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December 6, 2019Nature Communications468 citationsOpen Access

Engineered E. coli Nissle 1917 for the delivery of matrix-tethered therapeutic domains to the gut

PPPichet PraveschotinuntADAnna Duraj‐ThatteIGIlia Gelfat

Key Points

  • To engineer probiotic Escherichia coli Nissle 1917 to locally secrete matrix-tethered trefoil factors for the promotion of intestinal barrier integrity and mucosal healing.
  • Genetically engineered non-pathogenic Escherichia coli Nissle 1917 (EcN) to secrete curli nanofibers fused to trefoil factors (TFFs).
  • Evaluated curli-TFF matrix production in vitro and in vivo, and tested therapeutic efficacy in a dextran sodium sulfate (DSS)-induced mouse model of colitis.
  • Engineered EcN successfully produced and secreted curli-fused TFF matrices both in vitro and in vivo while remaining non-pathogenic.
  • Oral administration of engineered EcN yielded enhanced protective effects against DSS-induced colitis in mice, driving significant mucosal healing and beneficial immunomodulation.

Abstract

Mucosal healing plays a critical role in combatting the effects of inflammatory bowel disease, fistulae and ulcers. While most treatments for such diseases focus on systemically delivered anti-inflammatory drugs, often leading to detrimental side effects, mucosal healing agents that target the gut epithelium are underexplored. We genetically engineer Escherichia coli Nissle 1917 (EcN) to create fibrous matrices that promote gut epithelial integrity in situ. These matrices consist of curli nanofibers displaying trefoil factors (TFFs), known to promote intestinal barrier function and epithelial restitution. We confirm that engineered EcN can secrete the curli-fused TFFs in vitro and in vivo, and is non-pathogenic. We observe enhanced protective effects of engineered EcN against dextran sodium sulfate-induced colitis in mice, associated with mucosal healing and immunomodulation. This work lays a foundation for the development of a platform in which the in situ production of therapeutic protein matrices from beneficial bacteria can be exploited.

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Cite This Study

Praveschotinunt et al. (2019) studied this question.

synapsesocial.com/papers/69d7609df182769aa8b8ad49https://doi.org/10.1038/s41467-019-13336-6
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