Modulation of physiological angiogenesis in skeletal muscle by mechanical forces: Involvement of VEGF and metalloproteinases

被引:150
作者
M.D. Brown
O. Hudlicka
机构
[1] Sch. of Sport and Exercise Sciences, University of Birmingham, Birmingham
[2] Department of Physiology, University of Birmingham, Birmingham
[3] Department of Physiology, Univ. of Birmingham Medical School
基金
英国医学研究理事会; 英国惠康基金;
关键词
Capillary growth; Mechanical forces; MMPs; Shear stress; Skeletal muscle; VEGF;
D O I
10.1023/A:1025809808697
中图分类号
学科分类号
摘要
Growth factors are involved in physiological angiogenesis in female reproductive organs but their role in capillary growth in skeletal muscles during activity or exercise training is not proven. Evidence suggests that increases in muscle blood flow and accompanying capillary shear stress and/or wall tension, or mechanical stress due to sarcomere length changes during contraction/relaxation cycles are closely linked with angiogenesis. Time-dependent studies of rat muscles in models with increased shear stress (chronic vasodilator treatment with α1 antagonist prazosin), altered sarcomere length (stretch-induced overload with no increase in blood flow), or both (chronic electrical muscle stimulation) showed a similar increase in capillary supply in all models but by different modes of growth. With prazosin, it occurred by intra-luminal splitting of vessels, with stretch by abluminal sprouting, and in stimulated muscles by both methods. Whole muscle matrix metalloproteinase-2 (MMP-2) was elevated during sprouting growth induced by extravascular tensile forces but not during splitting growth induced by shear. Vascular endothelial growth factor (VEGF) protein was elevated at capillary sites in all three models but with different time courses. With shear as the stimulus, the increase occurred early although there was little capillary proliferation; it matched the rise in proliferation in stretched muscles but lagged behind proliferation in stimulated muscles. Mechanical forces therefore influence MMP and VEGF expression and capillary growth patterns in skeletal muscle differentially depending upon whether they act intra- or ab-luminally. In exercise-trained muscles, the type of capillary growth remains to be determined but the most likely stimuli for angiogenesis are increased blood flow and shear forces to vessel supplying the active fibres, probably linked with metabolic factors.
引用
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页码:1 / 14
页数:13
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共 130 条
  • [1] White F.C., Bloor C.M., McKirnan M.D., Carroll S.M., Exercise training in swine promotes growth of arteriolar bed and capillary angiogenesis in heart, J Appl Physiol, 85, pp. 1160-1168, (1998)
  • [2] Hudlicka O., The response of muscle to enhanced and reduced activity, Baillière's Clin Endocrin Metab, 4, pp. 417-439, (1990)
  • [3] Hudlicka O., Brown M.D., Egginton S., Angiogenesis in skeletal and cardiac muscle, Physiol Rev, 72, pp. 369-417, (1992)
  • [4] Ausprunck D.H., Folkman J., Migration and proliferation of endothelial cells in preformed and newly formed blood vessels during tumor angiogenesis, Microvasc Res, 14, pp. 53-66, (1977)
  • [5] Rhodin J., Fujita H., Capillary growth in the mesentery of normal young rats. Intravital video and electron microscope analysis, J Submicrosc Cytol Pathol, 21, pp. 1-34, (1989)
  • [6] Mignatti P., Rifkin D.B., Plasminogen activators and matrix metalloproteinases in angiogenesis, Enzyme Protein, 49, pp. 117-137, (1996)
  • [7] Kliche S., Waltenberger J., VEGF receptor signaling and endothelial function, Iumb Life, 52, pp. 61-66, (2001)
  • [8] Gustafsson T., Kraus W.E., Exercise-induced angiogenesis-related growth and transcription factors on skeletal muscle, and their modification in muscle pathology, Front Biosci, 6, (2001)
  • [9] Burri P.H., Tarek M.R., A novel mechanism of capillary growth in the rat pulmonary circulation, Anat Rec, 228, pp. 35-45, (1990)
  • [10] Djonov V., Schmid M., Tschanz S.A., Burri P.H., Intussusceptive angiogenesis: Its role in embryonic vascular network formation, Circ Res, 86, pp. 286-292, (2000)