Augmentation of Tissue Perfusion in Patients With Peripheral Artery Disease Using Microbubble Cavitation

被引:36
作者
Mason, O'Neil R. [1 ]
Davidson, Brian P. [1 ]
Sheeran, Paul [2 ,3 ]
Muller, Matthew [1 ]
Hodovan, James M. [1 ]
Sutton, Jonathan [4 ]
Powers, Jeffry [2 ,3 ]
Lindner, Jonathan R. [1 ,4 ]
机构
[1] Knight Cardiovasc Inst, Portland, OR USA
[2] Philips Ultrasound, Bothell, WA USA
[3] Philips Res, Cambridge, MA USA
[4] Oregon Hlth & Sci Univ, Oregon Natl Primate Res Ctr, Portland, OR 97201 USA
基金
美国国家卫生研究院;
关键词
cavitation; microcirculation; peripheral artery disease; muscle perfusion; ultrasound; DIAGNOSTIC ULTRASOUND; MICROVASCULAR FLOW; BLOOD-FLOW; VASODILATION; CORONARY;
D O I
10.1016/j.jcmg.2019.06.012
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
OBJECTIVES: The authors investigated ideal acoustic conditions on a clinical scanner custom-programmed for ultrasound (US) cavitation-mediated flow augmentation in preclinical models. We then applied these conditions in a first-in-human study to test the hypothesis that contrast US can increase limb perfusion in normal subjects and patients with peripheral artery disease (PAD). BACKGROUND: US-induced cavitation of microbubble contrast agents augments tissue perfusion by convective shear and secondary purinergic signaling that mediates release of endogenous vasodilators. METHODS: In mice, unilateral exposure of the proximal hindlimb to therapeutic US (1.3 MHz, mechanical index 1.3) was performed for 10 min after intravenous injection of lipid microbubbles. US varied according to line density (17, 37, 65 lines) and pulse duration. Microvascular perfusion was evaluated by US perfusion imaging, and in vivo adenosine triphosphate (ATP) release was assessed using in vivo optical imaging. Optimal parameters were then used in healthy volunteers and patients with PAD where calf US alone or in combination with intravenous microbubble contrast infusion was performed for 10 min. RESULTS: In mice, flow was augmented in the US-exposed limb for all acoustic conditions. Only at the lowest line density was there a stepwise increase in perfusion for longer (40-cycle) versus shorter (5-cycle) pulse duration. For higher line densities, blood flow consistently increased by 3-fold to 4-fold in the US-exposed limb irrespective of pulse duration. High line density and long pulse duration resulted in the greatest release of ATP in the cavitation zone. Application of these optimized conditions in humans together with intravenous contrast increased calf muscle blood flow by >2-fold in both healthy subjects and patients with PAD, whereas US alone had no effect. CONCLUSIONS: US of microbubbles when using optimized acoustic environments can increase perfusion in limb skeletal muscle, raising the possibility of a therapy for patients with PAD. (C) 2020 by the American College of Cardiology Foundation.
引用
收藏
页码:641 / 651
页数:11
相关论文
共 17 条
  • [1] Efficacy and spatial distribution of ultrasound-mediated clot lysis in the absence of thrombolytics
    Ammi, Azzdine Y.
    Lindner, Jonathan R.
    Zhao, Yan
    Porter, Thomas
    Siegel, Robert
    Kaul, Sanjiv
    [J]. THROMBOSIS AND HAEMOSTASIS, 2015, 113 (06) : 1357 - 1369
  • [2] [Anonymous], CIRC CARDIOVASC IMAG
  • [3] Augmentation of Muscle Blood Flow by Ultrasound Cavitation Is Mediated by ATP and Purinergic Signaling
    Belcik, J. Todd
    Davidson, Brian P.
    Xie, Aris
    Wu, Melinda D.
    Yadava, Mrinal
    Qi, Yue
    Liang, Sherry
    Chon, Chae Ryung
    Ammi, Azzdine Y.
    Field, Joshua
    Harmann, Leanne
    Chilian, William M.
    Linden, Joel
    Lindner, Jonathan R.
    [J]. CIRCULATION, 2017, 135 (13) : 1240 - 1252
  • [4] Augmentation of Limb Perfusion and Reversal of Tissue Ischemia Produced by Ultrasound-Mediated Microbubble Cavitation
    Belcik, J. Todd
    Mott, Brian H.
    Xie, Aris
    Zhao, Yan
    Kim, Sajeevani
    Lindner, Nathan J.
    Ammi, Azzdine
    Linden, Joel M.
    Lindner, Jonathan R.
    [J]. Circulation-Cardiovascular Imaging, 2015, 8 (04)
  • [5] The pulse length-dependence of inertial cavitation dose and hemolysis
    Chen, WS
    Brayman, AA
    Matula, TJ
    Crum, LA
    Miller, MW
    [J]. ULTRASOUND IN MEDICINE AND BIOLOGY, 2003, 29 (05) : 739 - 748
  • [6] Diversity in Mechanisms of Endothelium-Dependent Vasodilation in Health and Disease
    Durand, Matthew J.
    Gutterman, David D.
    [J]. MICROCIRCULATION, 2013, 20 (03) : 239 - 247
  • [7] Noninvasive low-frequency energy causes vasodilation ultrasound in humans
    Iida, Kiyoshi
    Luo, Huai
    Hagisawa, Kohsuke
    Akima, Takashi
    Shah, Prediman K.
    Naqvi, Tasneem Z.
    Siegel, Robert J.
    [J]. JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2006, 48 (03) : 532 - 537
  • [8] Jensen J. A., 1996, Medical & Biological Engineering & Computing, V34, P351
  • [9] Roles of norepinephrine and ATP in sympathetically evoked vasoconstriction in rat tail and hindlimb in vivo
    Johnson, CD
    Coney, AM
    Marshall, JM
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2001, 281 (06): : H2432 - H2440
  • [10] Diagnostic Ultrasound Impulses Improve Microvascular Flow in Patients With STEMI Receiving Intravenous Microbubbles
    Mathias, Wilson, Jr.
    Tsutsui, Jeane M.
    Tavares, Bruno G.
    Xie, Feng
    Aguiar, Miguel O. D.
    Garcia, Diego R.
    Oliveira, Mucio T., Jr.
    Soeiro, Alexandre
    Nicolau, Jose C.
    Lemos Neto, Pedro A.
    Rochitte, Carlos E.
    Ramires, Jose A. F.
    Kalil Filho, Roberto
    Porter, Thomas R.
    [J]. JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2016, 67 (21) : 2506 - 2515