Rheology of the International Committee on Thrombosis and Haemostasis // Thromb.Haemost. — 1986. — V. 55, no. 3. — P. 415 — 435.
  34. E. F. Grabowski, L.I. Friedman, E. F. Leonard. Effects of Shear Rate on the Diffusion and Adhesion of Blood Platelets to a Foreign Surface // Ind.Eng.Chem.Fundamen. — 1972. — V. 11, no. 2. — P. 224 — 232. — DOI: 10.1021/i160042a013.
  35. J. P. Heller. An Unmixing Demonstration // American Journal of Physics. — 1960. — V. 28, no. 4. — P. 348 — 353. — DOI: 10.1119/1.1935802. — ads: 1960AmJPh..28..348H.
  36. A. Karnis, H. L. Goldsmith, S. G. Mason. The kinetics of flowing dispersions: I. Concentrated suspensions of rigid particles // Journal of Colloid and Interface Science. — 1966. — V. 22, no. 6. — P. 531 — 553. — DOI: 10.1016/0021-9797(66)90048-8. — ads: 1966JCIS...22..531K.
  37. S. Kim, P. K. Ong, O. Yalcin, M. Intaglietta, P. C. Johnson. The cell-free layer in microvascular blood flow // Biorheology. — 2009. — V. 46. — P. 181 — 189.
  38. J. F. Koleski, E. C. Eckstein. Near wall concentration profiles of 1.0 and 2.5 microns beads during flow of blood suspensions // ASAIO Trans. — 1991. — V. 37, no. 1. — P. 9 — 12. — DOI: 10.1097/00002480-199101000-00004.
  39. S. Kulkarni и др. A revised model of platelet aggregation // J. Clin. Invest. — 2000. — V. 105, no. 6. — P. 783 — 791. — DOI: 10.1172/JCI7569.
  40. E. F. Leonard, E. F. Grabowski, V. T. Turitto. The role of convection and diffusion on platelet adhesion and aggregation // Ann. N.Y. Acad. Sci. — 1972. — V. 201. — P. 329 — 342. — DOI: 10.1111/j.1749-6632.1972.tb16309.x. — ads: 1972NYASA.201..329L.
  41. D. S. Long, M. L. Smith, A. R. Pries, K. Ley, E. R. Damiano. Microviscometry reveals reduced blood viscosity and altered shear rate and shear stress profiles in microvessels after hemodilution // Proc.Natl.Acad.Sci.U.S.A. — 2004. — V. 101, no. 27. — P. 10060 — 10065. — DOI: 10.1073/pnas.0402937101. — ads: 2004PNAS..10110060L.
  42. M. Manjunatha, M. Singh. Digital blood flow analysis from microscopic images of mesenteric microvessel with multiple branching // Clin.Hemorheol.Microcirc. — 2002. — V. 27. — P. 91 — 106.
  43. M. Manjunatha, S. S. Singh, M. Singh. Blood flow analysis in mesenteric microvascular network by image velocimetry and axial tomography // Microvascular Research. — 2003. — V. 65. — P. 49 — 55. — DOI: 10.1016/S0026-2862(02)00028-6.
  44. P. R. Nott, J. F. Brady. Pressure-driven flow of suspensions: simulation and theory // Journal of Fluid Mechanics. — 1994. — V. 275. — P. 157 — 199. — DOI: 10.1017/S0022112094002326. — ads: 1994JFM...275..157N.
  45. A. A. Palmer, W. H. Betts. The axial drift of fresh and acetaldehyde-hardened erythrocytes in 25 mum capillary slits of various lengths // Biorheology. — 1975. — V. 12, no. 5. — P. 283 — 293. — DOI: 10.3233/BIR-1975-12506.
  46. R. J. Phillips, R. C. Armstrong, R. A. Brown. A constitutive equation for concentrated suspensions that accounts for shear-induced particle migration // Phys. Fluids A. — 1992. — V. 4, no. 1. — P. 30 — 40. — DOI: 10.1063/1.858498. — ads: 1992PhFl....4...30P.
  47. A. R. Pries, K. Ley, M. Claassen, P. Gaehtgens. Red Cell Distribution at Microvascular Bifurcations // Microvasc. Res. — 1989. — V. 38. — P. 81 — 101. — DOI: 10.1016/0026-2862(89)90018-6.
