Real-Time Monitoring of H2O2 Sterilization on Individual Bacillus atrophaeus Spores by Optical Sensing with Trapping Raman Spectroscopy

Author:

Bertz Morten1,Molinnus Denise2,Schöning Michael J.23ORCID,Homma Takayuki14

Affiliation:

1. Research Organization for Nano & Life Innovation, Waseda University, 513 Waseda-Tsurumakichou, Shinjuku-ku, Tokyo 162-0041, Japan

2. Institute of Nano-, and Biotechnologies (INB), Aachen University of Applied Sciences, Campus Jülich, Heinrich-Mußmann-Str.1, 52428 Jülich, Germany

3. Institute of Biological Information Processing (IBI-3), Research Center Jülich GmbH, 52428 Jülich, Germany

4. Department of Applied Chemistry, Waseda University, 3-4-1 Okubo, Shinjuku-ku, Tokyo 169-8555, Japan

Abstract

Hydrogen peroxide (H2O2), a strong oxidizer, is a commonly used sterilization agent employed during aseptic food processing and medical applications. To assess the sterilization efficiency with H2O2, bacterial spores are common microbial systems due to their remarkable robustness against a wide variety of decontamination strategies. Despite their widespread use, there is, however, only little information about the detailed time-resolved mechanism underlying the oxidative spore death by H2O2. In this work, we investigate chemical and morphological changes of individual Bacillus atrophaeus spores undergoing oxidative damage using optical sensing with trapping Raman microscopy in real-time. The time-resolved experiments reveal that spore death involves two distinct phases: (i) an initial phase dominated by the fast release of dipicolinic acid (DPA), a major spore biomarker, which indicates the rupture of the spore’s core; and (ii) the oxidation of the remaining spore material resulting in the subsequent fragmentation of the spores’ coat. Simultaneous observation of the spore morphology by optical microscopy corroborates these mechanisms. The dependence of the onset of DPA release and the time constant of spore fragmentation on H2O2 shows that the formation of reactive oxygen species from H2O2 is the rate-limiting factor of oxidative spore death.

Funder

JST A-STEP program Development of Surface-Enhanced Raman Microscope with Plasmon Sensor for Ultra-Sensitive Surface and Interface Analysis

Publisher

MDPI AG

Subject

Physical and Theoretical Chemistry,Analytical Chemistry

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