Arrow Research search

Author name cluster

Jarrett Rosenberg

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.

4 papers
1 author row

Possible papers

4

YNIMG Journal 2023 Journal Article

Quantitative MRI reveals widespread, network-specific myelination change during generalized epilepsy progression

  • Gustavo Chau Loo Kung
  • Juliet K. Knowles
  • Ankita Batra
  • Lijun Ni
  • Jarrett Rosenberg
  • Jennifer A. McNab

Activity-dependent myelination is a fundamental mode of brain plasticity which significantly influences network function. We recently discovered that absence seizures, which occur in multiple forms of generalized epilepsy, can induce activity-dependent myelination, which in turn promotes further progression of epilepsy. Structural alterations of myelin are likely to be widespread, given that absence seizures arise from an extensive thalamocortical network involving frontoparietal regions of the bilateral hemispheres. However, the temporal course and spatial extent of myelin plasticity is unknown, due to limitations of gold-standard histological methods such as electron microscopy (EM). In this study, we leveraged magnetization transfer and diffusion MRI for estimation of g-ratios across major white matter tracts in a mouse model of generalized epilepsy with progressive absence seizures. EM was performed on the same brains after MRI. After seizure progression, we found increased myelination (decreased g-ratios) throughout the anterior portion (genu-to-body) of the corpus callosum but not in the posterior portion (body-splenium) nor in the fornix or the internal capsule. Curves obtained from averaging g-ratio values at every longitudinal point of the corpus callosum were statistically different with p<0.001. Seizure-associated myelin differences found in the corpus callosum body with MRI were statistically significant (p = 0.0027) and were concordant with EM in the same region (p = 0.01). Notably, these differences were not detected by diffusion tensor imaging. This study reveals widespread myelin structural change that is specific to the absence seizure network. Furthermore, our findings demonstrate the potential utility and importance of MRI-based g-ratio estimation to non-invasively detect myelin plasticity.

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.

YNIMG Journal 2020 Journal Article

Quantification of brain oxygen extraction and metabolism with [15O]-gas PET: A technical review in the era of PET/MRI

  • Audrey P. Fan
  • Hongyu An
  • Farshad Moradi
  • Jarrett Rosenberg
  • Yosuke Ishii
  • Tadashi Nariai
  • Hidehiko Okazawa
  • Greg Zaharchuk

Oxygen extraction fraction (OEF) and the cerebral metabolic rate of oxygen (CMRO2) are key cerebral physiological parameters to identify at-risk cerebrovascular patients and understand brain health and function. PET imaging with [15O]-oxygen tracers, either through continuous or bolus inhalation, provides non-invasive assessment of OEF and CMRO2. Numerous tracer delivery, PET acquisition, and kinetic modeling approaches have been adopted to map brain oxygenation. The purpose of this technical review is to critically evaluate different methods for [15O]-gas PET and its impact on the accuracy and reproducibility of OEF and CMRO2 measurements. We perform a meta-analysis of brain oxygenation PET studies in healthy volunteers and compare between continuous and bolus inhalation techniques. We also describe OEF metrics that have been used to detect hemodynamic impairment in cerebrovascular disease. For these patients, advanced techniques to accelerate the PET scans and potential synthesis with MRI to avoid arterial blood sampling would facilitate broader use of [15O]-oxygen PET for brain physiological assessment.

v2026.09.13