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Published on: October 8, 2021
Controlled release of microorganisms from engineered living materials
Abstract:
Probiotics offer therapeutic benefits by modulating the local microbiome, the host immune response, and the proliferation of pathogens. Probiotics have the potential to treat complex diseases, but their persistence or colonization is required at the target site for effective treatment. Although probiotic persistence can be achieved by repeated delivery, no biomaterial that releases clinically relevant doses of metabolically active probiotics in a sustained manner has been previously described. Here, we encapsulate stiff probiotic microorganisms within relatively less stiff hydrogels and show a generic mechanism where these microorganisms proliferate and induce hydrogel fracture, resulting in microbial release. Importantly, this fracture-based mechanism leads to microorganism release with zero-order release kinetics. Using this mechanism, small (∼1 μL) engineered living materials (ELMs) release >10 8 colony-forming-units (CFUs) of E. coli in 2 h. This release is sustained for at least 10 days. Cell release can be varied by more than three orders of magnitude by varying initial cell loading and modulating the mechanical properties of encapsulating matrix. As the governing mechanism of microbial release is entirely mechanical, we demonstrate controlled release of model Gram-negative, Gram-positive, and fungal probiotics from multiple hydrogel matrices.
Significance:
Probiotics offer therapeutic benefits and have the potential to treat complex diseases, but their persistence at the target site is often required for effective treatment. Although probiotic persistence can be achieved by repeated delivery, no biomaterial that releases metabolically active probiotics in a sustained manner has been developed yet. This work demonstrates a generic mechanism where stiff probiotics encapsulated within relatively less stiff hydrogels proliferate and induce hydrogel fracture. This allows a zero-order release of probiotics which can be easily controlled by adjusting the properties of the encapsulating matrices. This generic mechanism is applicable for a wide range of probiotics with different synthetic matrices and has the potential to be used in the treatment of a broad range of diseases.
Insights
Engineered living materials release probiotics through a novel hydrogel fracture mechanism. This approach ensures sustained, controlled delivery of active probiotics for therapeutic applications.
Area of Science:
- Biomaterials Science
- Microbiology
- Drug Delivery
Background:
- Probiotics modulate the microbiome and immune response, offering therapeutic benefits for complex diseases.
- Effective probiotic therapy requires sustained persistence and colonization at the target site.
- Existing methods lack biomaterials for sustained release of metabolically active probiotics.
Purpose of the Study:
- To develop a novel biomaterial for sustained release of active probiotics.
- To demonstrate a generic mechanism for controlled probiotic delivery.
- To overcome limitations of repeated probiotic administration.
Main Methods:
- Encapsulating stiff probiotic microorganisms within less stiff hydrogels.
- Utilizing microbial proliferation to induce hydrogel fracture and release.
- Characterizing release kinetics and controlling delivery by matrix properties.
Main Results:
- Engineered living materials (ELMs) achieve zero-order release kinetics of probiotics.
- Small ELMs release >10^8 colony-forming units (CFUs) of E. coli within 2 hours, sustained for over 10 days.
- Probiotic release is controllable via initial cell loading and matrix mechanical properties.
Conclusions:
- A novel, generic mechanism for sustained probiotic release via hydrogel fracture has been demonstrated.
- This approach enables controlled delivery of diverse probiotic types (bacterial and fungal).
- The technology holds potential for treating a broad range of diseases requiring probiotic therapy.
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