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Bioprospecting of Extremophilic Microorganisms to Address Environmental Pollution
Published on: December 30, 2021
Synergistic Interplay Between Probiotic-coated Nanoparticles and Antimicrobial Peptides in Food Biochemistry:
Shikha Baghel Chauhan1, Myeisha Anand1, Chirag Jain1
1Amity Institute of Pharmacy, Amity University, Noida, Uttar Pradesh, 201313, India.
Abstract:
Heavy metal pollution in food items poses serious health hazards, demanding novel bioremediation technologies. This study looks at the synergistic interactions of probiotic-coated nanoparticles (PCNPs) and antimicrobial peptides (AMPs) as potential bioremediation agents for heavy metal detoxification in food systems. Probiotic-coated nanoparticles, engineered for greater stability and bioactivity, provide a targeted approach to sequestering and neutralizing toxic metal ions, whereas antimicrobial peptides, known for their selective binding affinity and biofilm-disrupting capabilities, provide complementary detoxification mechanisms. Recent breakthroughs in food biochemistry and nanotechnology have shown that combining PCNPs and AMPs can increase heavy metal bioavailability, adsorption effectiveness, and metabolic processing, hence lowering their bioaccumulation in the body. Furthermore, these bioremediation compounds are very resistant to gastrointestinal degradation, guaranteeing efficient metal chelation within the gut flora. The review focuses on essential molecular interactions that contribute to detoxification, such as metal-ion chelation, nanoparticle functionalization, and AMP-induced microbial regulation. Furthermore, prospective applications in food safety, functional food engineering, and environmental detoxification are thoroughly investigated, as are the regulatory obstacles and safety issues related to nanoparticle-based food treatments. This study shows the revolutionary potential of PCNP-AMP conjugates in reducing heavy metal contamination and improving food safety by combining interdisciplinary techniques from nanotechnology, microbiology, and biochemical engineering. Future research priorities include refining formulation parameters, assessing long-term safety profiles, and ramping up manufacturing for commercial use. This novel technique offers a viable option for next-generation food bioremediation technologies.
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