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Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway

BACKGROUND: There is an unmet need to monitor human and natural environments for substances that are intentionally or unintentionally introduced. A long-sought goal is to adapt plants to sense and respond to specific substances for use as environmental monitors. Computationally re-designed periplasm...

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Autores principales: Antunes, Mauricio S., Morey, Kevin J., Smith, J. Jeff, Albrecht, Kirk D., Bowen, Tessa A., Zdunek, Jeffrey K., Troupe, Jared F., Cuneo, Matthew J., Webb, Colleen T., Hellinga, Homme W., Medford, June I.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3026823/
https://www.ncbi.nlm.nih.gov/pubmed/21283542
http://dx.doi.org/10.1371/journal.pone.0016292
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author Antunes, Mauricio S.
Morey, Kevin J.
Smith, J. Jeff
Albrecht, Kirk D.
Bowen, Tessa A.
Zdunek, Jeffrey K.
Troupe, Jared F.
Cuneo, Matthew J.
Webb, Colleen T.
Hellinga, Homme W.
Medford, June I.
author_facet Antunes, Mauricio S.
Morey, Kevin J.
Smith, J. Jeff
Albrecht, Kirk D.
Bowen, Tessa A.
Zdunek, Jeffrey K.
Troupe, Jared F.
Cuneo, Matthew J.
Webb, Colleen T.
Hellinga, Homme W.
Medford, June I.
author_sort Antunes, Mauricio S.
collection PubMed
description BACKGROUND: There is an unmet need to monitor human and natural environments for substances that are intentionally or unintentionally introduced. A long-sought goal is to adapt plants to sense and respond to specific substances for use as environmental monitors. Computationally re-designed periplasmic binding proteins (PBPs) provide a means to design highly sensitive and specific ligand sensing capabilities in receptors. Input from these proteins can be linked to gene expression through histidine kinase (HK) mediated signaling. Components of HK signaling systems are evolutionarily conserved between bacteria and plants. We previously reported that in response to cytokinin-mediated HK activation in plants, the bacterial response regulator PhoB translocates to the nucleus and activates transcription. Also, we previously described a plant visual response system, the de-greening circuit, a threshold sensitive reporter system that produces a visual response which is remotely detectable and quantifiable. METHODOLOGY/PRINCIPAL FINDINGS: We describe assembly and function of a complete synthetic signal transduction pathway in plants that links input from computationally re-designed PBPs to a visual response. To sense extracellular ligands, we targeted the computational re-designed PBPs to the apoplast. PBPs bind the ligand and develop affinity for the extracellular domain of a chemotactic protein, Trg. We experimentally developed Trg fusions proteins, which bind the ligand-PBP complex, and activate intracellular PhoR, the HK cognate of PhoB. We then adapted Trg-PhoR fusions for function in plants showing that in the presence of an external ligand PhoB translocates to the nucleus and activates transcription. We linked this input to the de-greening circuit creating a detector plant. CONCLUSIONS/SIGNIFICANCE: Our system is modular and PBPs can theoretically be designed to bind most small molecules. Hence our system, with improvements, may allow plants to serve as a simple and inexpensive means to monitor human surroundings for substances such as pollutants, explosives, or chemical agents.
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spelling pubmed-30268232011-01-31 Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway Antunes, Mauricio S. Morey, Kevin J. Smith, J. Jeff Albrecht, Kirk D. Bowen, Tessa A. Zdunek, Jeffrey K. Troupe, Jared F. Cuneo, Matthew J. Webb, Colleen T. Hellinga, Homme W. Medford, June I. PLoS One Research Article BACKGROUND: There is an unmet need to monitor human and natural environments for substances that are intentionally or unintentionally introduced. A long-sought goal is to adapt plants to sense and respond to specific substances for use as environmental monitors. Computationally re-designed periplasmic binding proteins (PBPs) provide a means to design highly sensitive and specific ligand sensing capabilities in receptors. Input from these proteins can be linked to gene expression through histidine kinase (HK) mediated signaling. Components of HK signaling systems are evolutionarily conserved between bacteria and plants. We previously reported that in response to cytokinin-mediated HK activation in plants, the bacterial response regulator PhoB translocates to the nucleus and activates transcription. Also, we previously described a plant visual response system, the de-greening circuit, a threshold sensitive reporter system that produces a visual response which is remotely detectable and quantifiable. METHODOLOGY/PRINCIPAL FINDINGS: We describe assembly and function of a complete synthetic signal transduction pathway in plants that links input from computationally re-designed PBPs to a visual response. To sense extracellular ligands, we targeted the computational re-designed PBPs to the apoplast. PBPs bind the ligand and develop affinity for the extracellular domain of a chemotactic protein, Trg. We experimentally developed Trg fusions proteins, which bind the ligand-PBP complex, and activate intracellular PhoR, the HK cognate of PhoB. We then adapted Trg-PhoR fusions for function in plants showing that in the presence of an external ligand PhoB translocates to the nucleus and activates transcription. We linked this input to the de-greening circuit creating a detector plant. CONCLUSIONS/SIGNIFICANCE: Our system is modular and PBPs can theoretically be designed to bind most small molecules. Hence our system, with improvements, may allow plants to serve as a simple and inexpensive means to monitor human surroundings for substances such as pollutants, explosives, or chemical agents. Public Library of Science 2011-01-25 /pmc/articles/PMC3026823/ /pubmed/21283542 http://dx.doi.org/10.1371/journal.pone.0016292 Text en Antunes et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Antunes, Mauricio S.
Morey, Kevin J.
Smith, J. Jeff
Albrecht, Kirk D.
Bowen, Tessa A.
Zdunek, Jeffrey K.
Troupe, Jared F.
Cuneo, Matthew J.
Webb, Colleen T.
Hellinga, Homme W.
Medford, June I.
Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title_full Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title_fullStr Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title_full_unstemmed Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title_short Programmable Ligand Detection System in Plants through a Synthetic Signal Transduction Pathway
title_sort programmable ligand detection system in plants through a synthetic signal transduction pathway
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3026823/
https://www.ncbi.nlm.nih.gov/pubmed/21283542
http://dx.doi.org/10.1371/journal.pone.0016292
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