Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space

© 2017 IEEE. One of the potential ways to decrease the cost of extraction of microalgae products is through the use of high-voltage electrical pulses to electroporate cell membranes. At present, its applicability on industrial scale has yet to be demonstrated. Molecular-level understanding of the el...

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Main Authors: Enriquez, John Isaac, Villagracia, Al Rey C., Moreno, Joaquin Lorenzo, Arboleda, Nelson B., Jr., David, Melanie Y., Ubando, Aristotle T., Ong, Hui Lin, Culaba, Alvin B., Cuello, Joel
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Online Access:https://animorepository.dlsu.edu.ph/faculty_research/971
https://animorepository.dlsu.edu.ph/context/faculty_research/article/1970/type/native/viewcontent
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spelling oai:animorepository.dlsu.edu.ph:faculty_research-19702022-08-30T02:33:59Z Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space Enriquez, John Isaac Villagracia, Al Rey C. Moreno, Joaquin Lorenzo Arboleda, Nelson B., Jr. David, Melanie Y. Ubando, Aristotle T. Ong, Hui Lin Culaba, Alvin B. Cuello, Joel © 2017 IEEE. One of the potential ways to decrease the cost of extraction of microalgae products is through the use of high-voltage electrical pulses to electroporate cell membranes. At present, its applicability on industrial scale has yet to be demonstrated. Molecular-level understanding of the electroporation on lipid membranes is needed to optimize the treatment parameters. In this study, the effects of uniform electric field on the area per lipid, bilayer thickness, lateral diffusion and pore formation time of dipalmitoylphosphatidylcholine (DPPC) lipid bilayer with and without vacuum space were studied using molecular dynamics. Exposing the lipid membrane to uniform electric field with a magnitude of 0.272 V/nm would cause pore formation in less than 4 nanoseconds. Increasing the magnitude of electric field will decrease the pore formation time. Electric field magnitudes below this threshold have considerable effect to the structure of the lipid, and minimal effect on its lateral diffusion. Our simulations of isolated fully-hydrated lipid bilayer slabs suggest that the mechanism of electroporation is primarily caused by the water permeation on lipid membrane. Moreover, the rotation of lipids reported by previous studies is not only caused by its reaction to electric field, but also by its hydrophilic and hydrophobic properties. 2017-07-02T07:00:00Z text text/html https://animorepository.dlsu.edu.ph/faculty_research/971 https://animorepository.dlsu.edu.ph/context/faculty_research/article/1970/type/native/viewcontent Faculty Research Work Animo Repository
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description © 2017 IEEE. One of the potential ways to decrease the cost of extraction of microalgae products is through the use of high-voltage electrical pulses to electroporate cell membranes. At present, its applicability on industrial scale has yet to be demonstrated. Molecular-level understanding of the electroporation on lipid membranes is needed to optimize the treatment parameters. In this study, the effects of uniform electric field on the area per lipid, bilayer thickness, lateral diffusion and pore formation time of dipalmitoylphosphatidylcholine (DPPC) lipid bilayer with and without vacuum space were studied using molecular dynamics. Exposing the lipid membrane to uniform electric field with a magnitude of 0.272 V/nm would cause pore formation in less than 4 nanoseconds. Increasing the magnitude of electric field will decrease the pore formation time. Electric field magnitudes below this threshold have considerable effect to the structure of the lipid, and minimal effect on its lateral diffusion. Our simulations of isolated fully-hydrated lipid bilayer slabs suggest that the mechanism of electroporation is primarily caused by the water permeation on lipid membrane. Moreover, the rotation of lipids reported by previous studies is not only caused by its reaction to electric field, but also by its hydrophilic and hydrophobic properties.
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author Enriquez, John Isaac
Villagracia, Al Rey C.
Moreno, Joaquin Lorenzo
Arboleda, Nelson B., Jr.
David, Melanie Y.
Ubando, Aristotle T.
Ong, Hui Lin
Culaba, Alvin B.
Cuello, Joel
spellingShingle Enriquez, John Isaac
Villagracia, Al Rey C.
Moreno, Joaquin Lorenzo
Arboleda, Nelson B., Jr.
David, Melanie Y.
Ubando, Aristotle T.
Ong, Hui Lin
Culaba, Alvin B.
Cuello, Joel
Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
author_facet Enriquez, John Isaac
Villagracia, Al Rey C.
Moreno, Joaquin Lorenzo
Arboleda, Nelson B., Jr.
David, Melanie Y.
Ubando, Aristotle T.
Ong, Hui Lin
Culaba, Alvin B.
Cuello, Joel
author_sort Enriquez, John Isaac
title Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
title_short Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
title_full Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
title_fullStr Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
title_full_unstemmed Course-grained molecular dynamics investigation on the effects of uniform electric field on DPPC lipid bilayer: With and without vacuum space
title_sort course-grained molecular dynamics investigation on the effects of uniform electric field on dppc lipid bilayer: with and without vacuum space
publisher Animo Repository
publishDate 2017
url https://animorepository.dlsu.edu.ph/faculty_research/971
https://animorepository.dlsu.edu.ph/context/faculty_research/article/1970/type/native/viewcontent
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