Interval Timing in Pediatric Multiple Sclerosis: Impaired in the Subsecond Range but Unimpaired in the One-Second

Stefan J Troche1, Tugba Kapanci2, Thomas H Rammsayer1

  • 1Institute of Psychology, University of Bern, Bern, Switzerland.

Frontiers in Neurology
|November 16, 2020
PubMed

Insights

Pediatric multiple sclerosis (MS) patients show impaired subsecond interval timing, suggesting deficits in sensory-automatic processing. This contrasts with intact timing for longer intervals, indicating specific temporal processing impairments in pediatric MS.

Area of Science:

  • Neuroscience
  • Pediatric Neurology
  • Auditory Processing

Background:

  • Adult multiple sclerosis (MS) patients exhibit known temporal processing deficits.
  • Interval timing has not been previously studied in adult or pediatric MS.
  • This study investigates interval timing in pediatric MS, differentiating subsecond and one-second ranges.

Purpose of the Study:

  • To assess interval timing in pediatric MS patients across subsecond and one-second ranges.
  • To differentiate between sensory-automatic (subsecond) and cognitive (one-second) temporal processing.
  • To determine if temporal processing deficits extend to pediatric MS populations.

Main Methods:

  • 22 pediatric MS patients and 22 matched healthy controls participated.
  • Auditory interval-timing tasks were administered for subsecond and one-second intervals.
  • A frequency discrimination task assessed general auditory processing.

Main Results:

  • Pediatric MS patients demonstrated significantly impaired interval timing in the subsecond range (Cohen's d = 0.830).
  • No significant differences were found in one-second interval timing or frequency discrimination between groups.
  • Impairment was specific to the sensory-automatic processing of short auditory intervals.

Conclusions:

  • Pediatric MS patients exhibit deficits in subsecond interval timing, indicative of impaired sensory-automatic processing.
  • Cognitive processing of one-second intervals and general auditory processing remain intact.
  • Findings suggest potential subcortical involvement in pediatric MS, impacting temporal processing.