Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Autonomic Pathways”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 91 records · Page 5Linked to original sources

Anaesthetic considerations in idiopathic orthostatic hypotension and the Shy-Drager syndrome.

Orthostatic hypotension due to autonomic failure may occur secondary to systemic disease states (notably diabetes) or as a disease entity in its own right with a variable degree of neurological involvement that has resulted in a confused classification. The diagnosis, classification and treatment of these latter forms of orthostatic hypotension is reviewed. The pathology is in the central and efferent autonomic pathway, resulting in a disordered baro-receptor reflex, postural hypotension, abnormal responses to tilting and the Valsalva manoeuvre, an inappropriately fixed heart rate and other autonomic features. Anaesthesia may be associated with profound hypotension and some of the signs of anaesthesia may be absent. The response to cardiac depressant drugs and reduction of circulating blood volume may be exaggerated due to absence of compensatory mechanisms. The response to vasoactive agents is unpredictable. The importance of preoperative evaluation, monitoring during operation and the careful selection of anaesthetic agents and techniques is discussed.

Adult↗

Localization of corticotropin-releasing factor, somatostatin, and vasoactive intestinal polypeptide in the parabrachial nuclei of the human brain.

The immunocytochemical localizations of corticotropin-releasing factor (CRF), somatostatin (SRIF), and vasoactive intestinal polypeptide (VIP) were studied in the human parabrachial nuclei (PBN) using the avidin-biotin complex (ABC) technique. The brains were obtained from seven adult male human subjects of 38-74 years. In three cases, the brains were fixed within 2 hr, in four cases within 5 hr, postmortem. All of these peptides were detected in fibers through the orocaudal extent of the lateral PBN, whereas the medial nucleus contained only CRF immunoreactive fibers. Immunoreactive fibers were distributed unevenly within the lateral nucleus with the highest density in the dorsal and much fewer in the ventral part of the lateral subdivision. The highest to lowest density of immunostained processes were detected using CRF, SRIF, and VIP antisera, respectively. Since NPB is known as an important relay nucleus for the central autonomic pathway, the presence of the above noted neuropeptides in nerve fibers in this area may suggest a neurotransmitter or neuromodulatory role of CRF, somatostatin, and VIP in certain autonomic nervous mechanism of the human brain.

Adult↗

Neuroanatomy for the dentist in the twenty-first century.

Both the anatomy and physiology parts of national boards have questions on neuroscience. Currently, there are course guidelines established for dental neuroanatomy but not for dental neuroscience. As a result, there is great variability in what and how neurosciences are taught to dental students. At first glance, it is difficult to determine where neurosciences fit in the dental curriculum. One area where there is a close tie between basic science and clinical care is the realm of pain control. Since the Institute of Medicine study recommended that basic and clinical sciences curricula provide clinically relevant education, a neuroscience curriculum can integrate basic understanding of how the nervous system works in the care and management of dental pain. This paper describes the integrated approach to teaching neuroanatomy as a component of the head and neck gross anatomy course at the University of Louisville. This integrated strategy provides dental students with the basic concepts of neuroscience, pain pathways, autonomic nervous system, and detailed information on the cranial nerves.

Autonomic Nervous System↗

The neuroanatomical basis of central cardiovascular control.

A brief review is given of some of the recent neuroanatomical studies of the central autonomic pathways. Two major points are discussed. 1) There are several descending inputs to the intermediolateral cell column that have recently been demonstrated; these include the A5 catecholamine cell group, certain of the raphe nuclei, the nucleus of the solitary tract, the Kölliker Fuse nucleus, and the paraventricular nucleus of the hypothalamus. 2) Certain nuclei of the brain that function as autonomic centers are extensively interconnected: the nucleus of the solitary tract, the parabrachial nucleus, the paraventricular nucleus of the hypothalamus, the central nucleus of the amygdala, and the bed nucleus of the stria terminalis. This network may play an important role in cardiovascular regulation and related neuroendocrine functions.

