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Mansi Parekh

Possible papers associated with this exact author name in Arrow. This page groups case-insensitive exact name matches and is not a full identity disambiguation profile.

2 papers
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2

YNIMG Journal 2020 Journal Article

Longitudinal alteration of cortical thickness and volume in high-impact sports

  • Brian D. Mills
  • Maged Goubran
  • Sherveen N. Parivash
  • Emily L. Dennis
  • Paymon Rezaii
  • Carolyn Akers
  • Wei Bian
  • Lex A. Mitchell

Collegiate football athletes are subject to repeated head impacts. The purpose of this study was to determine whether this exposure can lead to changes in brain structure. This prospective cohort study was conducted with up to 4 years of follow-up on 63 football (high-impact) and 34 volleyball (control) male collegiate athletes with a total of 315 MRI scans (after exclusions: football n ​= ​50, volleyball n ​= ​24, total scans ​= ​273) using high-resolution structural imaging. Volumetric and cortical thickness estimates were derived using FreeSurfer 5. 3’s longitudinal pipeline. A linear mixed-effects model assessed the effect of group (football vs. volleyball), time from baseline MRI, and the interaction between group and time. We confirmed an expected developmental decrement in cortical thickness and volume in our cohort (p ​< ​. 001). Superimposed on this, total cortical gray matter volume (p ​= ​. 03) and cortical thickness within the left hemisphere (p ​= ​. 04) showed a group by time interaction, indicating less age-related volume reduction and thinning in football compared to volleyball athletes. At the regional level, sport by time interactions on thickness and volume were identified in the left orbitofrontal (p ​= ​. 001), superior temporal (p ​= ​. 001), and postcentral regions (p ​< ​. 001). Additional cortical thickness interactions were found in the left temporal pole (p ​= ​. 003) and cuneus (p ​= ​. 005). At the regional level, we also found main effects of sport in football athletes characterized by reduced volume in the right hippocampus (p ​= ​. 003), right superior parietal cortical gray (p ​< ​. 001) and white matter (p ​< ​. 001), and increased volume of the left pallidum (p ​= ​. 002). Within football, cortical thickness was higher with greater years of prior play (left hemisphere p ​= ​. 013, right hemisphere p ​= ​. 005), and any history of concussion was associated with less cortical thinning (left hemisphere p ​= ​. 010, right hemisphere p ​= ​. 011). Additionally, both position-associated concussion risk (p ​= ​. 002) and SCAT scores (p ​= ​. 023) were associated with less of the expected volume decrement of deep gray structures. This prospective longitudinal study comparing football and volleyball athletes shows divergent age-related trajectories of cortical thinning, possibly reflecting an impact-related alteration of normal cortical development. This warrants future research into the underlying mechanisms of impacts to the head on cortical maturation.

YNICL Journal 2015 Journal Article

High-field magnetic resonance imaging of the human temporal lobe

  • Luis M. Colon-Perez
  • Michael King
  • Mansi Parekh
  • Angelique Boutzoukas
  • Eduardo Carmona
  • Michelle Couret
  • Rosemary Klassen
  • Thomas H. Mareci

BACKGROUND: Emerging high-field diffusion weighted MR imaging protocols, along with tractography, can elucidate microstructural changes associated with brain disease at the sub-millimeter image resolution. Epilepsy and other neurological disorders are accompanied by structural changes in the hippocampal formation and associated regions; however, these changes can be subtle and on a much smaller scale than the spatial resolution commonly obtained by current clinical magnetic resonance (MR) protocols in vivo. METHODS: We explored the possibility of studying the organization of fresh tissue with a 17.6 Tesla magnet using diffusion MR imaging and tractography. The mesoscale organization of the temporal lobe was estimated using a fresh unfixed specimen obtained from a subject who underwent anterior temporal lobectomy for medically refractory temporal lobe epilepsy (TLE). Following ex vivo imaging, the tissue was fixed, serial-sectioned, and stained for correlation with imaging. FINDINGS: We resolved tissue microstructural organizational features in the temporal lobe from diffusion MR imaging and tractography in fresh tissue. CONCLUSIONS: Fresh ex vivo MR imaging, along with tractography, revealed complex intra-temporal structural variation corresponding to neuronal cell body layers, dendritic fields, and axonal projection systems evident histologically. This is the first study to describe in detail the human temporal lobe structural organization using high-field MR imaging and tractography. By preserving the 3-dimensional structures of the hippocampus and surrounding structures, specific changes in anatomy may inform us about the changes that occur in TLE in relation to the disease process and structural underpinnings in epilepsy-related memory dysfunction.

v2026.09.13