4.8 Article

Determination of ribonuclease H surface enzyme kinetics by surface plasmon resonance imaging and surface plasmon fluorescence spectroscopy

Journal

ANALYTICAL CHEMISTRY
Volume 77, Issue 20, Pages 6528-6534

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/ac051283m

Keywords

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Funding

  1. NIGMS NIH HHS [2R01 GM059622-04] Funding Source: Medline

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The kinetics of the ribonuclease H (RNase H) surface hydrolysis of RNA-DNA heteroduplexes formed on DNA microarrays was studied using a combination of real-time surface plasmon resonance imaging (SPRI) and surface plasmon fluorescence spectroscopy (SPFS). Time-dependent SPRI and SPFS data at various enzyme concentrations were quantitatively analyzed using a simple model that couples diffusion, enzyme adsorption, and surface enzyme kinetics. This model is characterized by a set of three rate constants, enzyme adsorption (k(a)), enzyme desorption (k(d)), enzyme catalysis (k(cat)), and one dimensionless diffusion parameter (beta). Values of k(a) = 3.15 (+/- 0.20) x 10(6) M(-1.)s(-1), k(d) = 0.10 (+/- 0.05) s(-1), and k(cat) = 0.95 (+/- 0.10) s(-1) were determined from fitting all of the SPRI and SPFS data sets. One of the most interesting kinetic parameters is the surface RNase H hydrolysis reaction rate constant (kat), which was found to be similar to 10 times slower than that observed in solution, but similar to 100 times faster than that recently observed for the exonuclease III surface hydrolysis of double-stranded DNA microarrays (k(cat) = 0.009 s(-1)). Moreover, the surface coverage of the intermediate enzyme-substrate complex (ES) was found to be extremely small during the course of the reaction because k(cat) is much larger than the product of k(a) and the bulk enzyme concentration.

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