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Yeh, C.-I.

Publications and source records attributed to Yeh, C.-I..

2 recordsLinked to original sources

Neural coding for tactile motion: Scanning speed or temporal frequency?

Humans effortlessly perceive the speed of an object moving across their fingers, but how the brain encodes this information, especially across the hierarchical stages in the primary somatosensory cortex, remains unclear. This study thus investigated coding schemes, including rate and temporal codes, for tactile motion speed in macaque S1 areas 3b, 1, and 2. Extracellular electrophysiology recorded single-unit activities when a rotating sinusoidal grating ball of a fixed spatial period (wavelength of 1, 2, or 4 mm) was presented on the fingerpad at various speeds (20-320 mm/s). The results showed that the rate code was commonly employed to differentiate the stimulus scanning speed, spatial period, and scanning direction across S1 regions. In contrast, the temporal code was used to faithfully represent the stimulus temporal frequency, which was defined as the speed divided by the spatial period. Notably, area 3b had a wider range of frequency responses than did areas 1 and 2. These findings demonstrate that S1 uses both rate and temporal codes to encode distinct aspects of tactile motion. Future research should investigate how temporal patterns in S1 neuronal activity are potentially transformed and utilized in downstream somatosensory areas to form tactile motion perception and guide perceptual decisions.

neuroscience↗

Tracking White Matter Changes After Stereotaxic Radiosurgery inMiniature Pigs Using structural MRI, DTI, and FDG-PET

Stereotaxic radiosurgery (SRS) non-invasively and precisely ablates brain tumors or glioma located in the location where is surgically inaccessible with the aid of three- dimensional coordination system. This technique can also treat functional or psychiatric disorders, yet its dosimetry and curative mechanism remain to be elucidated. In this study, a miniature pig model was utilized to verify the effect of stereotaxic radiosurgery on a white matter tract with various doses delivered by CyberKnife. As porcine brain bears high resemblance to that of human in size and structure, the potential irradiation- induced change in structures and metabolism was monitored by conventional tools in clinical, including anatomical magnetic resonance image (MRI), diffusion tensor image (DTI) and 18F-Fluoro-D-Glucose positron emission tomography (FDG-PET). The right internal capsule was selected as the surgical target, and a one-year longitudinal study was conducted with whole brain images obtained once per three months. The results indicate that a dose equal to or higher than 60 Gy led to a late-onset radionecrosis which took a period close to 180 d to develop edema and breakage in the blood-brain barrier. In the meanwhile, DTI indices and differential tractography further illustrate a dose- and distance-dependent white matter injury along the tract of internal capsule. In contrast, doses of 40 Gy and below did not result in any discernible harm to the brain structure, but a sustained local inhibition in brain metabolism was observed in some pigs. The modulatory effect of low dose radiation awaits a comprehensive assessment throughout the whole brain in combination with behavioral or cognitive tasks built on pigs. This study showing the dose- and time-dependent changes will improve the understanding of the SRS dosimetry on the white matter and help investigators to decide an optimal window for brain imaging or behavioral assessment to take place on patients.

neuroscience↗