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S Sapienza

Publications and source records attributed to S Sapienza.

At least 37 records · Page 2Linked to original sources

Multiple representations of the body and input-output relationships in the agranular and granular cortex of the chronic awake guinea pig.

The organization of somatosensory input and the input-output relationships in regions of the agranular frontal cortex (AGr) and granular parietal cortex (Gr) were examined in the chronic awake guinea pig, using the combined technique of single-unit recording and intracortical microstimulation (ICMS). AGr, which was cytoarchitectonically subdivided into medial (AGrm) and lateral (AGrl) parts, also can be characterized on a functional basis. AGrl contains the head, forelimb, and most hindlimb representations; only a small number of hindlimb neurons are confined in AGrm. Different distributions of submodalities exist in AGr and Gr: AGr receives predominantly deep input (with the exception of the vibrissa region, which receives cutaneous input), whereas neurons of Gr respond almost exclusively to cutaneous input. The cutaneous or deep receptive field (RF) of each neuron was determined by natural peripheral stimulation. All studied neurons were activated by small RFs, with the exception of lip, nose, pinna, and limb units of lateral Gr (Grl), for which the RFs were larger. Microelectrode mapping experiments revealed the existence of three spatially separate, incomplete body maps in which somatosensory and motor representations overlap. One body map, with limbs medially and head rostrolaterally, is contained in AGr. A second map, comparable to the first somatosensory cortex (SI) of other mammals, is found in Gr, with hindlimb, trunk, forelimb, and head representations in an orderly mediolateral sequence. An unresponsive zone separates the head area from the forelimb region. A third map, with the forelimb rostrally and the hindlimb caudally, lies adjacent and lateral to the SI head area. This limb representation, which is characterized by an upright and small size compared to that found in SI, can be considered to be part of the second somatosensory cortex (SII). A distinct head representation was not recognized as properly belonging to SII, but the evidence that neurons of the SI head region respond to stimulation of large RFs located in lips, nose, and pinna leads us to hypothesize that the SII face area overlaps that of SI to some extent, or, alternatively, that the two areas strictly contiguous and the limits are ambiguous, making them difficult to distinguish. The input-output relationships were based on the results of RF mapping and ICMS in the same electrode penetration. The intrinsic specific interconnections of cortical neurons whose afferent input and motor output is related to identical body regions show a considerable degree of refinement.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

The site of airway responses to methacholine or antigen inhalation challenge.

We evaluated changes in upper airway and lower pulmonary resistance after methacholine or ovalbumin challenge in inbred rats. Methacholine or antigen were inhaled through the intact upper airway and through a tracheostomy, in two groups of normal sensitized animals. Methacholine challenge resulted in both upper airway and lower pulmonary resistance increase regardless of the inhalation route. Lower airway ovalbumin challenge caused an increase in lower pulmonary resistance with no change in upper airway resistance. By contrast ovalbumin inhalation through the nose provoked a striking increase in upper airway resistance. Atropine pretreatment of lower airways reduced lower pulmonary response to antigen. We conclude that: 1) the increase in upper airway resistance following methacholine challenge occurs through a reflex mechanism; 2) upper airway constriction following antigen challenge through the nose results from a local mechanism; 3) the site of airway constriction depends on local mechanisms and vagal reflexes.

Airway Resistance↗

[Simultaneous registration of rheographic and manometric parameters of the inferior esophageal sphincter in the cat].

The aim of the present study was to detect simultaneously hemodynamic parietal events and intraluminal pressure of the Lower Esophageal Sphincter (LES), with particular regards to cyclic changes due to systo-diastolic cardiac activity. A probe for combined Intraluminal Manometric Plethysmography (IMP) and Intraluminal Impedence Plethysmography (IIP) was used. It was a Swan Ganz bipolar pacing catheter, modified by removing the latex balloon from the tip. The exposed side-hole (diameter smaller than 0.5 mm) was utilized as a terminal orifice for an infused manometry system. It was preliminarly essayed in bench tests. A perfusion rate of 1.75 ml/min was chosen as it did not induce significant elevations of the pressure base-line and allowed detection of pressure rise rates up to 300 mm Hg/s. The two metallic rings, originally designed for intracardiac stimulation, were used as low resistance electrodes to record impedence variations. Since very small shifts of recording electrodes induce important artifacts, the present experiments were carried out on curarized cats. In these conditions, artificial ventilation could be temporarily stopped to avoid any artifact due to respiration mechanics. The proposed method seems to be satisfactory enough for simultaneous acquisition of IIP and IMP data at LES level. Recordings of IIP allow to reveal changes in parietal blood content which could chiefly be referred to lamina propria and submucosa districts. On the other hand, IMP cyclic fluctuations would signal variations of total sphincteric tension, likely depending on hemodynamic events in all vascular beds of the wall. In our opinion, a more extensive analysis of IMP and IIP waves, as well as of reciprocal relationships between rheografic and manometric parameters, may provide very useful knowledges on sphincteric physiology.

