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Single-Molecule Fluorescence In Situ Hybridization (smFISH) for RNA Localization Relative to a DNA Locus in Bacteria.

When studying the localization of RNA within a cell, it is important to probe RNA relative to a subcellular landmark, such as a gene locus (transcription site). In this chapter, we describe a single-molecule fluorescence in situ hybridization (smFISH) protocol for labeling target RNAs and their DNA loci in bacteria. This is a versatile protocol applicable to various genes and species, providing valuable insights into RNA localization in bacterial cells.

In Situ Hybridization, Fluorescence

Analysis of gene expression within individual cells reveals spatiotemporal patterns underlying Vibrio cholerae biofilm development.

Bacteria commonly exist in multicellular, surface-attached communities called biofilms. Biofilms are central to ecology, medicine, and industry. The Vibrio cholerae pathogen forms biofilms from single founder cells that, via cell division, mature into three-dimensional structures with distinct, yet reproducible, regional architectures. To define mechanisms underlying biofilm developmental transitions, we establish a single-molecule fluorescence in situ hybridization (smFISH) approach that enables accurate quantitation of spatiotemporal gene-expression patterns in biofilms at cell-scale resolution. smFISH analyses of V. cholerae biofilm regulatory and structural genes demonstrate that, as biofilms mature, overall matrix gene expression decreases, and simultaneously, a pattern emerges in which matrix gene expression becomes largely confined to peripheral biofilm cells. Both quorum sensing and c-di-GMP-signaling are required to generate the proper temporal pattern of matrix gene expression. Quorum sensing signaling is uniform across the biofilm, and thus, c-di-GMP-signaling alone sets the regional matrix gene expression pattern. The smFISH strategy provides insight into mechanisms conferring particular fates to individual biofilm cells.

Biofilms

Complementation of a human disease phenotype by intercellular mRNA transfer.

There is growing evidence that mRNAs undergo intercellular transfer through cytoplasmic connections called tunneling nanotubes (TNTs), but whether transferred mRNAs are translated and affect cellular changes post-transfer is unknown. Using multiple lines of evidence, we show that transferred mRNAs undergo translation and can complement the phenotype of genetic mutations in vitro. For example, the human peroxisome biogenesis disorder, Zellweger Syndrome, results from mutations in genes such as PEX5 and PEX6. We demonstrate that the co-culture of patient-derived PEX6 mutant fibroblasts or PEX5 knockout cells with wild-type cells leads to de novo peroxisome biogenesis. We provide additional examples of genetic complementation via transfer of mRNAs encoding the HSF1 transcription factor or CRE recombinase. Complementation occurs by TNT-mediated mRNA transfer and translation in acceptor cells, but not by exosomes, nor by protein or peroxisome transfer. Our study provides evidence for the physiological significance of mRNA transfer and suggests another approach for mRNA therapeutics.

CP: cell biology