Cargando…

Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells

[Image: see text] Engineered living materials have the potential for wide-ranging applications such as biosensing and treatment of diseases. Programmable cells provide the functional basis for living materials; however, their release into the environment raises numerous biosafety concerns. Current d...

Descripción completa

Detalles Bibliográficos
Autores principales: Guo, Shuaiqi, Dubuc, Emilien, Rave, Yahav, Verhagen, Mick, Twisk, Simone A. E., van der Hek, Tim, Oerlemans, Guido J. M., van den Oetelaar, Maxime C. M., van Hazendonk, Laura S., Brüls, Mariska, Eijkens, Bruno V., Joostens, Pim L., Keij, Sander R., Xing, Weizhou, Nijs, Martijn, Stalpers, Jitske, Sharma, Manoj, Gerth, Marieke, Boonen, Roy J. E. A., Verduin, Kees, Merkx, Maarten, Voets, Ilja K., de Greef, Tom F. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7091533/
https://www.ncbi.nlm.nih.gov/pubmed/32105449
http://dx.doi.org/10.1021/acssynbio.9b00404
_version_ 1783510026006036480
author Guo, Shuaiqi
Dubuc, Emilien
Rave, Yahav
Verhagen, Mick
Twisk, Simone A. E.
van der Hek, Tim
Oerlemans, Guido J. M.
van den Oetelaar, Maxime C. M.
van Hazendonk, Laura S.
Brüls, Mariska
Eijkens, Bruno V.
Joostens, Pim L.
Keij, Sander R.
Xing, Weizhou
Nijs, Martijn
Stalpers, Jitske
Sharma, Manoj
Gerth, Marieke
Boonen, Roy J. E. A.
Verduin, Kees
Merkx, Maarten
Voets, Ilja K.
de Greef, Tom F. A.
author_facet Guo, Shuaiqi
Dubuc, Emilien
Rave, Yahav
Verhagen, Mick
Twisk, Simone A. E.
van der Hek, Tim
Oerlemans, Guido J. M.
van den Oetelaar, Maxime C. M.
van Hazendonk, Laura S.
Brüls, Mariska
Eijkens, Bruno V.
Joostens, Pim L.
Keij, Sander R.
Xing, Weizhou
Nijs, Martijn
Stalpers, Jitske
Sharma, Manoj
Gerth, Marieke
Boonen, Roy J. E. A.
Verduin, Kees
Merkx, Maarten
Voets, Ilja K.
de Greef, Tom F. A.
author_sort Guo, Shuaiqi
collection PubMed
description [Image: see text] Engineered living materials have the potential for wide-ranging applications such as biosensing and treatment of diseases. Programmable cells provide the functional basis for living materials; however, their release into the environment raises numerous biosafety concerns. Current designs that limit the release of genetically engineered cells typically involve the fabrication of multilayer hybrid materials with submicrometer porous matrices. Nevertheless the stringent physical barriers limit the diffusion of macromolecules and therefore the repertoire of molecules available for actuation in response to communication signals between cells and their environment. Here, we engineer a novel living material entitled “Platform for Adhesin-mediated Trapping of Cells in Hydrogels” (PATCH). This technology is based on engineered E. coli that displays an adhesion protein derived from an Antarctic bacterium with a high affinity for glucose. The adhesin stably anchors E. coli in dextran-based hydrogels with large pore diameters (10–100 μm) and reduces the leakage of bacteria into the environment by up to 100-fold. As an application of PATCH, we engineered E. coli to secrete the bacteriocin lysostaphin which specifically kills Staphyloccocus aureus with low probability of raising antibiotic resistance. We demonstrated that living materials containing this lysostaphin-secreting E. coli inhibit the growth of S. aureus, including the strain resistant to methicillin (MRSA). Our tunable platform allows stable integration of programmable cells in dextran-based hydrogels without compromising free diffusion of macromolecules and could have potential applications in biotechnology and biomedicine.
format Online
Article
Text
id pubmed-7091533
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-70915332020-03-25 Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells Guo, Shuaiqi Dubuc, Emilien Rave, Yahav Verhagen, Mick Twisk, Simone A. E. van der Hek, Tim Oerlemans, Guido J. M. van den Oetelaar, Maxime C. M. van Hazendonk, Laura S. Brüls, Mariska Eijkens, Bruno V. Joostens, Pim L. Keij, Sander R. Xing, Weizhou Nijs, Martijn Stalpers, Jitske Sharma, Manoj Gerth, Marieke Boonen, Roy J. E. A. Verduin, Kees Merkx, Maarten Voets, Ilja K. de Greef, Tom F. A. ACS Synth Biol [Image: see text] Engineered living materials have the potential for wide-ranging applications such as biosensing and treatment of diseases. Programmable cells provide the functional basis