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Hotta, R.

Publications and source records attributed to Hotta, R..

2 recordsLinked to original sources

Differentiated neuroblastoma cells remain epigenetically poised for de-differentiation to an immature state

Neuroblastoma is the most common extracranial solid tumor of childhood and accounts for a significant share of childhood cancer deaths. Prior studies utilizing RNA sequencing of bulk tumor populations showed two predominant cell states characterized by high and low expression of neuronal genes. Although cells respond to treatment by altering their gene expression, it is unclear whether this reflects shifting balances of distinct subpopulations or plasticity of individual cells. Using neuroblastoma cell lines lacking MYCN amplification, we show that the antigen CD49b distinguishes these subpopulations. CD49b expression marks proliferative cells with an immature gene expression program, while CD49b-negative cells express differentiated neuronal marker genes and are quiescent. Sorted populations spontaneously switch between CD49b expression states in culture, and CD49b-negative cells can generate rapidly growing, CD49b-positive tumors in mice. We profiled H3K27ac to identify enhancers and super enhancers that are specifically active in each population and find that CD49b-negative cells maintain the priming H3K4me1 mark at elements that are active in CD49b-high cells. Improper maintenance of primed enhancer elements thus may underlie cellular plasticity in neuroblastoma, representing potential therapeutic targets for this lethal tumor. Summary StatementThis study demonstrates that neuroblastoma cells can interconvert between a state characterized by expression of neuronal genes and a de-differentiated state.

cancer biology↗

Integrated single-cell analysis of enteric glial cells reveals a molecular basis for postnatal neurogenesis and its therapeutic application

The enteric nervous system (ENS) consists of glial cells (EGCs) and neurons derived from neural crest precursors. EGCs retain capacity for large-scale neurogenesis in culture, and in vivo lineage tracing has identified neurons derived from glial cells in response to inflammation. We thus hypothesize that EGCs possess a chromatin structure poised for neurogenesis. We use single-cell multiome sequencing to assess EGCs undergoing spontaneous neurogenesis in culture, as well as freshly isolated small intestine myenteric plexus EGCs. Cultured EGCs maintain open chromatin at genomic loci accessible in neurons, and neurogenesis from EGCs involves dynamic chromatin rearrangements with a net decrease in accessible chromatin. Multiome analysis of freshly isolated EGCs reveals transcriptional diversity, with open chromatin at neuron-associated genomic elements. A subset of EGCs, highly enriched within the myenteric ganglia, has a gene expression program and chromatin state consistent with neurogenic potential.

neuroscience↗