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Biomedical subjects

M M Knuepfer

Publications and source records attributed to M M Knuepfer.

At least 19 recordsLinked to original sources

Responses of single neurons in amygdala to interoceptive and exteroceptive stimuli in conscious cats.

The amygdala is critical for behavioral arousal and must therefore integrate a wide variety of inputs. We examined sensory inputs and the degree of convergence to single neurons in the amygdala in conscious freely moving cats. A pressor stimulus elicited responses, predominantly inhibitory, in one-half of the amygdalar neurons tested. Most neurons in the central and basal nuclei responded to carotid chemoreceptor activation typically with an excitation. Almost one-half of all amygdalar neurons tested, particularly in the central nucleus, received orthodromic input from the locus ceruleus, the substantia nigra, and/or the contralateral central nucleus of the amygdala. Exteroceptive sensory stimulation with optic, acoustic, tactile, and olfactory stimuli elicited responses in 33, 55, 39, and 59% of amygdalar neurons, respectively. Two-thirds of the neurons tested with more than one external stimulus modality responded in the same manner to the various stimuli (usually excitation), demonstrating a convergence of exteroceptive stimuli on single amygdalar neurons, particularly in the basal nucleus. Spontaneous and induced behavioral arousal elicited responses in 92 and 86% of neurons, respectively. Most neurons responded to multimodal exteroceptive stimuli and behavioral arousal in the same manner. We suggest that amygdalar inputs are highly varied and, in many cases, relatively nonspecific and that the amygdala integrates a large number of external and internal sensory modalities to regulate autonomic and behavioral responsiveness to various stimuli.

Amygdala

Intrathecal capsaicin enhances one-kidney renal wrap hypertension in the rat.

Afferent renal nerves (ARN) have been implicated in the development of one-kidney renal wrap (1K-WRAP) hypertension. The role of renal nerves in desoxycorticosterone acetate-salt (DOCA) hypertension, a low-renin model of hypertension, is controversial. The present study was designed to determine if spinal substance P (SP) and/or calcitonin gene-related peptide (CGRP) in ARN affects the development of 1K-WRAP or DOCA hypertension in adult rats. Selective long-term partial depletion of spinal SP and CGRP within small primary afferent nerve fibers including unmyelinated ARN was achieved by intrathecal administration of capsaicin. After capsaicin treatment, 1K-WRAP hypertension was induced by removing the right kidney and wrapping the left kidney with a figure-8 ligature. In a second group of rats, DOCA hypertension was induced by subcutaneous application of desoxycorticosterone pellets after unilateral nephrectomy. Systolic arterial pressure was monitored for 8 weeks by tail cuff plethysmography after which direct blood pressure measurement was performed followed by immunohistochemistry. Intrathecal capsaicin administration had no significant effect on SP-ir and CGRP-ir of ARN soma located within thoracic dorsal root ganglia whereas immunoreactivity against these peptides was reduced by one third to one half in the dorsal horn, indicating effective long-term spinal depletion of these neuropeptides. Intrathecal capsaicin enhanced the development of 1K-WRAP hypertension, since arterial pressure was greater in the treated group. In contrast, DOCA hypertension was unaffected by capsaicin pretreatment. Considering the neurotoxic action of capsaicin for SP-ir and CGRP-ir unmyelinated primary afferent neurons, we hypothesize that spinal SP, CGRP and/or related peptides existing in ARN and other capsaicin-sensitive unmyelinated primary afferent neurons in the lower thoracic spinal cord may ameliorate 1K-WRAP hypertension, but not DOCA hypertension.

Animals

Central sympathetic control of spinal endothelin release in the rat.

Endothelin and its receptors have been identified in the spinal cord. Intrathecal administration of endothelin-3 produces hypotension in anesthetized rats. The present study was designed to identify whether endothelin-3 is released upon changes in sympathetic nervous activity. Endothelin-3-like immunoreactivity in spinal superfusates was directly correlated with resting arterial pressure. Endothelin-3 levels were enhanced by hypothalamic stimulation and by hemorrhage-induced hypotension and reduced by nitroprusside-induced hypotension. These findings suggest that sympathetic activation enhances endothelin-3 release but that nitroprusside may act directly to suppress release. We propose that endothelin-3 plays a role in spinal regulation of sympathetic outflow.