Amygdala↗

Do nonimmunologically mediated pathways play a role in the pathogenesis of rheumatoid arthritis?

The association between elevated serum rheumatoid factor and rheumatoid arthritis (RA) has been confirmed repeatedly and interpreted as strong evidence for an immunologic basis for the disease. In recent years, considerable additional evidence supporting this view has been obtained, strongly suggesting a role for CD4+ T cells in the pathogenesis of RA. An alternative view has also gained support, however. Based on studies of animal models and of RA itself, several lines of evidence have emerged that indicate that nonimmunologic pathways are operative in established RA. These observations have fostered the hypothesis that the evolution of RA may be associated with the emergence of non-T-cell-dependent autonomous pathways that dominate the latter stages of the disease.

Antibody Formation↗

Surgical interruption of postganglionic innervation of the sinoatrial nodal region.

Recent experiments have revealed synapses that selectively mediate right and left vagal regulation of sinoatrial function in the fat pad overlying and surrounding the right pulmonary vein complex. However, precise vagal postganglionic pathways to the sinoatrial region have remained obscure. Such pathways, including critically important neural inputs to sinoatrial and atrioventricular nodal regions, may be vulnerable to surgical approaches to atrial or intracardiac repair. The present experiments seek to delineate specific autonomic pathways to the sinoatrial region of the canine heart. The distal ends of the cut right and left cervical vagi and the right and left ansae subclaviae were electrically stimulated (10 to 20 Hz, 1 msec, 2 to 3 V) before and after surgical incisions were placed. Cut No. 1 was made longitudinally along the ventral caval surface from the pericardial reflection caudally to the pulmonary vein fat pad, cut No. 2 was made from the caudal end of cut No. 1 transversely across the sulcus terminalis to a point midway across the anterior (ventral) surface of the right atrium. Each incision was closed with 4-0 silk, with care being taken to avoid injury to either the sinoatrial nodal or the pulmonary fat pad regions. In four of seven animals, these two incisions totally interrupted vagal input to the sinoatrial node, whereas in the remaining three dogs a residual inhibitory influence remained. These residual fibers were surgically ablated by excision of globular fat pads situated on the rostrodorsal surfaces of the right superior pulmonary vein, suggesting a dorsorostral route into the interatrial septum and thence to the sinoatrial node. There was little or no interruption of either right or left vagal input to the atrioventricular nodal region; sympathetic supplies to both sinoatrial nodal and atrioventricular nodal regions remained essentially intact after the two incisions. Thus the major parasympathetic postganglionic projections to the sinoatrial node in the dog heart are by way of the free wall of the right atrium and are vulnerable to surgical interventions in this portion of the heart.

Animals↗

Vestibular influences on autonomic cardiovascular control in humans.

There is substantial evidence that anatomical connections exist between vestibular and autonomic nuclei. Animal studies have shown functional interactions between the vestibular and autonomic systems. The nature of these interactions, however, is complex and has not been fully defined. Vestibular stimulation has been consistently found to reduce blood pressure in animals. Given the potential interaction between vestibular and autonomic pathways this finding could be explained by a reduction in sympathetic activity. However, rather than sympathetic inhibition, vestibular stimulation has consistently been shown to increase sympathetic outflow in cardiac and splanchnic vascular beds in most experimental models. Several clinical observations suggest that a link between vestibular and autonomic systems may also exist in humans. However, direct evidence for vestibular/autonomic interactions in humans is sparse. Motion sickness has been found to induce forearm vasodilation and reduce baroreflex gain, and head down neck flexion induces transient forearm and calf vasoconstriction. On the other hand, studies using optokinetic stimulation have found either very small, variable, or inconsistent changes in heart rate and blood pressure, despite substantial symptoms of motion sickness. Furthermore, caloric stimulation severe enough to produce nystagmus, dizziness, and nausea had no effect on sympathetic nerve activity measured directly with microneurography. No effect was observed on heart rate, blood pressure, or plasma norepinephrine. Several factors may explain the apparent discordance of these results, but more research is needed before we can define the potential importance of vestibular input to cardiovascular regulation and orthostatic tolerance in humans.

