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Takana, M.

Publications and source records attributed to Takana, M..

2 recordsLinked to original sources

Activity-regulated micro-exon splicing programs underlie late-onset plasticity at the axon initial segment

The axon initial segment (AIS) is a specialized neuronal compartment located at the proximal end of axons and initiates action potentials. AIS undergoes plastic changes with aging, disease, and activity levels; however, the molecular mechanisms underlying their plasticity remain unclear. We discovered that depolarization induces diffuse elongation of the AIS in cerebellar granule cells over the span of days via the Ca2+-dependent ERK/MAP kinase pathway. These structural changes were accompanied by a decrease in voltage-gated Na+ channel density, resulting in a homeostatic attenuation in neuronal excitability. Notably, we found that the late-onset AIS plasticity is associated with depolarization-induced alternative splicing of smaller exons (<100 nt) of transcripts encoding AIS-enriched proteins. In addition, depolarization-induced the skipping of the 53-nt exon19 from the transcript of the splicing protein Rbfox1. CRISPR-mediated removal of exon 19 from Rbfox1 promoted its nuclear localization and sequentially induced a series of downstream micro-exon splicing changes in several AIS proteins, recapitulating cerebellar AIS plasticity. In a Rbfox1-independent mechanism, depolarization-induced insertion of the developmentally regulated micro-exon 34 into the key AIS scaffolding protein Ankyrin G (AnkG). The constitutive insertion of exon 34 into AnkG disrupted its interaction with the AIS cytoskeletal protein {beta}IV spectrin and induced plastic changes in the AIS. Our findings provide fundamental mechanistic insights into the activity-mediated late-onset plasticity of AIS, highlighting the power of micro-scale splicing events in the homeostatic regulation of axonal remodeling.

neuroscience↗

A multi-kingdom genetic barcoding system for precise target clone isolation

Clonal heterogeneity underlies diverse biological processes, including cancer progression, cell differentiation, and microbial evolution. Cell tagging strategies with DNA barcodes have recently enabled analysis of clone size dynamics and clone-restricted transcriptomic landscapes of heterogeneous populations. However, isolating a target clone that displays a specific phenotype from a complex population remains challenging. Here, we present a new multi-kingdom genetic barcoding system, CloneSelect, in which a target cell clone can be triggered to express a reporter gene for isolation through barcode-specific CRISPR base editing. In CloneSelect, cells are first barcoded and propagated so their subpopulation can be subjected to a given experiment. A clone that shows a phenotype or genotype of interest at a given time can then be isolated from the initial or subsequent cell pools stored throughout the experimental timecourse. This novel CRISPR-barcode genetics platform provides many new ways of analyzing and manipulating mammalian, yeast, and bacterial systems. TeaserA multi-kingdom CRISPR-activatable barcoding system enables the precise isolation of target barcode-labeled clones from a complex cell population.

synthetic biology↗