Physical factors affecting microbial life
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Irradiation
Irradiation is the use of ionising
Ionising radiation kills cells indirectly by creating reactive
Metal ions (Oligodynamic effect)
Carl Nägeli, a Swiss botanist, discovered in 1893 that the ions of various metals and their alloys such as silver and copper, but also mercury, iron, lead, zinc, bismuth, gold, aluminium and others, have a toxic effect on microbial life by denaturing microbial enzymes and thus disrupting their metabolism. This effect is negligible in viruses since they are not metabolically active.[5]
Pulsed electric fields (PEF)
Strong electric field pulses applied to cells cause their membranes to develop pores (
Pulsed magnetic fields (PMF)
A 2004 study found that
High power ultrasound
Until recently ultrasonic systems were used for cleaning, cutting,
The frequencies used in diagnostic ultrasound are typically between 2 and 18 MHz, and uncertainty remains about the extent of cellular damage or long-term effects of fetal scans. (see
Low temperatures
Freezing food to preserve its quality has been used since time immemorial. Freezing temperatures curb the spoiling effect of microorganisms in food, but can also preserve some pathogens unharmed for long periods of time. Freezing kills some microorganisms by physical trauma, others are sublethally injured by freezing, and may recover to become infectious.[13]
High osmotic gradients
Syrup, honey, brine, alcohol and concentrated sugar or salt solutions display an antibacterial action due to osmotic pressure. Syrup and honey have a long history of being used as a topical treatment for superficial and deep wounds.[14][15]
Wood smoke compounds act as food preservatives. Phenol and phenolic compounds found in wood smoke are antioxidants and antimicrobials, slowing bacterial growth. Other antimicrobials in wood smoke include formaldehyde, acetic acid, and other organic acids, which give wood smoke a low pH—about 2.5. Some of these compounds are toxic to people as well, and may have health effects in the quantities found in cooking applications.
Ozone
Microorganisms suffer a reduction in viability on contact with ozone which compromises the integrity of their cell walls. Gram-negative bacteria are more vulnerable to ozone than gram-positive organisms.[16][17]
High temperatures
(see
Extreme temperatures destroy viruses and vegetative cells that are active and metabolising. Organic molecules such as
High pressures
(see Pascalization)
Water under very high hydrostatic pressure of up to 700 MPa (100,000 psi) inactivates pathogens such as
The question whether pressure is an impediment to (microbial) life is surprisingly opposite what has been assumed for a long time. Anurag Sharma, a geochemist, James Scott, a microbiologist, and others at the Carnegie Institution of Washington performed an experiment with Diamond Anvil Cell and utilized "direct observations" on microbial activity to over 1.0 Gigapascal pressures.[20]
Their goal was to test microbes and discover under what level of pressure they can carry out life processes. The experiments were performed up to 1.6 GPa of pressure, which is more than 16,000 times Earth's surface pressure (Earth's surface pressure is 985 hPa). The experiment began by placing a solution of bacteria, specifically Escherichia coli and Shewanella oneidensis, in a film and placing it in the DAC. The pressure was then raised to 1.6 GPa. When raised to this pressure and kept there for 30 hours, at least 1% of the bacteria survived. The experimenters then added a dye to the solution and also monitored formate metabolism using in-situ Raman spectroscopy. If the cells survived the squeezing and were capable of carrying out life processes, specifically breaking down formate, the dye would turn clear. 1.6 GPa is such great pressure that during the experiment the DAC turned the solution into ice-IV, a room-temperature ice. When the bacteria broke down the formate in the ice, liquid pockets would form because of the chemical reaction. The bacteria were also able to cling to the surface of the DAC with their tails.[21]
There was some skepticism recorded with this pioneering experiment. According to Art Yayanos, an oceanographer at the Scripps Institute of Oceanography in La Jolla, California, an organism should only be considered living if it can reproduce. Another issue with the DAC experiment is that when high pressures occur, there are usually high temperatures present as well, but in this experiment there were not. This experiment was performed at room-temperature. However, the intentional lack of high temperature in the experiments isolated the actual effects of pressure on life and results clearly indicated life to be largely pressure insensitive.[21]
Newer results from independent research groups[22] have shown the validity of Sharma et al. (2002) work.[20] This is a significant step that reiterates the need for a new approach to the old problem of studying environmental extremes through experiments. There is practically no debate whether microbial life can survive pressures up to 600 MPa, which has been shown over the last decade or so to be valid through a number of scattered publications.[20] What is significant in this approach of Sharma et al. 2002 work is the elegantly straightforward ability to monitor systems at extreme conditions that have since remained technically inaccessible. While the experiment shows simplicity and elegance, the results are not unexpected and are consistent with most biophysical models. This novel approach lays a foundation for future work on microbiology at non-ambient conditions by not only providing a scientific premise, but also laying the technical feasibility for future work on non-ambient biology and organic systems.
High acceleration
Bacterial cell surfaces may be damaged by the acceleration forces attained in centrifuges.[23] Laboratory centrifuges routinely achieve 5000–15000g, a procedure which often kills a considerable portion of microbes, especially if they are in their exponential growth phase.[24]
See also
References
- ^ Food Irradiation
- ^ Irradiation of Microbes from Spent Nuclear Fuel Storage Pool Environments
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- ^ Effect of a Pulsed Magnetic Field on the Microorganisms and Enzymes in Milk[unreliable source?]
- ^ Xu, Shen-Shi; Ma, Hai-Le (2010). "Sterilization and Biological Window Effects of Pulsed Magnetic Field on Staphylococcus aureus and Its Inactivation Dynamics". Food Science. 31 (21): 20–23.
- ^ http://www.geiss-ttt.com/www_geiss/exp_tech_trim_ultrasonic_cutting_e_134_197_0_f.htm[full citation needed]
- ^ Bates, Darren; Bates, Joanne. "Outline Of Potential Applications For High Powered Ultrasound In Recycling" (PDF). Archived from the original (PDF) on July 19, 2012.[self-published source?][unreliable source?]
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- ^ "Healing honey for wound treatment". BBC News.
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- ^ High Pressure Processing of Food[non-primary source needed]
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