Biosensing by Sequence-based Activity Inference
This project aims to develop a data-driven pipeline for engineering genetically encoded biosensors to enhance molecule detection and support sustainable bioprocesses in synthetic biology.
Projectdetails
Introduction
The ability of cells to sense and respond to signals is an essential requirement of life. Genetically encoded biosensors meet this need by detecting, for example, chemicals and triggering gene expression in response. This concept is used across the life sciences to sense molecules in basic research, diagnostics, and treatment.
Importance of Biosensors
Crucially, biosensors can be used to isolate and engineer microbes that sustainably produce value-added chemicals and thus play a key role in the transition to a circular economy. However, native biosensors are mostly unfit for synthetic applications in terms of the molecules and concentrations they respond to.
Challenges in Biosensor Engineering
Moreover, little is known about the relationship between biosensor sequence and resulting function, which prohibits rational biosensor engineering and enforces tedious, often unsuccessful trial-and-error approaches.
Proposed Solution
I propose to build a pipeline for the rational engineering of biosensors with tailored sensory properties to overcome these limitations. Building upon an ultrahigh-throughput DNA-recording technique we have recently invented, we will generate hitherto inaccessible datasets linking over (10^8) transcriptional and translational biosensor sequences with their sensory properties.
Data Utilization
We will use these data to train deep learning models that infer biosensor function directly from sequence. This will enable straightforward biosensor design, which we will capitalize on to build a versatile biosensing platform to specifically detect and discriminate molecules from three metabolic compound classes with high potential for bio-based production.
Application of Designed Biosensors
Finally, we will apply designed biosensors to engineer new enzymes for CO2-fixation and build dynamic metabolic controllers to obtain superior bacterial strains for the production of flavors and pharmaceuticals.
Conclusion
Our novel, data-driven approach will break new grounds in biosensor engineering through synergies between synthetic biology and artificial intelligence, paving the way to novel, sustainable bioprocesses.
Financiële details & Tijdlijn
Financiële details
Subsidiebedrag | € 1.499.453 |
Totale projectbegroting | € 1.499.453 |
Tijdlijn
Startdatum | 1-2-2024 |
Einddatum | 31-1-2029 |
Subsidiejaar | 2024 |
Partners & Locaties
Projectpartners
- UNIVERSITAET REGENSBURGpenvoerder
Land(en)
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Protein function regulation through inserts for response to biological, chemical and physical signals
This project aims to develop a modular platform for engineering proteins to sense and respond to diverse signals, enhancing their functionality for innovative biomedical applications.
Development of Suprasensors and Assays for Molecular Diagnostics
SupraSense aims to develop advanced biomimetic sensors for detecting metabolites in biofluids, enhancing diagnostic selectivity and sensitivity for early disease detection.
Decoding the Biochemistry of Terpene Synthases
The TerpenCode project aims to utilize deep learning models to predict and engineer terpene synthases, enhancing enzyme design for sustainable biotechnological production of novel chemicals.
Legonucleotides for detection
Chem2Sense aims to revolutionize biosensor development by creating high-affinity aptalegomers through reversible aptamer conjugation and advanced nanopore sequencing techniques.
Scalable Microbial Metabolite Discovery Through Synthetic Biology
This project aims to enhance the discovery of microbial secondary metabolites by developing a scalable heterologous expression platform to access untapped biosynthetic genes for drug development.
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Computation driven development of novel vivo-like-DNA-nanotransducers for biomolecules structure identification
This project aims to develop DNA-nanotransducers for real-time detection and analysis of conformational changes in biomolecules, enhancing understanding of molecular dynamics and aiding drug discovery.
Haalbaarheid van een innovatieve enzymsensor voor de voedingsindustrie
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