Published October 21, 2009 | Version Published
Journal Article Open

Confinement Regulates Complex Biochemical Networks: Initiation of Blood Clotting by "Diffusion Acting"

Abstract

This study shows that environmental confinement strongly affects the activation of nonlinear reaction networks, such as blood coagulation (clotting), by small quantities of activators. Blood coagulation is sensitive to the local concentration of soluble activators, initiating only when the activators surpass a threshold concentration, and therefore is regulated by mass transport phenomena such as flow and diffusion. Here, diffusion was limited by decreasing the size of microfluidic chambers, and it was found that microparticles carrying either the classical stimulus, tissue factor, or a bacterial stimulus, Bacillus cereus, initiated coagulation of human platelet-poor plasma only when confined. A simple analytical argument and numerical model were used to describe the mechanism for this phenomenon: confinement causes diffusible activators to accumulate locally and surpass the threshold concentration. To interpret the results, a dimensionless confinement number, Cn, was used to describe whether a stimulus was confined, and a Damkohler number, Da_(2), was used to describe whether a subthreshold stimulus could initiate coagulation. In the context of initiation of coagulation by bacteria, this mechanism can be thought of as "diffusion acting", which is distinct from "diffusion sensing". The ability of confinement and diffusion acting to change the outcome of coagulation suggests that confinement should also regulate other biological "on" and "off" processes that are controlled by thresholds.

Additional Information

© 2009 Biophysical Society. Received 11 February 2009. Accepted 3 August 2009. Available online 19 October 2009.

Attached Files

Published - main.pdf

Files

main.pdf

Files (728.3 kB)

Name Size
md5:5c0b374f9bf06cd9eb4de6411f2028da
728.3 kB Preview Download

Additional details

Identifiers

PMCID
PMC2764071
Eprint ID
40867
Resolver ID
CaltechAUTHORS:20130821-160731264

Dates

Created
2013-08-27
Created from EPrint's datestamp field
Updated
2023-06-02
Created from EPrint's last_modified field