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Kromp, J.

Publications and source records attributed to Kromp, J..

2 recordsLinked to original sources

Finding a path: Local search behavior of Drosophila larvae

Orientation and navigation are essential features of animals living in changing environments. Typically, animals integrate a variety of allothetic and idiothetic cues to achieve their navigational goals. Allothetic cues, such as visual or chemical landmarks from the environment, provide an external frame of reference. In contrast, idiothetic cues are based on internal proprioceptive feedback and internal copies of motor commands. When Drosophila larvae are exposed briefly to a Teflon container holding a food stimulus, they show a characteristic behavior as soon as the container is removed: They briefly crawl away from the detected resource, remain in its vicinity and then return to the area where they experienced the earlier stimulus. We quantified this behavior with respect to the chemosensory nature of the stimulus, starvation time of the larvae, and agarose concentration of the test plate substrate. We conclude that this behavior represents a centered local search. Furthermore, we exclude various external stimuli (vision and taste), which suggests that possibly idiothetic as opposed to allothetic cues have a stronger influence on the larval local search behavior. In the long term, this behavioral description will enable us to gain insights into the comparability of larval foraging strategies. We also want to investigate whether, despite the simpler organization of the larval brain and the alleged lack of a central complex, a brain region that is important for orientation and navigation in adult Drosophila and other insects, there are common solutions for the brain circuits underlying search behavior.

animal behavior and cognition↗

Drosophila Bchs overexpression recapitulates human WDFY3 neurodevelopmental phenotypes with implications for glial cell involvement in altered head circumference

The autophagy adaptor WDFY3 is linked to neurodevelopmental delay and altered brain size. Loss-of-function variants are associated with an increased brain size in both humans and mice. We thus, hypothesized that the microcephaly observed in some of the patients may be related to a gain-of-function of the WDFY3 gene product. While the role of WDFY3 loss-of-function has been studied extensively in neurons, little is known about the effects of WDFY3 overexpression in different neural cell types. We utilized a Drosophila melanogaster overexpression model to investigate the effect of the WDFY3 ortholog Bchs (blue cheese) on development, CNS size, and gene expression profiles. Glial and neuronal overexpression of Bchs impaired CNS development, locomotion and autophagy. Glial overexpression of Bchs also altered CNS size significantly. We identified 79 genes that were differentially expressed and overlapped in flies that overexpress Bchs in glial and neuronal cells, respectively. Additionally, upon neuronal Bchs overexpression differentially expressed genes clustered in gene ontology categories associated with autophagy and mitochondria. Our data indicate that WDFY3/Bchs overexpression in both neurons and glial cells results in impaired neural development, which corresponds to symptoms observed in WDFY3-related neurodevelopmental delay.

neuroscience↗