Search bioRxiv⌕ Search

bioRxiv · 10.1101/2022.02.24.481905

Construction of a constitutively active type III secretion system for heterologous protein secretion

Abstract

Proteins comprise a multibillion-dollar industry in enzymes and therapeutics, but bacterial protein production can be costly and inefficient. Proteins of interest (POIs) must be extracted from lysed cells, purified, and resolubilized. The Salmonella pathogenicity island 1 type III secretion system (T3SS) is a protein secretion complex in Salmonella that has been engineered to secrete heterologous proteins and addresses the problems associated with bacterial protein production. However, the current best practices method of T3SS pathway activation for secretion is not ideal for industrial scaleup. Previously, the T3SS was activated by plasmid-based overexpression of the T3SS transcriptional regulator, hilA, which requires the addition of a small molecule inducer to the culture media and adds significant cost to the production media. Plasmid-based expression is also subject to instability in large-scale fermentation. Here, we show that we can constitutively activate the T3SS by modulating the upstream transcriptional regulator, hilD, either through knocking out hilE, a repressor of HilD, or by adding transcriptional fusions to hilD. Finally, we combine the two most promising genomic modifications to build a constitutively active T3SS capable of secreting a range of heterologous proteins at titers comparable to those reported with synthetic induction of hilA. These improvements further our goal of making an industrially competitive protein production strain that reduces the challenges associated with plasmid induction and maintenance. ImportanceProteins are used in our everyday lives as therapeutics (insulin), industrial enzymes (laundry detergent), and bio-based materials (spider silk). Current industrial protein production in bacteria is costly because it requires purification of the target protein from the other proteins inside the cell. We solve this problem by engineering the Salmonella pathogenicity island 1 type III secretion system (T3SS) to export the target protein into the cell growth media. This makes the protein purification process more efficient and cheaper. However, this system currently requires an expensive inducer reagent to activate it which significantly increases the cost of the production media. We show here the creation of a constitutively active T3SS, meaning the T3SS pathway is always on. In doing so, we successfully created a Salmonella strain that eliminates the need for the inducer reagent and exports proteins at levels comparable to the inducer-activated system, ultimately reducing the cost of T3SS protein production.

Source connections

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Liang, J. M., Burdette, L. A., Wong, H. T., Tullman-Ercek, D.. 2022-02-25. Construction of a constitutively active type III secretion system for heterologous protein secretion. https://doi.org/10.1101/2022.02.24.481905

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Living electronic transistors with tunable conductivity

Electroactive bacteria, like Shewanella oneidensis, can couple the oxidation of organic electron donors to the reduction of external conductive surfaces, such as minerals and electrodes, by utilizing multiheme cytochromes to carry charge from within the cell to external surfaces. Additionally, multiheme cytochromes facilitate gateable, long-distance (micrometer-scale) redox conduction along the outer membrane and across multiple cells bridging electrodes. While electroactive microbes are being used to develop bioelectrochemical devices, there have been limited efforts to use synthetic biology to exert additional control over microbes serving as device components. Thus, this work implements an optogenetic biofilm patterning gene circuit and a small molecule sensor in S. oneidensis to simultaneously control cell deposition and cytochrome expression. This allows for photolithographic patterning of biofilms possessing tunable electrical properties controlled with small molecules. This system demonstrates tunable electrochemical activity, redox conduction, intrinsic biofilm conductivity, and negative differential transconductance as a function of cytochrome expression. Additionally, temperature-dependent measurements of this tunable biofilm conduction reveal changes in activation energy as a function of cytochrome expression. Through this combination of synthetic biology and electrochemistry, simultaneous control over biofilm geometry and conductivity sheds light on fundamental microbial electron transport processes, and it enables the construction of living electronic devices.

synthetic biology↗

Evolutionary stabilisation of stressful metabolism via integrated biocomputing and essential-gene metabolic locking circuits

Synthetic genetic circuits enable microbial differentiation from growth to production, yet metabolic burden, imbalance and toxicity frequently drive strain degeneration. Yeast strains engineered to produce different terpene products exhibited divergent genetic responses to metabolic stresses, but commonly underwent progressive loss of induction of synthetic GAL regulatory circuits, either across the entire population or within subpopulations. Using di- and tri-input biocomputing circuits, the essential glutamine synthetase gene GLN1 was coupled to GAL induction, thereby enabling stabilisation and evolutionary adaptation of the synthetic genetic circuits and stressful heterologous terpene synthetic pathways. The integrated biocomputing and metabolic coupling circuit systems not only prevent strain degeneration but also enable interrogation of non-degenerative evolutionary shifts, providing a platform for metabolic engineering optimisation.

synthetic biology↗

Unbiased and scalable reduction of diverse bacterial genomes

The genome is a complex, integrated system where the functions and regulatory interactions of its many components remain poorly understood. Genome minimization aims to reduce genomic complexity by removing non-essential elements to reveal the fundamental building blocks of cellular life. However, current minimization strategies are often slow and species-specific due to a reliance on prior information, and limited to producing single, isolated strains, which obscures the diverse ways a genome can adapt to large-scale DNA removal. Here we show the development and application of Stochastic Lineage-based Iterative Minimization (SLIM) a modular, high-throughput platform for unbiased genome reduction across phylogenetically diverse bacteria. We apply SLIM to generate a library of genome-reduced Escherichia coli lineages. We then interrogate the lineages, identifying both universal and lineage-specific transcriptional and translational reprogramming in response to deletions. We demonstrate that these expression dynamics drive environment-dependent fitness, allowing us to pinpoint a single gene deletion in one genome-reduced lineage as the driver of a measurable environmental growth defect. Beyond E. coli, we successfully deploy SLIM in phylogenetically distinct bacterial taxa to rapidly reduce the genomes of Shigella flexneri and Pseudomonas putida, distinct genus and order respectively from E. coli, without species-specific optimization. Our results establish a scalable, generalizable framework for navigating the vast landscape of minimized genomes, providing a powerful new tool for functional discovery and the rational design of synthetic genomic chassis.

synthetic biology↗