Anesthesia

Immunocytochemical co-localization of substance P and calcitonin gene-related peptide in afferent renal nerve soma of the rat.

Substance P, calcitonin gene-related peptide and somatostatin immunoreactivities have been demonstrated in putative afferent renal nerve fibers in the rat. Utilizing retrograde-tracing and immunohistochemistry, we labeled afferent renal nerve soma throughout dorsal root ganglia T9 to L1. Most (85%) of afferent renal nerve perikarya were immunoreactive for calcitonin gene-related peptide, 21% had substance P immunoreactivity and none had somatostatin immunoreactivity. All renal afferents immunoreactive for substance P also contained calcitonin gene-related peptide. These results provide evidence that calcitonin gene-related peptide and substance P are present and co-localized in afferent renal nerves, and therefore, mediate transmission of afferent renal input to the spinal cord in the rat.

Amidines

Nonadrenergic mechanisms of cocaine-induced regional vascular responses in rats.

The pressor response to cocaine is a consequence of mesenteric vasoconstriction and hindquarters vasodilation as a result of activation of alpha 1- and beta-adrenergic receptors, respectively. In the present study, evidence for additional, nonadrenergic effects of cocaine-induced changes in regional blood flow was obtained using pulsed Doppler flowmetry in conscious rats. Cocaine produced dose-dependent initial peaks (within 1 min) in mean arterial pressure concomitant with an increase in hindquarters and mesenteric vascular resistance. The sustained, modest pressor response was associated with hindquarters vasodilation and bradycardia. The cocaine-induced vasodilation was enhanced by pretreatment with indomethacin (5 mg/kg), prevented by ibuprofen (12.5 mg/kg) or 3-amino-1-[m-(trifluoromethyl)-phenyl]-2-pyrazoline (BW755C, 10.5 mg/kg) pretreatment, and unaffected by meclofenamate administration (2.5 mg/kg). Equipotent local anesthetic doses of procaine produced equivalent hindquarters vasodilator responses and more modest pressor responses. Dial-urethane anesthesia did not affect hindquarters vasodilation in response to cocaine or procaine but did reduce the mesenteric vasoconstrictor and pressor responses. These data demonstrate that the cocaine-induced hindquarters vasodilation is not mediated solely by beta-adrenergic receptors but is also dependent upon eicosanoids. Furthermore, the cocaine-induced vasodilation may be due, in part, to a direct local anesthetic effect but is not dependent upon a locomotor or behavioral stress induced increase in blood flow.

Anesthesia, General

Causes of differential cardiovascular sensitivity to cocaine. II: Sympathetic, metabolic and cardiac effects.

Cocaine elicits a decrease in cardiac output only in a subset of rats; this reduction is mitigated by prazosin, nifedipine, verapamil or pentolinium and exacerbated by propranolol. In the present study, we examined other correlates or causes of differential responsiveness, including differences in cocaine metabolism, sympathetic nerve responses, catecholamine sensitivity and direct cardiac actions. Arterial pressure and heart rate responses to cocaine (5 mg/kg i.v.) were similar in all rats, yet cardiac output responses, as determined by pulsed Doppler flowmetry, varied widely. Cocaine elicited a mean maximal decrease of more than 15% in 17 rats designated responders, whereas the remaining rats (n = 19) were classified as nonresponders. Maximal heart rate responses to phenylephrine- and nitroprusside-induced pressor and depressor stimuli were greater in responders than in nonresponders. Phenylephrine also elicited significantly greater decreases in cardiac output and smaller increases in stroke volume in responders. After we determined the responses to cocaine in conscious rats, animals were anesthetized with alpha-chloralose for renal nerve recording. Several rats (14 of 21 tested) demonstrated an initial brief (2-12 sec) increase in sympathetic activity, whereas all rats subsequently had a delayed sympathoinhibition. Responders were more likely to have sympathoexcitation compared with nonresponders and had an enhanced initial pressor response and a smaller decrease in heart rate. There were no differences in plasma or cerebrospinal fluid levels of cocaine or its metabolites, benzoylecgonine and ecgonine methyl ester. Intravenous benzoylecgonine elicited a pressor response and bradycardia in conscious rats. Finally, there were no differences in contractile, electrocardiographic or coronary vascular responses to cocaine in isolated, perfused hearts from responders and nonresponders. These results suggest that the differential cardiovascular responsiveness to cocaine in rats is mediated, at least in part, by central sympathoexcitation and not by differences in cocaine metabolism or in direct cardiac responsiveness to cocaine.

