Insights into inactivation and response mechanisms of sublethal Listeria monocytogenes treated by cold plasma with joint transcriptomics and metabolomics

Author:

Pan Yuan-Yuan1234,Sun Da-Wen1235,Cheng Jun-Hu123,Brust Henrike4,Weltmann Klaus-Dieter4

Affiliation:

1. School of Food Science and Engineering, South China University of Technology , Guangzhou 510641 , China

2. Academy of Contemporary Food Engineering, South China University of Technology, Guangzhou Higher Education Mega Center , Guangzhou 510006 , China

3. Engineering and Technological Research Centre of Guangdong Province on Intelligent Sensing and Process Control of Cold Chain Foods, and Guangdong Province Engineering Laboratory for Intelligent Cold Chain Logistics Equipment for Agricultural Products, Guangzhou Higher Education Mega Centre , Guangzhou 510006 , China

4. Research Division of Environment and Health, Leibniz-Institute for Plasma Science and Technology e.V. , Greifswald 17489 , Germany

5. Food Refrigeration and Computerized Food Technology (FRCFT), Agriculture and Food Science Centre, University College Dublin, National University of Ireland , Belfield, Dublin 4 , Ireland

Abstract

Abstract Aim The aim of the current study is to elucidate the inactivation and molecular response pattern of sublethal Listeria monocytogenes to cold plasma-mediated two-pronged oxidative microenvironments from a high-throughput multi-omics perspective. Methods and results First joint transcriptomics and metabolomics analyses revealed that significantly expressed genes and metabolites were mainly involved in enhanced transmembrane transport and Fe2+/Cu+ efflux, amino acid limitation, cytoplasmic pH homeostasis, reconfiguration of central carbon metabolism flux, and energy conservation strategy, which triggered the surge of intracellular endogenous oxidative stress and finally mediated bacterial ferroptosis and pathogenicity attenuation. Typical antioxidant systems such as the TrxR-Trx system and common antioxidant genes (e.g. sodA, katA, ahpC, trxA, spxA) were inhibited, and the more prominent antioxidant pathways include methionine metabolism, the pentose phosphate pathway, and glutathione metabolism, as well as the DNA repair systems. Conclusions Therefore, our work confirmed from the transcriptional and metabolic as well as physiological levels that cold plasma-mediated intracellular oxidative stress induced big perturbations in pathways as a driving force for the inactivation and pathogenicity attenuation of L. monocytogenes.     Significance and impact of study This study provided new insights for the construction of multi-dimensional mechanisms of bacterial inactivation and pathogenicity attenuation for the precise control and inactivation of microorganisms in plasma non-thermal processing.

Funder

National Natural Science Foundation of China

Key R&D Program of Guangdong Province

Guangdong Basic and Applied Basic Research Foundation

Guangzhou Basic and Applied Basic Research Foundation

Publisher

Oxford University Press (OUP)

Subject

Applied Microbiology and Biotechnology,General Medicine,Biotechnology

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