Metabolic control of large‐bore arterial resistance vessels, arterioles, and veins in cat skeletal muscle during exercise
- 1 February 1989
- journal article
- research article
- Published by Wiley in Acta Physiologica Scandinavica
- Vol. 135 (2) , 83-94
- https://doi.org/10.1111/j.1748-1716.1989.tb08555.x
Abstract
The metabolic control of the vascular bed in cat gastrocnemius muscle during exercise was studied with a new technique (Björnberg et al. 1988) permitting continuous and simultaneous recordings of arteriolar and capillary pressures, and of resistances in the following consecutive vascular section: proximal arterial resistance vessels > 25 μm, arterioles < 25 μm, and on the venous side. The study thereby provided quantitative data for resistance and active intrinsic tone in these vascular segments at rest, during graded exercise vasodilatation, and in the post-exercise period. Slight activation of the metabolic control system by low-frequency somatomotor nerve stimulation (light exercise') caused inhibition of intrinsic tone and decreased vascular resistance selectively in the arteriolar section. At increasing workloads, arteriolar resistance was further decreased, but resistance and tone in the proximal arterial resistance vessels and the veins then became clearly reduced as well. This difference in effectiveness of the metabolic control system on the different segments of the vascular bed was expressed quantitatively in terms of a ‘metabolic vasodilator index’. Graded activation of the metabolic control system led to a marked segmental redistribution of intrinsic vascular tone, in turn resulting in an increased pressure drop across the proximal arterial vessels and the veins and a decreased pressure drop over the arterioles. The observed decrease in the pre- to post-capillary resistance ratio caused, at a constant arterial pressure of 100 mmHg, a graded increase in capillary pressure with increasing workloads, at maximum vasodilatation by an average value of 14 mmHg above the resting control value of 15.4 ± 0.6 mmHg. In the post-exercise period, recovery of vascular tone to control was more rapid in the proximal arterial resistance vessels and the veins than in the arteriolar segment.Keywords
This publication has 10 references indexed in Scilit:
- Site of autoregulatory reactions in the vascular bed of cat skeletal muscle as determined with a new technique for segmental vascular resistance recordingsActa Physiologica Scandinavica, 1988
- Autoregulation of capillary pressure and filtration in cat skeletal muscle in states of normal and reduced vascular toneActa Physiologica Scandinavica, 1987
- Method for continuous recording of hydrostatic exchange vessel pressure in cat skeletal muscleActa Physiologica Scandinavica, 1987
- An evaluation of the metabolic interaction with myogenic vascular reactivity during blood flow autoregulationActa Physiologica Scandinavica, 1984
- VASCULAR ARRANGEMENTS IN HINDLIMB MUSCLES OF THE CAT1980
- An electronic differential pressure flowmeter and a resistance meter for continuous measurement of vascular resistanceActa Physiologica Scandinavica, 1978
- Microvascular pressure distribution in skeletal muscle and the effect of vasodilationAmerican Journal of Physiology-Legacy Content, 1975
- Method for Gravimetric Registration of Changes in Tissue VolumeActa Physiologica Scandinavica, 1974
- The Effects of Hyperosmolarity on Intact and Isolated Vascular Smooth Muscle. Possible Role in Exercise HyperemiaJournal of Vascular Research, 1967
- EFFECTIVE OSMOTIC PRESSURE OF THE PLASMA PROTEINS AND OTHER QUANTITIES ASSOCIATED WITH THE CAPILLARY CIRCULATION IN THE HINDLIMBS OF CATS AND DOGSAmerican Journal of Physiology-Legacy Content, 1948