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Choi, A. A.

Publications and source records attributed to Choi, A. A..

2 recordsLinked to original sources

Perturbing RNA localization for functional study in neurons

Spatial RNA organization plays a pivotal role in diverse cellular processes and diseases, but the functional implications of spatial RNA localization remain underexplored. We present CRISPR-mediated transcriptome organization (CRISPR-TO) that harnesses RNA-guided, nuclease-dead dCas13 for programmable control of RNA localization in live cells. CRISPR-TO enables targeted localization of RNAs to diverse subcellular compartments, including p-bodies, stress granules, telomeres, and nuclear stress bodies, across cell types. In primary cortical neurons, we demonstrate that repositioned mRNAs undergo local translation along neurites and at neurite tips and co-transport with ribosomes, with {beta}-actin mRNA localization enhancing the formation of dynamic filopodial protrusions and inhibiting axonal regeneration. Furthermore, CRISPR-TO-enabled parallel screening in primary neurons identifies Stmn2 mRNA localization as a driver of neurite outgrowth. By enabling large-scale perturbation of the spatial transcriptome, CRISPR-TO bridges a critical gap left by current sequencing and imaging technologies, offering a versatile platform for high-throughput functional interrogation of RNA localization in living cells and organisms.

bioengineering↗

Single-molecule displacement mapping indicates unhindered intracellular diffusion of small (<~1 kDa) solutes

While fundamentally important, the intracellular diffusion of small (<~1 kDa) solutes has been difficult to elucidate due to challenges in both labeling and measurement. Here we quantify and spatially map the translational diffusion patterns of small solutes in mammalian cells by integrating several recent advances. In particular, by executing tandem stroboscopic illumination pulses down to 400-s separation, we extend single-molecule displacement/diffusivity mapping (SMdM), a super-resolution diffusion quantification tool, to small solutes with high diffusion coefficients D of >300 m2/s. We thus show that for multiple water-soluble dyes and dye-tagged nucleotides, intracellular diffusion is dominated by vast regions of high diffusivity ~60-70% of that in vitro, up to ~250 m2/s in the fastest cases. Meanwhile, we also visualize sub-micrometer foci of substantial slowdowns in diffusion, thus underscoring the importance of spatially resolving the local diffusion behavior. Together, these results suggest that the intracellular diffusion of small solutes is only modestly scaled down by the slightly higher viscosity of the cytosol over water, but otherwise not further hindered by macromolecular crowding. We thus lift a paradoxically low speed limit for intracellular diffusion suggested by previous experiments. Abstract Graphic O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY

biophysics↗