Animals↗

PIE1, an ISWI family gene, is required for FLC activation and floral repression in Arabidopsis.

Proper control of the floral transition is critical for reproductive success in flowering plants. In Arabidopsis, FLOWERING LOCUS C (FLC) is a floral repressor upon which multiple floral regulatory pathways converge. Mutations in PHOTOPERIOD-INDEPENDENT EARLY FLOWERING1 (PIE1) suppress the FLC-mediated delay of flowering as a result of the presence of FRIGIDA or of mutations in autonomous pathway genes. PIE1 is required for high levels of FLC expression in the shoot apex, but it is not required for FLC expression in roots. PIE1 is similar to ATP-dependent, chromatin-remodeling proteins of the ISWI and SWI2/SNF2 family. The role of PIE1 as an activator of FLC is consistent with the general role of ISWI and SWI2/SNF2 family genes as activators of gene expression. The pie1 mutation also causes early flowering in noninductive photoperiods independently of FLC; thus, PIE1 appears to be involved in multiple flowering pathways. PIE1 also plays a role in petal development, as revealed by the suppression of petal defects of the curly leaf mutant by the pie1 mutation.

Adenosine Triphosphatases↗

Intracavernous pressure during erection in rats: an integrative approach based on telemetric recording.

To better understand the similarities and differences in the neural control of penile erection occurring in different contexts, we recorded intracavernous pressure (ICP) in conscious rats using a miniaturized telemetric device. ICP changes during reflexive, noncontact, and apomorphine-induced erections were characterized by a plateau increase surmounted by peaks. Plateaus were also elicited by cavernous nerve stimulation in anesthetized rats, suggesting that the cavernous nerve represents the final common proerectile autonomic pathway in these contexts and that it responds similarly to information originating in the periphery or in supraspinal nuclei. During reflexive, noncontact, and apomorphine-induced erections, activation of spinal autonomic nuclei, considered the spinal generators of erection, would take place first, representing a prerequisite for the occurrence of peaks. Suprasystolic peaks would result from the addition of pudendal motoneuron activity. In contrast, only peaks were recorded during copulation. In this context, the convergence of peripheral and supraspinal information apparently elicits the best temporal arrangement of autonomic and somatic outflows, reflecting a highly organized and integrated spinal activity.

Animals↗

Autonomic nervous system disorders in stroke.

Disturbances of the autonomic nervous system are common in patients with various cerebrovascular diseases. They are attributed to damage of the central autonomic network, particularly in the frontoparietal cortical areas and in the brain stem, or to a disruption of the autonomic pathways descending from the hypothalamus via the mesencephalon, pons, and medulla to the spinal cord. The most common clinical problems include abnormalities in heart rate and blood pressure regulation, reflecting cardiovascular autonomic dysfunction, and asymmetric sweating with cold hemiplegic limbs, reflecting changes in the sudomotor and vasomotor regulatory systems. Bladder and bowel dysfunction and impotence are also frequent complaints after stroke, but the present knowledge concerning their prevalence and clinical significance is still limited. Cardiovascular autonomic dysfunction, which is mainly related to increased sympathetic activity, is most evident in the acute phase of stroke, whereas other autonomic disorders, such as abnormal sweating, are long-standing or even irreversible. In addition to the well-established sympathetic hyperfunction, abnormalities of the parasympathetic nervous system may also contribute to the autonomic imbalance after stroke. Reliable recognition of autonomic dysfunction using quantitative analysis methods is important, because these disturbances are not only subjectively disabling and uncomfortable, but they may also be prognostically unfavorable. Moreover, quantitative measurements also form the ground for successive treatment of various stroke-related autonomic disorders.

Autonomic Nervous System Diseases↗

Vasopressin and arterial pressure regulation. Special lecture.

