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Engineering a Novel Probiotic Toolkit in for Sensing and Mitigating Gut Inflammatory Diseases. | LitMetric

AI Article Synopsis

  • - Inflammatory bowel disease (IBD) is a chronic condition with limited treatments that can have negative side effects; researchers developed a targeted probiotic system (EcN) to potentially treat it.
  • - This system uses a sensor to detect nitric oxide as a biomarker for inflammation and can secrete therapeutic nanobodies that work similarly to a common IBD drug, Adalimumab.
  • - The study also created a mathematical model to help understand and optimize how these probiotics interact and function, enhancing the possibilities for future IBD therapies through synthetic biology.

Article Abstract

Inflammatory bowel disease (IBD) is characterized by chronic intestinal inflammation with no cure and limited treatment options that often have systemic side effects. In this study, we developed a target-specific system to potentially treat IBD by engineering the probiotic bacterium (EcN). Our modular system comprises three components: a transcription factor-based sensor (NorR) capable of detecting the inflammation biomarker nitric oxide (NO), a type 1 hemolysin secretion system, and a therapeutic cargo consisting of a library of humanized anti-TNFα nanobodies. Despite a reduction in sensitivity, our system demonstrated a concentration-dependent response to NO, successfully secreting functional nanobodies with binding affinities comparable to the commonly used drug Adalimumab, as confirmed by enzyme-linked immunosorbent assay and in vitro assays. This newly validated nanobody library expands EcN therapeutic capabilities. The adopted secretion system, also characterized for the first time in EcN, can be further adapted as a platform for screening and purifying proteins of interest. Additionally, we provided a mathematical framework to assess critical parameters in engineering probiotic systems, including the production and diffusion of relevant molecules, bacterial colonization rates, and particle interactions. This integrated approach expands the synthetic biology toolbox for EcN-based therapies, providing novel parts, circuits, and a model for tunable responses at inflammatory hotspots.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11334186PMC
http://dx.doi.org/10.1021/acssynbio.4c00036DOI Listing

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