Login / Signup

Characterization of Single-Nucleus Electrical Properties by Microfluidic Constriction Channel.

Hongyan LiangYi ZhangDeyong ChenHuiwen TanYu ZhengJunbo WangJian Chen
Published in: Micromachines (2019)
As key bioelectrical markers, equivalent capacitance (Cne, i.e., capacitance per unit area) and resistance (Rne, i.e., resistivity multiply thickness) of nuclear envelopes have emerged as promising electrical indicators, which cannot be effectively measured by conventional approaches. In this study, single nuclei were isolated from whole cells and trapped at the entrances of microfluidic constriction channels, and then corresponding impedance profiles were sampled and translated into single-nucleus Cne and Rne based on a home-developed equivalent electrical model. Cne and Rne of A549 nuclei were first quantified as 3.43 ± 1.81 μF/cm2 and 2.03 ± 1.40 Ω·cm2 (Nn = 35), which were shown not to be affected by variations of key parameters in nuclear isolation and measurement. The developed approach in this study was also used to measure a second type of nuclei, producing Cne and Rne of 3.75 ± 3.17 μF/cm2 and 1.01 ± 0.70 Ω·cm2 for SW620 (Nn = 17). This study may provide a new perspective in single-cell electrical characterization, enabling cell type classification and cell status evaluation based on bioelectrical markers of nuclei.
Keyphrases
  • single cell
  • high throughput
  • healthcare
  • machine learning
  • neuropathic pain
  • optical coherence tomography
  • computed tomography
  • oxidative stress
  • signaling pathway
  • magnetic resonance
  • mesenchymal stem cells