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Julick, C.

Publications and source records attributed to Julick, C..

2 recordsLinked to original sources

Fat cadherin cleavage releases a transcriptionally active nuclear fragment to regulate target gene expression

The conserved atypical cadherin fat (ft) controls cellular processes such as growth, planar cell polarity, and mitochondrial function, in organisms ranging from fruit flies to mammals. Working at the apical-junctional plasma membrane the intracellular domain of the Ft protein, FtICD, binds to and regulates components of the Hippo and PCP pathways. Unexpectedly, we show that FtICD is present in the nucleus in cultured cells as well as in embryonic and larval tissues, and identify nuclear localization and nuclear export signals in FtICD required for this localization. We show that membrane-bound FtICD is cleaved and enters nuclei in vivo. Using endogenously tagged Ft as well as overexpressed FtICD we conducted ChIP-seq experiments and identified putative Ft targets including genes involved in signaling pathways, chromatin organization, pattern formation, and neural development. RNAseq demonstrates that some of these genes are differentially regulated in ft mutants. We observe strong correlations of Ft binding regions with peaks for other factors such as DREF and BEAF-32, as well as the Hpo pathway components Yorkie (Yki) and Scalloped (Sd), suggesting that Ft may act in conjunction with these factors to regulate gene expression. Supporting this hypothesis, we found that Ft can physically interact with both Yki and Sd in co-immunoprecipitation experiments in S2 cells. We propose that the modulation of Hippo pathway activity constitutes one of the nuclear functions of Ft, complementing its established function as an upstream regulator of Hippo signaling.

developmental biology↗

Seasonal plasticity in morphology and metabolism differs between migratory North American and resident Costa Rican monarch butterflies

Environmental heterogeneity in temperate latitudes is expected to maintain seasonally plastic life-history strategies that include the tuning of morphologies and metabolism that support overwintering. For species that have expanded their ranges into tropical latitudes, it is unclear the extent to which the capacity for plasticity will be maintained or will erode with disuse. The migratory generations of the North American (NA) monarch butterfly Danaus plexippus lead distinctly different lives from their summer generation NA parents and their tropical descendants living in Costa Rica (CR). NA migratory monarchs postpone reproduction, travel thousands of kilometers south to overwinter in Mexico, and subsist on little food for months. Whether recently dispersed populations of monarchs such as those in Costa Rica, which are no longer subject to selection imposed by migration, retain ancestral seasonal plasticity is unclear. To investigate differences in seasonal plasticity, we reared NA and CR monarchs in summer and autumn in Illinois, USA, and measured seasonal reaction norms for aspects of morphology and metabolism related to flight. NA monarchs were seasonally plastic in forewing and thorax size, increasing wing area and thorax to body mass ratio in autumn. While CR monarchs increased thorax mass in autumn, they did not increase the area of the forewing. NA monarchs maintained similar resting and maximal flight metabolic rates across seasons. However, CR monarchs had elevated metabolic rates in autumn. Our findings suggest that the recent expansion of monarchs into habitats that support year-round breeding may be accompanied by (1) the loss of some aspects of morphological plasticity as well as (2) the underlying physiological mechanisms that maintain metabolic homeostasis in the face of temperature heterogeneity.

evolutionary biology↗