A DNA nanodevice for mapping sodium at single-organelle resolution.

Zou, Junyi; Mitra, Koushambi; Anees, Palapuravan; Oettinger, Daphne; Ramirez, Joseph R; Veetil, Aneesh Tazhe; Gupta, Priyanka Dutta; Rao, Rajini et al. · Nat Biotechnol · 2024

basic_science · Level V

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Abstract

Cellular sodium ion (Na<sup>+</sup>) homeostasis is integral to organism physiology. Our current understanding of Na<sup>+</sup> homeostasis is largely limited to Na<sup>+</sup> transport at the plasma membrane. Organelles may also contribute to Na<sup>+</sup> homeostasis; however, the direction of Na<sup>+</sup> flow across organelle membranes is unknown because organellar Na<sup>+</sup> cannot be imaged. Here we report a pH-independent, organelle-targetable, ratiometric probe that reports lumenal Na<sup>+</sup>. It is a DNA nanodevice containing a Na<sup>+</sup>-sensitive fluorophore, a reference dye and an organelle-targeting domain. By measuring Na<sup>+</sup> at single endosome resolution in mammalian cells and Caenorhabditis elegans, we discovered that lumenal Na<sup>+</sup> levels in each stage of the endolysosomal pathway exceed cytosolic levels and decrease as endosomes mature. Further, we find that lysosomal Na<sup>+</sup> levels in nematodes are modulated by the Na<sup>+</sup>/H<sup>+</sup> exchanger NHX-5 in response to salt stress. The ability to image subcellular Na<sup>+</sup> will unveil mechanisms of Na<sup>+</sup> homeostasis at an increased level of cellular detail.

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