<p>Mechanical stimulation is a widely used sensory paradigm for investigating the neural mechanisms underlying somatosensation, ranging from innocuous tactile perception to nociceptive processing. Studying how such stimuli are represented across distributed brain networks requires imaging approaches capable of capturing large-scale neural dynamics with high spatiotemporal resolution. Functional ultrasound imaging (fUS) has recently emerged as a powerful neuroimaging technique that enables highly sensitive detection of cerebral hemodynamic changes across multiple brain regions in awake animals. Here, we present a multiregional fUS imaging dataset that characterizes hemodynamic responses to graded mechanical stimulation in awake mice. Mechanical stimuli ranging from innocuous touch to noxious intensity levels (0.16–4.0&#xa0;g; six levels) were delivered to the hind paw while fUS recordings were acquired from three coronal imaging planes sampling key cortical, thalamic, and midbrain regions in eight mice. The dataset includes raw ultrasound recordings, processed, normalized hemodynamic time-series signals (Δ<i>I</i>/<i>I</i><sub>0</sub>, where <i>I</i> denotes the power Doppler intensity and <i>I</i><sub>0</sub> denotes the baseline signal), region-of-interest (ROI) masks, ROI-averaged signals, and functional connectivity matrices derived from multiple stimulus intensities. In addition, fiber photometry recordings were obtained from selected brain regions in a separate cohort of eight mice under the same stimulation paradigm to provide complementary measurements of neuronal Ca<sup>2+</sup> activity. This dataset provides a unique resource for studying large-scale sensory processing, neurovascular coupling, and stimulus-associated changes in interregional coupling. It may also facilitate future research in pain neuroscience, development and testing of computational models of brain networks, and multimodal neuroimaging analyses. The complete dataset occupies approximately 13 GB and is available at <a href="https://doi.org/10.57760/sciencedb.30552">https://doi.org/10.57760/sciencedb.30552</a>.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

A Multiregional Functional Ultrasound Dataset of Brain Responses to Innocuous and Noxious Mechanical Stimulation in Awake Mice

  • Hanming Zheng,
  • Jin Yang,
  • Dongming He,
  • Yan Chen,
  • Xiaodong Liu,
  • Greta S. P. Mok,
  • Zhihai Qiu

摘要

Mechanical stimulation is a widely used sensory paradigm for investigating the neural mechanisms underlying somatosensation, ranging from innocuous tactile perception to nociceptive processing. Studying how such stimuli are represented across distributed brain networks requires imaging approaches capable of capturing large-scale neural dynamics with high spatiotemporal resolution. Functional ultrasound imaging (fUS) has recently emerged as a powerful neuroimaging technique that enables highly sensitive detection of cerebral hemodynamic changes across multiple brain regions in awake animals. Here, we present a multiregional fUS imaging dataset that characterizes hemodynamic responses to graded mechanical stimulation in awake mice. Mechanical stimuli ranging from innocuous touch to noxious intensity levels (0.16–4.0 g; six levels) were delivered to the hind paw while fUS recordings were acquired from three coronal imaging planes sampling key cortical, thalamic, and midbrain regions in eight mice. The dataset includes raw ultrasound recordings, processed, normalized hemodynamic time-series signals (ΔI/I0, where I denotes the power Doppler intensity and I0 denotes the baseline signal), region-of-interest (ROI) masks, ROI-averaged signals, and functional connectivity matrices derived from multiple stimulus intensities. In addition, fiber photometry recordings were obtained from selected brain regions in a separate cohort of eight mice under the same stimulation paradigm to provide complementary measurements of neuronal Ca2+ activity. This dataset provides a unique resource for studying large-scale sensory processing, neurovascular coupling, and stimulus-associated changes in interregional coupling. It may also facilitate future research in pain neuroscience, development and testing of computational models of brain networks, and multimodal neuroimaging analyses. The complete dataset occupies approximately 13 GB and is available at https://doi.org/10.57760/sciencedb.30552.