Research Imaging Institute, Department of Neurology, University of Texas Health Science Center San Antonio San Antonio, TX, USA.
Human Brain Research Lab, Department of Neurosurgery, The University of Iowa Iowa City, IA, USA.
Front Neurosci. 2014 Mar 5;8:46. doi: 10.3389/fnins.2014.00046. eCollection 2014.
It is advantageous to study a wide range of vocal abilities in order to fully understand how vocal control measures vary across the full spectrum. Individuals with absolute pitch (AP) are able to assign a verbal label to musical notes and have enhanced abilities in pitch identification without reliance on an external referent. In this study we used dynamic causal modeling (DCM) to model effective connectivity of ERP responses to pitch perturbation in voice auditory feedback in musicians with relative pitch (RP), AP, and non-musician controls. We identified a network compromising left and right hemisphere superior temporal gyrus (STG), primary motor cortex (M1), and premotor cortex (PM). We specified nine models and compared two main factors examining various combinations of STG involvement in feedback pitch error detection/correction process. Our results suggest that modulation of left to right STG connections are important in the identification of self-voice error and sensory motor integration in AP musicians. We also identify reduced connectivity of left hemisphere PM to STG connections in AP and RP groups during the error detection and corrections process relative to non-musicians. We suggest that this suppression may allow for enhanced connectivity relating to pitch identification in the right hemisphere in those with more precise pitch matching abilities. Musicians with enhanced pitch identification abilities likely have an improved auditory error detection and correction system involving connectivity of STG regions. Our findings here also suggest that individuals with AP are more adept at using feedback related to pitch from the right hemisphere.
为了全面了解不同音域下的声音控制措施是如何变化的,研究广泛的声音能力是有益的。具有绝对音高(AP)的个体能够给音符赋予口头标签,并具有增强的音高识别能力,而无需依赖外部参照。在这项研究中,我们使用动态因果建模(DCM)来对具有相对音高(RP)、AP 和非音乐家对照组的音乐家的语音听觉反馈中对音高扰动的 ERP 反应的有效连通性进行建模。我们确定了一个由左、右半球颞上回(STG)、初级运动皮层(M1)和运动前皮层(PM)组成的网络。我们指定了九个模型,并比较了两个主要因素,检查了 STG 在反馈音高误差检测/校正过程中的各种组合。我们的研究结果表明,AP 音乐家中左到右 STG 连接的调制对于自我声音误差识别和感觉运动整合非常重要。我们还发现,与非音乐家相比,AP 和 RP 组在错误检测和校正过程中,左半球 PM 到 STG 的连接连通性降低。我们认为,这种抑制可能允许与更精确的音高匹配能力相关的右半球的音高识别能力增强的连通性。具有增强的音高识别能力的音乐家可能具有改进的听觉错误检测和校正系统,涉及 STG 区域的连通性。我们在这里的发现还表明,具有 AP 的个体更擅长使用来自右半球的与音高相关的反馈。