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Bock, A. K.

Publications and source records attributed to Bock, A. K..

2 recordsLinked to original sources

Tracking changes in behavioural dynamics using prediction error

Automated analysis of video can now generate extensive time series of pose and motion in freely-moving organisms. This requires new quantitative tools to characterize behavioural dynamics. For the model roundworm Caenorhabditis elegans, body pose can be accurately quantified from video as coordinates in a single low-dimensional space. We focus on this well-established case as an illustrative example and propose a method to reveal subtle variations in behaviour at high time resolution. Our data-driven method, based on empirical dynamic modeling, quantifies behavioural change as prediction error with respect to a time-delay-embedded attractor of behavioural dynamics. Because this attractor is constructed from a user-specified reference data set, the approach can be tailored to specific behaviours of interest at the individual or group level. We validate the approach by detecting small changes in the movement dynamics of C. elegans at the initiation and completion of delta turns. We then examine an escape response initiated by an aversive stimulus and find that the method can track return to baseline behaviour in individual worms and reveal variations in the escape response between worms. We suggest that this general approach - defining dynamic behaviours using reference attractors and quantifying dynamic changes using prediction error - may be of broad interest and relevance to behavioural researchers working with video-derived time series.

bioinformatics

Interactions across life stages and thermal tolerance plasticity in Tigriopus californicus

In response to rapid environmental change, organisms rely on both genetic adaptation and phenotypic plasticity to adjust key traits that are necessary for survival and reproduction. Given the accelerating rate of climate change, plasticity may be particularly important. For organisms in warming aquatic habitats, upper thermal tolerance is likely to be a key trait, and many organisms express plasticity in this trait in response to developmental or adulthood temperatures. Although plasticity at one life stage may influence plasticity at another life stage, relatively little is known about these interactive effects for thermal tolerance. Here we used locally adapted populations of the intertidal copepod Tigriopus californicus to investigate these interactions in a marine ectotherm. We found that low latitude populations had greater critical thermal maxima (CTmax) than high latitude populations, and variation in developmental temperature altered CTmax plasticity in adulthood. After development at 25{degrees}C, CTmax was plastic in adults, whereas no adult plasticity in this trait was observed after 20{degrees}C development. This pattern was identical across four populations, suggesting that local thermal adaptation has not shaped this interactive effect. However, differences in the capacities to maintain ATP synthesis rates and to induce heat shock proteins at high temperatures, two likely mechanisms of local adaptation in this species, were consistent with changes in CTmax due to developmental temperatures, suggesting there is mechanistic overlap between plastic interactions and adaptation in general. These results indicate that interactive effects of plasticity across life stages may have substantial impacts on upper thermal tolerance in ectothermic organisms.\n\nSummary statementDevelopmental temperatures alter the plasticity of thermal limits in adults of a marine ectotherm, and differences in ATP synthesis rate and heat shock protein expression parallel the changes in tolerance.

zoology