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Intact Histological Characterization of Brain-implanted Microdevices and Surrounding Tissue
Published on: February 11, 2013
Dynamic imaging of myelin pathology in physiologically preserved human brain tissue using third harmonic generation
Niels R C Meijns1, Max Blokker2, Sander Idema3
1Department of Anatomy and Neuroscience, Amsterdam UMC - location VUmc, Amsterdam Neuroscience, MS Center Amsterdam, The Netherlands.
Abstract:
Myelin pathology is known to play a central role in disorders such as multiple sclerosis (MS) among others. Despite this, the pathological mechanisms underlying these conditions are often difficult to unravel. Conventional techniques like immunohistochemistry or dye-based approaches, do not provide a temporal characterization of the pathophysiological aberrations responsible for myelin changes in human specimens. Here, to circumvent this curb, we present a label-free, live-cell imaging approach of myelin using recent advancements in nonlinear harmonic generation microscopy applied to physiologically viable human brain tissue from post-mortem donors. Gray and white matter brain tissue from epilepsy surgery and post-mortem donors was excised. To sustain viability of the specimens for several hours, they were subjected to either acute or organotypic slice culture protocols in artificial cerebral spinal fluid. Imaging was performed using a femtosecond pulsed 1050 nm laser to generate second harmonic generation (SHG) and third harmonic generation (THG) signals directly from myelin and axon-like structures without the need to add any labels. Experiments on acute human brain slices and post-mortem human slice cultures reveal that myelin, along with lipid bodies, are the prime sources of THG signal. We show that tissue viability is maintained over extended periods during THG microscopy, and that prolonged THG imaging is able to detect experimentally induced subtle alterations in myelin morphology. Finally, we provide practical evidence that live-cell imaging of myelin with THG microscopy is a sensitive tool to investigate subtle changes in white matter of neurological donors. Overall, our findings support that nonlinear live-cell imaging is a suitable setup for researching myelin morphology in neurological conditions like MS.
Insights
This study introduces a label-free, live-cell imaging technique using nonlinear harmonic generation microscopy to observe myelin in human brain tissue. This method allows for detailed study of myelin morphology in neurological diseases like multiple sclerosis (MS).
Area of Science:
- Neuroscience
- Biomedical Imaging
- Pathology
Background:
- Myelin pathology is central to neurological disorders such as multiple sclerosis (MS).
- Current methods lack temporal characterization of myelin changes in human tissues.
- Investigating myelin aberrations in neurological conditions requires advanced imaging techniques.
Purpose of the Study:
- To develop and validate a label-free, live-cell imaging approach for myelin.
- To utilize nonlinear harmonic generation microscopy for studying myelin morphology.
- To assess the viability of human brain tissue during live-cell imaging.
Main Methods:
- Applied nonlinear harmonic generation microscopy (specifically third harmonic generation - THG) to physiologically viable human brain tissue.
- Used femtosecond pulsed 1050 nm laser to generate SHG and THG signals from myelin and axon-like structures without labels.
- Maintained tissue viability using acute or organotypic slice culture protocols in artificial cerebrospinal fluid.
Main Results:
- Third harmonic generation (THG) signals primarily originate from myelin and lipid bodies in human brain slices.
- Tissue viability was maintained for extended periods during THG microscopy.
- Prolonged THG imaging successfully detected subtle, experimentally induced alterations in myelin morphology.
Conclusions:
- Nonlinear harmonic generation microscopy, particularly THG, is a sensitive, label-free tool for live-cell imaging of myelin.
- This technique enables the investigation of myelin morphology in neurological donors and conditions like MS.
- Live-cell imaging of myelin offers a promising avenue for understanding white matter changes in neurological diseases.

