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Pretreatment Brain White Matter Integrity Associated With Neuropathic Pain Relief and Changes in Temporal Summation of Pain Following Ketamine.

Emily P Mills, Rachael L Bosma, Anton Rogachov, Joshua C Cheng, Natalie R Osborne, Junseok A Kim, Ariana Besik, Anuj Bhatia, Karen D Davis

The journal of pain September 1, 2024 DOI: 10.1016/j.jpain.2024.104536 via PubMed

Summary

AI-generated from the abstract

In people with neuropathic pain, white matter structure in the default mode network and a pathway connecting the medial prefrontal cortex to the periaqueductal gray is linked to how much ketamine reduces central sensitization, a key pain mechanism. Among 35 patients treated with ketamine, pretreatment fiber density in the anterior limb of the internal capsule correlated with pain relief (r = 0.48), and fiber density in the default mode network (r = 0.52) and the medial prefrontal cortex-periaqueductal gray pathway (r = 0.42) correlated with reduced temporal summation of pain, a marker of central sensitization. However, white matter structure did not distinguish responders from nonresponders.

Study at a glance

Characteristics Observational cohort Peer reviewed
Sample size 70
Population 35 individuals with neuropathic pain undergoing ketamine treatment and 35 age- and sex-matched pain-free individuals
Intervention Ketamine
Duration 1-month follow-up
Topics Default mode network Ketamine
Keywords Periaqueductal gray White matter Ketamine therapy Neuropathic pain treatment
Citations 5
Key finding Pretreatment white matter microstructure in the default mode network and medial prefrontal cortex-periaqueductal gray pathway is associated with the degree to which ketamine reduces central sensitization, but does not differentiate responders from nonresponders.

Abstract

Neuropathic pain (NP) is a prevalent condition often associated with heightened pain responsiveness suggestive of central sensitization. Neuroimaging biomarkers of treatment outcomes may help develop personalized treatment strategies, but white matter (WM) properties have been underexplored for this purpose. Here we assessed whether WM pathways of the default mode network (DMN: medial prefrontal cortex [mPFC], posterior cingulate cortex, and precuneus) and descending pain modulation system (periaqueductal gray [PAG]) are associated with ketamine analgesia and attenuated temporal summation of pain (TSP, reflecting central sensitization) in NP. We used a fixel-based analysis of diffusion-weighted imaging data to evaluate WM microstructure (fiber density [FD]) and macrostructure (fiber bundle cross-section) within the DMN and mPFC-PAG pathways in 70 individuals who underwent magnetic resonance imaging and TSP testing; 35 with NP who underwent ketamine treatment and 35 age- and sex-matched pain-free individuals. Individuals with NP were assessed before and 1 month after treatment; those with ≥30% pain relief were considered responders (n = 18), or otherwise as nonresponders (n = 17). We found that WM structure within the DMN and mPFC-PAG pathways did not differentiate responders from nonresponders. However, pretreatment FD in the anterior limb of the internal capsule correlated with pain relief (r=.48). Moreover, pretreatment FD in the DMN (left mPFC-precuneus/posterior cingulate cortex; r=.52) and mPFC-PAG (r=.42) negatively correlated with changes in TSP. This suggests that WM microstructure in the DMN and mPFC-PAG pathway is associated with the degree to which ketamine reduces central sensitization. Thus, fixel metrics of WM structure may hold promise to predict ketamine NP treatment outcomes. PERSPECTIVE: We used advanced fixel-based analyses of MRI diffusion-weighted imaging data to identify pretreatment WM microstructure associated with ketamine outcomes, including analgesia and markers of attenuated central sensitization. Exploring associations between brain structure and treatment outcomes could contribute to a personalized approach to treatment for individuals with NP.

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