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A Colantuoni

Publications and source records attributed to A Colantuoni.

58 records · Page 4Linked to original sources

Microvascular vasomotion: origin of laser Doppler flux motion.

Intravital microscopy and laser Doppler fluxmetry (LDF) were used to assess vasomotion and flux motion in skeletal muscle microcirculation. To clarify the relation between vessel type and LDF signals, arterioles, capillaries, and venules were sequentially studied. We used as an experimental model the hamster skin fold window preparation to record vasomotion and flux motion under control conditions and after injection of an alpha 2-adrenoceptor antagonist, yohimbine, since terminal arterioles appear to be subserved primarily by alpha 2-adrenoceptors. LDF signals were characterized by using an autoregressive modeling power spectrum technique. This analysis indicated that the flux motion fundamental frequency of terminal arterioles coincided with order 2 arteriole vasomotion fundamental frequency. The LDF fundamental frequency of order 3 arterioles was synchronous with the vasomotion frequency in the same-order vessels. The LDF fundamental frequency of order 3 venules corresponded to the frequency component coincident with the respiratory rate. The pattern of LDF oscillations was peculiar for each type of vessels, and the total power was greater in larger arterioles than in venules. Yohimbine reduced frequency and amplitude of vasomotion and flux motion in terminal arterioles, but it was possible to detect LDF oscillatory patterns due to the activity of parent vessels with a low frequency. In conclusion, the flux motion is fundamentally dependent on the type of vessel from which it originates and is directly related to the vasomotion of the arterioles.

Animals↗

Correlation between laser Doppler perfusion monitoring and hematocrit in hamster cheek pouch microcirculation.

The aim of this study was to investigate the relationships between laser Doppler perfusion monitoring (LDPM) measurements and different systemic hematocrits in microcirculation in terms of changes in oscillatory flow patterns. The hamster cheek pouch microvasculature was visualized by a fluorescent microscopy technique, and LDPM signals were derived from arterioles and venules under control conditions and after isovolemic hemodilution with saline and 6% dextran, MW 70,000 to 26.1 +/- 2.1%. Vasomotion, oscillations of microvascular blood flow (flow motion) and red blood cell (RBC) velocity were analyzed with Fourier transform and autoregressive modeling. LDPM recordings presented a significant increase in perfusion units (PU) during hemodilution-184 +/- 15 versus baseline 137 +/- 11 PU in arterioles and 40.2 +/- 3.5 versus 28.6 +/- 4.3 PU in venules-that was correlated with a significant increment in arteriolar and venular RBC velocity. There was a rise in the frequency [2.9 +/- 0.5 cycles per min (cpm) vs. 1.8 +/- 0.5 cpm] and spectral power of flow motion in arterioles whereas the increase in spectral power was related to a decrease in frequency (12.6 +/- 2.1 vs. 3.6 +/- 0.7 cpm) in venules. Oscillations in arteriolar and venular RBC velocity revealed coincident frequency components with flow motion patterns. The present data suggest that the LDPM measurements are more sensitive to velocity than hematocrit. Furthermore, hemodilution appears to affect differently arteriolar and venular flow motion patterns.

Animals↗