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Updated: May 7, 2026

Electrophysiological Measurements and Analysis of Nociception in Human Infants
Published on: December 20, 2011
Postnatal temporal, spatial and modality tuning of nociceptive cutaneous flexion reflexes in human infants
Laura Cornelissen1, Lorenzo Fabrizi, Deborah Patten
1Department of Neuroscience, Physiology & Pharmacology, University College London, London, United Kingdom.
Insights
Human infant flexion reflexes are robust and decrease with gestational age. Tactile stimulation can elicit reflexes, especially in preterm infants, indicating early sensory circuit development.
Area of Science:
- Neuroscience
- Developmental Biology
- Human Neonatal Physiology
Background:
- Cutaneous flexion reflexes are crucial for newborn protection and survival.
- Limited quantitative data exists on human neonatal reflex maturation.
Purpose of the Study:
- To quantitatively study the maturation of cutaneous flexion reflexes in human neonates.
- To investigate reflex responses to tactile, punctate, and noxious stimuli in relation to gestational age.
Main Methods:
- Surface electromyography (EMG) recorded biceps femoris activity in preterm and term infants (<14 days old).
- Stimulation included tactile, von Frey hairs (vFh), and heel lance (noxious).
- Responses were analyzed for duration, intensity, and limb involvement.
Main Results:
- A long-duration flexion reflex (>4s) to noxious stimuli decreased significantly with gestational age.
- Reflexes were bilateral (ipsilateral and contralateral) and not always nociceptive-specific.
- Tactile stimulation evoked reflexes in preterm and term infants, with higher sensitivity in preterm infants.
- Von Frey hair thresholds increased with gestational age, and reflex magnitude was greater in preterm infants.
- Repeated stimulation sensitized flexion reflexes in both groups.
Conclusions:
- Human infant flexion reflexes exhibit distinct temporal, modality, and spatial characteristics compared to adults.
- Increasing gestational age leads to decreased reflex magnitude and tactile sensitivity, alongside increased nociceptive specificity and spatial organization.
- Early, non-specific reflex sensitivity likely drives the postnatal maturation of spinal cord sensory circuits.
Abstract:
Cutaneous flexion reflexes are amongst the first behavioural responses to develop and are essential for the protection and survival of the newborn organism. Despite this, there has been no detailed, quantitative study of their maturation in human neonates. Here we use surface electromyographic (EMG) recording of biceps femoris activity in preterm (<37 weeks gestation, GA) and term (≥ 37 weeks GA) human infants, less than 14 days old, in response to tactile, punctate and clinically required skin-breaking lance stimulation of the heel. We show that all infants display a robust and long duration flexion reflex (>4 seconds) to a single noxious skin lance which decreases significantly with gestational age. This reflex is not restricted to the stimulated limb: heel lance evokes equal ipsilateral and contralateral reflexes in preterm and term infants. We further show that infant flexion withdrawal reflexes are not always nociceptive specific: in 29% of preterm infants, tactile stimulation evokes EMG activity that is indistinguishable from noxious stimulation. In 40% of term infants, tactile responses are also present but significantly smaller than nociceptive reflexes. Infant flexion reflexes are also evoked by application of calibrated punctate von Frey hairs (vFh), 0.8-17.2 g, to the heel. Von Frey hair thresholds increase significantly with gestational age and the magnitude of vFh evoked reflexes are significantly greater in preterm than term infants. Furthermore flexion reflexes in both groups are sensitized by repeated vFh stimulation. Thus human infant flexion reflexes differ in temporal, modality and spatial characteristics from those in adults. Reflex magnitude and tactile sensitivity decreases and nociceptive specificity and spatial organisation increases with gestational age. Strong, relatively non-specific, reflex sensitivity in early life may be important for driving postnatal activity dependent maturation of targeted spinal cord sensory circuits.
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