25 Medical Products Inspired by Biological Oscillators …
399
69. A. Stefanovska, M. Bracic, Reconstructing cardiovascular dynamics. Control Eng Pract. 7(2),
161–172 (1999)
70. A. Stefanovska, M.B. Lotric, S. Strle, H. Haken, The cardiovascular system as coupled
oscillators? Physiol. Meas. 22(3), 535–550 (2001)
71. A. Stefanovska, Cardiorespiratory interactions, Nonlinear Phenom. Complex Sys. 462–469
(2002)
72. X. Tan, W.N. Qi, X. Gu, J.R. Urbaniak, L.E. Chen, Intermittent pneumatic compression regulates expression of nitric oxide synthases in skeletal muscles. J. Biomech. 39(13), 2430–2437
(2006)
73. C.E. Thorn, H. Kyte, D.W. Slaff, A.C. Shore, An association between vasomotion and oxygen
extraction. Am J Physiol-Heart C. 301(2), H442–H449 (2011)
74. C.E. Thorn, A.O. Adio, C.P. Winlove, A.C. Shore, Effects of intermittent impulse compression
on microvascular perfusion and capillary density. Microcirculation 27(2) (2020)
75. A.G. Tsai, M. Intaglietta, Evidence of flowmotion induced changes in local tissue oxygenation.
Int. J. Microcirc. Clin. Exp. 12(1), 75–88 (1993)
76. M.E. Tschakovsky, A.M. Rogers, K.E. Pyke, N.R. Saunders, N. Glenn, S.J. Lee, et al., Immediate exercise hyperemia in humans is contraction intensity dependent: evidence for rapid
vasodilation. J. Appl. Physiol. (1985). 96(2), 639–644 (2004)
77. J.W. VanTeeffelen, S.S. Segal, Rapid dilation of arterioles with single contraction of hamster
skeletal muscle. Am. J. Physiol. Heart Circ. Physiol. 290(1), H119–H127 (2006)
78. M.T. Zaleska, W.L. Olszewski, The effectiveness of intermittent pneumatic compression in
therapy of lymphedema of lower limbs: methods of evaluation and results. Lymphat Res Biol.
17(1), 60–69 (2019)
79. J.M. Zhao, M.L. He, Z.M. Xiao, T.S. Li, H. Wu, H. Jiang, Different types of intermittent
pneumatic compression devices for preventing venous thromboembolism in patients after total
hip replacement. Cochrane Database Systematic Rev. 12, CD009543 (2014)
399
69. A. Stefanovska, M. Bracic, Reconstructing cardiovascular dynamics. Control Eng Pract. 7(2),
161–172 (1999)
70. A. Stefanovska, M.B. Lotric, S. Strle, H. Haken, The cardiovascular system as coupled
oscillators? Physiol. Meas. 22(3), 535–550 (2001)
71. A. Stefanovska, Cardiorespiratory interactions, Nonlinear Phenom. Complex Sys. 462–469
(2002)
72. X. Tan, W.N. Qi, X. Gu, J.R. Urbaniak, L.E. Chen, Intermittent pneumatic compression regulates expression of nitric oxide synthases in skeletal muscles. J. Biomech. 39(13), 2430–2437
(2006)
73. C.E. Thorn, H. Kyte, D.W. Slaff, A.C. Shore, An association between vasomotion and oxygen
extraction. Am J Physiol-Heart C. 301(2), H442–H449 (2011)
74. C.E. Thorn, A.O. Adio, C.P. Winlove, A.C. Shore, Effects of intermittent impulse compression
on microvascular perfusion and capillary density. Microcirculation 27(2) (2020)
75. A.G. Tsai, M. Intaglietta, Evidence of flowmotion induced changes in local tissue oxygenation.
Int. J. Microcirc. Clin. Exp. 12(1), 75–88 (1993)
76. M.E. Tschakovsky, A.M. Rogers, K.E. Pyke, N.R. Saunders, N. Glenn, S.J. Lee, et al., Immediate exercise hyperemia in humans is contraction intensity dependent: evidence for rapid
vasodilation. J. Appl. Physiol. (1985). 96(2), 639–644 (2004)
77. J.W. VanTeeffelen, S.S. Segal, Rapid dilation of arterioles with single contraction of hamster
skeletal muscle. Am. J. Physiol. Heart Circ. Physiol. 290(1), H119–H127 (2006)
78. M.T. Zaleska, W.L. Olszewski, The effectiveness of intermittent pneumatic compression in
therapy of lymphedema of lower limbs: methods of evaluation and results. Lymphat Res Biol.
17(1), 60–69 (2019)
79. J.M. Zhao, M.L. He, Z.M. Xiao, T.S. Li, H. Wu, H. Jiang, Different types of intermittent
pneumatic compression devices for preventing venous thromboembolism in patients after total
hip replacement. Cochrane Database Systematic Rev. 12, CD009543 (2014)
