Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Effects of diamagnetic levitation on bacterial growth in liquid

View through CrossRef
AbstractDiamagnetic levitation is a technique that uses a strong, spatially-varying magnetic field to levitate diamagnetic materials, such as water and biological cells. This technique has the potential to simulate aspects of weightlessness, on the Earth. In common with all ground-based techniques to simulate weightlessness, however, there are effects introduced by diamagnetic levitation that are not present in space. Since there have been few studies that systematically investigate these differences, diamagnetic levitation is not yet being fully exploited. For the first time, we critically assess the effect of diamagnetic levitation on a bacterial culture in liquid. We used a superconducting magnet to levitate growing bacterial cultures for up to 18 hours, in a series of experiments to determine the effect of diamagnetic levitation on all phases of the bacterial growth cycle. We find that diamagnetic levitation increases the rate of population growth in a liquid culture. The speed of sedimentation of the bacterial cells to the bottom of the container is considerably reduced. Further experiments and microarray gene analysis show that the growth enhancement is due to greater oxygen availability in the magnetically levitated sample. We demonstrate that the magnetic field that levitates the cells also induces convective stirring in the liquid, an effect not present in microgravity. We present a simple theoretical model, showing how the paramagnetic force on dissolved oxygen can cause the liquid to become unstable to convection when the consumption of oxygen by the bacteria generates an oxygen concentration gradient. We propose that this convection enhances oxygen availability by transporting oxygen around the sample. Since convection is absent in space, these results are of significant importance and timeliness to researchers considering using diamagnetic levitation to explore weightless effects on living organisms and a broad range of other topics in the physical and life sciences.
Title: Effects of diamagnetic levitation on bacterial growth in liquid
Description:
AbstractDiamagnetic levitation is a technique that uses a strong, spatially-varying magnetic field to levitate diamagnetic materials, such as water and biological cells.
This technique has the potential to simulate aspects of weightlessness, on the Earth.
In common with all ground-based techniques to simulate weightlessness, however, there are effects introduced by diamagnetic levitation that are not present in space.
Since there have been few studies that systematically investigate these differences, diamagnetic levitation is not yet being fully exploited.
For the first time, we critically assess the effect of diamagnetic levitation on a bacterial culture in liquid.
We used a superconducting magnet to levitate growing bacterial cultures for up to 18 hours, in a series of experiments to determine the effect of diamagnetic levitation on all phases of the bacterial growth cycle.
We find that diamagnetic levitation increases the rate of population growth in a liquid culture.
The speed of sedimentation of the bacterial cells to the bottom of the container is considerably reduced.
Further experiments and microarray gene analysis show that the growth enhancement is due to greater oxygen availability in the magnetically levitated sample.
We demonstrate that the magnetic field that levitates the cells also induces convective stirring in the liquid, an effect not present in microgravity.
We present a simple theoretical model, showing how the paramagnetic force on dissolved oxygen can cause the liquid to become unstable to convection when the consumption of oxygen by the bacteria generates an oxygen concentration gradient.
We propose that this convection enhances oxygen availability by transporting oxygen around the sample.
Since convection is absent in space, these results are of significant importance and timeliness to researchers considering using diamagnetic levitation to explore weightless effects on living organisms and a broad range of other topics in the physical and life sciences.

Related Results

Diamagnetic levitation enhances growth of liquid bacterial cultures by increasing oxygen availability
Diamagnetic levitation enhances growth of liquid bacterial cultures by increasing oxygen availability
Diamagnetic levitation is a technique that uses a strong, spatially varying magnetic field to reproduce aspects of weightlessness, on the Earth. We used a superconducting magnet to...
Diamagnetic levitation enhances growth of liquid bacterial cultures by increasing oxygen availability
Diamagnetic levitation enhances growth of liquid bacterial cultures by increasing oxygen availability
AbstractDiamagnetic levitation is a technique that uses a strong, spatially-varying magnetic field to reproduce aspects of weightlessness, on the Earth. We used a superconducting m...
Isolation And Characterization Of Biosurfactant Producing Bacteria From Different Environmental Soil Samples
Isolation And Characterization Of Biosurfactant Producing Bacteria From Different Environmental Soil Samples
Biosurfactants are natural substances produced by several bacterial and fungal organisms that are amphiphilic and are extracellular (a part of the cell membrane). Biosurfactants ca...
Diamagnetic Levitation Thermometer
Diamagnetic Levitation Thermometer
This paper reports a diamagnetic levitation thermometer using a pyrolytic graphite (PG). The levitation height of diamagnetic materials depends on the temperature. The system is co...
Solar Wind Protons in the Diamagnetic Cavity at Comet 67P/Churyumov‐Gerasimenko
Solar Wind Protons in the Diamagnetic Cavity at Comet 67P/Churyumov‐Gerasimenko
AbstractThe plasma environment at a comet can be divided into different regions with distinct plasma characteristics. Two such regions are the solar wind ion cavity, which refers t...
Simulation analysis of dynamic response of the energy harvester based on diamagnetic levitation
Simulation analysis of dynamic response of the energy harvester based on diamagnetic levitation
Based on diamagnetic levitation, the micro-vibration energy harvester is proposed, which has advantages such as low friction, low mechanical damping, low-frequency response and fre...

Back to Top