Survival and growth of terrestrial microorganisms in ammonia-rich atmospheres.
Terrestrial microorganism survival and growth on specimens of Euphorbia xylophylloides in ammonia methane hydrogen-rich atmospheres
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Terrestrial microorganism survival and growth on specimens of Euphorbia xylophylloides in ammonia methane hydrogen-rich atmospheres
Survival and growth of terrestrial microorganisms in ammonia-rich atmospheres supporting possibility of origin and existence of life on jupiter
Dry heat effectiveness in microorganism sterilization at 105 deg C for space probe applications
Effects of simulated anaerobic planetary environment on biochemical activities of terrestrial microorganisms
Solidification process for recovering viable microorganisms to aid spacecraft sterilization procedures
Rocket and balloon-borne exposure study of terrestrial microorganism survival in space
Wolf Trap Mars microorganism detection, assuming photosynthetic and respiration cycles in inorganic biochemical compounds
Rocket and balloon borne exposure experiments on survival of microorganisms in space environment
Upper atmospheric microorganism detection by modified dust collector on Aerobee rocket
Design parameters of microcalorimetric systems for detection of Martian microorganism
Survival of selected microorganisms exposed to high ultraviolet flux equivalent to Martian surface
Improved ultrasonic cavitation methods for removing microorganisms from stainless steel strip surfaces
Cytochemical studies of planetary microorganisms explorations in exobiology
Microorganisms trapping by colonization of sterile organic plant parts buried in Chile desert soil samples
Soil, moisture and other requirements for microorganism survival in simulated Martian environment
Microorganisms are the unseen drivers of the Earth, impacting everything from the air we breathe to the soil beneath our feet. The roles they play in maintaining ecosystem functioning, particularly in the biogeochemical cycling of carbon, nitrogen, phosphorus, sulfur, and metals, are profound. Microbial communities are critical in mediating organic carbon mineralization, methane cycling, denitrification, and sulfate reduction, all of which regulate carbon storage and greenhouse gas emissions.
2,3-Butanediol (2,3-BDO) is a promising commodity chemical with various industrial applications. While petroleum-based chemical processes currently dominate the industrial production of 2,3-BDO, fermentation-based production of 2,3-BDO pro- vides an attractive alternative to chemical-based processes with regards to economic and environmental sustainability. The achievement of high 2,3-BDO titer, yield, and productivity in microbial fermentation is a prerequisite for the production of 2,3-BDO at large scales. Also, enantiopure production of 2,3-BDO production is desirable because 2,3-BDO stereoisomers have unique physicochemical properties. Pursuant to these goals, many metabolic engineering strategies to improve 2,3-BDO pro- duction from inexpensive sugars by Klebsiella oxytoca, Bacillus species, and Saccharomyces cerevisiae have been developed. Furthermore, this review summarizes the recent advances in metabolic engineering of non-pathogenic microorganisms to enable efficient and enantiopure production of 2,3-BDO.
Increases in environmental fluxes of rare earth elements (REEs) stemming from increased demand for these technology critical elements may affect microbial ecosystem functions important for pollutant degradation and nutrient cycling. Here, this study investigates the responses of Sporacetigenium mesophilum and Clostridium sporogenes, two anaerobic fermenters, to varying concentrations of two REE, namely europium and samarium. Eu and Sm are adjacent lanthanides but differ significantly in their redox behavior. We tested Eu and Sm concentrations ranging from < 1 to 600 µM. Despite the close phylogenetic relatedness of the two bacteria, we observed species-specific as well as REE-specific and incubation time-dependent sensitivities. S. mesophilum exhibited pronounced inhibition of hydrogen production and growth with exposure to ≥ 60 µM of Eu, but with 6 µM Eu, a hormetic effect was observed—hydrogen production was enhanced relative to the control. With Sm, the only impact observed on S. mesophilum was inhibition at the highest concentration (600 µM) tested. For C. sporogenes, growth inhibition was observed only at 600 µM Eu or Sm, and no hormesis was observed with either REE. This study offers both significant benefits and novelty by addressing the emerging environmental concern of REE pollution, particularly the effects of Eu and Sm on anaerobic microorganisms relevant to wastewater treatment. It provides valuable insights into REE impacts under anaerobic conditions, which are essential for understanding potential disruptions to organic matter degradation and nutrient cycling processes.