Anesthesia

Causes of differential cardiovascular sensitivity to cocaine. I: Studies in conscious rats.

Cocaine produces apparent myocardial ischemia in some individuals without deleterious effects in others. The authors identified a subset of rats in which cocaine produces a decrease in cardiac output and an increase in cardiomyopathies. In the present study, several potential causes of this differential responsiveness were examined in conscious rats instrumented for cardiac output determination by using pulsed Doppler flowmetry. Although arterial pressure and heart rate responses to cocaine (5 mg/kg i.v.) were similar in all rats, cardiac output responses varied widely. Specifically, in 17 of 36 rats, cocaine elicited a maximum decrease of greater than 15% that was relatively consistent with repeated trials. These rats were designated responders, whereas the remaining rats with little change or an increase in cardiac output were classified as nonresponders. Pentolinium (7.5 mg/kg) or adrenal demedullation reduced the peak cardiac output responses in both groups such that there was no longer a difference between responders and nonresponders. Prazosin (0.1 mg/kg) reduced the cocaine-induced pressor responses in all rats and selectively reduced the decrease in cardiac output in responders. Propranolol (1 mg/kg) reduced the peak pressor response but enhanced the decrease in cardiac output in responders. Neither indomethacin (5 mg/kg) or heparin (300 units) pretreatment altered the cocaine-induced cardiac output or peripheral vascular effects in either responders or nonresponders. Amphetamine (1 mg/kg) elicited smaller pressor responses but still evoked a net decrease in cardiac output in responders.(ABSTRACT TRUNCATED AT 250 WORDS)

Adrenal Medulla

Coronary vascular effects of cocaine in rats.

It has been suggested that ischemia secondary to coronary vasoconstriction is responsible for adverse cardiovascular effects of cocaine. However, the reported coronary vascular effects of cocaine vary considerably. We sought to determine the effects of cocaine on the coronary vasculature in anesthetized and conscious rats. Rats anesthetized with chloralose were instrumented for estimation of ascending aortic and coronary blood flows using pulsed Doppler velocitometry. Cocaine administration resulted in bradycardia and a biphasic mean arterial pressure response. Cocaine elicited highly variable increases in coronary vascular resistance and decreases in cardiac output. Decreases in coronary blood flow and rate-pressure product were directly correlated. Prazosin significantly attenuated the cardiac output but not the coronary vascular responses to cocaine. Propranolol, on the other hand, significantly shortened the duration of both responses. Conscious rats, instrumented for coronary blood flow determination, also exhibited cocaine-induced increases in coronary vascular resistance, yet the changes in coronary blood flow were not correlated with the rate-pressure product. These results provide the first evidence that cocaine produces equivalent increases in coronary vascular resistance in conscious and anesthetized rats. However, because the relationship between coronary blood flow and rate-pressure is different between the two preparations, as are other cardiovascular responses, we suggest that anesthesia alters the mechanism(s) by which cocaine affects the rat coronary vasculature.

Animals

Cocaine-induced myocardial ultrastructural alterations and cardiac output responses in rats.

