Achieving intravital optical imaging with diffraction-limited spatial resolution of deep-brain structures represents an important step toward the goal of understanding the mammalian central nervous system1,2,3,4. Advances in wavefront-shaping methods and computational power have recently allowed for a novel approach to high-resolution imaging, utilizing deterministic light propagation through optically complex media and, of particular importance for this work, multimode optical fibers (MMFs)5,6,7. We report a compact and highly optimized approach for minimally invasive in vivo brain imaging applications. The volume of tissue lesion was reduced by more than 100-fold, while preserving diffraction-limited imaging performance utilizing wavefron...
In-vivo imaging deep inside biological tissue is a formidable task due to the inhomogeneous distribu...
Light sheet fluorescence microscopy offers considerable potential to the cellular neuroscience commu...
The ability to visualize deep brain structures in vivo with high spatial resolution is of rising int...
Achieving intravital optical imaging with diffraction-limited spatial resolution of deep-brain struc...
Progress in neuroscience relies on new techniques for investigating the complex dynamics of neuronal...
Multiphoton microscopy is the current method of choice for in vivo deep-tissue imaging. The long las...
A major open challenge in neuroscience is the ability to measure and perturb neural activity in vivo...
Understanding complex biological systems requires visualizing structures and processes deep within l...
Studying neuronal activity at synapses requires high spatiotemporal resolution. For high spatial res...
Cells in the brain act as components of extended networks. Therefore, to understand neurobiological ...
Two-photon microscopy has enabled high-resolution imaging of single cells in the brain of anaestheti...
In-vivo imaging deep inside biological tissue is a formidable task due to the inhomogeneous distribu...
Light sheet fluorescence microscopy offers considerable potential to the cellular neuroscience commu...
The ability to visualize deep brain structures in vivo with high spatial resolution is of rising int...
Achieving intravital optical imaging with diffraction-limited spatial resolution of deep-brain struc...
Progress in neuroscience relies on new techniques for investigating the complex dynamics of neuronal...
Multiphoton microscopy is the current method of choice for in vivo deep-tissue imaging. The long las...
A major open challenge in neuroscience is the ability to measure and perturb neural activity in vivo...
Understanding complex biological systems requires visualizing structures and processes deep within l...
Studying neuronal activity at synapses requires high spatiotemporal resolution. For high spatial res...
Cells in the brain act as components of extended networks. Therefore, to understand neurobiological ...
Two-photon microscopy has enabled high-resolution imaging of single cells in the brain of anaestheti...
In-vivo imaging deep inside biological tissue is a formidable task due to the inhomogeneous distribu...
Light sheet fluorescence microscopy offers considerable potential to the cellular neuroscience commu...
The ability to visualize deep brain structures in vivo with high spatial resolution is of rising int...