DocumentCode :
14778
Title :
Theoretical Modeling and Experimental Validation of Surface Stress in Thrombin Aptasensor
Author :
Yang Choon Lim ; Kouzani, Abbas Z. ; Kaynak, Akif ; Dai, Xiujuan J. ; Littlefair, Guy ; Wei Duan
Author_Institution :
Sch. of Eng., Deakin Univ., Waurn Ponds, VIC, Australia
Volume :
13
Issue :
4
fYear :
2014
fDate :
Dec. 2014
Firstpage :
384
Lastpage :
391
Abstract :
Adsorption of target molecules on the immobilized microcantilever surface produced beam displacement due to the differential surface stress generated between the immobilized and non-immobilized surface. Surface stress is caused by the intermolecular forces between the molecules. Van der Waals, electrostatic forces, hydrogen bonding, hydrophobic effect and steric hindrance are some of the intermolecular forces involved. A theoretical framework describing the adsorption-induced microcantilever displacement is derived in this paper. Experimental displacement of thrombin aptamer-thrombin interactions was carried out. The relation between the electrostatic interactions involved between adsorbates (thrombin) as well as adsorbates and substrates (thrombin aptamer) and the microcantilever beam displacement utilizing the proposed mathematical model was quantified and compared to the experimental value. This exercise is important to aid the designers in microcantilever sensing performance optimization.
Keywords :
adsorption; bioMEMS; biochemistry; biosensors; cantilevers; hydrogen bonds; hydrophobicity; micromechanical devices; microsensors; molecular biophysics; proteins; van der Waals forces; Van der Waals forces; beam displacement; differential surface stress; electrostatic forces; hydrogen bonding; hydrophobic effect; immobilized microcantilever surface; intermolecular forces; microcantilever sensing performance optimization; steric hindrance; target molecule adsorption; thrombin aptamer; thrombin aptasensor; Electrostatics; Mathematical model; Proteins; Strain; Stress; Surface morphology; Surface treatment; Atomistic; continuum; intermolecular forces; mathematical model; microcantilever; surface stress;
fLanguage :
English
Journal_Title :
NanoBioscience, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1241
Type :
jour
DOI :
10.1109/TNB.2014.2337517
Filename :
6872560
Link To Document :
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