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Published in: Journal of Nanoparticle Research 3/2015

01-03-2015 | Research Paper

Imparting magnetic dipole heterogeneity to internalized iron oxide nanoparticles for microorganism swarm control

Authors: Paul Seung Soo Kim, Aaron Becker, Yan Ou, Anak Agung Julius, Min Jun Kim

Published in: Journal of Nanoparticle Research | Issue 3/2015

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Abstract

Tetrahymena pyriformis is a single cell eukaryote that can be modified to respond to magnetic fields, a response called magnetotaxis. Naturally, this microorganism cannot respond to magnetic fields, but after modification using iron oxide nanoparticles, cells are magnetized and exhibit a constant magnetic dipole strength. In experiments, a rotating field is applied to cells using a two-dimensional approximate Helmholtz coil system. Using rotating magnetic fields, we characterize discrete cells’ swarm swimming which is affected by several factors. The behavior of the cells under these fields is explained in detail. After the field is removed, relatively straight swimming is observed. We also generate increased heterogeneity within a population of cells to improve controllability of a swarm, which is explored in a cell model. By exploiting this straight swimming behavior, we propose a method to control discrete cells utilizing a single global magnetic input. Successful implementation of this swarm control method would enable teams of microrobots to perform a variety of in vitro microscale tasks impossible for single microrobots, such as pushing objects or simultaneous micromanipulation of discrete entities.