Cocaine use has been associated with profound functional and pathological myocardial responses in otherwise asymptomatic humans, yet a number of individuals appear to tolerate large doses of the drug. This study was designed to determine whether there is a relationship between the differential effects of cocaine administration on cardiovascular responses and on the development of cardiomyopathies in rats. After instrumentation for determination of cardiac output, conscious, freely moving rats were treated with cocaine (5 mg/kg) or saline intravenously twice daily for 14 days before removing the myocardium for analysis. Although most cardiovascular responses were similar, cocaine administration elicited consistent decreases in cardiac output in some rats, whereas others showed little change or an increase. While little change was evident at low magnification, electron microscopy revealed diffusely distributed myocardial lesions including focally dilated sarcoplasmic reticulum and myofibrillar derangement, early signs of mitochondrial alterations, and foci of myocardial fibrosis. The incidence of these alterations was greater in rats with a decrease in cardiac output. We also observed these lesions in a subset of rats treated with cocaine without cardiac output instrumentation. These data represent the first evidence that there is a relationship between cocaine-induced functional and pathological alterations and that rats, like humans, may be differentially sensitive to these effects.

Animals

Dichotomous cardiac and systemic vascular responses to cocaine in conscious rats.

This study examined the effects of cocaine on cardiac output in conscious freely-moving rats. Although pressor responses were similar at all doses, 14 of 32 rats had consistent declines in cardiac output (> 15%) and greater increases in systemic vascular resistance after administration of cocaine (5 mg/Kg, i.v.). Procaine (10 mg/Kg i.v.) did not mimic this effect in either subgroup. We propose that a subpopulation of rats exists with an enhanced susceptibility to cocaine-induced cardiac and systemic vascular alterations at higher doses.

Analysis of Variance

Effects of cocaine on baroreflex control of heart rate in conscious rats.

Cocaine administration elicits a pressor response reportedly dependent upon central and peripheral actions. The present study was designed specifically to determine whether cocaine affects baroreflex sensitivity and whether this is mediated by an action in the CNS. Baroreflex control of heart rate was assessed by noting the change in the duration of the arterial pulse pressure or in the heart rate elicited by administration of pressor and depressor agents. The effects of intracerebroventricular and intravenous cocaine administration were compared. Cocaine (0.1-0.15 mg/kg/min, i.v.) produced a decrease in baroreflex sensitivity that was greater than that produced by an approximately equipressor infusion of phenylephrine (0.5-1.3 micrograms/kg/min, i.v.). Intracerebroventricular (i.c.v.) administration of cocaine (1.5-150 micrograms) or procaine (100 micrograms) had no effect on arterial pressure, heart rate or baroreflex control of heart rate. Furthermore, central administration of yohimbine (3 and 10 micrograms, i.c.v.) was capable of preventing the suppression of the heart rate responses induced by cocaine administration. Propranolol (15 micrograms, i.c.v.) was not able to attenuate the suppression of baroreflex sensitivity elicited by intravenous cocaine administration but higher doses (50-150 micrograms, i.c.v.) could mimic this effect. These data suggest that cocaine suppresses baroreflex control of heart rate by a central alpha 2-adrenergic mechanism. In contrast, the pressor response to intravenous cocaine is not likely to be dependent upon a forebrain periventricular site.

Adrenergic alpha-Antagonists

Calcium channel antagonists reduce the cocaine-induced decrease in cardiac output in a subset of rats.

Intravenous (i.v.) cocaine administration elicits a decrease in cardiac output (CO) in some but not all rats. In the present study, we examined the effects of L-type calcium channel antagonists on cardiovascular responses in conscious freely moving rats with a cocaine-induced decrease in CO. Arterial blood pressure (ABP), heart rate (HR), and CO (pulsed Doppler flowmetry) were measured, and estimates of changes in systemic vascular resistance (SVR), stroke volume (SV), and rate-pressure product (RPP) were calculated from these values. After recovery, rats were treated with cocaine (5 mg/kg, i.v.) to ascertain their myocardial responses. Some rats demonstrated a decrease in CO, usually during the peak pressor response after cocaine administration, whereas others experienced only slight increases in CO. Rats demonstrating a minimum 15% decrement in CO were pretreated with either verapamil or nifedipine before cocaine was readministered. Verapamil (150 micrograms/kg) or nifedipine (100 micrograms/kg) selectively reduced the peak fall in CO and the increase in SVR after cocaine administration, whereas nifedipine (25 micrograms/kg) had little effect on these parameters. Neither drug affected the pressor response to cocaine. These data suggest that calcium channel antagonists can selectively reduce cocaine-induced decreases in CO and increases in SVR without reducing afterload in a subset of rats sensitive to the cardiodepressive effects of cocaine.

