Cortical vasodynamics exhibit multiscale propagation structure in the awake mouse
Liu, X.; Zhou, X. A.; Hike, D.; Duckworth, J.; Pasupathy, N.; Jiang, Y.; Choi, S.; Fu, Z.; Rosen, B.; Kleninfeld, D.; Yu, X.
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Spontaneous vascular dynamics contribute fundamentally to functional MRI signals, but their intrinsic propagation structure remains unresolved at the systems level. Here, we combine 14 T cerebral blood volume (CBV)-weighted fMRI with space-frequency singular value decomposition to map vasodynamic propagation across the awake mouse cortex. High-resolution CBV-fMRI identified vessel-aligned, frequency-specific oscillatory modes, and ultra-fast CBV-fMRI enabled three-dimensional mapping of phase gradients across tangential and radial cortical axes. Vasodynamic propagation exhibited multiscale organization: tangential gradients matched previously reported vasomotion traveling waves, whereas radial gradients revealed slower laminar timing structure consistent with depth-dependent vascular regulation. At the group level, trial-wise propagation maps decomposed into reproducible partition-like modes, demonstrating that vasodynamics are spatially structured across cortex rather than homogeneously distributed. Together, these results establish a noninvasive framework for resolving multiscale vasodynamic propagation in the awake brain and provide a foundation for probing cerebrovascular organization and dysfunction with vascularly specific fMRI.
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