MEMRI offers the exciting possibility of tracing neuronal circuits in living animals by MRI. Here we use the power of mouse genetics and the simplicity of the visual system to test rigorously the parameters affecting Mn^(2+) uptake, transport and trans-synaptic tracing. By measuring electrical response to light before and after injection of Mn^(2+) into the eye, we determine the dose of Mn^(2+) with the least toxicity that can still be imaged by MR at 11.7 T. Using mice with genetic retinal blindness, we discover that electrical activity is not necessary for uptake and transport of Mn^(2+) in the optic nerve but is required for trans-synaptic transmission of this tracer to distal neurons in this pathway. Finally, using a kinesin light chain...
This study explored the feasibility of localized manganese-enhanced MRI (MEMRI) via 3 different rout...
Understanding the mechanisms of vision in health and disease requires knowledge of the anatomy and p...
Although manganese (Mn) can enhance brain tissues for improving magnetic resonance imaging (MRI) ass...
Recent evidence implicates transport defects in neurodegeneration, epilepsy, and glaucoma. The orien...
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful tool for in vivo non-invasive wh...
Microtubule-based motors carry cargo back and forth between the synaptic region and the cell body. D...
Small focal injections of manganese ion (Mn^(2+)) deep within the mouse central nervous system combi...
The rodent visual system encompasses retinal ganglion cells and their axons that form the optic nerv...
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful tool for in vivo non-invasive wh...
AbstractRecently, an MRI-detectable, neuronal tract-tracing method in living animals was introduced ...
Axonal tracing is useful for detecting optic nerve injury and regeneration, but many commonly used m...
Current challenges in neuronal tract tracing include sacrificing the animal, detailed sectioning of ...
Defects in axonal transport have been implicated in a number of neurodegenerative diseases, from the...
Axonal tracing is useful for detecting optic nerve injury and regeneration, but many commonly used m...
The application of MRI-visible paramagnetic tracers to reveal in vivo connectivity can provide impor...
This study explored the feasibility of localized manganese-enhanced MRI (MEMRI) via 3 different rout...
Understanding the mechanisms of vision in health and disease requires knowledge of the anatomy and p...
Although manganese (Mn) can enhance brain tissues for improving magnetic resonance imaging (MRI) ass...
Recent evidence implicates transport defects in neurodegeneration, epilepsy, and glaucoma. The orien...
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful tool for in vivo non-invasive wh...
Microtubule-based motors carry cargo back and forth between the synaptic region and the cell body. D...
Small focal injections of manganese ion (Mn^(2+)) deep within the mouse central nervous system combi...
The rodent visual system encompasses retinal ganglion cells and their axons that form the optic nerv...
Manganese-enhanced magnetic resonance imaging (MEMRI) is a powerful tool for in vivo non-invasive wh...
AbstractRecently, an MRI-detectable, neuronal tract-tracing method in living animals was introduced ...
Axonal tracing is useful for detecting optic nerve injury and regeneration, but many commonly used m...
Current challenges in neuronal tract tracing include sacrificing the animal, detailed sectioning of ...
Defects in axonal transport have been implicated in a number of neurodegenerative diseases, from the...
Axonal tracing is useful for detecting optic nerve injury and regeneration, but many commonly used m...
The application of MRI-visible paramagnetic tracers to reveal in vivo connectivity can provide impor...
This study explored the feasibility of localized manganese-enhanced MRI (MEMRI) via 3 different rout...
Understanding the mechanisms of vision in health and disease requires knowledge of the anatomy and p...
Although manganese (Mn) can enhance brain tissues for improving magnetic resonance imaging (MRI) ass...