High-precision high-speed nanopore ping-pong control system based on field programmable gate array.

Rev Sci Instrum

Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.

Published: July 2024

AI Article Synopsis

  • "Molecular ping-pong" is a new technique in solid-state nanopore technology that allows for repeated measurements of single biomolecules, like DNA.
  • The paper presents a highly accurate and fast control system that includes a trans-impedance amplifier, a Field Programmable Gate Array for control, and a LabVIEW program for data management, achieving impressive performance metrics.
  • Thanks to this system, researchers were able to significantly improve the capture rate of individual DNA molecules, enhancing control and efficiency for future studies in single-molecule sensing.

Article Abstract

"Molecular ping-pong," emerging as a control strategy in solid-state nanopore technology, presents a highly promising approach for repetitive measurements of single biomolecules, such as DNA. This paper introduces a high-precision, high-speed nanopore molecular ping-pong control system consisting of a home-built trans-impedance amplifier (TIA), a control system based on a Field Programmable Gate Array (FPGA), and a LabVIEW program operating on the host personal computer. Through feedback compensation and post-stage boosting, the TIA achieves a high bandwidth of about 200 kHz with a gain of 100 MΩ, along with low input-referred current noise of 1.6 × 10-4 pA2/Hz at 1 kHz and 1.1 × 10-3 pA2/Hz at 100 kHz. The FPGA-based control system demonstrates a minimum overall response time (tdelay) of 6.5 μs from the analog input current signal trigger to the subsequent reversal of the analog output drive voltage signal, with a control precision of 1 μs. Additionally, a LabVIEW program has been developed to facilitate rapid data exchange and communication with the FPGA program, enabling real-time signal monitoring, parameter adjustment, and data storage. Successful recapture of individual DNA molecules at various tdelay, resulting in an improvement in capture rate by up to 2 orders of magnitude, has been demonstrated. With unprecedented control precision and capture efficiency, this system provides robust technical support and opens novel research avenues for nanopore single-molecule sensing and manipulation.

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Source
http://dx.doi.org/10.1063/5.0213543DOI Listing

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