Temperature sensitivity of Notch signaling underlies species-specific developmental plasticity and robustness in amniote brains

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Abstract

Ambient temperature significantly affects developmental timing in animals. The temperature sensitivity of embryogenesis is generally believed to be a consequence of the thermal dependency of cellular metabolism. However, the adaptive molecular mechanisms that respond to variations in temperature remain unclear. Here, we report species-specific thermal sensitivity of Notch signaling in the developing amniote brain. Transient hypothermic conditions increase canonical Notch activity and reduce neurogenesis in chick neural progenitors. Increased biosynthesis of phosphatidylethanolamine, a major glycerophospholipid components of the plasma membrane, mediates hypothermia-induced Notch activation. Furthermore, the species-specific thermal dependency of Notch signaling is associated with developmental robustness to altered Notch signaling. Our results reveal unique regulatory mechanisms for temperature-dependent neurogenic potentials that underlie developmental and evolutionary adaptations to a range of ambient temperatures in amniotes.

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Nomura, T., Nagao, K., Shirai, R., Gotoh, H., Umeda, M., & Ono, K. (2022). Temperature sensitivity of Notch signaling underlies species-specific developmental plasticity and robustness in amniote brains. Nature Communications, 13(1). https://doi.org/10.1038/s41467-021-27707-5

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