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On the difficulties encountered when establishing the correct diagnosis of disturbances in the pupillary reflexes.

It is always difficult to interpret abnormalities in pupillary reflexes when a patient who has suffered injuries to the upper part of the face is unconscious. Nevertheless, thorough examination of pupillary reflexes can provide vital information about possible damage to the central nervous system. Decisions about treatment of and prognosis for patients with multiple injuries can be made more accurately when the status of the nerves supplying the eye are taken into account. Anatomical and physiological relationships of pupillary reflexes and oculomotor reactions in a patient with multiple injuries are discussed.

Adult

Alfentanil blocks reflex pupillary dilation in response to noxious stimulation but does not diminish the light reflex.

BACKGROUND: Estimation of the mu-agonist opioid effect in anesthetized and paralyzed patients is often imprecise and can be obscured by concomitant administration of drugs that affect the sympathetic nervous system, such as beta-adrenergic blocking agents. As an alternative to hemodynamic measures of opioid effect, the authors tested the hypothesis that the pupillary light reflex or pupillary reflex dilation correlated with alfentanil concentrations during isoflurane anesthesia. METHODS: Six volunteers were anesthetized on 4 days with 0.8% isoflurane. Alfentanil was administered intravenously to target total plasma concentrations of 0, 25, 50, and 100 ng/ml. A 5-s tetanic electrical stimulus was applied to the skin. Pupil size and the pupillary light reflex were recorded before and after alfentanil administration, and before and for 8 min after the stimulus. RESULTS: Alfentanil exponentially impaired reflex pupillary dilation, decreasing the maximum response amplitude from 5 mm at 0 ng/ml, to 2.3 mm at 25 ng/ml, to 1.0 mm at 50 ng/ml, and finally to 0.2 mm at 100 ng/ml. In contrast, only the highest concentration of alfentanil depressed the dilation of the pupil in the first 2 s after the stimulus. Alfentanil administration had no effect on the pupillary light reflex. CONCLUSIONS: Dilation of the pupil in response to a noxious stimulus is a measure of opioid effect in isoflurane-anesthetized volunteers. In contrast, the pupillary light reflex is unaffected by alfentanil during isoflurane anesthesia. These data suggest that stimulus-induced pupillary dilation may be used to evaluate the analgesic component of a combined volatile and opioid anesthetic.

Adult

Properties of the pupillary dilation produced by the humoral factor in the pupillary reflex dilation: an experimental study in the cat.

Physiopharmacological properties of the pupillary dilation produced by the humoral factor in the reflex pupillary dilation were studied in cats anesthetized with ketamine-HC1. Pupillary dilation produced by the humoral factor was separated from that produced by the neural mechanism, ie, sympathetic activation and parasympathetic inhibition, by atropinization of acutely sympathectomized pupil. To evoke the pupillary reflex dilation, the sciatic nerve was stimulated by using a bipolar electrode. The stimulus consisted of trains of 0.5 milliseconds duration rectangular pulses and was given for 5 seconds. The stimulus frequency was usually 50 Hz; high frequency stimuli were more effective to evoke pupillary dilation produced by the humoral factor. The pupillary dilation was recorded with an infrared pupillo-analyzing system. A long latency (about 6 seconds) and long peak latency (about 10 seconds) pupillary dilation was produced by the humoral factor. The threshold of pupillary dilation produced by the humoral factor was always higher than that produced by parasympathetic inhibition. The pupillary dilation produced by the humoral factor was not affected by local application and intravitreal injection of 10(-2) M propranolol-HC1 and 10(-2) M yohimbine-HC1. However, the dilation was markedly inhibited by intravitreal injection of 10(-2) M phenoxybenzamine-HC1 or local application of 10(-2) M bunazosin-HC1.

Animals

Retinal transplants can drive a pupillary reflex in host rat brains.

Retinae taken from embryonic rats were transplanted over the midbrain of neonatal rats, from whom one eye had been removed. After 5 months, the optic nerve of the remaining eye was cut, and the transplant was exposed. Illumination of the transplant caused pupilloconstriction of the host eye, a response abolished by damaging the transplant. Thus neural transplants are capable of driving specific reflexes in response to natural stimuli.

Animals

The trigeminal pupillary reflex as a model of vegetative-nociceptive interaction: physiological and clinical aspects.

The study of pupil response to stimuli applied at the corneal level is particularly interesting for the study of integrative sensory-vegetative functions in both physiological and clinical research. In the present study we tried to evaluate and describe pupil response to quantified corneal stimuli in 7 healthy subjects by means of a binocular TV pupillometric device. The pupil response to corneal stimuli was bilateral, direct and consensual. It was characterized by a biphasic progression with an initial response in mydriasis and a later miotic component which was smaller, slower and of longer duration. A direct correlation was observed between the intensity of the stimulus applied and the extent of the mydriasis and between the intensity of the stimulus at the corneal level and the length of the mydriatic response.

Adult