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Preparation of Acute Hippocampal Slices from Rats and Transgenic Mice for the Study of Synaptic Alterations during Aging and Amyloid Pathology
Published on: March 23, 2011
Mossy fiber growth and synaptogenesis in rat hippocampal slices in vitro
M E Dailey1, J Buchanan, D E Bergles
1Department of Molecular and Cellular Physiology, Stanford University School of Medicine, California 94305-5426.
Abstract:
Hippocampal slices from early postnatal rat were used to study mossy fiber (MF) growth and synaptogenesis. The ability of MFs to form new giant synapses within isolated tissue slices was established by a series of experiments involving synapsin I immunohistochemistry, electron microscopy, and whole-cell recordings. When hippocampal slices from immature rats were cultured for up to 2 weeks, the distribution of giant MF terminals was similar to that found in vivo. Using a lesioning procedure, we determined that MFs in slices extend and form appropriate synaptic connections with normal target CA3 pyramidal cells. MF terminals were dispersed more widely than normal within the CA3 pyramidal layer after a lesion, but electron microscopy indicated that synaptic junctions were still primarily associated with pyramidal cell dendrites and not the somata. Establishment of functional synaptic input in vitro was confirmed by whole-cell recordings of MF-driven excitatory postsynaptic currents (50 pA to 1 nA) in pyramidal cells. The results establish for the first time that an MF projection with appropriate and functional synaptic connections can be formed de novo and not just maintained in excised hippocampal slices. The cellular dynamics underlying MF growth and synaptogenesis were examined directly by time-lapse confocal imaging of fibers selectively stained with a fluorescent membrane dye (Dil or DiO). MFs growing deep within isolated tissue slices were tipped by small (5-10 microns), active growth cones that advanced at variable rates (5-25 microns/hr). Furthermore, dynamic filopodial structures were seen at small varicosities along the length of developing MFs, which may identify nascent en passant synaptic contacts. The hippocampal slice preparations are shown to support normal development of MF connections and allow for direct visualization of the cellular dynamics of synapse formation in a mammalian CNS tissue environment.
Insights
This study shows that rat hippocampal slices can form new, functional mossy fiber (MF) synapses in vitro. These findings allow direct observation of MF growth and synapse formation in a mammalian central nervous system environment.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Understanding neural circuit development is crucial for neuroscience.
- Mossy fiber (MF) growth and synaptogenesis are key processes in hippocampal development.
- Studying these processes in vivo can be challenging.
Purpose of the Study:
- To investigate the capacity of isolated hippocampal slices to support de novo mossy fiber (MF) growth and synaptogenesis.
- To visualize and characterize the cellular dynamics of MF synaptogenesis in vitro.
- To establish a model for studying mammalian central nervous system synapse formation.
Main Methods:
- Culturing of early postnatal rat hippocampal slices for up to 2 weeks.
- Synapsin I immunohistochemistry, electron microscopy, and whole-cell recordings.
- Lesioning procedures and time-lapse confocal imaging with fluorescent membrane dyes (Dil or DiO).
Main Results:
- Hippocampal slices support the formation of new, functional giant mossy fiber (MF) synapses with CA3 pyramidal cells.
- MF terminals formed appropriate synaptic connections primarily on dendrites, similar to in vivo patterns.
- Time-lapse imaging revealed active growth cones and filopodial structures involved in MF synaptogenesis.
Conclusions:
- Excised hippocampal slices provide a viable model for studying de novo MF projection and synaptogenesis.
- This preparation allows direct visualization of the cellular dynamics of synapse formation in the mammalian CNS.
- The findings offer new insights into the mechanisms of neural circuit development and plasticity.

