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Updated: Sep 30, 2026

Measuring mRNA Levels Over Time During the Yeast S. cerevisiae Hypoxic Response
Published on: August 10, 2017
Complex impact of hypomagnetic fields on yeast growth, volatile components emissions, and cell surface morphology
Miroslava Sincak1, Hana Brinkeova1, Ludek Bartoš1,2
1Faculty of Forestry and Wood Sciences, Czech University of Life Sciences Prague, Suchdol, Czechia.
Abstract:
The geomagnetic field is a persistent environmental condition under which biological systems have evolved. Its absence creates hypomagnetic conditions, potentially disrupting this equilibrium. This study examined the effects of hypomagnetic fields on Saccharomyces cerevisiae growth and metabolism across three culture volumes (10, 75, and 250 mL). Growth inhibition was most pronounced in the smallest volume, with up to 42% reduction in 10-mL cultures, decreasing to 24% in 75 mL, and none in 250-mL cultures. Budding analysis showed significant early inhibition in 10-mL cultures at 2, 4, and 6 h, and in 75-mL cultures at 6 h, whereas no significant budding inhibition was detected in 250-mL cultures. These results suggest that smaller volumes amplify the impact of hypomagnetic exposure, whereas larger volumes may buffer it. These shifts indicate that hypomagnetic exposure affects growth kinetics and extracellular volatile profiles without causing visible cell-surface damage detectable by scanning electron microscopy (SEM), although the underlying molecular mechanism remains unresolved. Our findings identify cultivation volume as an important modifier of microbial sensitivity to magnetic-field deprivation and have implications for interpreting microbial responses in magnetically altered environments, including space-biology models, shielded structures, and fermentation-based systems.
Importance:
Microorganisms are commonly studied under controlled temperature, medium, and aeration conditions, but the magnetic field environment is rarely considered as an experimental variable. This study shows that short-term hypomagnetic exposure alters growth kinetics and volatile metabolic output in Saccharomyces cerevisiae. Importantly, the magnitude of the response depended on cultivation volume: growth inhibition was strongest in small static batch cultures and was not statistically detectable in the largest volume tested. These findings identify cultivation volume as an important modifier of microbial sensitivity to magnetic field deprivation, probably through its influence on culture physiology, gas exchange, metabolite accumulation, and growth phase. The study therefore has implications for the design and interpretation of microbial magnetic-field experiments, including work performed in shielded environments, space biology models, and fermentation-related systems.
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