for living materials; however, their release into the environment raises numerous biosafety concerns. Current designs that limit the release of genetically engineered cells typically involve the fabrication of multilayer hybrid materials with submicrometer porous matrices. Nevertheless the stringent physical barriers limit the diffusion of macromolecules and therefore the repertoire of molecules available for actuation in response to communication signals between cells and their environment. Here, we engineer a novel living material entitled “Platform for Adhesin-mediated Trapping of Cells in Hydrogels” (PATCH). This technology is based on engineered E. coli that displays an adhesion protein derived from an Antarctic bacterium with a high affinity for glucose. The adhesin stably anchors E. coli in dextran-based hydrogels with large pore diameters (10–100 μm) and reduces the leakage of bacteria into the environment by up to 100-fold. As an application of PATCH, we engineered E. coli to secrete the bacteriocin lysostaphin which specifically kills Staphyloccocus aureus with low probability of raising antibiotic resistance. We demonstrated that living materials containing this lysostaphin-secreting E. coli inhibit the growth of S. aureus, including the strain resistant to methicillin (MRSA). Our tunable platform allows stable integration of programmable cells in dextran-based hydrogels without compromising free diffusion of macromolecules and could have potential applications in biotechnology and biomedicine. American Chemical Society 2020-02-27 2020-03-20 /pmc/articles/PMC7091533/ /pubmed/32105449 http://dx.doi.org/10.1021/acssynbio.9b00404 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Guo, Shuaiqi
Dubuc, Emilien
Rave, Yahav
Verhagen, Mick
Twisk, Simone A. E.
van der Hek, Tim
Oerlemans, Guido J. M.
van den Oetelaar, Maxime C. M.
van Hazendonk, Laura S.
Brüls, Mariska
Eijkens, Bruno V.
Joostens, Pim L.
Keij, Sander R.
Xing, Weizhou
Nijs, Martijn
Stalpers, Jitske
Sharma, Manoj
Gerth, Marieke
Boonen, Roy J. E. A.
Verduin, Kees
Merkx, Maarten
Voets, Ilja K.
de Greef, Tom F. A.
Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title_full Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title_fullStr Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title_full_unstemmed Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title_short Engineered Living Materials Based on Adhesin-Mediated Trapping of Programmable Cells
title_sort engineered living materials based on adhesin-mediated trapping of programmable cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7091533/
https://www.ncbi.nlm.nih.gov/pubmed/32105449
http://dx.doi.org/10.1021/acssynbio.9b00404
work_keys_str_mv AT guoshuaiqi engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT dubucemilien engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT raveyahav engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT verhagenmick engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT twisksimoneae engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT vanderhektim engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT oerlemansguidojm engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT vandenoetelaarmaximecm engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT vanhazendonklauras engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT brulsmariska engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT eijkensbrunov engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT joostenspiml engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT keijsanderr engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT xingweizhou engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT nijsmartijn engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT stalpersjitske engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT sharmamanoj engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT gerthmarieke engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT boonenroyjea engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT verduinkees engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT merkxmaarten engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT voetsiljak engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells
AT degreeftomfa engineeredlivingmaterialsbasedonadhesinmediatedtrappingofprogrammablecells