Data from conscious rats, dogs, and humans show that plasma arginine vasopressin (AVP) begins to exert vasoconstrictor activity at concentrations in the same range as those associated with maximum antidiuretic activity. Minimum pressor responses are observed with elevated plasma AVP, due in part to decreases of cardiac output and in part to withdrawal of sympathetic neural tone to various regions of the systemic circulation. These responses appear to some extent to be species-dependent. In conscious dogs, but not in rats, the fall of cardiac output is mediated by AVP stimulation of baroreceptor reflex pathways. Studies in rats indicate that AVP inhibits the sympathetic nervous system by direct action on the central nervous system. No evidence was found for inhibition at peripheral sites such as autonomic ganglia or vascular smooth muscle receptors. Also, AVP plays an important role in the regulation of arterial pressure with blood loss by direct vasoconstriction and by AVP enhancement of the strength of the baroreceptor reflex responses. The role of AVP in the long-term control of arterial pressure and in hypertension remains controversial, but plasma AVP is elevated in many experimental and human forms of hypertension. The link between plasma AVP and hypertension remains unclear because long-term elevation of AVP alone cannot sustain volume expansion or hypertension, and excess AVP does not enhance hypertension produced by sodium-retaining hormones or other vasoconstrictor agents. It appears that AVP plays mainly a permissive role by its fluid-retaining effects in most forms of hypertension. It is also possible that it acts as a central nervous system neural transmitter and modifies autonomic pathways in some forms of hypertension.

Animals↗

Autonomic and neuroendocrine actions of adrenomedullin in the brain: mechanisms for homeostasis.

In addition to its role as a potent vasodilator, adrenomedullin (ADM) affects an animal's physiological status through its effects in the brain. We have shown that circulating ADM activates neurons, including nitric oxide (NO)-producing neurons, in autonomic centers of the brain such as the hypothalamic paraventricular nucleus (PVN). Systemic ADM gains access to the brain through the area postrema (AP), a brainstem circumventricular organ, and the PVN is a major target of these ADM-sensitive AP neurons. Neurons expressing the preproADM (ppADM) gene are distributed throughout the brain, with high levels in autonomic centers. Lipopolysaccharide (LPS, immune stress), restraint (psychological stress), and 24 h dehydration all down-regulate ppADM gene expression in different subsets of autonomic centers. Receptor-activity-modifying protein (RAMP) 2 and RAMP3, ADM receptor subunits, are expressed in autonomic centers including the PVN and supraoptic nucleus. Intracerebroventricular injections of ADM increase arterial pressure, heart rate, tyrosine hydroxylase mRNA levels in the locus coeruleus, plasma levels of ACTH, and NO production in the hypothalamus. ADM excites putative GABAergic and cholinergic neurons in dissociated cells from a basal forebrain integrative center, the diagonal band of Broca. These results demonstrate that the signalling components necessary for ADM to influence physiological systems are present in the brain and that ADM is an important transmitter of brain autonomic pathways which are involved in regulating homeostatic balance.

Adrenomedullin↗

The cold face test (diving reflex) in clinical autonomic assessment: methodological considerations and repeatability of responses.

1. Cold stimulus applied to the face causes bradycardia and peripheral vasoconstriction (i.e. the diving reflex), and has been suggested as a test of the autonomic pathways involved. The purpose of this study was to define standard procedures for conducting the test and analysing the responses to the cold face test, to evaluate variability in responses between subjects and within subjects when the same test is repeated, and to examine its usefulness in clinical autonomic assessment. 2. Sixteen (nine female, seven male) healthy adult (21-35 years old) subjects were used. Cold stimulus was applied with gel-filled compresses. Forehead temperature under the compress as an indication of stimulus magnitude, heart rate, blood flow in the finger, toe and calf by venous occlusion plethysmography, and systolic and diastolic blood pressure were monitored. Three protocols were carried out in which the temperature (0, 5, 10, 15 degrees C), placement (whole face, unilateral, forehead) and duration (20, 40, 60, 120 s) of the cold compress application were varied. 3. The data indicate that 0 degrees C compresses applied bilaterally for 40 s produced the maximum bradycardia and peripheral vasoconstriction. No subject found this test to be obnoxious, but a 120 s application was objectionable to some subjects. This cold face test resulted in 22%, 72%, 59% and 44% reductions in heart rate and blood flow to the finger, toe and calf, respectively. There was significant between-subject variability, but good consistency in responses to tests repeated in the same subject on different days, at different times of day and in different seasons.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult↗

Neural pathways and central sites involved in penile erection: neuroanatomy and clinical implications.

