ArticlePloS one2022
Self-assembled nanoparticle-enzyme aggregates enhance functional protein production in pure transcription-translation systems.
Article in PloS one, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 13 citations in OpenAlex.
- Peptide Coacervates Can Protect Sequestered Oligonucleotides from Nucleases and Release Them for Transcription and Translation.Biomacromolecules · 2025Article
- Design and Characterization of a Gene-Encoding DNA Nanoparticle in a Cell-Free Transcription-Translation System.ACS applied nano materials · 2024Article
- Article
- Self assembling nanoparticle enzyme clusters provide access to substrate channeling in multienzymatic cascades.Nature communications · 2023Article
- Solid-Phase Cell-Free Protein Synthesis and Its Applications in Biotechnology.Advances in biochemical engineering/biotechnology · 2023Article
- Hybrid Nucleic Acid-Quantum Dot Assemblies as Multiplexed Reporter Platforms for Cell-Free Transcription Translation-Based Biosensors.ACS synthetic biology · 2022Article
- Alternative design strategies to help build the enzymatic retrosynthesis toolbox.RSC chemical biology · 2022Article
- Advances, Challenges and Future Trends of Cell-Free Transcription-Translation Biosensors.Biosensors · 2022Review
- Cell-Free PURE System: Evolution and Achievements.Biodesign research · 2022Review
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Authors and funding
8 authors at 2 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Cell-free protein synthesis systems (CFPS) utilize cellular transcription and translation (TX-TL) machinery to synthesize proteins in vitro. These systems are useful for multiple applications including production of difficult proteins, as high-throughput tools for genetic circuit screening, and as systems for biosensor development. Though rapidly evolving, CFPS suffer from some disadvantages such as limited reaction rates due to longer diffusion times, significant cost per assay when using commercially sourced materials, and reduced reagent stability over prolonged periods. To address some of these challenges, we conducted a series of proof-of-concept experiments to demonstrate enhancement of CFPS productivity via nanoparticle assembly driven nanoaggregation of its constituent proteins. We combined a commercially available CFPS that utilizes purified polyhistidine-tagged (His-tag) TX-TL machinery with CdSe/CdS/ZnS core/shell/shell quantum dots (QDs) known to readily coordinate His-tagged proteins in an oriented fashion. We show that nanoparticle scaffolding of the CFPS cross-links the QDs into nanoaggregate structures while enhancing the production of functional recombinant super-folder green fluorescent protein and phosphotriesterase, an organophosphate hydrolase; the latter by up to 12-fold. This enhancement, which occurs by an undetermined mechanism, has the potential to improve CFPS in general and specifically CFPS-based biosensors (faster response time) while also enabling rapid detoxification/bioremediation through point-of-concern synthesis of similar catalytic enzymes. We further show that such nanoaggregates improve production in diluted CFPS reactions, which can help to save money and extend the amount of these costly reagents. The results are discussed in the context of what may contribute mechanistically to the enhancement and how this can be applied to other CFPS application scenarios.
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