Robust T2 estimation with balanced steady state free precession

Magn Reson Med. 2024 Jun;91(6):2257-2265. doi: 10.1002/mrm.30037. Epub 2024 Feb 27.

Abstract

Purpose: To develop a novel signal representation for balanced steady state free precession (bSSFP) displaying its T2 independence on B1 and on magnetization transfer (MT) effects.

Methods: A signal model for bSSFP is developed that shows only an explicit dependence (up to a scaling factor) on E2 (and, therefore, T2) and a novel parameter c (with implicit dependence on the flip angle and E1). Moreover, it is shown that MT effects, entering the bSSFP signal via a binary spin bath model, can be captured by a redefinition of T1 and, therefore, leading to modification of E1, resulting in the same signal model. Various sets of phase-cycled bSSFP brain scans (different flip angles, different TR, different RF pulse durations, and different number of phase cycles) were recorded at 3 T. The parameters T2 (E2) and c were estimated using a variable projection (VARPRO) method and Monte-Carlo simulations were performed to assess T2 estimation precision.

Results: Initial experiments confirmed the expected independence of T2 on various protocol settings, such as TR, the flip angle, B1 field inhomogeneity, and the RF pulse duration. Any variation (within the explored range) appears to directly affect the estimation of the parameter c only-in agreement with theory.

Conclusion: BSSFP theory predicts an extraordinary feature that all MT and B1-related variational aspects do not enter T2 estimation, making it a potentially robust methodology for T2 quantification, pending validation against existing standards.

Keywords: MRI; T2; bSSFP; balanced steady‐state free precession; phase‐cycling; relaxometry.

MeSH terms

  • Algorithms
  • Brain* / diagnostic imaging
  • Magnetic Resonance Imaging* / methods
  • Neuroimaging
  • Phantoms, Imaging