Brain FDG-PET as an Imaging Biomarker of CAR-T Movement and Neurocognitive Treatment-emergent Toxicity
Ryan Coburn1, Kenneth Lim2, Gemeng Zhang1, Nur Dizdar3, Melinda Tan2, Christoph Schaefers2, Derek Johnson3, Hugo Botha1, Leland Barnard1, Anastasia Zekeridou1, Yi Lin2, Michel Toledano1
1Neurology, 2Hematology, 3Radiology, Mayo Clinic
Objective:

Evaluate brain fluorodeoxyglucose positron emission tomography (FDG-PET) as an imaging biomarker of chimeric antigen receptor T-cell therapy (CAR-T) associated movement and neurocognitive treatment-emergent toxicity (MNT).

Background:

MNT is an increasingly recognized neurocognitive and hypokinetic movement disorder that develops in patients receiving B-cell maturation antigen (BCMA)-targeting CAR-T for multiple myeloma. Diagnosis is challenging due to phenotypic heterogeneity. Although pre-treatment myeloma burden and post-treatment high absolute lymphocyte count (ALC) are described risk factors, there are no established biomarkers. Prior FDG-PET descriptions of MNT have noted frontal-striatal hypometabolism. 

Design/Methods:

Twelve MNT cases were identified from a prospectively maintained immune effector cell (IEC) program compliance database (N = 330). Thirty-four neurologically intact cases with high ALC (> 3 × 109/L) and myeloma burden served as a comparison cohort. Pre- and post-treatment full body FDG-PET were processed using an institutional pipeline to generate age-matched Z-scores for brain regions of interest (ROI).

Linear mixed effects models were fit to compare ROI Z-scores pre- and post-treatment. Models included fixed effects of time (pre- vs. post-treatment), ROI, and their interaction, with subject included as a random intercept to account for repeated measures. A second model incorporated group membership and its interactions with time and ROI to examine between-group differences. False discovery rate (FDR) correction was applied for multiple comparisons (α = 0.05).

Results:

Model-estimated post-treatment Z-score change from baseline within the MNT group was greatest in the putamen, caudate, and pallidum, all surviving FDR correction (p < 0.05). These effects remained stable and significant when the comparison cohort was incorporated into a combined model. No significant baseline differences in ROI Z-scores were observed between groups.

Conclusions:

Brain FDG-PET in MNT cases revealed significantly decreased basal ganglia metabolism post-treatment. This regional hypometabolism is in keeping with clinical presentation, supporting FDG-PET as a potential imaging biomarker. Additional validation is needed to confirm these findings.

Generative AI Usage
No, did not use generative AI in the drafting or editing in this abstract.
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