Li Yuyang, Zhao Mengqi, Cao Yuting, Gao Yanyan, Wang Yadan, Yun Bing, Luo Le, Liu Wenming, Zheng Chanying
Key Laboratory of Medical Neurobiology of Zhejiang Province, Interdisciplinary Institute of Neuroscience and Technology, School of Medicine, Zhejiang University, Hangzhou, China.
School of Psychology, Zhejiang Normal University, Jinhua, China.
Front Neurosci. 2023 Jul 14;17:1202932. doi: 10.3389/fnins.2023.1202932. eCollection 2023.
Table tennis involves quick and accurate motor responses during training and competition. Multiple studies have reported considerably faster visuomotor responses and expertise-related intrinsic brain activity changes among table tennis players compared with matched controls. However, the underlying neural mechanisms remain unclear. Herein, we performed static and dynamic resting-state functional magnetic resonance imaging (rs-fMRI) analyses of 20 table tennis players and 21 control subjects using 7T ultra-high field imaging. We calculated the static and dynamic amplitude of low-frequency fluctuations (ALFF) of the two groups. The results revealed that table tennis players exhibited decreased static ALFF in the left inferior temporal gyrus (lITG) compared with the control group. Voxel-wised static functional connectivity (sFC) and dynamic functional connectivity (dFC) analyses using lITG as the seed region afforded complementary and overlapping results. The table tennis players exhibited decreased sFC in the right middle temporal gyrus and left inferior parietal gyrus. Conversely, they displayed increased dFC from the lITG to prefrontal cortex, particularly the left middle frontal gyrus, left superior frontal gyrus-medial, and left superior frontal gyrus-dorsolateral. These findings suggest that table tennis players demonstrate altered visuomotor transformation and executive function pathways. Both pathways involve the lITG, which is a vital node in the ventral visual stream. These static and dynamic analyses provide complementary and overlapping results, which may help us better understand the neural mechanisms underlying the changes in intrinsic brain activity and network organization induced by long-term table tennis skill training.
乒乓球运动在训练和比赛过程中涉及快速且准确的运动反应。多项研究报告称,与匹配的对照组相比,乒乓球运动员的视觉运动反应明显更快,且与专业技能相关的大脑内在活动也有所变化。然而,其潜在的神经机制仍不清楚。在此,我们使用7T超高场成像技术对20名乒乓球运动员和21名对照受试者进行了静息态和动态静息态功能磁共振成像(rs-fMRI)分析。我们计算了两组的低频波动(ALFF)的静态和动态幅度。结果显示,与对照组相比,乒乓球运动员左侧颞下回(lITG)的静态ALFF降低。以lITG为种子区域进行的体素级静态功能连接(sFC)和动态功能连接(dFC)分析得出了互补且重叠的结果。乒乓球运动员右侧颞中回和左侧顶下小叶的sFC降低。相反,他们从lITG到前额叶皮质,特别是左侧额中回、左侧额上回内侧和左侧额上回背外侧的dFC增加。这些发现表明,乒乓球运动员表现出视觉运动转换和执行功能通路的改变。这两条通路均涉及lITG,它是腹侧视觉通路中的一个重要节点。这些静态和动态分析提供了互补且重叠的结果,这可能有助于我们更好地理解长期乒乓球技能训练所引起的大脑内在活动和网络组织变化的神经机制。