Pappaert Kris, Desmet Gert
Transport Modeling & (Bio)analytical Separation Science Group (TMAS(2)), Vrije Universiteit Brussel, Belgium.
J Biotechnol. 2006 Jun 10;123(4):381-96. doi: 10.1016/j.jbiotec.2005.12.025. Epub 2006 Feb 20.
The present theoretical analysis aims at providing a general understanding of the combined effect the many different process variables have on the hybridization rate in diffusion- and convection-driven DNA microarray systems. It is shown that all process variables can be grouped into only four different dimensionless numbers (the Damkohler number Da, the dimensionless association constant kappa(A), the dimensionless initial concentration C'(0) and a geometrical ratio alpha). These four numbers have a straightforward physical meaning and only contain easily measurable parameters. Reducing the solution space from 7D to 4D, the dimensionless number representation greatly facilitates the insight in the conditions leading to the occurrence of diffusion-limited hybridization rates in both diffusion- and convection-driven DNA microarray systems. This in turn simplifies their design and the interpretation of the experimental results that are obtained with these systems.
目前的理论分析旨在全面理解众多不同过程变量对扩散驱动和对流驱动的DNA微阵列系统中杂交速率的综合影响。结果表明,所有过程变量可仅归为四个不同的无量纲数(达姆科勒数Da、无量纲缔合常数κ(A)、无量纲初始浓度C'(0)和几何比α)。这四个数具有直接的物理意义,且仅包含易于测量的参数。将解空间从7维降至4维,无量纲数表示极大地有助于深入了解导致扩散驱动和对流驱动的DNA微阵列系统中出现扩散限制杂交速率的条件。这反过来简化了它们的设计以及对使用这些系统获得的实验结果的解释。