Microtubule depolymerization normalizes in vivo myocardial contractile function in dogs with pressure-overload left ventricular hypertrophy

被引:61
|
作者
Koide, M
Hamawaki, M
Narishige, T
Sato, H
Nemoto, S
DeFreyte, G
Zile, MR
Cooper, G
Carabello, BA
机构
[1] Med Univ S Carolina, Gazes Cardiac Res Inst, Charleston, SC 29403 USA
[2] Dept Vet Affairs Med Ctr, Charleston, SC USA
关键词
heart failure; hypertrophy; stenosis; cells; microtubules;
D O I
10.1161/01.CIR.102.9.1045
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background-Because initially compensatory myocardial hypertrophy in response to pressure overloading may eventually decompensate to myocardial failure, mechanisms responsible for this transition have long been sought. One such mechanism established in vitro is densification of the cellular microtubule network, which imposes a viscous load that inhibits cardiocyte contraction. Methods and Results-In the present study, we extended this in vitro finding to the in vivo level and tested the hypothesis that this cytoskeletal abnormality is important in the in vivo contractile dysfunction that occurs in experimental aortic stenosis in the adult dog. In 8 dogs in which gradual stenosis of the ascending aorta had caused severe left ventricular (LV) pressure overloading (gradient, 152+/-16 mm Hg) with contractile dysfunction, LV function was measured at baseline and 1 hour after the intravenous administration of colchicine. Cardiocytes obtained by biopsy before and after in vivo colchicine administration were examined in tandem. Microtubule depolymerization restored LV contractile function both in vivo and in vitro. Conclusions-These and additional corroborative data show that increased cardiocyte microtubule network density is an important mechanism for the ventricular contractile dysfunction that develops in large mammals with adult-onset pressure-overload-induced cardiac hypertrophy.
引用
收藏
页码:1045 / 1052
页数:8
相关论文
共 50 条
  • [21] Monitoring of Cardiac Remodeling in a Mouse Model of Pressure-Overload Left Ventricular Hypertrophy with [18F]FDG MicroPET
    Andrei Todica
    Nick L. Beetz
    Lisa Günther
    Mathias J. Zacherl
    Ulrich Grabmaier
    Bruno Huber
    Peter Bartenstein
    Stefan Brunner
    Sebastian Lehner
    Molecular Imaging and Biology, 2018, 20 : 268 - 274
  • [22] Pressure-overload hypertrophy of the developing heart reveals activation of divergent gene and protein pathways in the left and right ventricular myocardium
    Friehs, Ingeborg
    Cowan, Douglas B.
    Choi, Yeong-Hoon
    Black, Kendra M.
    Barnett, Reanne
    Bhasin, Manoj K.
    Daly, Christian
    Dillon, Simon J.
    Libermann, Towia A.
    McGowan, Francis X.
    del Nido, Pedro J.
    Levitsky, Sidney
    McCully, James D.
    AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2013, 304 (05): : H697 - H708
  • [23] Relationships between myocardial bioenergetic and left ventricular function in hearts with volume-overload hypertrophy
    Zhang, JY
    Toher, C
    Erhard, M
    Zhang, Y
    Ugurbil, K
    Bache, RJ
    Lange, T
    Homans, DC
    CIRCULATION, 1997, 96 (01) : 334 - 343
  • [24] Impaired endothelium-dependent regulation of ventricular relaxation in pressure-overload cardiac hypertrophy
    MacCarthy, PA
    Shah, AM
    CIRCULATION, 2000, 101 (15) : 1854 - 1860
  • [25] Effect of NO donors on LV diastolic function in patients with severe pressure-overload hypertrophy
    Matter, CM
    Mandinov, L
    Kaufmann, PA
    Vassalli, G
    Jiang, ZH
    Hess, OM
    CIRCULATION, 1999, 99 (18) : 2396 - 2401
  • [26] Effects of indapamide in rats with pressure overload left ventricular hypertrophy
    Böcker, W
    Hupf, H
    Grimm, D
    Kurzidim, K
    Schunkert, H
    JOURNAL OF CARDIOVASCULAR PHARMACOLOGY, 2000, 36 (04) : 481 - 486
  • [27] The role of the cytoskeleton in left ventricular pressure overload hypertrophy and failure
    Collins, JF
    PawloskiDahm, C
    Davis, MG
    Ball, N
    Dorn, GW
    Walsh, RA
    JOURNAL OF MOLECULAR AND CELLULAR CARDIOLOGY, 1996, 28 (07) : 1435 - 1443
  • [28] Axl expression is increased in early stages of left ventricular remodeling in an animal model with pressure-overload
    Batlle, Montserrat
    Castillo, Nadia
    Alcarraz, Anna
    Sarvari, Sebastian
    Sanguesa, Gemma
    Cristobal, Helena
    Garcia de Frutos, Pablo
    Sitges, Marta
    Mont, Lluis
    Guasch, Eduard
    PLOS ONE, 2019, 14 (06):
  • [29] Changes in Myocardial Microstructure and Mechanics With Progressive Left Ventricular Pressure Overload
    Torres, William M.
    Barlow, Shayne C.
    Moore, Amber
    Freeburg, Lisa A.
    Hoenes, Abigail
    Doviak, Heather
    Zile, Michael R.
    Shazly, Tarek
    Spinale, Francis G.
    JACC-BASIC TO TRANSLATIONAL SCIENCE, 2020, 5 (05): : 463 - 480
  • [30] Effects of Diabetes Mellitus, Pressure-Overload and Their Association on Myocardial Structure and Function
    Falcao-Pires, Ines
    Goncalves, Nadia
    Moura, Claudia
    Lamego, Ines
    Eloy, Catarina
    Lopes, Jose M.
    Begieneman, Mark P. V.
    Niessen, Hans W. M.
    Areias, Jose C.
    Leite-Moreira, Adelino F.
    AMERICAN JOURNAL OF HYPERTENSION, 2009, 22 (11) : 1190 - 1198