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Angell Swearer, A.

Publications and source records attributed to Angell Swearer, A..

2 recordsLinked to original sources

Spinal cord regeneration deploys cell-type specific developmental and non-developmental strategies to restore neuron diversity

A major goal of spinal cord injury research is to develop a path to endogenous regeneration. This approach has been heavily informed by animal models of natural regeneration. An unresolved question is whether these models rebuild the spinal cord by exclusively accessing developmental mechanisms of neuron differentiation. To address this question, we contrasted single-cell gene expression during regeneration with stage-matched controls in the conditionally regenerative frog Xenopus tropicalis. We generated an expanded atlas of neuronal diversity, annotating several neurons in Xenopus for the first time. From this atlas, we found that the neuron composition of the developing and regenerating spinal cord differ. So do the strategies employed, which favor waves of cell-type specific neuron morphogenesis, proliferation, and proliferative neurogenesis during regeneration. Low levels of early neurogenesis are then compensated by movement of post-mitotic neurons. Our work highlights the use of distinct developmental versus regenerative paths to heal post-injury.

developmental biology↗

Shh signaling directs dorsal ventral patterning in the regenerating X. tropicalis spinal cord

Tissue development and regeneration rely on the deployment of embryonic signals to drive progenitor activity and thus generate complex cell diversity and organization. One such signal is Sonic Hedgehog (Shh), which establishes the dorsal-ventral (D/V) axis of the spinal cord during embryogenesis. However, the existence of this D/V axis and its dependence on Shh signaling during regeneration varies by species. Here we investigate the function of Shh signaling in patterning the D/V axis during spinal cord regeneration in Xenopus tropicalis tadpoles. We find that neural progenitor markers Msx1/2, Nkx6.1, and Nkx2.2 are confined to dorsal, intermediate and ventral spatial domains, respectively, in both the uninjured and regenerating spinal cord. These domains are altered by perturbation of Shh signaling. Additionally, we find that these D/V domains are more sensitive to Shh perturbation during regeneration than uninjured tissue. The renewed sensitivity of these neural progenitor cells to Shh signals represents a regeneration specific response and raises questions about how responsiveness to developmental patterning cues is regulated in mature and regenerating tissues.

developmental biology↗