Penile erection occurs in response to tactile, visual, and imaginative stimuli in humans. In animals olfactory and auditory cues are particularly important. The participation of multiple sites with the brain and spinal cord, and coordination of somatic and autonomic pathways make sexual behavior in general, and erection in particular, vulnerable to neurologic injury and disease. Sites within the brain and spinal cord act in concert to process, coordinate, then distribute the neural inputs necessary for sexual behavior including erection. Activation of neurons in some of these regions either pharmacologically or by electrical stimulation has been associated with penile tumescence. This review will provide a geographic framework for understanding the neuroanatomical basis of penile erection based primarily on animal data. Following discussion of the anatomical substrates, a clinical correlation is then provided to confirm and reinforce these experimental observations.

Animals↗

Differential autonomic control of SAN and AVN regions of the canine heart: structure and function.

Both anatomical and physiologic evidence for relatively rich autonomic innervation of sinoatrial (SAN) and atrioventricular (AVN) regions of the canine heart exist, with indication that SAN is especially responsive to parasympathetic, while AVN is preferentially sensitive to sympathetic regulation. The distribution of autonomic pathways are sufficiently separate and discrete that careful surgical intervention can selectively delete either parasympathetic or sympathetic nerve supplies to either (or both) SAN and AVN regions. Selective blockade by restricted injections of lidocaine (general neuronal blocker) or hexamethonium (ganglionic blocker) indicate that the vast majority (perhaps all) of vagal ganglia supplying SAN reside in the pulmonary vein fat pad and associated adipose tissues. In contrast, the vagal ganglia supplying AVN are found within a smaller fat pad overlying epicardium at the junction of inferior vena cava-inferior left atrium. These vagal pathways to either automatic cells of SAN or conductile tissues of AVN can be selectively interrupted without interfering with vagal regulation of the remaining intact system. Electroneurograms from large neurons situated within PVFP of the anesthetized, open-chest animal, reveal vigorous, phasic electrical activity associated with the cardiac and respiratory cycles, as well as with sensory stimulation of the heart, great vessels, and lungs. Spontaneous electrical activity of presently unknown origin is also observed. Direct neuronal stimulation, plus retrograde transport of fluorescent markers suggest that highly selective postganglionic intracardiac pathways may regulate discharge patterns of the sinus automatic cells.

Animals↗

The pathophysiology of contractile activity in the chronic decentralized feline bladder.

Autonomous wave activity occurs in the decentralized bladder and may contribute to upper tract damage and incontinence. In order to clarify the poorly understood pathophysiology and neuropharmacology of autonomous waves, cats were prepared with L7-S3 ventrodorsal rhizotomy alone or with L7-S3 ventral rhizotomy with and without total sympathectomy. The incidence of autonomous waves was < 15% 12 weeks after ventral or ventrodorsal rhizotomy, but acute sympathectomy at 13 weeks increased the incidence to 58% in these groups. With chronic sympathectomy the incidence was 100%. This suggests that the waves arise locally via a mechanism which is independent of L7-S3 dorsal roots, due to lack of a suppressive sympathetic pathway. Autonomous waves were inhibited by atropine after acute sympathectomy and by prazosin after chronic sympathectomy, but increased inhibition occurred after both drugs in either case. Adrenergic neuron depletion with 6-hydroxydopamine enhanced wave activity, which was incompletely inhibited by subsequent atropine. This implies that the peripheral reflex pathway has facilitatory alpha 1-adrenergic, muscarinic and also noncholinergic nonadrenergic elements. Clinically, sensory or sympathetic damage caused incontinence, but sympathectomy also caused high pressure waves, which may cause upper tract damage and treatment resistant incontinence in patients.