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Literature
go back to reference Becker A, Yan O, Kim P, Min Jun K, Julius A Feedback control of many magnetized: Tetrahymena pyriformis cells by exploiting phase inhomogeneity. In: Intelligent Robots and Systems (IROS), 2013 IEEE/RSJ International Conference on, 3–7 Nov. 2013 2013. pp 3317-3323. doi:10.1109/IROS.2013.6696828 Becker A, Yan O, Kim P, Min Jun K, Julius A Feedback control of many magnetized: Tetrahymena pyriformis cells by exploiting phase inhomogeneity. In: Intelligent Robots and Systems (IROS), 2013 IEEE/RSJ International Conference on, 3–7 Nov. 2013 2013. pp 3317-3323. doi:10.​1109/​IROS.​2013.​6696828
go back to reference Brown ID, Connolly JG, Kerkut G (1981) Galvanotaxic response of Tetrahymena vorax. Comp Biochem Physiol Part C: Comp Pharmacol 69:281–291CrossRef Brown ID, Connolly JG, Kerkut G (1981) Galvanotaxic response of Tetrahymena vorax. Comp Biochem Physiol Part C: Comp Pharmacol 69:281–291CrossRef
go back to reference Cheang UK, Roy D, Lee JH, Kim MJ (2010) Fabrication and magnetic control of bacteria-inspired robotic microswimmers. Appl Phys Lett 97: 213704 Cheang UK, Roy D, Lee JH, Kim MJ (2010) Fabrication and magnetic control of bacteria-inspired robotic microswimmers. Appl Phys Lett 97: 213704
go back to reference Dreyfus R, Baudry J, Roper ML, Fermigier M, Stone HA, Bibette J (2005) Microsc Artif Swim. Nature 437:862–865CrossRef Dreyfus R, Baudry J, Roper ML, Fermigier M, Stone HA, Bibette J (2005) Microsc Artif Swim. Nature 437:862–865CrossRef
go back to reference Ghosh A, Paria D, Singh HJ, Venugopalan PL, Ghosh A (2012) Dynamical configurations and bistability of helical nanostructures under external torque. Phys Rev E 86:031401CrossRef Ghosh A, Paria D, Singh HJ, Venugopalan PL, Ghosh A (2012) Dynamical configurations and bistability of helical nanostructures under external torque. Phys Rev E 86:031401CrossRef
go back to reference Ghosh A, Mandal P, Karmakar S, Ghosh A (2013) Analytical theory and stability analysis of an elongated nanoscale object under external torque. Phys Chem Chem Phys 15:10817–10823CrossRef Ghosh A, Mandal P, Karmakar S, Ghosh A (2013) Analytical theory and stability analysis of an elongated nanoscale object under external torque. Phys Chem Chem Phys 15:10817–10823CrossRef
go back to reference Jo BH, Van Lerberghe LM, Motsegood KM, Beebe DJ (2000) Three-dimensional micro-channel fabrication in polydimethylsiloxane (PDMS) elastomer. J Microelectromech Syst 9:76–81. doi:10.1109/84.825780 CrossRef Jo BH, Van Lerberghe LM, Motsegood KM, Beebe DJ (2000) Three-dimensional micro-channel fabrication in polydimethylsiloxane (PDMS) elastomer. J Microelectromech Syst 9:76–81. doi:10.​1109/​84.​825780 CrossRef
go back to reference Kim DH, Casale D, Kőhidai L, Kim MJ (2009) Galvanotactic and phototactic control of Tetrahymena pyriformis as a microfluidic workhorse. Appl Phys Lett 94:163901CrossRef Kim DH, Casale D, Kőhidai L, Kim MJ (2009) Galvanotactic and phototactic control of Tetrahymena pyriformis as a microfluidic workhorse. Appl Phys Lett 94:163901CrossRef
go back to reference Kim DH, Cheang UK, Kőhidai L, Byun D, Kim MJ (2010) Artificial magnetotactic motion control of Tetrahymena pyriformis using ferromagnetic nanoparticles: a tool for fabrication of microbiorobots. Appl Phys Lett 97:173702CrossRef Kim DH, Cheang UK, Kőhidai L, Byun D, Kim MJ (2010) Artificial magnetotactic motion control of Tetrahymena pyriformis using ferromagnetic nanoparticles: a tool for fabrication of microbiorobots. Appl Phys Lett 97:173702CrossRef
go back to reference Kim DH, Brigandi SE, Kim P, Byun D, Kim MJ (2011) Characterization of deciliation-regeneration process of tetrahymena pyriformis for cellular robot fabrication. J Bionic Eng 8:273–279CrossRef Kim DH, Brigandi SE, Kim P, Byun D, Kim MJ (2011) Characterization of deciliation-regeneration process of tetrahymena pyriformis for cellular robot fabrication. J Bionic Eng 8:273–279CrossRef
go back to reference Kim DH, Kim PSS, Agung Julius AA, Kim MJ (2012a) Three-dimensional control of Tetrahymena pyriformis using artificial magnetotaxis. Appl Phys Lett 100: 053702 Kim DH, Kim PSS, Agung Julius AA, Kim MJ (2012a) Three-dimensional control of Tetrahymena pyriformis using artificial magnetotaxis. Appl Phys Lett 100: 053702
go back to reference Kim M, Steager E, Julius AA, Agung J (2012b) Microbiorobotics: biologically inspired microscale robotic systems. William Andrew Kim M, Steager E, Julius AA, Agung J (2012b) Microbiorobotics: biologically inspired microscale robotic systems. William Andrew
go back to reference Kim PSS, Becker A, Yan O, Julius AA, Min Jun K (2013) Swarm control of cell-based microrobots using a single global magnetic field. In: Ubiquitous Robots and Ambient Intelligence (URAI), 2013. 10th International Conference on, Oct 30 2013–Nov 2 2013. pp 21–26. doi:10.1109/URAI.2013.6677461 Kim PSS, Becker A, Yan O, Julius AA, Min Jun K (2013) Swarm control of cell-based microrobots using a single global magnetic field. In: Ubiquitous Robots and Ambient Intelligence (URAI), 2013. 10th International Conference on, Oct 30 2013–Nov 2 2013. pp 21–26. doi:10.​1109/​URAI.​2013.​6677461
go back to reference Köhidai L, Csaba G (1998) Chemotaxis and chemotactic selection induced with cytokines (IL-8, Rantes and TNF-α) in the unicellular Tetrahymena pyriformis. Cytokine 10:481–486CrossRef Köhidai L, Csaba G (1998) Chemotaxis and chemotactic selection induced with cytokines (IL-8, Rantes and TNF-α) in the unicellular Tetrahymena pyriformis. Cytokine 10:481–486CrossRef
