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Ortega-Gurrola, A.

Publications and source records attributed to Ortega-Gurrola, A..

2 recordsLinked to original sources

Cell-type Plasticity Supports Behavioral Adaptations at the Water-to-Land Interface

Animals inhabiting aquatic or terrestrial habitats experience different constraints on their physiology and locomotion, and are exposed to fundamentally different sensory environments. Across evolutionary timescales, most species have adapted to live exclusively either in water or on land. Newts are among the vertebrates that defy this rule and split their adult lives between freshwater ponds and terrestrial habitats. In these amphibians, transitions across environments cause remarkable phenotypic plasticity in their body morphology. But whether and how the nervous system and behavior also adapt to these environmental changes remains poorly explored. Here, we establish the Iberian ribbed newt Pleurodeles waltl as a new model to study the neurobiology of environmental plasticity in a vertebrate. We first show that experimental transitions between aquatic and terrestrial laboratory settings recapitulate morphological changes observed in the wild. Furthermore, aquatic and terrestrial newts display plasticity in sensory and motor behaviors, including differences in walking gait and odor responsiveness. In the olfactory system, the transition from water to land involves a profound remodeling of the nasal epithelium, including reversible transcriptomic changes in secretory and support cells, and an increase of neurogenesis. Together, our findings reveal how plasticity of specific cell types in the nervous system supports behavioral adaptations across environments. More broadly, this work establishes newts as a model to study the functional constraints and convergent adaptations that may have shaped the evolution of vertebrate nervous systems in water and on land.

neuroscience↗

Glial cell states bias the regeneration of neuron types across the newt life cycle

Salamanders have outstanding regenerative abilities, which tend to decline in post-metamorphic life stages. Among various tissues, these amphibians can regenerate the brain from ependymoglia cells, an adult neural stem cell population. Ependymoglia cells are heterogeneous; yet, whether ependymoglia cell diversity underlies variation of regenerative capacity across brain regions and life cycle stages remains poorly studied. Here we present a cell type comparison of regeneration in the pallium (dorsal telencephalon) of pre- and post-metamorphic newts. We found that ependymoglia cells exist in a continuum of cell states ranging from active proliferation to quiescence across life cycle stages, with a deep quiescence state featuring expression of mammalian astrocyte genes. Ependymoglia cell state changes are associated with a slower onset of proliferation and neurogenesis in post-metamorphic animals. Comparisons with developmental and adult neurogenesis reveal that pallial ependymoglia cells retain regional restrictions but can override temporal fate restrictions in response to an injury, producing neurons that are normally born only in early development. We thus find that brain regeneration in newts is not a simple amplification of adult neurogenesis, but a distinct process where the initial molecular state of ependymoglia cells biases the relative proportions of regenerated neuron types. Our findings establish post-metamorphic newts as a system to study how astrocyte-like glial cells can activate a neurogenic program in response to brain injury.

developmental biology↗