Search bioRxiv⌕ Search

Biology subjects

Sacksteder, R. E.

Publications and source records attributed to Sacksteder, R. E..

2 recordsLinked to original sources

Longitudinal tracking reveals developmental transitions in zebrafish clock gene expression

Circadian clocks coordinate physiological and behavioral rhythms by synchronizing biological processes with environmental cues. These rhythms emerge during development, but it remains unclear whether their component genes are activated by a common program or assembled through distinct regulatory pathways. To address this, we used longitudinal luciferase reporters to monitor per3 and per2 expression across zebrafish embryonic and larval development. Although both genes are canonical components of the circadian clock, they showed strikingly different developmental regulation. Two temporal frames of circadian gene expression were identified: an embryonic stage and a larval stage, each evident under different entrainment conditions. Per3 displayed early rhythmic expression in light/dark conditions, which was independent of per2 and cry1a light-entrainment regulation, but required bmal activity. Meanwhile, per2 displayed light-responsive transcription and remained largely bmal-independent. At the same time, both genes exhibited an endogenous embryonic expression that could not be explained solely by light-driven regulation, indicating that developmental inputs contribute to clock gene activation before mature larval rhythms are established. These findings demonstrate that the zebrafish circadian system is not assembled through a single synchronized onset of clock gene expression, but through gene-specific regulatory programs that shift across development.

cell biology↗

Streptococcus pneumoniae augments circadian clock gene expression in zebrafish cells

The circadian clock is a highly coordinated, cell-autonomous process that regulates the daily internal rhythms of biological organisms. Circadian clocks have been identified in various organisms, including mammals, invertebrates, cyanobacteria, and plants. The zebrafish (Danio rerio) is a practical model for studying the vertebrate circadian clock due to its small size, ease of manipulation, gene tractability, and direct light responsiveness. Several studies have revealed that bacterial, viral, and parasitic infections can impact the expression of circadian genes in mammals. While some evidence suggests that this may also be the case in zebrafish, no studies have investigated the direct effects of bacterial exposure on the zebrafish clock. Here, using zebrafish Z3 cells, we show that exposure to heat-killed Streptococcus pneumoniae (HK-Spn) can augment the expression of core repressive factors, including per1b, per2, per3, and cry1a. Further investigation demonstrated that HK-Spn induces the production of reactive oxygen species (ROS) in Z3 cells and that the addition of NAC, a ROS antioxidant, blocks Spn-mediated induction of per2, cry1a, and per3. Additionally, HK-Spn augmented the expression of tefa and tefb, an effect NAC suppressed. These results suggest the involvement of a ROS-dependent pathway in the augmentation of per2, cry1a, and per3 by HK-Spn. Moreover, the activation of tefa and tefb by HK-Spn represents promising new targets for further investigation of the regulation of these genes.

microbiology↗