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Bolanos, D. M.

Publications and source records attributed to Bolanos, D. M..

2 recordsLinked to original sources

PCP components control anterior and posterior regeneration, with a Prickle homolog impacting muscle organization, in the acoel Hofstenia miamia

Whole-body regeneration requires wound response signals to control patterning programs to enable replacement of structures in their correct locations. While a number of molecular mechanisms underlying anterior-posterior regeneration have been identified, how small fragments of animals first re-establish polarity is less well understood, with non-canonical Wnt signaling recently emerging as a potential regulator. Here, we used the acoel worm Hofstenia miamia, a new research organism capable of robust whole-body regeneration, to assess functions of the components of the Planar Cell Polarity (PCP) pathway in establishing regeneration polarity. We identified homologs of Prickle (pk-1) and Diego (dgo-1) to be required for head and tail regeneration, respectively. RNA-sequencing analysis and experimental corroboration revealed that pk-1 RNAi resulted in diminished expression of early wound response genes as well as of wound-induced expression of the anterior-specific marker fz-7, specifically in tail fragments. In contrast, dgo-1 RNAi impacted wound-induced expression of the posterior-specific marker tf7l2, specifically in head fragments. Furthermore, pk-1 and dgo-1 are enriched in longitudinal muscle, with muscle fibers showing disorganized morphology at anterior-facing wound sites of tail fragments under pk-1 RNAi. These findings suggest that pk-1 and dgo-1 are needed for wound-induced expression of anterior- and posterior-specific genes, and raise the possibility that this action is mediated via the control of muscle fiber orientation. Our work expands the study of PCP genes by revealing their functions in the process of whole-body regeneration in acoels, the sister-group to all other animals with bilateral symmetry, and will enable future studies of PCP components in controlling cellular and tissue-wide regeneration polarity.

developmental biology↗

Acoel single-cell atlas reveals expression dynamics and heterogeneity of a pluripotent stem cell population

Pluripotent adult stem cell populations underlie whole-body regeneration in many distantly related animal lineages. These collectively pluripotent populations of cells share some features across species, such as the expression of piwi and other germline-related genes. Studies of how these cells operate during regeneration are needed in diverse systems to determine how underlying cellular and molecular mechanisms of renewal and differentiation compare. Here, we sought to characterize stem cells and their dynamics in the acoel Hofstenia miamia, a highly regenerative marine worm with a piwi-expressing stem cell population called neoblasts. Transcriptome profiling at single cell resolution revealed cell types shared across postembryonic stages, including stem cells and differentiated cell types such as neural, epidermal, muscle, and digestive cells. Reconstruction of single-cell differentiation trajectories followed by functional studies confirmed that neoblasts are the source of differentiated cells and identified transcription factors needed for the formation of major cell types. Next, analysis of single-cell transcriptomes from regenerating worms showed that both differentiated cells and stem cells dynamically alter gene expression in response to amputation. Further analysis of the stem cells recovered subpopulations of neoblasts, each with specific transcriptional profiles suggesting that the majority of neoblasts are specialized to differentiated lineages, reflecting putatively lineage-primed progenitors. Notably, neoblast subsets in Hofstenia were identifiable consistently across postembryonic stages and also displayed differential expression dynamics in response to wounding. Altogether, these data suggest that whole-body regeneration is accomplished by the coordination of cells with distinct and dynamic transcriptomic profiles through time. Furthermore, the data generated here will enable the study of how this coordination is achieved, enhancing our understanding of pluripotent stem cells and their evolution across metazoans.

developmental biology↗