Viscoelastic properties of individual glial cells and neurons in the CNS
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- 21 November 2006
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 103 (47) , 17759-17764
- https://doi.org/10.1073/pnas.0606150103
Abstract
One hundred fifty years ago glial cells were discovered as a second, non-neuronal, cell type in the central nervous system. To ascribe a function to these new, enigmatic cells, it was suggested that they either glue the neurons together (the Greek word “γλια” means “glue”) or provide a robust scaffold for them (“support cells”). Although both speculations are still widely accepted, they would actually require quite different mechanical cell properties, and neither one has ever been confirmed experimentally. We investigated the biomechanics of CNS tissue and acutely isolated individual neurons and glial cells from mammalian brain (hippocampus) and retina. Scanning force microscopy, bulk rheology, and optically induced deformation were used to determine their viscoelastic characteristics. We found that ( i ) in all CNS cells the elastic behavior dominates over the viscous behavior, ( ii ) in distinct cell compartments, such as soma and cell processes, the mechanical properties differ, most likely because of the unequal local distribution of cell organelles, ( iii ) in comparison to most other eukaryotic cells, both neurons and glial cells are very soft (“rubber elastic”), and ( iv ) intriguingly, glial cells are even softer than their neighboring neurons. Our results indicate that glial cells can neither serve as structural support cells (as they are too soft) nor as glue (because restoring forces are dominant) for neurons. Nevertheless, from a structural perspective they might act as soft, compliant embedding for neurons, protecting them in case of mechanical trauma, and also as a soft substrate required for neurite growth and facilitating neuronal plasticity.Keywords
This publication has 38 references indexed in Scilit:
- Quantifying the contribution of actin networks to the elastic strength of fibroblastsJournal of Theoretical Biology, 2006
- Glutamate-Evoked Alterations of Glial and Neuronal Cell Morphology in the Guinea Pig RetinaJournal of Neuroscience, 2004
- Monitoring and interpretation of intracranial pressureJournal of Neurology, Neurosurgery & Psychiatry, 2004
- In search of general mechanisms for long-lasting plasticity:Aplysiaand the hippocampusPhilosophical Transactions Of The Royal Society B-Biological Sciences, 2003
- GFAP promoter-controlled EGFP-expressing transgenic mice: A tool to visualize astrocytes and astrogliosis in living brain tissueGlia, 2000
- Drug-Induced Changes of Cytoskeletal Structure and Mechanics in Fibroblasts: An Atomic Force Microscopy StudyBiophysical Journal, 2000
- Linear viscoelastic properties of bovine brain tissue in shearBiorheology, 1997
- Normal Intraocular Pressure in ManOphthalmologica, 1992
- The distribution of F-actin in cells isolated from vertebrate retinasExperimental Eye Research, 1987
- Kainic Acid Induces Sprouting of Retinal NeuronsScience, 1984