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Kirk, L. M.

Publications and source records attributed to Kirk, L. M..

3 recordsLinked to original sources

Synaptopodin KO rat for assessing the dendritic spine apparatus and axonal cisternal organelle in synaptic plasticity, development, and behavior

The actin-binding protein synaptopodin (Synpo) regulates the cytoskeleton and organization of endoplasmic reticulum, thereby amplifying intracellular Ca2+ signaling. Knockout (KO) mouse models have been used to study the role of Synpo in kidney and brain functions, where it supports stress fiber formation, as well as long-term potentiation (LTP) and learning, respectively. Here, we generated Synpo KO rats using CRISPR-Cas9, and show they are viable but have reduced body weight after postnatal days 35-45, along with shorter limb bone length. Their basal kidney function is normal into early adulthood. Serial section electron microscopy from Synpo KO rat hippocampus reveals the absence of the spine apparatus in dendrites and cisternal organelle in the axon initial segment (AIS), two Synpo-dependent specializations of smooth endoplasmic reticulum. The AIS in KO was still innervated by inhibitory synapses despite the total loss of the cisternal organelle. Synpo KO rats also showed reduced LTP. Previously unknown KO effect of Synpo on body stature could have an inadvertent impact on behavioral outcomes. Furthermore, rats have a well-defined developmental onset of LTP, compared to the variable onset of LTP in mice. This, combined with known species differences in behavior, makes our KO rat model a valuable resource for assessing the role of Synpo in development, learning, synaptic plasticity, and a wide range of other biological functions.

neuroscience↗

Presynaptic vesicles supply membrane for axonal bouton enlargement during LTP

Long-term potentiation (LTP) induces presynaptic bouton enlargement and a reduction in the number of synaptic vesicles. To understand the relationship between these events, we performed 3D analysis of serial section electron micrographs in rat hippocampal area CA1, 2 hours after LTP induction. We observed a high vesicle packing density in control boutons, contrasting with a lower density in most LTP boutons. Notably, the summed membrane area of the vesicles lost in low-density LTP boutons is comparable to the surface membrane required for the observed bouton enlargement when compared to high-density control boutons. These novel findings suggest that presynaptic vesicle density provides a new structural indicator of LTP that supports a local mechanism of bouton enlargement.

neuroscience↗

The presynaptic vesicle cluster transitions from a compact to loose organization during long-term potentiation

Functional and structural elements of synaptic plasticity are tightly coupled, as has been extensively shown for dendritic spines. Here, we interrogated structural features of presynaptic terminals in 3DEM reconstructions from CA1 hippocampal axons that had undergone control stimulation or theta-burst stimulation (TBS) to produce long-term potentiation (LTP). We reveal that after LTP induction, the synaptic vesicle (SV) cluster is less dense, and SVs are more dispersed. The distances between neighboring SVs are greater in less dense terminals and have more SV-associated volume. We characterized the changes to the SV cluster by measuring distances between neighboring SVs, distances to the active zone, and the dispersion of the SV cluster. Furthermore, we compared the distribution of SVs with randomized ones and provided evidence that SVs gained mobility after LTP induction. With a computational model, we can predict the increment of the diffusion coefficient of the SVs in the cluster. Moreover, using a machine learning approach, we identify presynaptic terminals that were potentiated after LTP induction. Lastly, we show that the local SV density is a volume-independent property under strong regulation. Altogether, these results provide evidence that the SV cluster is undergoing a transition during LTP.

neuroscience↗