  48. K. S. Sakariassen, P. A. Aarts, P. G. de Groot, W. P. Houdijk, J. J. Sixma. A perfusion chamber developed to investigate platelet interaction in flowing blood with human vessel wall cells, their extracellular matrix, and purified components // J. Lab Clin. Med. — 1983. — V. 102, no. 4. — P. 522 — 535.
  49. E. N. Sorensen, G. W. Burgreen, W. R. Wagner, J. F. Antaki. Computational simulation of platelet deposition and activation: I. Model development and properties // Ann.Biomed.Eng. — 1999. — V. 27, no. 4. — P. 436 — 448. — DOI: 10.1114/1.200.
  50. E. N. Sorensen, G. W. Burgreen, W. R. Wagner, J. F. Antaki. Computational simulation of platelet deposition and activation: II. Results for Poiseuille flow over collagen // Ann. Biomed. Eng. — 1999. — V. 27, no. 4. — P. 449 — 458. — DOI: 10.1114/1.201.
  51. A. B. Strong, G. D. Stubley, G. Chang, D. R. Absolom. Theoretical and experimental analysis of cellular adhesion to polymer surfaces // J. Biomed. Mater .Res. — 1987. — V. 21, no. 8. — P. 1039 — 1055. — DOI: 10.1002/jbm.820210810.
  52. G. D. Stubley, A. B. Strong, W. E. Hale, D. R. Absolom. A review of mathematical models for the prediction of blood cell adhesion // PCH PhysicoChem.Hydrodynamics. — 1987. — V. 8, no. 2. — P. 221 — 235.
  53. G. J. Tangelder, D. W. Slaaf, T. Arts, R. S. Reneman. Wall shear rate in arterioles in vivo: least estimates from platelet velocity profiles // Am. J. Physiol. — 1988. — V. 254, no. 6 pt. 2. — P. H1059 — H1064.
  54. G. J. Tangelder, H. C. Teirlinck, D. W. Slaaf, R. S. Reneman. Distribution of blood platelets flowing in arterioles // Am. J. Physiol. — 1985. — V. 248, no. 3, pt. 2. — P. H318 — H323.
  55. A. W. Tilles, E. C. Eckstein. The near-wall excess of platelet-sized particles in blood flow: its dependence on hematocrit and wall shear rate // Microvasc.Res. — 1987. — V. 33, no. 2. — P. 211 — 223. — DOI: 10.1016/0026-2862(87)90018-5.
  56. A. Tokarev, I. Sirakov, G. Panasenko, V. Volpert, E. Shnol, A. Butylin, F. Ataullakhanov. Continuous Mathematical Model of Platelet Thrombus Formation in Blood Flow // Russian Journal of Numerical Analysis and Mathematical Modelling. — 2012. — V. 26, no. 2. — P. 191 — 212. — MathSciNet: MR2910582.
  57. A. A. Tokarev, A. A. Butylin, F. I. Ataullakhanov. Platelet Adhesion from Shear Blood Flow Is Controlled by Near-Wall Rebounding Collisions with Erythrocytes // Biophysical Journal. — 2011. — V. 100, no. 4. — P. 799 — 808. — DOI: 10.1016/j.bpj.2010.12.3740. — ads: 2011BpJ...100..799T.
  58. A. A. Tokarev, A. A. Butylin, E. A. Ermakova, E. E. Shnol, G. P. Panasenko, F. I. Ataullakhanov. Finite Platelet Size Could Be Responsible for Platelet Margination Effect // Biophysical Journal. — 2011. — V. 101, no. 8. — P. 1835 — 1843. — DOI: 10.1016/j.bpj.2011.08.031. — ads: 2011BpJ...101.1835T.
  59. V. T. Turitto, H. R. Baumgartner. Platelet deposition on subendothelium exposed to flowing blood: mathematical analysis of physical parameters // Trans. Am. Soc. Artif. Intern. Organs. — 1975. — V. 21. — P. 593 — 601.
