Christopher Ashish, Sarkar Dipayan, Shetty Kalidas
Department of Plant Sciences, North Dakota State University, Fargo, ND 58108, USA.
Antibiotics (Basel). 2021 Jan 23;10(2):109. doi: 10.3390/antibiotics10020109.
Foodborne bacterial pathogens in consumed foods are major food safety concerns worldwide, leading to serious illness and even death. An exciting strategy is to use novel phenolic compounds against bacterial pathogens based on recruiting the inducible metabolic responses of plant endogenous protective defense against biotic and abiotic stresses. Such stress-inducible phenolic metabolites have high potential to reduce bacterial contamination, and particularly improve safety of plant foods. The stimulation of plant protective response by inducing biosynthesis of stress-inducible phenolics with antimicrobial properties is among the safe and effective strategies that can be targeted for plant food safety and human gut health benefits. Metabolically driven elicitation with physical, chemical, and microbial elicitors has shown significant improvement in the biosynthesis of phenolic metabolites with antimicrobial properties in food and medicinal plants. Using the above rationale, this review focuses on current advances and relevance of metabolically driven elicitation strategies to enhance antimicrobial phenolics in plant food models for bacterial-linked food safety applications. Additionally, the specific objective of this review is to explore the potential role of redox-linked pentose phosphate pathway (PPP) regulation for enhancing biosynthesis of stress-inducible antibacterial phenolics in elicited plants, which are relevant for wider food safety and human health benefits.
食用食品中的食源性病原体是全球食品安全的主要问题,会导致严重疾病甚至死亡。一个令人兴奋的策略是利用新型酚类化合物对抗细菌病原体,这基于激发植物内源性针对生物和非生物胁迫的保护性防御的诱导性代谢反应。这种胁迫诱导的酚类代谢产物具有降低细菌污染的巨大潜力,特别是能提高植物性食品的安全性。通过诱导具有抗菌特性的胁迫诱导酚类物质的生物合成来刺激植物的保护反应,是可针对植物食品安全和人类肠道健康益处的安全有效策略之一。用物理、化学和微生物诱导剂进行代谢驱动诱导,已显示出在食用和药用植物中具有抗菌特性的酚类代谢产物的生物合成有显著改善。基于上述原理,本综述聚焦于代谢驱动诱导策略在增强植物性食品模型中抗菌酚类物质以用于与细菌相关的食品安全应用方面的当前进展及相关性。此外,本综述的具体目标是探索氧化还原相关的磷酸戊糖途径(PPP)调控在增强诱导植物中胁迫诱导抗菌酚类物质生物合成方面的潜在作用,这对于更广泛的食品安全和人类健康益处具有相关性。