272
J. C. B. Jacobsen and C. Aalkjær
40. V.V. Matchkov, P. Larsen, E.V. Bouzinova, A. Rojek, D.M. Boedtkjer, V. Golubinskaya et al.,
Bestrophin-3 (vitelliform macular dystrophy 2-like 3 protein) is essential for the cGMPdependent calcium-activated chloride conductance in vascular smooth muscle cells. Circ. Res.
103(8), 864–872 (2008)
41. M.J. Mulvany, H. Nilsson, J.A. Flatman, Role of membrane potential in the response of rat
small mesenteric arteries to exogenous noradrenaline stimulation. J. Physiol. 332, 363–373
(1982)
42. G. Osol, W. Halpern, Spontaneous vasomotion in pressurized cerebral arteries from genetically
hypertensive rats. Am. J. Physiol. 254(1 Pt 2), H28–H33 (1988)
43. H. Peng, V. Matchkov, A. Ivarsen, C. Aalkjaer, H. Nilsson, Hypothesis for the initiation of
vasomotion. Circ. Res. 88(8), 810–815 (2001)
44. B.M. Prior, H.T. Yang, R.L. Terjung, What makes vessels grow with exercise training? J. Appl.
Physiol. (Bethesda, Md: 1985) 97(3), 1119–1128 (2004)
45. A. Rahman, V. Matchkov, H. Nilsson, C. Aalkjaer, Effects of cGMP on coordination of vascular
smooth muscle cells of rat mesenteric small arteries. J. Vasc. Res. 42(4), 301–311 (2005)
46. M. Rossi, S. Bertuglia, M. Varanini, A. Giusti, G. Santoro, A. Carpi, Generalised wavelet analysis of cutaneous flowmotion during post-occlusive reactive hyperaemia in patients with peripheral arterial obstructive disease. Biomedi. & Pharmaco. [Biomedecine & pharmacotherapie]
59(5), 233–239 (2005)
47. M. Rossi, A. Carpi, M.C. Di, F. Galetta, G. Santoro, Spectral analysis of laser Doppler skin
blood flow oscillations in human essential arterial hypertension. Microvasc. Res. 72(1–2),
34–41 (2006)
48. T. Sakurai, N. Terui, Effects of sympathetically induced vasomotion on tissue-capillary fluid
exchange. Am. J. Physiol. Heart Circ. Physiol. 291(4), H1761–H1767 (2006)
49. J.A. Schmidt, Periodic Hemodynamics in Health and Disease (Springer, Heidelberg, Berlin,
1996)
50. J.A. Schmidt, P. Borgstrom, M. Intaglietta, The vascular origin of slow wave flowmotion in
skeletal muscle during local hypotension. Int. J. Microcirc. Clin. Exp. 12(3), 287–297 (1993)
51. J.A. Schmidt, P. Borgstroem, S.P. Bruttig, A. Fronek, M. Intaglietta, Vasomotion as a flowdependent phenomenon. Prog. Appl. Microcircul. 20, 34–51 (1993) Basel: Karger
52. J.A. Schmidt, P. Borgström, G.P. Firestone, P.V. Wichert, M. Intaglietta, A. Fronek, Periodic
hemodynamics (flow motion) in peripheral arterial occlusive disease. J. Vasc. Sur. 18(2), 207–
215 (1993)
53. S.S. Segal, J.L. Beny, Intracellular recording and dye transfer in arterioles during blood flow
control. Am. J. Physiol. 263(1 Pt 2), H1–H7 (1992)
54. A. Stefanovska, Coupled oscillators: complex but not complicated cardiovascular and brain
interactions. Conf. Proc. Ann. Int. Conf. IEEE Eng. Medi. Biol. Soc. 1, 437–440 (2006)
55. C.E. Thorn, H. Kyte, D.W. Slaff, A.C. Shore, An association between vasomotion and oxygen
extraction. Am. J. Physiol. Heart Circ. Physiol. 301(2), H442–H449 (2011)
56. C.E. Thorn, S.J. Matcher, I.V. Meglinski, A.C. Shore, Is mean blood saturation a useful marker
of tissue oxygenation? Am. J. Physiol. Heart Circ. Physiol. 296(5), H1289–H1295 (2009)
57. M. Ursino, S. Cavalcanti, S. Bertuglia, A. Colantuoni, Theoretical analysis of complex
oscillations in multibranched microvascular networks. Microvasc. Res. 51(2), 229–249 (1996)
58. D.F. Van Helden, Pacemaker potentials in lymphatic smooth muscle of the guinea-pig
mesentery. J. Physiol. 471, 465–479 (1993)
59. D.F. van Helden, M.S. Imtiaz, Venous vasomotion. Adv. Exp. Med. Biol. 1124, 313–328 (2019)
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