DocumentCode :
54212
Title :
Molecular Communication Modeling of Antibody-Mediated Drug Delivery Systems
Author :
Chahibi, Youssef ; Akyildiz, Ian F. ; Balasubramaniam, Sasitharan ; Koucheryavy, Yevgeni
Author_Institution :
Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
Volume :
62
Issue :
7
fYear :
2015
fDate :
Jul-15
Firstpage :
1683
Lastpage :
1695
Abstract :
Antibody-mediated Drug Delivery Systems (ADDS) are emerging as one of the most encouraging therapeutic solutions for treating several diseases such as human cancers. ADDS use small molecules (antibodies) that propagate in the body and bind selectively to their corresponding receptors (antigens) expressed at the surface of the diseased cells. In this paper, the Molecular Communication (MC) paradigm, where information is conveyed through the concentration of molecules, is advocated for the engineering of ADDS and modeling their complex behavior, to provide a realistic model without the over-complication of system biology models, and the limitations of experimental approaches. The peculiarities of antibodies, including their anisotropic transport and complex electrochemical structure, are taken into account to develop an analytical model of the ADDS transport and antigen-binding kinetics. The end-to-end response of ADDS, from the drug injection to the drug absorption, is mathematically derived based on the geometry of the antibody molecule, the electrochemical structure of the antibody-antigen complex, and the physiology of the patient. The accuracy of the MC model is validated by finite-element (COMSOL) simulations. The implications of the complex interplay between the transport and kinetics parameters on the performance of ADDS are effectively captured by the proposed MC model. The MC model of ADDS will enable the discovery and optimization of drugs in a versatile, cost-efficient, and reliable manner.
Keywords :
biochemistry; biotransport; cancer; drug delivery systems; electrochemistry; finite element analysis; molecular biophysics; optimisation; proteins; ADDS; COMSOL; anisotropic transport; antibodies; antibody-mediated drug delivery systems; antigen-binding kinetics; complex electrochemical structure; disease treatment; diseased cells; drug absorption; drug injection; electrochemical structure; finite element simulations; human cancers; molecular communication modeling; optimization; patient physiology; system biology models; therapeutic solutions; Biological system modeling; Blood; Drug delivery; Drugs; Electronic countermeasures; Extracellular; Molecular communication; Targeted drug delivery systems; molecular communication; pharmacokinetics; protein-protein interactions; targeted drug delivery systems;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2015.2400631
Filename :
7031911
Link To Document :
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