HEИндивидуална стипендия2024–2025

EvoZyme · Development of a synthetic diversification platform for targeted EVOLUTION of ENZYMES supporting a sustainable bioeconomy – EvoZyme

„Хоризонт Европа“ — Действия „Мария Склодовска-Кюри“

Период
2024-01-01 → 2025-12-31
Финансиране от ЕС
165 313 €
Участници
1
Схема
HORIZON-TMA-MSCA-PF-EF

Линиите свързват координатора с партньорите.

Накратко на български

Синтетична платформа за насочена еволюция на ензими ще помогне за подобряване на бактерии, които преработват въглероден диоксид (например чрез формиат). Това помага за прехода към устойчива биоикономика чрез по-ефективно производство на ценни биопродукти вместо използване на изкопаеми горива.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Development of a synthetic diversification platform for targeted EVOLUTION of ENZYMES supporting a sustainable bioeconomy – EvoZyme

Context and Motivation Climate change and the urgent need to transition from a fossil-based economy to a circular bioeconomy have driven the search for sustainable biotechnological solutions. A key strategy to achieve this transition is the development of microbial production strains capable of utilizing CO2-derived one-carbon (C1) substrates, such as formate, to generate valuable bioproducts. One of the most promising metabolic pathways enabling this is the reductive glycine pathway (rGlyP), which is highly efficient, energy-conserving, and relatively easy to engineer. However, despite recent advances in metabolic engineering, the growth performance of engineered formatotrophic strains remains suboptimal for industrial applications. Traditional methods for optimizing these synthetic pathways rely on adaptive laboratory evolution (ALE), which involves random mutation and natural selection. While effective, ALE is time-consuming and often introduces unwanted off-target mutations, making it an inefficient method for precise pathway optimization. Recent advancements in directed evolution and synthetic biology have provided new tools for improving enzyme function and pathway efficiency, but these tools have primarily been optimized for Escherichia coli and are challenging to implement in other bacterial hosts. Overall Objectives The EvoZyme project aims to address these challenges by developing a synthetic diversification platform that enables the targeted evolution of enzymes in multiple bacterial hosts. The platform will allow for precise and accelerated genetic diversification of key metabolic enzymes, optimizing microbial growth and productivity in a way that circumvents the limitations of traditional ALE. The project is structured around two primary objectives: Development of a synthetic diversification platform – A system capable of hypermutating a gene of interest (GOI) in a targeted manner while allowing seamless transfer of the evolved GOI to various bacterial hosts. This ensures pathway optimization without introducing off-target effects in the host genome. Optimization of the reductive glycine pathway (rGlyP) through targeted evolution of the glycine cleavage system (GCS) – The GCS is the core enzyme complex responsible for key metabolic conversions within rGlyP. EvoZyme will apply the diversification platform to improve the efficiency of the GCS, enabling enhanced formatotrophic growth in industrially relevant microbes (E. coli, Cupriavidus necator, Pseudomonas putida). By achieving these objectives, EvoZyme will pave the way for a new approach to enzyme engineering, establishing a broadly applicable diversification tool that could optimize other critical biosynthetic pathways beyond rGlyP. Pathway to Impact The EvoZyme project is expected to significantly advance synthetic metabolism by providing a novel, adaptable platform for improving enzymatic functions in diverse microbial hosts. The key expected impacts include: Scientific and Technological Impact: • Introduction of a highly efficient and versatile enzyme evolution tool for synthetic biology and metabolic engineering. • Generation of optimized formatotrophic strains capable of efficiently converting CO2-derived substrates into biomass and valuable bioproducts. • Improved understanding of the molecular mechanisms underlying enzyme optimization, with applications in industrial biotechnology. Economic and Industrial Impact: • Acceleration of biotechnological strain development, reducing the time and cost associated with optimizing metabolic pathways. • Enhancement of biomanufacturing processes, improving the feasibility of using engineered microbes for large-scale production of bio-based chemicals. • Potential commercialization of the diversification platform as a broadly applicable tool for enzyme engineering in academia and industry. Societal and Environmental Impact: • Contribution to a sustainable bioeconomy, reducing dependency on fossil fuels and mitigating CO2 emissions. • Support for achieving multiple United Nations Sustainable Development Goals (SDGs), particularly those related to climate action, sustainable industry, and responsible consumption. • Increased public engagement in synthetic biology through open science practices and science communication initiatives. Setting the Scene for EvoZyme The EvoZyme project operates at the intersection of biotechnology, synthetic biology, and metabolic engineering, tackling one of the key barriers to a bio-based circular economy—the efficient engineering of microbial metabolism. By creating a powerful and tunable enzyme diversification platform, EvoZyme will not only improve biotechnological production processes but also provide an essential tool for future research in metabolic engineering and synthetic metabolism. With a strong focus on scientific innovation, industrial applicability, and environmental sustainability, EvoZyme has the potential to transform how microbial strains are engineered, paving the way for a new era of sustainable bioproduction.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The ongoing climate change requires immediate actions to reduce the CO2 concentration in the atmosphere. One such action is the transition from a fossil-based to a bio-based economy that builds on CO2-derived one-carbon (C1) feedstocks like formate. To this end, synthetic C1 assimilation routes are being engineered into biotechnological relevant microbes. Among them, the reductive glycine pathway (rGlyP) bears enormous potential for biotechnological applications as it is short, energy efficient, and easy to engineer. So far, optimization of growth on formate via the rGlyP was achieved by adaptive laboratory evolution, a time-consuming process that leads to incorporation of undesired mutations and does not allow targeted pathway optimization (debottlenecking).In EvoZyme, I aim to develop a Synthetic Biology platform for targeted evolution of pathway enzymes. This platform consists of specialized Escherichia coli strains that are equipped with state-of-the-art diversification machineries allowing tunable hyperdiversification/evolution of target enzymes. Furthermore, the platform is capable of transferring the diversified enzyme libraries to various bacterial hosts. To benchmark the platform, I aim to debottleneck the rGlyP by targeting its core enzyme, the glycine cleavage system (GCS) which catalyzes the rate-limiting step of glycine synthesis. Diversification and optimization of the GCS will be tested in dedicated selection strains from different bacterial hosts that can only grow if a functional GCS is expressed. Ultimately, optimized GCS variants will be expressed in a formatotrophic E. coli strain lacking a GCS. Improved formatotrophic growth will be analyzed in lab-scale bioreactors to determine techno-economic parameters required for the establishment of a formate bioeconomy. The platform developed in this project will enable debottlenecking of rate-limiting enzymes in virtually any pathway and presents a valuable tool for Synthetic Biology.

Оригинален текст от CORDIS (на английски).

Участници

  • AGENCIA ESTATAL CONSEJO SUPERIOR DE INVESTIGACIONES CIENTIFICAS · MadridКоординаторИспания

Връзки

Данни: CORDIS, © Европейски съюз