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Updated: Oct 13, 2025

Infant Auditory Processing and Event-related Brain Oscillations
Published on: July 1, 2015
Deficient neural encoding of speech sounds in term neonates born after fetal growth restriction
Teresa Ribas-Prats1,2,3, Sonia Arenillas-Alcón1,2,3, Diana Lucia Lip-Sosa3,4
1Brainlab - Cognitive Neuroscience Research Group, Department of Clinical Psychology and Psychobiology, University of Barcelona, Catalonia, Spain.
Insights
Infants with fetal growth restriction (FGR) show impaired neural encoding of speech sounds at birth. This deficit in frequency-following response (FFR) may indicate early language development risks.
Area of Science:
- Neuroscience
- Developmental Biology
- Speech Science
Background:
- Fetal growth restriction (FGR) is linked to neurodevelopmental delays, particularly in language.
- Early auditory processing deficits in FGR neonates remain underexplored.
- The ability to encode speech sounds is crucial for language acquisition.
Purpose of the Study:
- To investigate neural encoding of speech sounds in neonates with FGR using frequency-following response (FFR).
- To determine if FGR affects the brain's ability to process speech sound features at birth.
Main Methods:
- Recruited 53 FGR neonates and 48 adequate-for-gestational age (AGA) controls.
- Recorded FFR to a /da/ speech sound stimulus during sleep.
- Quantified FFR using spectral amplitude and signal-to-noise ratio (SNR) at the fundamental frequency.
Main Results:
- No significant differences in spectral amplitude between FGR and AGA groups.
- Significantly attenuated SNR in the FGR group compared to AGA controls, particularly in the vowel region.
- Suggests a deficit in neural pitch tracking of speech sounds in FGR neonates.
Conclusions:
- FGR neonates exhibit impaired neural encoding of speech sounds at birth.
- FFR may serve as a potential biomarker for identifying FGR infants at risk for language delays.
- Further research can explore clinical applications of FFR for early intervention in FGR populations.
Abstract:
Infants born after fetal growth restriction (FGR)-an obstetric condition defined as the failure to achieve the genetic growth potential-are prone to neurodevelopmental delays, with language being one of the major affected areas. Yet, while verbal comprehension and expressive language impairments have been observed in FGR infants, children and even adults, specific related impairments at birth, such as in the ability to encode the sounds of speech, necessary for language acquisition, remain to be disclosed. Here, we used the frequency-following response (FFR), a brain potential correlate of the neural phase locking to complex auditory stimuli, to explore the encoding of speech sounds in FGR neonates. Fifty-three neonates born with FGR and 48 controls born with weight adequate-for-gestational age (AGA) were recruited. The FFR was recorded to the consonant-vowel stimulus (/da/) during sleep and quantified as the spectral amplitude to the fundamental frequency of the syllable and its signal-to-noise ratio (SNR). The outcome was available in 45 AGA and 51 FGR neonates, yielding no differences for spectral amplitudes. However, SNR was strongly attenuated in the FGR group compared to the AGA group at the vowel region of the stimulus. These findings suggest that FGR population present a deficit in the neural pitch tracking of speech sounds already present at birth. Our results pave the way for future research on the potential clinical use of the FFR in this population, so that if confirmed, a disrupted FFR recorded at birth may help deriving FGR neonates at risk for postnatal follow-ups.
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