scholarly journals Differential secretion of proteins by rat submandibular acini and granular ducts on graded autonomic nerve stimulations.

1995 ◽  
Vol 485 (2) ◽  
pp. 503-511 ◽  
Author(s):  
L C Anderson ◽  
J R Garrett ◽  
X Zhang ◽  
G B Proctor ◽  
D K Shori
1991 ◽  
Vol 261 (2) ◽  
pp. G359-G363 ◽  
Author(s):  
I. H. Valdez ◽  
R. J. Turner

Saliva is thought to be formed by a two-stage process, with the secretion of a "primary fluid" by the acinar cells followed by various ionic modifications in the salivary ducts. Both of these processes are under the control of autonomic stimuli. Although the role of the acini in salivary secretion has been studied in some detail, little is known about properties of ducts, particularly the intralobular ducts that make up the bulk of the ductal tissue. In the present study, microfluorometric methods were employed to examine the responses of intracellular Ca2+ concentration ([Ca2+]i) in individual male rat submandibular acini and intralobular (granular) ducts to various fluid secretory stimuli. We show that granular ducts respond to muscarinic (carbachol) and alpha-adrenergic (epinephrine) stimulation by increasing [Ca2+]i in a manner that is qualitatively similar to acini, but that in contrast to acini, these ducts do not respond to substance P. Because the transduction of a substance P peptidergic signal typically occurs via increased [Ca2+]i, this observation suggests that there are no substance P receptors on granular ducts. Ducts were also found to be somewhat more responsive to both carbachol and epinephrine than acini. Although muscarinic, alpha-adrenergic, and vasoactive intestinal peptide (VIP) stimulation are known to induce the secretion of epidermal growth factor from granular ducts, no significant increase in ductal [Ca2+]i in response to VIP (10(-9) to 10(-6) M) was observed.


Author(s):  
John L. Beggs ◽  
Peter C. Johnson ◽  
Astrid G. Olafsen ◽  
C. Jane Watkins

The blood supply (vasa nervorum) to peripheral nerves is composed of an interconnected dual circulation. The endoneurium of nerve fascicles is maintained by the intrinsic circulation which is composed of microvessels primarily of capillary caliber. Transperineurial arterioles link the intrinsic circulation with the extrinsic arterial supply located in the epineurium. Blood flow in the vasa nervorum is neurogenically influenced (1,2). Although a recent hypothesis proposes that endoneurial blood flow is controlled by the action of autonomic nerve fibers associated with epineurial arterioles (2), our recent studies (3) show that in addition to epineurial arterioles other segments of the vasa nervorum are also innervated. In this study, we examine blood vessels of the endoneurium for possible innervation.


Diabetes ◽  
2019 ◽  
Vol 68 (Supplement 1) ◽  
pp. 553-P
Author(s):  
GIDON J. BÖNHOF ◽  
ALEXANDER STROM ◽  
MARIA APOSTOLOPOULOU ◽  
DOMINIK PESTA ◽  
MICHAEL RODEN ◽  
...  

Author(s):  
Ki Jung Yoon ◽  
Mi Na Ha ◽  
Jai Young Kim ◽  
Sang Yun Lee ◽  
Hyoung June Im ◽  
...  

2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Joseph T. Marmerstein ◽  
Grant A. McCallum ◽  
Dominique M. Durand

AbstractThe vagus nerve is the largest autonomic nerve, innervating nearly every organ in the body. “Vagal tone” is a clinical measure believed to indicate overall levels of vagal activity, but is measured indirectly through the heart rate variability (HRV). Abnormal HRV has been associated with many severe conditions such as diabetes, heart failure, and hypertension. However, vagal tone has never been directly measured, leading to disagreements in its interpretation and influencing the effectiveness of vagal therapies. Using custom carbon nanotube yarn electrodes, we were able to chronically record neural activity from the left cervical vagus in both anesthetized and non-anesthetized rats. Here we show that tonic vagal activity does not correlate with common HRV metrics with or without anesthesia. Although we found that average vagal activity is increased during inspiration compared to expiration, this respiratory-linked signal was not correlated with HRV either. These results represent a clear advance in neural recording technology but also point to the need for a re-interpretation of the link between HRV and “vagal tone”.


1941 ◽  
Vol 24 (4) ◽  
pp. 483-504 ◽  
Author(s):  
G. H. Parker

1. When appropriate chromatic nerves are cut caudal bands, cephalic areas, and the pelvic fins of the catfish Ameiurus darken. In pale fishes all these areas will sooner or later blanch. By recutting their nerves all such blanched areas will darken again. 2. These observations show that the darkening of caudal bands, areas, and fins on cutting their nerves is not due to paralysis (Brücke), to the obstruction of central influences such as inhibition (Zoond and Eyre), nor to vasomotor disturbances (Hogben), but to activities emanating from the cut itself. 3. The chief agents concerned with the color changes in Ameiurus are three: intermedin from the pituitary gland, acetylcholine from the dispersing nerves (cholinergic fibers), and adrenalin from the concentrating nerves (adrenergic fibers). The first two darken the fish; the third blanches it. In darkening the dispersing nerves appear to initiate the process and to be followed and substantially supplemented by intermedin. 4. Caudal bands blanch by lateral invasion, cephalic areas by lateral invasion and internal disintegration, and pelvic fins by a uniform process of general loss of tint equivalent to internal disintegration. 5. Adrenalin may be carried in such an oil as olive oil and may therefore act as a lipohumor; it is soluble in water and hence may act as a hydrohumor. In lateral invasion (caudal bands, cephalic areas) it probably acts as a lipohumor and in internal disintegration (cephalic areas, pelvic fins) it probably plays the part of a hydrohumor. 6. The duration of the activity of dispersing nerves after they had been cut was tested by means of the oscillograph, by anesthetizing blocks, and by cold-blocks. The nerves of Ameiurus proved to be unsatisfactory for oscillograph tests. An anesthetizing block, magnesium sulfate, is only partly satisfactory. A cold-block, 0°C., is successful to a limited degree. 7. By means of a cold-block it can be shown that dispersing autonomic nerve fibers in Ameiurus can continue in activity for at least 6½ hours. It is not known how much longer they may remain active. So far as the duration of their activity is concerned dispersing nerve fibers in this fish are unlike other types of nerve fibers usually studied.


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