Organotypic whole hemisphere brain slice models to study the effects of donor age and oxygen-glucose-deprivation on the extracellular properties of cortical and striatal tissue

被引:4
作者
McKenna, Michael [1 ]
Filteau, Jeremy R. [1 ]
Butler, Brendan [1 ]
Sluis, Kenneth [1 ]
Chungyoun, Michael [1 ]
Schimek, Nels [2 ]
Nance, Elizabeth [1 ,3 ,4 ]
机构
[1] Univ Washington, Dept Chem Engn, 105 Benson Hall,Box 351750, Seattle, WA 98195 USA
[2] Univ Washington, Dept Chem, Seattle, WA 98195 USA
[3] Univ Washington, e Sci Inst, Seattle, WA 98195 USA
[4] Univ Washington, Dept Bioengn, Seattle, WA 98195 USA
关键词
Brain slices; Organotypic; Extracellular; Brain microenvironment; Nanoparticle diffusion; Particle tracking; HYPOXIC-ISCHEMIC INJURY; RAT-BRAIN; TENASCIN-R; IN-VITRO; PENETRATING NANOPARTICLES; SELECTIVE VULNERABILITY; MICROGLIAL ACTIVATION; DIFFUSION PARAMETERS; CHONDROITIN SULFATE; HIPPOCAMPAL SLICES;
D O I
10.1186/s13036-022-00293-w
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background The brain extracellular environment is involved in many critical processes associated with neurodevelopment, neural function, and repair following injury. Organization of the extracellular matrix and properties of the extracellular space vary throughout development and across different brain regions, motivating the need for platforms that provide access to multiple brain regions at different stages of development. We demonstrate the utility of organotypic whole hemisphere brain slices as a platform to probe regional and developmental changes in the brain extracellular environment. We also leverage whole hemisphere brain slices to characterize the impact of cerebral ischemia on different regions of brain tissue. Results Whole hemisphere brain slices taken from postnatal (P) day 10 and P17 rats retained viable, metabolically active cells through 14 days in vitro (DIV). Oxygen-glucose-deprivation (OGD), used to model a cerebral ischemic event in vivo, resulted in reduced slice metabolic activity and elevated cell death, regardless of slice age. Slices from P10 and P17 brains showed an oligodendrocyte and microglia-driven proliferative response after OGD exposure, higher than the proliferative response seen in DIV-matched normal control slices. Multiple particle tracking in oxygen-glucose-deprived brain slices revealed that oxygen-glucose-deprivation impacts the extracellular environment of brain tissue differently depending on brain age and brain region. In most instances, the extracellular space was most difficult to navigate immediately following insult, then gradually provided less hindrance to extracellular nanoparticle diffusion as time progressed. However, changes in diffusion were not universal across all brain regions and ages. Conclusions We demonstrate whole hemisphere brain slices from P10 and P17 rats can be cultured up to two weeks in vitro. These brain slices provide a viable platform for studying both normal physiological processes and injury associated mechanisms with control over brain age and region. Ex vivo OGD impacted cortical and striatal brain tissue differently, aligning with preexisting data generated in in vivo models. These data motivate the need to account for both brain region and age when investigating mechanisms of injury and designing potential therapies for cerebral ischemia.
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