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Norland, S.

Publications and source records attributed to Norland, S..

3 recordsLinked to original sources

Developmental genetic response of the zooplanktonic tunicate Oikopleura dioica to marine noise pollution.

BackgroundAnthropogenic noise is an emerging threat to marine ecosystems, yet its effects on marine invertebrates, particularly zooplanktonic species, remain poorly understood. Despite increasing evidence of behavioral and physiological impacts in invertebrates, the effects of noise on embryonic development and the molecular mechanisms underlying acoustic responses remain largely unexplored. Here, to address this gap, we investigated the impact of high-intensity underwater noise exposure on embryogenesis of the appendicularian tunicate Oikopleura dioica, a cosmopolitan zooplanktonic tunicate that plays important ecological roles in marine trophic webs and carbon cycling. Under lab-controlled conditions, we examined the effects of experimental noise exposure on early embryogenesis at both morphological and transcriptomic levels using RNA-seq in 8-cell (8c) and early tailbud (ETB) stages. ResultsNoise exposure produced no significant increase in embryo malformations compared to non-exposed controls, indicating substantial phenotypic resilience under laboratory conditions. Interestingly, transcriptomic analyses revealed a rapid molecular response of 70 differentially expressed genes (DEG) already detectable after only 30 minutes of exposure at the 8-cell stage, which became markedly amplified with 700 DEGs by the ETB stage. Together, differential expression, GO enrichment, and co-expression network analyses identified coordinated regulation of processes associated with membrane homeostasis, pyrimidine/CTP metabolism, extracellular matrix organization, cytoskeletal architecture, RNA regulation, translational control, proteostasis, mitochondrial metabolism, and developmental pathways. Importantly, both developmental stages precede the formation of differentiated mechanosensory structures, suggesting that the observed responses are unlikely to reflect conventional sound perception. ConclusionsThese findings provide the first molecular characterization of noise effects during O. dioica embryogenesis and reveal an unexpected molecular sensitivity of O. dioica embryos to underwater noise despite preserved morphological development. The transcriptional signatures support a mechanobiological framework in which acoustic exposure may directly perturb cellular mechanical homeostasis through membrane-and cytoskeleton-associated processes, triggering compensatory stress-adaptation responses involving proteostasis, RNA regulation, and metabolic reprogramming. Together, these findings establish O. dioica as a valuable emerging model for investigating the developmental and evolutionary consequences of acoustic pollution in marine ecosystems.

developmental biology↗

Behavioral ontogeny in a pelagic tunicate reveals the deep origins of chordate behavioral developmental plasticity.

Behavioral developmental plasticity refers to the lasting changes in an organisms behavior that occur during development in response to external and internal cues, enhancing survival and reproduction. While well studied in vertebrates, its occurrence in other chordates, including tunicates, the closest relatives of vertebrates, remains unclear. We built a behavioral atlas of the planktonic tunicate Oikopleura dioica across its life cyclefrom larval to adult stages using high-throughput tracking and unsupervised analysis. Swimming kinematics, exploration, and thigmotaxis increased with development. Adults exhibit a unique innovation, known as the house, a complex extracellular filtration structure encasing the animal trunk, which drastically alters locomotion and exploration compared to free-swimming individuals. Postural variation during ontogeny is captured by seven basic shapes ("eigenoikopleuras"), with complex shapes becoming more frequent over time. Spatiotemporal embedding and Hidden Markov modeling revealed that behavioral refinement arises from changes in motor modules and their transitions. House occupancy similarly shifts these modules, indicating context-specific specialization. This continuous behavioral maturation parallels Oikopleuras neotenic morphology, retaining a larval body plan unlike other tunicates. Our atlas provides a quantitative framework for exploring the evolution of behavioral developmental plasticity in chordates.

animal behavior and cognition↗

The evolution of embodied postural dynamics underlies behavioral diversity in benthic sessile chordate

Benthic animals live on or in the seafloor, a habitat known as the benthic zone. These bottom-dwelling organisms account for the largest fraction of animal diversity in our seas, playing vital roles in nutrient cycling, sediment stabilization and the broader food webs. Historically, the behavioral repertoire of benthic animals attached permanently to the sea floor has been considered as extremely limited (if at all present), reflecting an evolutionary adaptation to their sessile lifestyle and simplified nervous systems. Here, we overturn this view by studying the spontaneous and stimulus evoked behavioral repertoire of the basal chordate Ciona intestinalis which has a benthic sessile adult stage. We found that Ciona adults transition between three main postural engagement behavioral states. These are defined by different body part kinematics and postural dynamics characterised by changes in body shape configuration as opposed to locomotion. Transitions between states can occur probabilistically in spontaneously behaving animals suggesting that they can be internally generated by the simple brain of an adult Ciona. Importantly, using spatiotemporal embedding of postural features, we constructed a behavioral space for Ciona adults, which was divided into 18 stereotyped behavioral modes revealing the unappreciated richness of adult Ciona behaviors. Our analysis showed that Ciona adults can deploy in a selective manner these behavioral modules to elicit distinct responses to different mechanical stimuli, suggesting the presence of a sensory context dependent regulation of behavior in these benthic organisms. Our study raises the possibility that embodied postures is underlie the evolution of behavioral repertoires in sessile benthic animals.

animal behavior and cognition↗