Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport

Developing synthetic biological devices to allow the noninvasive control of cell fate and function, in vivo can potentially revolutionize the field of regenerative medicine. To address this unmet need, we designed an artificial biological “switch” that consists of two parts: (1)...

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Main Authors: Jangsun Hwang, Yonghyun Choi, Kyungwoo Lee, Vijai Krishnan, Galit Pelled, Assaf A. Gilad, Jonghoon Choi
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Biomolecules
Subjects:
Online Access:https://www.mdpi.com/2218-273X/10/2/308
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spelling doaj-3257ad7160cc4796abcecce3e469f3112020-11-25T02:16:09ZengMDPI AGBiomolecules2218-273X2020-02-0110230810.3390/biom10020308biom10020308Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion TransportJangsun Hwang0Yonghyun Choi1Kyungwoo Lee2Vijai Krishnan3Galit Pelled4Assaf A. Gilad5Jonghoon Choi6School of Integrative Engineering, Chung-Ang University, Seoul 06974, KoreaSchool of Integrative Engineering, Chung-Ang University, Seoul 06974, KoreaSchool of Integrative Engineering, Chung-Ang University, Seoul 06974, KoreaDepartment of Biomedical Engineering, Michigan State University, East Lansing, MI 48823, USADepartment of Biomedical Engineering, Michigan State University, East Lansing, MI 48823, USADepartment of Biomedical Engineering, Michigan State University, East Lansing, MI 48823, USASchool of Integrative Engineering, Chung-Ang University, Seoul 06974, KoreaDeveloping synthetic biological devices to allow the noninvasive control of cell fate and function, in vivo can potentially revolutionize the field of regenerative medicine. To address this unmet need, we designed an artificial biological &#8220;switch&#8221; that consists of two parts: (1) the electromagnetic perceptive gene (EPG) and (2) magnetic particles. Our group has recently cloned the EPG from the <i>Kryptopterus bicirrhis</i> (glass catfish). The EPG gene encodes a putative membrane-associated protein that responds to electromagnetic fields (EMFs). This gene&#8217;s primary mechanism of action is to raise the intracellular calcium levels or change in flux through EMF stimulation. Here, we developed a system for the remote regulation of [Ca<sup>2+</sup>]<sub>i</sub> (i.e., intracellular calcium ion concentration) using streptavidin-coated ferromagnetic particles (FMPs) under a magnetic field. The results demonstrated that the EPG-FMPs can be used as a molecular calcium switch to express target proteins. This technology has the potential for controlled gene expression, drug delivery, and drug developments.https://www.mdpi.com/2218-273X/10/2/308synthetic biological deviceelectromagnetic perceptive gene<i>kryptopterus bicirrhis</i>calcium ionmagnetic particles
collection DOAJ
language English
format Article
sources DOAJ
author Jangsun Hwang
Yonghyun Choi
Kyungwoo Lee
Vijai Krishnan
Galit Pelled
Assaf A. Gilad
Jonghoon Choi
spellingShingle Jangsun Hwang
Yonghyun Choi
Kyungwoo Lee
Vijai Krishnan
Galit Pelled
Assaf A. Gilad
Jonghoon Choi
Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
Biomolecules
synthetic biological device
electromagnetic perceptive gene
<i>kryptopterus bicirrhis</i>
calcium ion
magnetic particles
author_facet Jangsun Hwang
Yonghyun Choi
Kyungwoo Lee
Vijai Krishnan
Galit Pelled
Assaf A. Gilad
Jonghoon Choi
author_sort Jangsun Hwang
title Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
title_short Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
title_full Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
title_fullStr Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
title_full_unstemmed Regulation of Electromagnetic Perceptive Gene Using Ferromagnetic Particles for the External Control of Calcium Ion Transport
title_sort regulation of electromagnetic perceptive gene using ferromagnetic particles for the external control of calcium ion transport
publisher MDPI AG
series Biomolecules
issn 2218-273X
publishDate 2020-02-01
description Developing synthetic biological devices to allow the noninvasive control of cell fate and function, in vivo can potentially revolutionize the field of regenerative medicine. To address this unmet need, we designed an artificial biological &#8220;switch&#8221; that consists of two parts: (1) the electromagnetic perceptive gene (EPG) and (2) magnetic particles. Our group has recently cloned the EPG from the <i>Kryptopterus bicirrhis</i> (glass catfish). The EPG gene encodes a putative membrane-associated protein that responds to electromagnetic fields (EMFs). This gene&#8217;s primary mechanism of action is to raise the intracellular calcium levels or change in flux through EMF stimulation. Here, we developed a system for the remote regulation of [Ca<sup>2+</sup>]<sub>i</sub> (i.e., intracellular calcium ion concentration) using streptavidin-coated ferromagnetic particles (FMPs) under a magnetic field. The results demonstrated that the EPG-FMPs can be used as a molecular calcium switch to express target proteins. This technology has the potential for controlled gene expression, drug delivery, and drug developments.
topic synthetic biological device
electromagnetic perceptive gene
<i>kryptopterus bicirrhis</i>
calcium ion
magnetic particles
url https://www.mdpi.com/2218-273X/10/2/308
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