Animals↗

Effect of microstimulation of movement-evoking cortical foci on the activity of neurons on the dorsal column nuclei.

Cortical foci in which stimulation produced movement in either the forelimb or hindlimb were isolated in rats. In each experiment, two foci were selected: one for movement in the forelimb, and the other in the hindlimb. Stimulation was subsequently reduced in order to avoid eliciting a movement, and the effects of this stimulation on activity of gracile and cuneate neurons were examined. Both excitation and inhibition were observed and were found to be arranged in a somatotopic manner. Excitation was almost exclusively obtained when the receptive field (RF) of a given neuron corresponded to the body surfaces overlying the joints involved in the cortically evoked movement. A high percentage of neurons with RFs on body surfaces corresponding to, or adjacent to, the region of cortically induced movement were inhibited, while the activity of neurons with RFs distant to the site of movement was seldom modified. These results suggest that cortical influences exerted on the dorsal column nuclei (DCN) in rats are organized in a somatotopic manner.

Animals↗

[Influence of the sensorimotor cortex on single neurons of the nucleus gracilis in the cat].

The aim of this study was to investigate the functional role of the cortical projections to gracile nucleus. In unanesthetized cats single nuclear units projecting to the thalamus were tested for microstimulation of cortical foci (area 4) able to evoke single joint movements in contralateral hindlimb. A very significant percentage of gracile cells was influenced, very often in excitatory manner, if their receptive field was overlaying or very close to the joint controlled by a given cortical focus. Conversely, when the location of the receptive field was more distant, the percentage of responses and the incidence of excitatory effects decreased, inhibitions occurring more frequently. From a functional point of view, such an organization of the cortico-gracile control could be effective in modulating transmission of exteroceptive information from the region of the motor target (facilitation) as well as from adjacent ones (suppression). This arrangement could provide an higher resolution of afferent messages, in relation with the cortically induced movements.

Animals↗

Interpositus nucleus influences on pyramidal tract neurons in the cat.

The influences of the interpositus nucleus on pyramidal tract neurons were investigated by stimulating, in unanesthetized cats, interpositus nucleus foci which activated single muscles in limbs, while recording unitary discharges of pyramidal tract neurons located in foci (area 4 gamma) from which contraction was obtained in the same muscles as those excited from interpositus nucleus (agonist pyramidal tract neurons), in their antagonist (antagonist pyramidal tract neurons), or in heteronymous muscles (heteronymous pyramidal tract neurons). It was found that agonist pyramidal tract neurons were inhibited from the interpositus nucleus, whereas antagonist pyramidal tract neurons displayed a pure excitatory or an excitatory-inhibitory pattern, and the heteronymous neurons were not significantly influenced. A direct activation of interposito-thalamic efferents could be responsible for these effects. In fact, unitary discharge changes of pyramidal tract neurons, elicited from interpositus nucleus stimulation, persisted after chronic intermediate cortex ablation and dentate nucleus lesions, and disappeared following coagulations in the ventrolateral nucleus of the thalamus. These results suggest that interpositus nucleus efferents, which activate a given muscle, via the rubrospinal pathway, could inhibit the discharge of pyramidal neurons controlling that muscle, via collaterals direct to the thalamic ventrolateral nucleus.

Animals↗

Relationship between input and output of cells in motor and somatosensory cortices of the chronic awake rat. A study using glass micropipettes.

