4.6 Article

Predicting Long-Term After-Effects of Theta-Burst Stimulation on Supplementary Motor Network Through One-Session Response

期刊

FRONTIERS IN NEUROSCIENCE
卷 14, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fnins.2020.00237

关键词

continuous theta-burst stimulation; functional connectivity; magnetic resonance imaging; transcranial magnetic stimulation; supplementary motor area

资金

  1. Doctoral Foundation of Anhui Medical University [XJ201532]
  2. National Basic Research Program of China [2015CB856405]
  3. National Key RD Plan of China [2016YFC1300604]
  4. National Natural Science Foundation of China [31970979, 81971689, 91432301, 81671354, 31571149, 91232717, 31771222, 81771456]
  5. Science Fund for Distinguished Young Scholars of Anhui Province [1808085J23]
  6. Collaborative Innovation Center of Neuropsychiatric Disorders and Mental Health of Anhui Province
  7. Youth Top-notch Talent Support Program of Anhui Medical University

向作者/读者索取更多资源

To understand the neural mechanism of repetitive transcranial magnetic stimulation (rTMS), the after-effects following one session or multiple days of stimulation have been widely investigated. However, the relation between the short-term effect (STE) and long-term effect (LTE) of rTMS is largely unknown. This study aims to explore whether the after-effects of 5-day rTMS on supplementary motor area (SMA) network could be predicted by one-session response. A primary cohort of 38 healthy participants underwent five daily sessions of real or sham continuous theta-burst stimulation (cTBS) on the left SMA. Resting-state functional magnetic resonance imaging (fMRI) data were acquired at the first (before and after the first stimulation) and sixth experimental day. The SMA connectivity changes after the first cTBS and after 5 days of stimulation were defined as STE and LTE, respectively. Compared to the baseline, significant STE and LTE were found in the bilateral paracentral gyrus (ParaCG) after real stimulation, suggesting shared neural correlates of short- and long-term stimulations. Region-of-interest analysis indicated that the resting-state functional connectivity between SMA and ParaCG increased after real stimulation, while no significant change was found after sham stimulation. Leave-one-out cross-validation indicated that the LTE in ParaCG could be predicted by the STE after real but not sham stimulations. In an independent cohort, the after-effects of rTMS on ParaCG and short- to long-term prediction were reproduced at the region-of-interest level. These imaging evidences indicate that one-session rTMS can aid to predict the regions responsive to long-term stimulation and the individualized response degree.

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