4.7 Article

Insights into the free state enzyme reaction kinetics in nanoconfinement

期刊

LAB ON A CHIP
卷 13, 期 8, 页码 1546-1553

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c3lc41319e

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资金

  1. National 973 Basic Research Program [2012CB933800]
  2. National Natural Science Foundation of China [21035002, 21205141]
  3. National Science Fund for Creative Research Groups [21121091]
  4. doctoral training program from the Ministry of Education of China [200802840012]
  5. Natural Science Foundation of Jiangsu province [BK2010009]
  6. Fundamental Research Funds for the Central Universities [JKQ2011029]

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The investigation of enzyme reaction kinetics in nanoconfined spaces mimicking the conditions in living systems is of great significance. Here, a nanofluidics chip integrated with an electrochemical detector has been designed for studying free state enzyme reaction kinetics in nanoconfinement. The nanofluidics chip is fabricated using the UV-ablation technique developed in our group. The enzyme and substrate solutions are simultaneously supplied from two single streams into a nanochannel through a Y-shaped junction. The laminar flow forms in the front of the nanochannel, then the two liquids fully mix at their downstream where a homogeneous enzyme reaction occurs. The free state enzyme reaction kinetics in nanoconfinement can thus be investigated in this laminar flow based nanofluidics device. For demonstration, glucose oxidase (GOx) is chosen as the model enzyme, which catalyzes the oxidation of beta-D-glucose. The reaction product hydrogen peroxide (H2O2) can be electrochemically detected by a microelectrode aligning to the end of nanochannel. The steady-state electrochemical current responding to various glucose concentrations is used to evaluate the activity of the free state GOx under nanoconfinement conditions. The effect of liquid flow rate, enzyme concentration, and nanoconfinement on reaction kinetics has been studied in detail. Results show that the free state GOx activity increases significantly compared to the immobilized enzyme and bath system, and the GOx reaction rate in the nanochannel is two-fold faster than that in bulk solution, demonstrating the importance of free state and spatial confinement for the enzyme reaction kinetics. The present approach provides an effective method for exploiting the free state enzyme activity in nanospatial confinement.

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