Adrenergic Fibers↗

Ascending spinal pathways for somatoautonomic reflexes in the anesthetized dog.

The ascending spinal pathways mediating pressor and heart rate responses to somatic afferent stimulation and induced exercise were studied in pentobarbital- and alpha-chloralose-anesthetized dogs. Bilateral sciatic nerve stimulation and induced exercise, via lumbosacral ventral root stimulation, produced pressor and heart rate responses that were blocked by bilateral dorsolateral sulcus (DLS) lesions of the lumbar spinal cord (L1-L3). Baroreceptor-mediated bradycardia were attenuated by sciatic stimulation but not by induced exercise. This attenuation was blocked by combined dorsolateral funiculus (DLF) and DLS lesions. Induced exercise with vascular occlusion to the muscle augmented the pressor and heart rate responses to exercise. These responses were blocked by combined DLS and DLF lesions. Such lesions did not influence responses to bilateral carotid occlusion, indicating that descending autonomic pathways were intact. Therefore, ascending spinal pathways mediating somatocardiovascular reflexes in anesthetized dogs are located in the lateral funiculus, extending from the dorsal root entry zone to a position somewhat ventral to the dentate ligament.

Anesthesia, General↗

Fetal nicotine or cocaine exposure: which one is worse?

Despite extensive adverse publicity, tobacco use continues in approximately 25% of all pregnancies in the United States, overshadowing illicit drugs of abuse, including cocaine. The societal cost of maternal smoking is seen most readily in underweight newborns, in high rates of perinatal morbidity, mortality and Sudden Infant Death Syndrome and in persistent deficits in learning and behavior. We have designed animal models of nicotine exposure to prove that nicotine itself is a neuroteratogen, thus providing a causative link between tobacco exposure and adverse perinatal outcomes. In particular, nicotine infusion paradigms that, like the transdermal patch used in man, produce drug exposure without the confounds of other components of tobacco or of episodic hypoxic-ischemic insult, have enabled a mechanistic dissection of the role played by nicotine in fetal brain damage. Nicotine targets specific neurotransmitter receptors in the fetal brain, eliciting abnormalities of cell proliferation and differentiation, leading to shortfalls in the number of cells and eventually to altered synaptic activity. Because of the close regulatory association of cholinergic and catecholaminergic systems, adverse effects of nicotine involve multiple transmitter pathways and influence not only the immediate developmental events in fetal brain, but also the eventual programming of synaptic competence. Accordingly, defects may appear after a prolonged period of apparent normality, leading to cognitive and learning defects that appear in childhood or adolescence. Comparable alterations occur in peripheral autonomic pathways, leading to increased susceptibility to hypoxia-induced brain damage, perinatal mortality and Sudden Infant Death. Identifying the receptor-driven mechanisms that underlie the neurobehavioral damage caused by fetal nicotine exposure provides a rational basis for decisions about nicotine substitution therapy for smoking cessation in pregnancy. In contrast to the effects of nicotine, animal models of crack cocaine use in pregnancy indicate a more restricted spectrum of effects, a reflection of differences both in pharmacokinetics and pharmacodynamics of the two drugs. Notably, although cocaine, like nicotine, also targets cell replication, its effects are short-lived, permitting recovery to occur in between doses, so that the eventual consequences are much less severe. To some extent, the effects of cocaine on brain development resemble those of nicotine because the two share cardiovascular actions (vasoconstriction) that, under some circumstances, elicit fetal hypoxia-ischemia. In light of the fact that nearly all crack cocaine users smoke cigarettes, the identification of specific developmental effects of cocaine may prove difficult to detect. Although scientists and the public continue to pay far more attention to fetal cocaine effects than to those of nicotine or tobacco use, a change of focus to concentrate on tobacco could have a disproportionately larger impact on human health.

Cocaine↗