Animals

Stress and cocaine elicit similar cardiac output responses in individual rats.

Cocaine use and behavioral stress elicit variable cardiovascular responses in individuals. In the present study, we examined the effects of cocaine or stress on arterial pressure, heart rate, and cardiac output in conscious rats. Rats were instrumented for determination of ascending aortic blood flow as an index of cardiac output using pulsed Doppler flow-metry. Cocaine administration elicited consistent decreases in cardiac output in some rats, whereas others had increases. In contrast, the pressor and heart rate responses were similar in these two groups of animals. Air jet stress also elicited a decrease in cardiac output only in a subset of conscious rats, yet produced equivalent pressor responses in all rats. Cardiac output responses to cocaine and air jet stress were closely correlated in individual rats, indicating that these stimuli evoke similar hemodynamic responses in individual rats. These observations suggest that the rat may provide a model for understanding differential cardiovascular sensitivity to cocaine and/or stress in humans.

Animals

Adrenergic mechanisms underlying cardiac and vascular responses to cocaine in conscious rats.

The contribution of adrenergic receptors to the cardiovascular responses to cocaine (5 mg/kg i.v.) were examined in conscious, free-moving rats instrumented for continuous measurement of arterial pressure, heart rate and blood flows in the mesentery and hindquarters or ascending aorta. Cocaine elicits an immediate (peak) and sustained pressor response with a concomitant reduction in heart rate. Prazosin (0.1 mg/kg i.v.) pretreatment significantly reduced both the peak and sustained pressor responses by attenuating the increases in systemic, mesenteric and hindquarters vascular resistances. Idazoxan pretreatment (1 mg/kg i.v.) attenuated the peak increase in hindquarters vascular resistance. Whereas propranolol pretreatment (1 mg/kg i.v.) attenuated the peak pressor response, the sustained pressor response was enhanced due to increased hindquarters and systemic vascular resistances. Metoprolol pretreatment (1 mg/kg i.v.) enhanced the sustained pressor response to cocaine, in part due to increased heart rate and mesenteric vascular resistances. Upon examination of the cardiac effects of cocaine, a sustained bradycardic response was observed, whereas stroke volume and cardiac output were relatively unaffected. The bradycardic response to cocaine was attenuated by yohimbine (0.1 mg/kg i.v.), prevented by prazosin and converted to a tachycardia after idazoxan (1 mg/kg) pretreatment. After propranolol pretreatment, cocaine substantially decreased cardiac output and stroke volume. Our results demonstrate that cocaine produces a biphasic pressor response in conscious rats and that the mechanisms underlying the dual responses vary in intensity and mode of action in different vascular beds, but are primarily dependent upon alpha-1 adrenergic receptor-mediated vasoconstriction.

Adrenergic alpha-Antagonists

Cardiovascular responses to cocaine are initially mediated by the central nervous system in rats.

Cocaine produces a pressor response reportedly resulting from both potentiation of peripheral catecholamine activity and a centrally mediated sympathoexcitation. In the present study we sought to differentiate the central nervous system and peripheral contributions to the hemodynamic effects of cocaine. In conscious rats, cocaine (5 mg/kg i.v.) produced a pressor response with two distinct components consisting of a brief, substantial increase in mean arterial pressure (MAP) associated with hindquarters and mesenteric vasoconstriction followed by a sustained, modest response associated with mesenteric vasoconstriction and bradycardia. Pentolinium (7.5 mg/kg i.v.) or adrenal demedullation attenuated the peak increase in MAP by attenuating increases in mesenteric and hindquarters vascular resistance, but did not affect the sustained increase in MAP. Methyl atropine (0.5 or 1 mg/kg i.v.) pretreatment reduced the cocaine-induced increase in systemic vascular resistance and enhanced the hindquarters vasodilation during the sustained MAP response. In contrast, adrenal demedullation abolished the hindquarters vasodilation. The bradycardic response was prevented by pentolinium and reduced by methyl atropine. Sympathetic nerve activity was reduced dramatically after cocaine or procaine administration for several minutes in conscious and in chloralose-anesthetized rats. In several anesthetized rats, the sympathoinhibition was preceded by a brief (3-8 sec) increase in renal sympathetic nerve activity. Procaine or cocaine produced little change in cortical cerebral blood flow as estimated by using a laser Doppler flowmeter. These data suggest that cocaine produces an initial, brief centrally mediated sympathoexcitation, but the sustained, modest pressor response is dependent upon peripheral actions that are diminished by baroreflex activation.

