Analog Electronic Circuits to Model Cooperativity in Hill Process

In the field of computational biology, electronic modeling of bio-cellular processes is in vogue for about a couple of decades. Fast, efficient and scalable electronic mimetics of recurrently found bio-chemical reactions are expected to provide better electronic circuit simulators that can also be u...

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Main Authors: Maria Waqas, Muhammad Khurram, S.M. Razaul Hasan
Format: Article
Language:English
Published: Mehran University of Engineering and Technology 2020-10-01
Series:Mehran University Research Journal of Engineering and Technology
Online Access:https://publications.muet.edu.pk/index.php/muetrj/article/view/1809
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spelling doaj-19371dcc9b8a402797757cc5e5175fe62020-11-25T01:59:37ZengMehran University of Engineering and TechnologyMehran University Research Journal of Engineering and Technology0254-78212413-72192020-10-0139467868510.22581/muet1982.2004.011809Analog Electronic Circuits to Model Cooperativity in Hill ProcessMaria Waqas0Muhammad Khurram1S.M. Razaul Hasan2Department of Computer and Information Systems Engineering, NED University of Engineering and Technology, Karachi, Sindh, Pakistan.Department of Computer and Information Systems Engineering, NED University of Engineering and Technology, Karachi, Sindh, Pakistan.Centre for Research in Analog and VLSI Microsystems Design (CRAVE), Massey University, Auckland, New ZealandIn the field of computational biology, electronic modeling of bio-cellular processes is in vogue for about a couple of decades. Fast, efficient and scalable electronic mimetics of recurrently found bio-chemical reactions are expected to provide better electronic circuit simulators that can also be used as bio-sensors or implantable biodevices at cellular levels. This paper presents some possible electronic circuit equivalents to model dynamics of one such bio-chemical reaction commonly involved in many bio-cellular processes, specifically pathways in living cells, known as the Hill process. The distinguishing feature of this process is cooperativity which has been modeled in silicon substrate using a pair of transistors, one transistor driving current in the other the same way ligand binding to one receptor site controls the binding affinity of the other receptor sites. Two possible circuits have been proposed and compared to electronically model cooperativity of a Hill reaction. The main idea is to exploit the natural analogies found between structures and processes of a bio-cell and electronic transistor mechanics, to efficiently model fundamental bio-chemical reactions found recurring in bio-processes. These circuits can then be combined and rearranged quickly to form larger, more complex bio-networks, thus mitigating the intricacies involved in modeling of such systems.https://publications.muet.edu.pk/index.php/muetrj/article/view/1809
collection DOAJ
language English
format Article
sources DOAJ
author Maria Waqas
Muhammad Khurram
S.M. Razaul Hasan
spellingShingle Maria Waqas
Muhammad Khurram
S.M. Razaul Hasan
Analog Electronic Circuits to Model Cooperativity in Hill Process
Mehran University Research Journal of Engineering and Technology
author_facet Maria Waqas
Muhammad Khurram
S.M. Razaul Hasan
author_sort Maria Waqas
title Analog Electronic Circuits to Model Cooperativity in Hill Process
title_short Analog Electronic Circuits to Model Cooperativity in Hill Process
title_full Analog Electronic Circuits to Model Cooperativity in Hill Process
title_fullStr Analog Electronic Circuits to Model Cooperativity in Hill Process
title_full_unstemmed Analog Electronic Circuits to Model Cooperativity in Hill Process
title_sort analog electronic circuits to model cooperativity in hill process
publisher Mehran University of Engineering and Technology
series Mehran University Research Journal of Engineering and Technology
issn 0254-7821
2413-7219
publishDate 2020-10-01
description In the field of computational biology, electronic modeling of bio-cellular processes is in vogue for about a couple of decades. Fast, efficient and scalable electronic mimetics of recurrently found bio-chemical reactions are expected to provide better electronic circuit simulators that can also be used as bio-sensors or implantable biodevices at cellular levels. This paper presents some possible electronic circuit equivalents to model dynamics of one such bio-chemical reaction commonly involved in many bio-cellular processes, specifically pathways in living cells, known as the Hill process. The distinguishing feature of this process is cooperativity which has been modeled in silicon substrate using a pair of transistors, one transistor driving current in the other the same way ligand binding to one receptor site controls the binding affinity of the other receptor sites. Two possible circuits have been proposed and compared to electronically model cooperativity of a Hill reaction. The main idea is to exploit the natural analogies found between structures and processes of a bio-cell and electronic transistor mechanics, to efficiently model fundamental bio-chemical reactions found recurring in bio-processes. These circuits can then be combined and rearranged quickly to form larger, more complex bio-networks, thus mitigating the intricacies involved in modeling of such systems.
url https://publications.muet.edu.pk/index.php/muetrj/article/view/1809
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