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Biology subjects

Poma, M.

Publications and source records attributed to Poma, M..

3 recordsLinked to original sources

Identification of a native Type I Secretion System cargo in Zymomonas mobilis and its application for extracellular enzyme secretion

Engineering the ethanologenic Gram-negative bacterium Z. mobilis for the secretion of hydrolytic enzymes is a key step towards establishing a biofuel cell factory that uses complex waste material as feedstock. Secretion strategies in Z. mobilis have exclusively relied on signal peptides, which limit protein transport to the periplasm. To achieve single-step secretion across the Z. mobilis double-layered membrane, we sought to identify a native Type I Secretion System (T1SS) tag for fusion to proteins of interest. While a T1SS operon had been identified in the Z. mobilis genome, its native cargo had remained unknown and the use of T1SS secretion tags had so far been unexplored. Here, bioinformatic analysis identified the Major Intrinsic Protein (MIP) as a putative T1SS cargo, and its role validated through fusion of C-terminal sequences of two lengths (61 and 141 amino acids) to a heterologous {beta}-galactosidase from Bacteroides thetaiotaomicron, expressed in Z. mobilis. The 141 amino acid tag, including two RTX domains, resulted in significantly higher secretion efficiency than the 61 amino acid tag lacking RTX repeats, consistent with the established role of RTX domains in preventing premature cytoplasmic folding, thus improving secretion. As extracellular secretion of hydrolytic enzymes has remained a major bottleneck in the development of Z. mobilis as a sustainable cell factory, the identification of a native T1SS secretion tag directly addresses this limitation, introducing a novel tool for enzyme delivery.

synthetic biology↗

A comprehensive genetic toolkit for Zymomonas mobilis; allowing rapid, high-resolution, combinatorial engineering of metabolic pathways.

The limited availability of reliable genetic tools has constrained the precise engineering of Zymomonas mobilis, a promising bacterium for the sustainable bioproduction of fuels and commodity chemicals. Here, we present a comprehensive, modular genetic toolkit that enables high-resolution, combinatorial control of gene expression in Z. mobilis. We constructed and characterised a synthetic promoter library spanning the broadest dynamic range reported for this organism, alongside a suite of strong transcriptional terminators that effectively insulate genetic cassettes and prevent transcriptional readthrough. To achieve predictable translation across diverse genetic contexts, we further implemented bicistronic design (BCD) elements, allowing context-independent control of expression. Promoter activities were shown to be stable under both aerobic and anaerobic conditions, highlighting the robustness of the regulatory parts across physiologically relevant environments. The toolkit was integrated into the Start-Stop Assembly system, facilitating high-throughput construction of multi-gene pathways. We demonstrate its utility through the rapid assembly and testing of the possible expression space of genes encoding a 2,3-butanediol biosynthetic pathway. Collectively, this genetic toolkit now allows the high-resolution engineering of multi-enzyme pathways in Z. mobilis for industrial biotechnology applications.

synthetic biology↗

Advancing genetic engineering in the plant growth-promoting agricultural bacterium Azospirillum brasilense.

Azospirillum brasilense is an important plant-growth promoting bacterium found in the rhizosphere and used extensively in commercial agriculture. It is an attractive candidate for use in the development of novel crop interventions, such as the targeted delivery of plant hormones and similar compounds to the roots, shoots or leaves, or the introduction of smart bacterial sensors and actuators in the rhizosphere. In order to be able to engineer A. brasilense with these novel and complex behaviours, we require a collection of predictable and reliable genetic parts, consisting of constitutive and inducible promoters, terminators, and a stable expression plasmid. To date, such a genetic toolkit does not exist for the genus. In this work, for the first time we have designed and tested a synthetic constitutive promoter library with a wide-range of transcriptional strengths, a tightly-regulated inducible promoter with a non-metabolisable inducer, strong Rho-independent transcriptional terminators and synthetic small RNAs for post-transcriptional regulation.. We have adapted them for use in a one-pot assembly method and demonstrated their utility in the overproduction of the important plant hormone, indole 3-acetic acid (IAA).

synthetic biology↗