Memory Performance Correlates of Hippocampal Subfield Volume in Mild Cognitive Impairment Subtype

Kathryn M Broadhouse1,2, Loren Mowszowski3,4, Shantel Duffy3,5

  • 1Sunshine Coast Mind and Neuroscience Thompson Institute, University of the Sunshine Coast, Sunshine Coast, QLD, Australia.

Insights

Mild Cognitive Impairment (MCI) subtypes, amnestic MCI (aMCI) and non-amnestic MCI (naMCI), show distinct brain changes. Specific hippocampal subfield reductions in aMCI correlate with memory deficits, justifying stricter diagnostic criteria for better prognosis.

Area of Science:

  • Neuroscience
  • Radiology
  • Gerontology

Background:

  • Neuropathology precedes dementia symptoms by decades, highlighting Mild Cognitive Impairment (MCI) as a critical transitional phase.
  • Subtyping MCI, particularly amnestic MCI (aMCI) and non-amnestic MCI (naMCI), is crucial for prognosis, yet classification remains challenging.
  • Distinct pathophysiologies are suspected for aMCI and naMCI, necessitating refined diagnostic and analytical approaches.

Purpose of the Study:

  • To differentiate hippocampal subfield volumes between MCI subtypes using stringent diagnostic criteria.
  • To identify correlations between hippocampal subfield volumes and memory performance.
  • To examine associations between subfield volumes and long-term cognitive outcomes.

Main Methods:

  • Structural MRI (3D T1-weighted) was acquired from 142 participants: aMCI (n=38), naMCI (n=84), and subjective memory complaints (SMC; n=20).
  • FreeSurfer v6.0 processed MRI data for cortical and hippocampal subfield volumetry.
  • Subfield volumes were analyzed for associations with baseline and longitudinal memory performance.

Main Results:

  • Significant reductions in subiculum, CA1, CA4, and dentate gyrus volumes were observed in aMCI compared to naMCI and SMC groups.
  • CA1 subfield volume predicted concurrent memory performance in aMCI.
  • Dentate gyrus volume predicted longitudinal verbal learning and memory decline across the entire cohort.

Conclusions:

  • Stringent diagnostic criteria for aMCI, focusing on delayed recall deficits, are supported by volumetric evidence.
  • Reduced volumes in CA1, CA4, and dentate gyrus are linked to memory impairments characteristic of aMCI.
  • These findings underscore the importance of hippocampal subfield analysis for understanding MCI subtypes and predicting cognitive trajectories.

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