of surgical exteriorization Spinotrapezius muscle microcirculatory function: effects
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[1] J. Linderman,et al. Growth-related changes in the influence of nitric oxide on arteriolar tone. , 1999, American journal of physiology. Heart and circulatory physiology.
[2] O. Mathieu-Costello,et al. Differential microvascular response to disuse in rat hindlimb skeletal muscles. , 1999, Journal of applied physiology.
[3] D. Poole,et al. Impaired capillary hemodynamics in skeletal muscle of rats in chronic heart failure. , 1999, Journal of applied physiology.
[4] D. Poole,et al. Effects of skeletal muscle sarcomere length on in vivo capillary distensibility. , 1999, Microvascular research.
[5] D. Slaaf,et al. Quantitative assessment of [Ca2+]ilevels in rat skeletal muscle in vivo. , 1998, American journal of physiology. Heart and circulatory physiology.
[6] J. Lash. Exercise training enhances adrenergic constriction and dilation in the rat spinotrapezius muscle. , 1998, Journal of applied physiology.
[7] D. Poole,et al. Skeletal muscle microcirculatory structure and hemodynamics in diabetes. , 1998, Respiration physiology.
[8] W. Mayhan,et al. Effect of chronic myocardial infarction on in vivo reactivity of skeletal muscle arterioles. , 1997, The American journal of physiology.
[9] D. Poole,et al. In vivo microvascular structural and functional consequences of muscle length changes. , 1997, The American journal of physiology.
[10] David F Wilson,et al. Calibration of oxygen-dependent quenching of the phosphorescence of Pd-meso-tetra (4-carboxyphenyl) porphine: a phosphor with general application for measuring oxygen concentration in biological systems. , 1996, Analytical biochemistry.
[11] G. Schmid-Schönbein,et al. Temporal correlation between maximum tetanic force and cell death in postischemic rat skeletal muscle. , 1995, The Journal of clinical investigation.
[12] G. Schmid-Schönbein,et al. Biomechanics of skeletal muscle capillaries: Hemodynamic resistance, endothelial distensibility, and pseudopod formation , 1995, Annals of Biomedical Engineering.
[13] R. Hester,et al. Role of EDRFs in the control of arteriolar diameter during increased metabolism of striated muscle. , 1994, The American journal of physiology.
[14] D. Poole,et al. Effects of hyperoxia on maximal leg O2 supply and utilization in men. , 1993, Journal of applied physiology.
[15] R. Hester,et al. Importance of venular flow in control of arteriolar diameter in hamster cremaster muscle. , 1993, The American journal of physiology.
[16] J. Marshall,et al. Responses observed in individual arterioles and venules of rat skeletal muscle during systemic hypoxia. , 1991, The Journal of physiology.
[17] G. Schmid-Schönbein,et al. Effects of skeletal muscle fiber deformation on lymphatic volumes. , 1990, The American journal of physiology.
[18] K. Groebe,et al. Calculated intra- and extracellular PO2 gradients in heavily working red muscle. , 1990, The American journal of physiology.
[19] W. Rumsey,et al. Imaging of phosphorescence: a novel method for measuring oxygen distribution in perfused tissue. , 1988, Science.
[20] A. Popel,et al. A theoretical analysis of the effect of the particulate nature of blood on oxygen release in capillaries. , 1986, Microvascular research.
[21] S. Cain,et al. Circulatory responses to 2,4-dinitrophenol in dog limb during normoxia and hypoxia. , 1985, Journal of applied physiology.
[22] B. Zweifach,et al. Capillary recruitment and flow velocity in skeletal muscle after contractions. , 1982, Microvascular research.
[23] E. Frohlich,et al. Reference sample microsphere method: cardiac output and blood flows in conscious rat. , 1980, The American journal of physiology.
[24] R. Tuma,et al. Influence of oxygen on perfused capillary density and capillary red cell velocity in rabbit skeletal muscle. , 1980, Microvascular research.
[25] B. Duling,et al. Microvascular hematocrit and red cell flow in resting and contracting striated muscle. , 1979, The American journal of physiology.
[26] S. Gray. Rat spinotrapezius muscle preparation for microscopic observation of the terminal vascular bed. , 1973, Microvascular research.
[27] P. Johnson,et al. Reactive hyperemia in individual capillaries of skeletal muscle. , 1972, The American journal of physiology.
[28] R. Bache,et al. Control of Blood Flow to Cardiac and Skeletal Muscle During Exercise , 2011 .
[29] M. Lagarde,et al. Impaired microvascular responses to acute hyperglycemia in type I diabetic rats. , 1999, Journal of diabetes and its complications.
[30] T. Nurkiewicz,et al. High dietary salt alters arteriolar myogenic responsiveness in normotensive and hypertensive rats. , 1998, The American journal of physiology.
[31] S. Vinogradov,et al. A new, water soluble, phosphor for oxygen measurements in vivo. , 1997, Advances in experimental medicine and biology.
[32] G. Vrbóva,et al. Adaptation of mammalian skeletal muscle fibers to chronic electrical stimulation. , 1992, Reviews of physiology, biochemistry and pharmacology.
[33] G. Schmid-Schönbein,et al. Penetration of the systemic blood pressure into the microvasculature of rat skeletal muscle. , 1991, Microvascular research.
[34] B. Duling,et al. Distribution of capillary blood flow in the microcirculation of the hamster: an in vivo study using epifluorescent microscopy. , 1984, Microvascular research.
[35] L. Dabich,et al. Chapter 5 – Hematology and Clinical Biochemistry , 1979 .