  60. V. T. Turitto, H. R. Baumgartner. Platelet interaction with subendothelium in a perfusion system: physical role of red blood cells // Microvasc.Res. — 1975. — V. 9, no. 3. — P. 335 — 344. — DOI: 10.1016/0026-2862(75)90070-9.
  61. V. T. Turitto, H. R. Baumgartner. Platelet interaction with subendothelium in flowing rabbit blood: effect of blood shear rate // Microvasc.Res. — 1979. — V. 17, no. 1. — P. 38 — 54. — DOI: 10.1016/0026-2862(79)90006-2.
  62. V. T. Turitto, A. M. Benis, E. F. Leonard. Platelet diffusion in flowing blood // Ind. Eng. Chem. Fundamen. — 1972. — V. 11, no. 2. — P. 216 — 223. — DOI: 10.1021/i160042a012.
  63. V. T. Turitto, C. L. Hall. Mechanical factors affecting hemostasis and thrombosis // Thromb. Res. — 1998. — V. 92, no. 6, suppl 2. — P. S25 — S31. — DOI: 10.1016/S0049-3848(98)00157-1.
  64. V. T. Turitto, H. J. Weiss. Platelet and red cell involvement in mural thrombogenesis // Ann. N.Y. Acad. Sci. — 1983. — V. 416. — P. 363 — 376. — DOI: 10.1111/j.1749-6632.1983.tb35199.x. — ads: 1983NYASA.416..363T.
  65. V. T. Turitto, H. J. Weiss, H. R. Baumgartner. The effect of shear rate on platelet interaction with subendothelium exposed to citrated human blood // Microvasc. Res. — 1980. — V. 19, no. 3. — P. 352 — 365. — DOI: 10.1016/0026-2862(80)90054-0.
  66. S. K. Wang, N. H. C. Hwang. On transport of suspended particulates in tube flow // Biorheology. — 1992. — V. 29. — P. 353 — 377. — DOI: 10.3233/BIR-1992-292-313.
  67. B. Woldhuis, G. J. Tangelder, D. W. Slaaf, R. S. Reneman. Concentration profile of blood platelets differs in arterioles and venules // Am. J. Physiol. — 1992. — V. 262, no. 4, pt 2. — P. H1217 — H1223.
  68. C. Xu, D. M. Wootton. Platelet near-wall excess in porcine whole blood in artery-sized tubes under steady and pulsatile flow conditions // Biorheology. — 2004. — V. 41, no. 2. — P. 113 — 125.
  69. C. Yeh, A. C. Calvez, E. C. Eckstein. An estimated shape function for drift in a platelet-transport model // Biophys. J. — 1994. — V. 67, no. 3. — P. 1252 — 1259. — DOI: 10.1016/S0006-3495(94)80595-8.
  70. C. Yeh, E. C. Eckstein. Transient lateral transport of platelet-sized particles in flowing blood suspensions // Biophys. J. — 1994. — V. 66, no. 5. — P. 1706 — 1716. — DOI: 10.1016/S0006-3495(94)80962-2.
  71. R. Zhao, M. V. Kameneva, J. F. Antaki. Investigation of platelet margination phenomena at elevated shear stress // Biorheology. — 2007. — V. 44, no. 3. — P. 161 — 177.
  72. R. Zhao, J. N. Marhefka, J. F. Antaki, M. V. Kameneva. Drag-reducing polymers diminish near-wall concentration of platelets in microchannel blood flow // Biorheology. — 2010. — V. 47, no. 3 — 4. — P. 193 — 203.
  73. A. L. Zydney, C. K. Colton. Augmented solute transport in the shear flow of a concentrated suspension // PCH Physico Chem. Hydrodynamics. — 1988. — V. 10, no. 1. — P. 77 — 96.

Журнал индексируется в Scopus

Полнотекстовая версия журнала доступна также на сайте научной электронной библиотеки eLIBRARY.RU

Журнал включен в базу данных Russian Science Citation Index (RSCI) на платформе Web of Science

Международная Междисциплинарная Конференция "Математика. Компьютер. Образование"

Международная Междисциплинарная Конференция МАТЕМАТИКА. КОМПЬЮТЕР. ОБРАЗОВАНИЕ.