Experiments using the same glass microelectrode (6--8 M omega) for recording and stimulating were performed on 12 rats in which 379 cortical cells were studied in 65 penetrations through the motor and somatosensory cortical zones. To avoid anaesthetic effects the rats were chronically implanted with a head system derived from the one developed by Noda et al. (1971). These animals well accepted head fixation and the peripheral receptive fields could thus be easily investigated. In a preliminary experiment the number of pyramidal cells activated by a given stimulus intensity was evaluated. The lowest threshold intensities were always observed in the Vth pyramidal layer, as well as correspondence between cell input and output. The same type of organization, with identical thresholds, existed in the so-called "Motor" and "Somatosensory" cortical zones. Movements could be obtained when stimulating near non-PT cells (600--700 micron below the cortical surface). However, thresholds were higher at this level and it is thought that the movements were due to a spread of the stimulating current to the pyramidal tract cell layer.

Animals↗

Single muscle organization of interposito-rubral projections.

In unanesthetized neuraxis intact cats microstimulation of the interpositus nucleus (IN) which activated a single flexor or extensor muscle in limbs, was used to investigate changes of unitary discharged of rubrospinal (RST) cells. Recordings were made from sites the stimulation of which excited the same muscle activated by the IN (agonist cells), its antagonist (antagonist cells) or heteronymous muscles (heteronymous cells). Cats submitted to chronic cerebellar decortication, acute brachium conjunctivum (BC) section, acute prerubral hemidecerebration or chronic prerubral hemidecerebration and contralateral BC section, were used as controls. It was shown that agonist RST cells were monosynaptically fired from IN, while antagonist cells were inhibited and the heteronymous ones were not influenced. Cerebellar efferents within the BC mediate both excitatory and inhibitory effects, but cerebellar cortex and prerubral structures were not involved in their production.

Animals↗

A computer model of intermediate cerebellum dynamic operations in motor control.

An intermediate cerebellum theoretical model for processing central programming discharges and muscle force signals is described which can perform a correct motor task under different peripheral perturbations (loads). An indispensable condition is that the simulated interpositus nucleus cells controlling a given effector (muscle) are inhibited by impulses coming from that effector (negative feedback from muscle force detectors). The hypothesis is proposed that the intermediate cerebellum can act via the rubrospinal tract as an interface between programming and executing motor structures.

Cerebellum↗

Computer simulated discharges of thalamic ventrobasal neurones during sleep and wakefulness.

A theoretical model is described which in response to combinations of poissonian pulse trains with different mean frequencies on three independent incoming lines, generated output signals simulating spontaneous discharges of thalamic ventrobasal (VB) neurones during sleep and wakefulness. Some dynamic neuronal properties as refractoriness, facilitation, short term memory were simulated and characteristics of response to single pulses on different lines properly selected to reproduce those exhibited by VB neurones upon artificial stimulation of thalamic afferent systems. The data obtained from the model are briefly discussed in relation to possible contributions of specific and nonspecific afferent systems in producing spontaneous VB discharges characteristic of different levels of vigilance.

Action Potentials↗

Motor responses evoked by microstimulation of restiform body in the cat.

Motor effects produced by microstimulation of restiform body (RB) were studied in acute unanesthetized cats, using tungsten electrodes for stimulating the peduncle and bipolar steel electrodes for recording muscular activity (EMG). The main results were the following. 1. Threshold microstimulation (18.24 microA +/- 8.77 S.D.) of effective foci within RB elicited single muscle contractions of ipsilateral limbs, primarily of forelimb; overthreshold activation (32.83 microA +/- 9.25S.D.) of the same points produced complex movements in 61.54% of cases that involved muscles of shoulder, neck, and trunk. 2. Single muscle contractions exhibited a mean latency (20.09 msec +/- 2.04 S.D.) which was significantly longer than that shown by complex movements (10.00 msec +/- 3.10 S.D.). Furthermore, a decrease in frequency of stimulating train below 300 Hz and a reduction in duration below 30 msec caused a steep rise of threshold for single muscle responses that was not observed when studying complex movements. 3. Acute RB interruption between stimulating electrode and cerebellum abolished single muscle contractions; conversely, complex movements remained unmodified even when the RB was lesioned in cats chronically submitted to interruption of brachium conjunctivum (BC). 4. The pathway involved in promoting RB induced single muscle activation includes interpositus nucleus, BC and rubrospinal tract. Possible modalities of RB afferent participation to the motor control are briefly discussed.

Animals↗