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Schneeweiss, U.

Publications and source records attributed to Schneeweiss, U..

2 recordsLinked to original sources

The Molecular Architecture of Somatic Spines of the Lateral Septum

The lateral septum is a key subcortical structure and has been implicated in kinship memory. Across species, the ability to recognise relatives is conserved and is reflected in stable, lifelong memories. The molecular mechanisms underlying kinship memory remain elusive. Here we investigate the synaptic architecture of septal circuits and focus on somatic spines, an apparent synaptic specialisation of this mainly GABAergic structure. We uncover the molecular organisation of septal somatic spines found in the lateral septum using a combination of unbiased imaging methods and confocal microscopy. We used classical label-free methods such as transmission electron microscopy and Golgi stainings and established new culturing methods for dissociated and organotypic septal slice cultures that were kept in culture over multiple weeks. We describe the presence, morphology, ultrastructure and molecular composition of excitatory somatic spines across multiple developmental stages in various model systems. While smaller than dendritic spines, somatic spines exhibited distinct features, frequently containing secretory organelles such as phagophores and endosomes, but often lack a spine apparatus and ribosomes. Our findings offer insights on the molecular architecture of septal somatic spines and establish a basis for further investigations on the somatic spines of the lateral septum and their role in kinship memory. Significance statementSpine synapses represent stable synaptic connections that allow neurons to chemically communicate with each other. Although known for decades, the unusual spine synapses found directly on neuronal cell bodies in the lateral septum have not been characterised in detail. Using traditional, unbiased approaches such as electron microscopy and Golgi stainings, we replicate the initial findings. Additionally, using fluorescent microscopy of dissociated and organotypic septal cultures, we characterise the development and composition of septal somatic spines. We find that they are excitatory, contain membranous organelles and develop independently of extra-septal input. We thus describe model systems suitable for the investigation of somatospiny neurons of the lateral septum.

neuroscience↗

A Myelin Map of Trunk Folds in the Elephant Trigeminal Nucleus

Elephants have elaborate trunk skills and large, but poorly understood brains. Here we study trunk representations in elephant trigeminal nuclei, which form large protrusions on the ventral brainstem. These ventral brainstem protrusions have previously been referred to as inferior olive, but a delineation of the olivo-cerebellar tract reveals these (trigeminal) nuclei are not connected to the cerebellum via climbing fibers. In contrast, the olivo-cerebellar tract connects to a large dorsolateral nucleus with a serrated cellular architecture, the putative elephant inferior olive. Dense vascularization and intense cytochrome-oxidase reactivity distinguish several elongated trigeminal putative trunk modules, which repeat in the anterior-posterior direction. We focus on the most anterior and largest of these units, the putative nucleus principalis trunk module. Module neuron density is low and non-neural cells outnumber neurons by [~]108:1. Dendritic trees are elongated along the axis of axon bundles (myelin stripes) transversing the trunk module. Synchrotron X-ray-phase-contrast tomography suggests myelin-stripe-axons transverse the trunk module. We show a remarkable correspondence of trunk module myelin stripes and trunk folds. Myelin stripes show little relation to trigeminal neurons and stripe-axons appear to often go nowhere; we suggest that myelin stripes might serve to separate trunk-fold domains rather than to connect neurons. Myelin-stripes-to-folds mapping allowed to determine neural magnification factors, which changed from 1000:1 proximally to 5:1 in the trunk finger. Asian elephants have fewer ([~]640,000) trunk-module neurons than Africans ([~]740,000) and show enlarged representations of trunk parts involved in object wrapping. The elephant trigeminal trunk module is exquisitely organized into trunk-fold-related units.

neuroscience↗