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Extremely oxygen-sensitive next-generation probiotics: can current microcomposite formulations ensure effective
L P Ta1,2, S Corrigan1,3, H Abeysekera1
1Department of Biomedical Sciences, School of Infection, Inflammation and Immunology, University of Birmingham, Edgbaston, Birmingham, UK.
Conventional microencapsulation methods struggle to protect extremely oxygen-sensitive (EOS) next-generation probiotics (NGPs). Hydrated pectin and gellan gums show promise, but tailored delivery systems are needed for these sensitive bioactives.
Area of Science:
- Microbiology
- Biomaterials Science
- Pharmaceutical Sciences
Background:
- Next-generation probiotics (NGPs) offer therapeutic potential but often exhibit extreme oxygen sensitivity (EOS).
- Conventional microencapsulation techniques, developed for less sensitive probiotics, may not adequately protect EOS NGPs.
- A critical need exists to evaluate and adapt formulation strategies for these highly oxygen-sensitive bioactives.
Purpose of the Study:
- To review and assess the suitability of conventional biopolymer-based microencapsulation for protecting and delivering EOS NGPs.
- To identify microencapsulation materials and techniques that offer optimal oxygen protection for EOS bacterial viability.
- To highlight gaps in current formulation science for EOS NGPs and propose future directions.
Main Methods:
- Narrative review of existing literature on biopolymer-based microencapsulation for probiotics.
- Assessment of various microencapsulation materials (pectin, gellan gum, alginate, chitosan, xanthan gum) and techniques.
- Evaluation of hydrated versus dehydrated systems for preserving EOS bacterial viability.
Main Results:
- Hydrated pectin- and gellan-based microcomposite systems, especially with xanthan gum, showed superior oxygen protection.
- Alginate alone had inconsistent barrier properties, improved by chitosan blending or coating.
- Dehydrated systems offered no additional viability benefits over hydrated ones.
- No studies quantified oxygen exposure parameters or established protective thresholds for EOS strains.
Conclusions:
- Current microencapsulation approaches are insufficient for reliably protecting and delivering EOS NGPs.
- Tailored, bespoke delivery systems are essential, moving beyond conventional methods.
- Further research is needed to quantify oxygen sensitivity and develop advanced formulations for effective microbiome-based interventions.
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