Adrenal Medulla

Effects of electrical and chemical stimulation of nucleus raphe magnus on responses to renal nerve stimulation.

Electrical stimulation of the nucleus raphe magnus (NRM) inhibits some somatic and visceral input at the spinal level. This study was designed to examine the effects of electrical and chemical stimulation of NRM on neuronal responses to afferent renal nerve (ARN) stimulation. In chloralose-anesthetized rats, electrical stimulation of ARN elicited predominantly excitatory responses in spinal gray neurons. In 10 neurons studied, electrical stimulation of the NRM elicited an inhibition of spontaneous activity of 8 neurons and inhibited evoked responses to ARN stimulation in 6 neurons. Microinjection of glutamate (5-10 nmol in 0.5-1 microliter) into the NRM elicited an inhibition of spontaneous activity in 9 neurons, a facilitation in 6 neurons and no response in 8 neurons receiving ARN input. Responses evoked by ARN stimulation were inhibited in 12 neurons, facilitated in 4 neurons and not affected in 8 neurons. We conclude that renal input can be modulated at the spinal level by activation of the NRM and adjacent tissue. Furthermore, the inhibition of spinal gray neuronal responses elicited by stimulation of the NRM appears to be due, at least in part, to activation of fibers of passage since non-selective electrical stimulation is more efficacious than selective chemical stimulation of neuronal soma and dendrites.

Animals

Cerebrospinal fluid endothelin-1 and endothelin-3 levels in normal and neurosurgical patients: a clinical study and literature review.

Endothelins are a family of structurally related, potent, long-lasting vasoconstrictor peptides. There are no established normal human levels of endothelin-1 or endothelin-3 in the cerebrospinal fluid. We measured cerebrospinal fluid endothelin-1 and endothelin-3 levels in five groups of patients: normal controls, patients with subarachnoid hemorrhage and cerebral vasospasm, patients with severe head injuries, patients undergoing temporal lobectomy for intractable epilepsy, and a patient with a gunshot injury to the thoracic spine. Endothelin-3 levels were significantly elevated in patients with subarachnoid hemorrhage and may participate in cerebral vasospasm and subsequent neurologic deterioration.

Adult

Characterization of the depressor effect of intrathecal endothelin in anesthetized rats.

Intrathecal administration of 1-100 pmol endothelin-1 in urethan-anesthetized rats elicited a dose-dependent decrease in arterial pressure and a modest bradycardia. The depressor response was associated with a sustained hindquarters vasodilation and a modest transient mesenteric vasoconstriction, indicating disparate effects on regional vascular resistance. In contrast, renal sympathetic nerve activity was unaffected except at the highest dose of endothelin-1 (100 pmol). The depressor effect of intrathecal endothelin is unlikely to be due to spinal ischemia produced by vasoconstriction, since a much greater dose of endothelin was needed to produce an increase in spinal vascular resistance compared with the dose necessary to produce hindquarters vasodilation and the depressor effect. Unlike intravenous administration, intrathecal endothelin-1 and endothelin-3 produced indistinguishable effects on arterial pressure, heart rate, renal sympathetic nerve activity, spinal blood flow, and spinal vascular resistance, suggesting that the spinal neuronal endothelin receptors may be less selective than those in the blood vessels. The centrally mediated depressor effect and the selective regional hemodynamic actions of intrathecal endothelin suggest a role of spinal endothelin in regulating cardiovascular function.

Anesthesia