4.8 Article

Live Streaming of a Single Cell?s Life over a Local pH-Monitoring Nanowire Waveguide

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出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.2c02185

关键词

nanowire waveguide; nanosensor; single living cell; intracellular pH monitoring; optical analysis

资金

  1. Brain Korea 21 FOUR project for Education and research center for future materials
  2. National Research Foundation of Korea (NRF) - Korean government [NRF-2017R1E1A1A01075274, NRF-2018H1A2A1062460, NRF-2021R1A4A1032162]
  3. Korea Basic Science Institute (National Research Facilities and Equipment Center) - Ministry of Education [2020R1A6C101A202]
  4. National Research Foundation of Korea [2018H1A2A1062460] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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We developed a mechanically robust and thin nanowire waveguide for in situ monitoring of pH dynamics in living cells. We observed organelle-exclusive pH homeostasis and stimuli-selective pH regulations, and discovered different pH variations in the nucleus during the mammalian cell cycle.
Spatiotemporal pH monitoring of single living cells across rigid cell and organelle membranes has been challenging, despite its significance in understanding cellular heterogeneity. Here, we developed a mechanically robust yet tolerably thin nanowire waveguide that enables in situ monitoring of pH dynamics at desired cellular compartments via direct optical communication. By chemically labeling fluorescein at one end of a poly(vinylbenzyl azide) nanowire, we continuously monitored pH variations of different compartments inside a living cell, successfully observing organelle-exclusive pH homeostasis and stimuli-selective pH regulations. Importantly, it was demonstrated for the first time that, during the mammalian cell cycle, the nucleus displays pH homeostasis in interphase but a tidal pH curve in the mitotic phase, implying the existence of independent pH-regulating activities by the nuclear envelope. The rapid and accurate local pH-reporting capability of our nanowire waveguide would be highly valuable for investigating cellular behaviors under diverse biological situations in living cells.

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