DocumentCode
70101
Title
Nonlinear Dynamic Modelling of Platelet Aggregation via Microfluidic Devices
Author
Combariza, Miguel E. ; Xinghuo Yu ; Nesbitt, Warwick S. ; Mitchell, Arnan ; Tovar-Lopez, Francisco J.
Author_Institution
Microplatforms Res. Group, RMIT Univ., Melbourne, VIC, Australia
Volume
62
Issue
7
fYear
2015
fDate
Jul-15
Firstpage
1718
Lastpage
1727
Abstract
The recent application of new microfluidic technologies and methods has facilitated significant progress in the understanding of the fundamental mechanisms governing blood platelet function and how these parameters affect pathological thrombus formation. In-line with these new bioengineering approaches, the application of nonlinear dynamic systems analysis holds particular potential to extend our understanding of the complex interplay between mechanical and biochemical factors that underlie this complex biological phenomenon. In this paper we propose a simple mathematical model of the main dynamics of platelet aggregation/disaggregation observed experimentally in a novel microfluidic device that approximates a severe arterial stenosis. We apply dynamic systems theory (system identification) to explore the dynamics of the biomechanical platelet aggregation response to a range of shear stress rates, inhibiting blood-born chemical pathways of platelet activation (ADP, TXA2, and thrombin). We demonstrate that the proposed model is able to replicate experimental results with low variation, and suggest that the reduced set of model parameters has the potential to be used as a simplified way to evaluate the biomechanical dynamics of platelet aggregation. The proposed model has application to the development of automatic controllers within the context of microfluidic systems that may show great utility in the clinical assessment of platelet hyperfunction.
Keywords
aggregation; bioMEMS; biochemistry; blood; cellular transport; enzymes; haemodynamics; medical disorders; microfluidics; molecular biophysics; patient diagnosis; shear flow; ADP; TXA2; automatic controllers; biochemical factors; bioengineering approaches; biomechanical dynamics; blood platelet function; blood-born chemical pathways; complex biological phenomenon; mechanical factors; microfluidic devices; nonlinear dynamic modelling; nonlinear dynamic systems analysis; pathological thrombus formation; platelet activation; platelet aggregation; platelet disaggregation; platelet hyperfunction; severe arterial stenosis; shear stress rates; thrombin; Aggregates; Biological system modeling; Biomechanics; Blood; Data models; Mathematical model; Stress; Blood; diagnosis; disturbed flow; microfluidics; platelet aggregate; platelet function; shear rate; system identification;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2015.2403266
Filename
7044579
Link To Document