Anastasopoulou Ioanna, Cheyne Douglas Owen, van Lieshout Pascal, Johnson Blake Warren
School of Psychological Sciences, Macquarie University, Sydney, NSW, Australia.
Department of Speech-Language Pathology, University of Toronto, Toronto, ON, Canada.
Front Hum Neurosci. 2024 Apr 5;18:1305058. doi: 10.3389/fnhum.2024.1305058. eCollection 2024.
Articulography and functional neuroimaging are two major tools for studying the neurobiology of speech production. Until now, however, it has generally not been feasible to use both in the same experimental setup because of technical incompatibilities between the two methodologies.
Here we describe results from a novel articulography system dubbed Magneto-articulography for the Assessment of Speech Kinematics (MASK), which is technically compatible with magnetoencephalography (MEG) brain scanning systems. In the present paper we describe our methodological and analytic approach for extracting brain motor activities related to key kinematic and coordination event parameters derived from time-registered MASK tracking measurements. Data were collected from 10 healthy adults with tracking coils on the tongue, lips, and jaw. Analyses targeted the gestural landmarks of reiterated utterances/ipa/ and /api/, produced at normal and faster rates.
The results show that (1) Speech sensorimotor cortex can be reliably located in peri-rolandic regions of the left hemisphere; (2) mu (8-12 Hz) and beta band (13-30 Hz) neuromotor oscillations are present in the speech signals and contain information structures that are independent of those present in higher-frequency bands; and (3) hypotheses concerning the information content of speech motor rhythms can be systematically evaluated with multivariate pattern analytic techniques.
These results show that MASK provides the capability, for deriving subject-specific articulatory parameters, based on well-established and robust motor control parameters, in the same experimental setup as the MEG brain recordings and in temporal and spatial co-register with the brain data. The analytic approach described here provides new capabilities for testing hypotheses concerning the types of kinematic information that are encoded and processed within specific components of the speech neuromotor system.
关节造影术和功能性神经成像技术是研究言语产生神经生物学的两种主要工具。然而,到目前为止,由于这两种方法在技术上不兼容,在同一实验设置中同时使用这两种技术通常是不可行的。
在此,我们描述了一种名为用于语音运动学评估的磁关节造影术(MASK)的新型关节造影系统的结果,该系统在技术上与脑磁图(MEG)脑扫描系统兼容。在本文中,我们描述了从时间记录的MASK跟踪测量中提取与关键运动学和协调事件参数相关的脑运动活动的方法和分析方法。数据收集自10名健康成年人,他们在舌头、嘴唇和下巴上放置了跟踪线圈。分析针对以正常和更快速度发出的重复话语/ipa/和/api/的手势标志。
结果表明:(1)言语感觉运动皮层可可靠地定位在左半球的中央前回周围区域;(2)言语信号中存在μ(8 - 12赫兹)和β波段(13 - 30赫兹)神经运动振荡,且包含与高频波段中不同的信息结构;(3)关于言语运动节律信息内容的假设可以通过多变量模式分析技术进行系统评估。
这些结果表明,MASK能够在与MEG脑记录相同的实验设置中,基于成熟且稳健的运动控制参数,推导个体特异性的发音参数,并在时间和空间上与脑数据进行配准。这里描述的分析方法为检验关于言语神经运动系统特定组件内编码和处理的运动学信息类型的假设提供了新能力。