Related Experiment Video
Updated: May 25, 2026

A Micro-CT-based Method for Characterizing Lesions and Locating Electrodes in Small Animal Brains
Published on: November 8, 2018
Magnetic resonance microscopy of human and porcine neurons and cellular processes
Jeremy J Flint1, Brian Hansen, Sharon Portnoy
1McKnight Brain Institute, Dep. of Neuroscience, University of Florida, FL, USA. jflint@mbi.ufl.edu
Abstract:
With its unparalleled ability to safely generate high-contrast images of soft tissues, magnetic resonance imaging (MRI) has remained at the forefront of diagnostic clinical medicine. Unfortunately due to resolution limitations, clinical scans are most useful for detecting macroscopic structural changes associated with a small number of pathologies. Moreover, due to a longstanding inability to directly observe magnetic resonance (MR) signal behavior at the cellular level, such information is poorly characterized and generally must be inferred. With the advent of the MR microscope in 1986 came the ability to measure MR signal properties of theretofore unobservable tissue structures. Recently, further improvements in hardware technology have made possible the ability to visualize mammalian cellular structure. In the current study, we expand upon previous work by imaging the neuronal cell bodies and processes of human and porcine α-motor neurons. Complimentary imaging studies are conducted in pig tissue in order to demonstrate qualitative similarities to human samples. Also, apparent diffusion coefficient (ADC) maps were generated inside porcine α-motor neuron cell bodies and portions of their largest processes (mean=1.7 ± 0.5 microm²/ms based on 53 pixels) as well as in areas containing a mixture of extracellular space, microvasculature, and neuropil (0.59 ± 0.37 microm²/ms based on 33 pixels). Three-dimensional reconstruction of MR images containing α-motor neurons shows the spatial arrangement of neuronal projections between adjacent cells. Such advancements in imaging portend the ability to construct accurate models of MR signal behavior based on direct observation and measurement of the components which comprise functional tissues. These tools would not only be useful for improving our interpretation of macroscopic MRI performed in the clinic, but they could potentially be used to develop new methods of differential diagnosis to aid in the early detection of a multitude of neuropathologies.
Insights
High-resolution magnetic resonance imaging (MRI) now visualizes cellular structures like neurons. This allows for direct measurement of magnetic resonance signal behavior, improving diagnostic capabilities for neuropathologies.
Area of Science:
- Biomedical Imaging
- Neuroscience
- Cellular Biology
Background:
- Magnetic resonance imaging (MRI) excels at soft tissue contrast but is limited by resolution for detecting subtle cellular changes.
- Direct observation of magnetic resonance (MR) signal behavior at the cellular level has been historically challenging.
- Advancements in MR microscopy and hardware now enable visualization of mammalian cellular structures.
Purpose of the Study:
- To image neuronal cell bodies and processes of human and porcine alpha-motor neurons using advanced MR techniques.
- To characterize magnetic resonance signal properties at the cellular level within neuronal tissues.
- To explore the potential for improved interpretation of clinical MRI and development of new diagnostic methods for neuropathologies.
Main Methods:
- High-resolution magnetic resonance imaging (MRI) of human and porcine alpha-motor neurons.
- Generation of apparent diffusion coefficient (ADC) maps within neuronal cell bodies and processes.
- Three-dimensional reconstruction of MR images to visualize neuronal spatial arrangements.
Main Results:
- Successful imaging of neuronal cell bodies and processes in human and porcine samples, with qualitative similarities noted.
- Apparent diffusion coefficient (ADC) values measured within porcine alpha-motor neuron cell bodies (1.7 ± 0.5 µm²/ms) and extracellular/neuropil regions (0.59 ± 0.37 µm²/ms).
- Three-dimensional reconstructions revealed the spatial organization of neuronal projections.
Conclusions:
- Advanced MR imaging allows direct observation and measurement of MR signal properties within cellular components of functional tissues.
- These findings pave the way for accurate MR signal behavior models based on direct cellular measurements.
- This technology holds promise for enhancing clinical MRI interpretation and developing novel differential diagnostic tools for early neuropathology detection.

