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An In Vitro Batch-culture Model to Estimate the Effects of Interventional Regimens on Human Fecal Microbiota
Published on: July 31, 2019
Gastrointestinal-inert prebiotic micro-composites improve the growth and community diversity of mucosal-associated
Linh P Ta1, Sarah Corrigan1, Chris Tselepis1
1Department of Biomedical Sciences, School of Infection, Inflammation, & Immunology, University of Birmingham, Edgbaston, Birmingham B15 2TT, UK.
Abstract:
The process of microencapsulation and the development of microparticle-based drug formulations have gained increased pharmaceutical interest, particularly for drug delivery and bacterial-encapsulation purposes for probiotic delivery. Existing studies have examined microcomposite (MC) responses to gastrointestinal (GI) conditions with the aim of controlling disintegration, and thus release, across the small and large bowel. However, the delivery of MCs which remain intact, without degrading, could act as bacterial growth scaffolds or materials providing a prebiotic support, conferring potentially beneficial GI health properties. This present study employs prilling as a method to produce a portfolio of MCs using a variety of biopolymers (alginate, chitosan, pectin and gellan gum) with a range of MC diameters and density compositions. Fluorescent probes are co-encapsulated within each MC to enable flow-cytometry directed release profile assessments following exposure to chemical simulated gastric and intestinal digestion conditions. We observe that MC size, gel-strength, density, and biopolymer material all influence response to gastric and intestinal conditions. Gellan gum (GG) MCs demonstrated complete resistance to disintegration throughout GI-simulation in the stomach and small intestine. Considering these MCs could reach the colon intact, we then examined how such MCs, doped with prebiotic growth supporting carboxymethyl cellulose (CMC) polymers, could impact microbial communities using a bioreactor model of the colonic microbiome. Following supplementation with GGCMC MCs, mucosal bacterial diversity (using 16 s rRNA sequencing and Shannon entropy and observed feature diversity metrics) and taxonomic composition changes were observed. Concentrations of short chain fatty acid (SCFA) metabolites were also found to be altered. This is the first study to comprehensivelyexamine how MC physicochemistry can be manipulated to tailor MCs to have the desired GI release performance and subsequently, how GI-resistant MCs could have influential microbial altering properties and be adopted in novel prebiotic strategies.
Insights
This study developed microcapsules (MCs) using various biopolymers, finding gellan gum (GG) MCs resist digestion. These GG-based prebiotic MCs (GGCMC) altered gut bacteria and metabolites, showing potential for novel prebiotic strategies.
Area of Science:
- Pharmaceutical Sciences
- Microbiology
- Biomaterials Engineering
Background:
- Microencapsulation is crucial for drug and probiotic delivery.
- Controlling microcomposite (MC) disintegration in the gastrointestinal (GI) tract is key for targeted release.
- Intact MCs could serve as prebiotic scaffolds, promoting gut health.
Purpose of the Study:
- To engineer microcapsules (MCs) with tailored physicochemical properties for controlled GI release.
- To investigate the potential of GI-resistant MCs as prebiotic materials.
- To assess the impact of these MCs on colonic microbial communities and metabolites.
Main Methods:
- Prilling was used to produce MCs from alginate, chitosan, pectin, and gellan gum (GG).
- Fluorescent probes were co-encapsulated for release profiling under simulated gastric and intestinal conditions.
- A bioreactor model of the colonic microbiome was used to evaluate GG and carboxymethyl cellulose (CMC) doped MCs (GGCMC).
Main Results:
- MC size, gel strength, density, and biopolymer type influenced GI response.
- Gellan gum (GG) MCs showed complete resistance to disintegration in simulated stomach and small intestine conditions.
- GGCMC MCs supplementation altered mucosal bacterial diversity, composition, and short-chain fatty acid (SCFA) metabolite concentrations.
Conclusions:
- Physicochemical properties of MCs can be manipulated for desired GI release profiles.
- GI-resistant GGMCs possess influential microbial-altering properties.
- These findings support the adoption of GGCMC MCs in novel prebiotic strategies for gut health.