go back to reference Lavin DP, Hatzis C, Srienc F, Fredrickson A (1990) Size effects on the uptake of particles by populations of Tetrahymena pyriformis cells. J Protozool 37:157–163CrossRef Lavin DP, Hatzis C, Srienc F, Fredrickson A (1990) Size effects on the uptake of particles by populations of Tetrahymena pyriformis cells. J Protozool 37:157–163CrossRef
go back to reference Mahoney AW, Nelson ND, Peyer KE, Nelson BJ, Abbott JJ (2014) Behavior of rotating magnetic microrobots above the step-out frequency with application to control of multi-microrobot systems. Appl Phys Lett 104: 144101 Mahoney AW, Nelson ND, Peyer KE, Nelson BJ, Abbott JJ (2014) Behavior of rotating magnetic microrobots above the step-out frequency with application to control of multi-microrobot systems. Appl Phys Lett 104: 144101
go back to reference Martel S, Tremblay CC, Ngakeng S, Langlois G (2006) Controlled manipulation and actuation of micro-objects with magnetotactic bacteria. Appl Phys Lett 89:233904. doi:10.1063/1.2402221 233904CrossRef Martel S, Tremblay CC, Ngakeng S, Langlois G (2006) Controlled manipulation and actuation of micro-objects with magnetotactic bacteria. Appl Phys Lett 89:233904. doi:10.​1063/​1.​2402221 233904CrossRef
go back to reference Martel S et al (2009a) MRI-based medical nanorobotic platform for the control of magnetic nanoparticles and flagellated bacteria for target interventions in human capillaries. Int J Robot Res 28:1169–1182. doi:10.1177/0278364908104855 CrossRef Martel S et al (2009a) MRI-based medical nanorobotic platform for the control of magnetic nanoparticles and flagellated bacteria for target interventions in human capillaries. Int J Robot Res 28:1169–1182. doi:10.​1177/​0278364908104855​ CrossRef
go back to reference Martel S, Mohammadi M, Felfoul O, Lu Z, Pouponneau P (2009b) Flagellated magnetotactic bacteria as controlled MRI-trackable propulsion and steering systems for medical nanorobots operating in the human microvasculature. Int J Robot Res 28:571–582. doi:10.1177/0278364908100924 CrossRef Martel S, Mohammadi M, Felfoul O, Lu Z, Pouponneau P (2009b) Flagellated magnetotactic bacteria as controlled MRI-trackable propulsion and steering systems for medical nanorobots operating in the human microvasculature. Int J Robot Res 28:571–582. doi:10.​1177/​0278364908100924​ CrossRef
go back to reference Morozov KI, Leshansky AM (2014) The chiral magnetic nanomotors. Nanoscale 6:1580–1588CrossRef Morozov KI, Leshansky AM (2014) The chiral magnetic nanomotors. Nanoscale 6:1580–1588CrossRef
go back to reference Nam S-W, Van Noort D, Yang Y, Park S (2007) A biological sensor platform using a pneumatic-valve controlled microfluidic device containing Tetrahymena pyriformis. Lab Chip 7:638–640. doi:10.1039/b617357h CrossRef Nam S-W, Van Noort D, Yang Y, Park S (2007) A biological sensor platform using a pneumatic-valve controlled microfluidic device containing Tetrahymena pyriformis. Lab Chip 7:638–640. doi:10.​1039/​b617357h CrossRef
go back to reference Ou Y, Kim DH, Kim P, Kim MJ, Julius AA (2012) Motion control of magnetized Tetrahymena pyriformis cells by magnetic field with Model Predictive Control. Int J Robot Res. doi:10.1177/0278364912464669 Ou Y, Kim DH, Kim P, Kim MJ, Julius AA (2012) Motion control of magnetized Tetrahymena pyriformis cells by magnetic field with Model Predictive Control. Int J Robot Res. doi:10.​1177/​0278364912464669​
go back to reference Tottori S, Zhang L, Qiu F, Krawczyk KK, Franco-Obregón A, Nelson BJ (2012) Magnetic helical micromachines: fabrication, controlled swimming, and cargo transport. Adv Mater 24:811–816. doi:10.1002/adma.201103818 CrossRef Tottori S, Zhang L, Qiu F, Krawczyk KK, Franco-Obregón A, Nelson BJ (2012) Magnetic helical micromachines: fabrication, controlled swimming, and cargo transport. Adv Mater 24:811–816. doi:10.​1002/​adma.​201103818 CrossRef
go back to reference Zhang L, Abbott JJ, Dong L, Kratochvil BE, Bell D, Nelson BJ (2009) Artificial bacterial flagella: fabrication and magnetic control. Appl Phys Lett 94:064107. doi:10.1063/1.3079655 CrossRef Zhang L, Abbott JJ, Dong L, Kratochvil BE, Bell D, Nelson BJ (2009) Artificial bacterial flagella: fabrication and magnetic control. Appl Phys Lett 94:064107. doi:10.​1063/​1.​3079655 CrossRef
go back to reference Zhang L, Peyer KE, Nelson BJ (2010) Artificial bacterial flagella for micromanipulation. Lab Chip 10:2203–2215CrossRef Zhang L, Peyer KE, Nelson BJ (2010) Artificial bacterial flagella for micromanipulation. Lab Chip 10:2203–2215CrossRef
go back to reference Zhang L, Petit T, Peyer KE, Nelson BJ (2012) Targeted cargo delivery using a rotating nickel nanowire. Nanomedicine: nanotechnology. Biol Med 8:1074–1080 Zhang L, Petit T, Peyer KE, Nelson BJ (2012) Targeted cargo delivery using a rotating nickel nanowire. Nanomedicine: nanotechnology. Biol Med 8:1074–1080
Metadata
Title
Imparting magnetic dipole heterogeneity to internalized iron oxide nanoparticles for microorganism swarm control
Authors
Paul Seung Soo Kim
Aaron Becker
Yan Ou
Anak Agung Julius
Min Jun Kim
Publication date
01-03-2015
Publisher
Springer Netherlands
Published in
Journal of Nanoparticle Research / Issue 3/2015
Print ISSN: 1388-0764
Electronic ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-014-2746-y

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