English

Unconstrained quantitative magnetization transfer imaging: disentangling T1 of the free and semi-solid spin pools

Medical Physics 2024-05-24 v3 Biological Physics

Abstract

Since the inception of magnetization transfer (MT) imaging, it has been widely assumed that Henkelman's two spin pools have similar longitudinal relaxation times, which motivated many researchers to constrain them to each other. However, several recent publications reported a T1sT_1^s of the semi-solid spin pool that is much shorter than T1fT_1^f of the free pool. While these studies tailored experiments for robust proofs-of-concept, we here aim to quantify the disentangled relaxation processes on a voxel-by-voxel basis in a clinical imaging setting, i.e., with an effective resolution of 1.24mm isotropic and full brain coverage in 12min. To this end, we optimized a hybrid-state pulse sequence for mapping the parameters of an unconstrained MT model. We scanned four people with relapsing-remitting multiple sclerosis (MS) and four healthy controls with this pulse sequence and estimated T1f1.84T_1^f \approx 1.84s and T1s0.34T_1^s \approx 0.34s in healthy white matter. Our results confirm the reports that T1sT1fT_1^s \ll T_1^f and we argue that this finding identifies MT as an inherent driver of longitudinal relaxation in brain tissue. Moreover, we estimated a fractional size of the semi-solid spin pool of m0s0.212m_0^s \approx 0.212, which is larger than previously assumed. An analysis of T1fT_1^f in normal-appearing white matter revealed statistically significant differences between individuals with MS and controls.

Keywords

Cite

@article{arxiv.2301.08394,
  title  = {Unconstrained quantitative magnetization transfer imaging: disentangling T1 of the free and semi-solid spin pools},
  author = {Jakob Assländer and Andrew Mao and Elisa Marchetto and Erin S Beck and Francesco La Rosa and Robert W Charlson and Timothy M Shepherd and Sebastian Flassbeck},
  journal= {arXiv preprint arXiv:2301.08394},
  year   = {2024}
}