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Bioelectric calcium transport and activation in mammalian cells using field-focused DNA-carbon nanotube meshes

Source: PubMed Central Open Access, NCBI / U.S. National Library of Medicine

Science AdvancesLast synced 5/29/2026Status: syncedPMID: 42202034 pmidDOI: 10.1126/sciadv.aed4736

Electrical signaling in biology is ionic. Safe modulation needs interfaces that couple electrons to ions at soft membranes without injury. We present DNA-FOCUS, a membrane-conformal, DNA-programmed carbon-nanotube biointerface that self-assembles on living cells, weaving DNA-wrapped SWCNTs into an ultraflexible mesh. A subvolt bias is condensed into nanometer hotspots at the membrane, lowering access resistance and engaging endogenous calcium-permeable ion channels. Subvolt stimulation drives sustained Cainflux across multiple lineages, with voltage-sensitive dye and impedance readouts showing stronger coupling. Responses occur without excess ROS or loss of viability. The focused field also enables gentle electroporation for plasmid delivery, augments mechano-electrical transduction, and modulates neuronal excitability. Transcriptional analysis and functional validation confirm NFAT activation, and in natural killer cells, it boosts perforin and IFN-γ release with higher tumor killing. This programmable, substrate-free interface supports low-voltage electro-modulation for high-throughput analytics and therapeutic augmentation. DNA-FOCUS concentrates subvolt bias into membrane hotspots, safely amplifying Casignaling for precise modulation. teaser

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