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Reuschenbach, J.

Publications and source records attributed to Reuschenbach, J..

2 recordsLinked to original sources

Effects of stimulus timing on the acquisition of an olfactory working memory task in head-fixed mice

Knowing what factors affect the acquisition of a behavioural task is central to understanding the mechanisms of learning and memory. It also has practical implications, as animal behavioural experiments used to probe cognitive functions often require long training durations. Delayed Match (or Non-Match)-to-Sample (DMS/DNMS) tasks are relatively complex tasks used to study working memory and sensory perception, but their use in the mouse remains hampered by the lengthy training involved. In this study, we assessed two aspects of stimulus timing on the acquisition of an olfactory DNMS task: how the sample-test odour delay durations and the reward timing affect the acquisition rate. We demonstrate that head-fixed mice learn to perform an olfactory DNMS task more quickly when the initial training uses a shorter sample-test odour delay without detectable loss of generalisability. Unexpectedly, we observed a slower task acquisition when the odour-reward interval was shorter. This effect was accompanied by a shortening of reaction times and more frequent sporadic licking. Analysis of this result using a drift-diffusion model indicated that a primary consequence of early reward delivery is a lower decision bound. Since an accurate performance with a lower decision bound requires greater discriminability in the sensory representations, this may underlie the slower learning rate with early reward arrival. Together, our results reflect the possible effects of stimulus timing on stimulus encoding and its consequence on the acquisition of a complex task.

neuroscience↗

Conservation and divergence of myelin proteome and oligodendrocyte transcriptome profiles between humans and mice

Human myelin disorders are commonly studied in mouse models. Since both clades evolutionarily diverged approximately 85 million years ago, it is critical to know to what extent the myelin protein composition has remained similar. Here we use quantitative proteomics to analyze myelin purified from human white matter and find that the relative abundance of the structural myelin proteins PLP, MBP, CNP and SEPTIN8 correlates well with that in C57Bl/6N- mice. Conversely, multiple other proteins were identified exclusively or predominantly in human or mouse myelin. This is exemplified by peripheral myelin protein-2 (PMP2), which was specific to human CNS myelin, while tetraspanin-2 (TSPAN2) and connexin-29 (CX29/GJC3) were confined to mouse myelin. Assessing published scRNA-seq-datasets, human and mouse oligodendrocytes display well-correlating transcriptome profiles but divergent expression of distinct genes including Pmp2, Tspan2 and Gjc3. Species-dependent diversity of oligodendroglial mRNA-expression and myelin protein composition can be informative when translating from mouse models to humans.

neuroscience↗