Affiliation:
1. State Key Laboratory of Food Nutrition and Safety, College of Food Science and Engineering, Tianjin University of Science and Technology, Tianjin, China
2. Tianjin Key Laboratory of Food Science and Health, College of Medicine, Nankai University, Tianjin, China
Abstract
ABSTRACT
The outstanding desiccation tolerance of
Cronobacter sakazakii
(
C. sakazakii
) enables long-term persistence in food products with low-water activity to increase the infection risk, especially in low-birth-weight, immuno-compromised neonates, and infants less than 4 weeks of age. In our previous study, the disruption of glutathione transport-related gene
gsiD
by transposon was found to significantly increase its inactivation rate under drying stress challenges. However, the mechanism underlying the association between glutathione transport and desiccation tolerance of
C. sakazakii
remains to be clarified. In this study, the mechanism underlying their association was investigated in detail by constructing the
gsiD
gene deletion mutant.
gsiD
gene deletion was found to cause the dysfunction of the glutathione transport system GsiABCD and the limitation of glutathione import. The resulting decrease in intracellular glutathione caused the decreased potassium ions uptake and increased potassium ions efflux, inhibited the proline synthesis process, limited extracellular glutathione utilization, increased oxidant stress, reduced biofilm formation, and increased outer membrane permeability, which may be the main reasons for the significant reduction of the desiccation tolerance of
C. sakazakii
.
IMPORTANCE
Contributing to its superior environmental adaptability,
Cronobacter sakazakii
can survive under many abiotic stress conditions. The outstanding desiccation tolerance makes this species persist in low-water activity foods, which increases harm to humans. For decades, many studies have focused on the desiccation tolerance of
C. sakazakii
, but the existing research is still insufficient. Our study found that
gsiD
gene deletion inhibited glutathione uptake and further decreased intracellular glutathione content, causing a decrease in desiccation tolerance and biofilm formation and an increase in outer membrane permeability. Moreover, the expression level of relative genes verified that
gsiD
gene deletion made the mutant not conducive to surviving in dry conditions due to restricting potassium ions uptake and efflux, inhibiting the conversion of glutamate to compatible solute proline, and increasing the oxidative stress of
C. sakazakii
. The above results enrich our knowledge of the desiccation tolerance mechanism of
C. sakazakii
.
Funder
MOST | National Natural Science Foundation of China
Hebei Provincial Key Research Projects
Publisher
American Society for Microbiology
Cited by
1 articles.
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