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Klaus, T.

Publications and source records attributed to Klaus, T..

2 recordsLinked to original sources

Attraction of female house mice to male ultrasonic courtship vocalizations depends on their social experience and estrous

Male house mice (Mus musculus) produce complex ultrasonic vocalizations (USVs), especially during courtship and mating. Playback experiments suggest that female attraction towards recordings of male USVs depends on their social experience, paternal exposure, and estrous stage. We conducted a playback experiment with wild-derived female house mice (M. musculus musculus) and compared their attraction to male USVs versus the same recording without USVs (background noise). We tested whether female attraction to USVs is influenced by the following factors: (1) social housing (two versus one female per cage); (2) neonatal paternal exposure (rearing females with versus without father); and (3) sexual receptivity (pro-estrous and estrous stages versus non-receptive metestrous and diestrous stages). We found that females showed a significant attraction to male USVs but only if females were housed with another female. Individually housed females showed the opposite response. We found no evidence that pre-weaning exposure to a father influenced females preferences, whereas sexual receptivity influenced females attraction to male USVs: non-receptive females showed preferences towards male USVs but receptive females did not. Finally, we found that individually housed females were more likely to be in sexually receptive estrous stages than those housed socially, and that attraction to male USVs was most pronounced amongst non-receptive females that were socially housed. Our findings indicate that the attraction of female mice to male USVs depends upon their social experience and estrous stage, though not paternal exposure. They contribute to the growing number of studies showing that social housing and estrous stage influence the behavior of house mice and we show how such unreported variables can contribute to the replication crisis.

animal behavior and cognition↗

Environmental activity-based protein profiling for function-driven enzyme discovery from natural communities

Microbial communities are significant drivers of global biogeochemical cycles, yet accurate function prediction of their proteome and discerning their activity in situ for bioprospecting remains challenging. Here, we present environmental activity-based protein profiling (eABPP) as a novel proteomics-based approach bridging the gap between environmental genomics, correct function annotation and in situ enzyme activity. As a showcase, we report the successful identification of active thermostable serine hydrolases by combining genome-resolved metagenomics and mass spectrometry-based eABPP of natural microbial communities from two independent hot springs in Kamchatka, Russia. eABPP does not only advance current methodological approaches by providing evidence for enzyme and microbial activity in situ but also represents an alternative approach to sequence homology-guided biocatalyst discovery from environmental ecosystems.

biochemistry↗