Progress in brain research critically depends on the development of next-generation multi-modal imaging tools capable of capturing transient functional events and multiplexed contrasts noninvasively and concurrently, thus enabling a holistic view of dynamic events in vivo. Here we report on a hybrid magnetic resonance and optoacoustic tomography (MROT) system for murine brain imaging, which incorporates an MR-compatible spherical matrix array transducer and fiber-based light illumination into a 9.4 T small animal scanner. An optimized radiofrequency coil has further been devised for whole-brain interrogation. System’s utility is showcased by acquiring complementary angiographic and soft tissue anatomical contrast along with simultaneous dual-modality visualization of contrast agent dynamics in vivo.
Progress in brain research critically depends on the development of next-generation multi-modal imaging tools that are capable of capturing transient functional events and multiplexed contrasts noninvasively and concurrently. A number of outstanding questions, such as those pertaining to the link between blood-oxygen-level-dependent (BOLD) signaling, oxygen saturation and underlying neural activity, could potentially be addressed by truly integrating several complementary neuroimaging readouts into one hybrid system, thus enabling a holistic view of dynamic events in vivo. Here we developed a hybrid magnetic resonance and optoacoustic tomography (MROT) system for murine brain imaging by incorporating an MR-compatible spherical matrix array transducer and fiber-based light illumination into a 9.4T small animal scanner, whilst further designing an optimized radiofrequency coil for whole-brain interrogation. The utility of the system is demonstrated by acquiring complementary angiographic and soft tissue anatomical contrast along with simultaneous dual-modality visualization of contrast agent dynamics in vivo.
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