Nanodelivery of a functional membrane receptor to manipulate cellular phenotype

Abstract Modification of membrane receptor makeup is one of the most efficient ways to control input-output signals but is usually achieved by expressing DNA or RNA-encoded proteins or by using other genome-editing methods, which can be technically challenging and produce unwanted side effects. Here...

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Autores principales: Tommaso Patriarchi, Ao Shen, Wei He, Mo Baikoghli, R. Holland Cheng, Yang K. Xiang, Matthew A. Coleman, Lin Tian
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Lenguaje:EN
Publicado: Nature Portfolio 2018
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Acceso en línea:https://doaj.org/article/d4115b454b4245c79e61e876075b3332
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spelling oai:doaj.org-article:d4115b454b4245c79e61e876075b33322021-12-02T11:40:54ZNanodelivery of a functional membrane receptor to manipulate cellular phenotype10.1038/s41598-018-21863-32045-2322https://doaj.org/article/d4115b454b4245c79e61e876075b33322018-02-01T00:00:00Zhttps://doi.org/10.1038/s41598-018-21863-3https://doaj.org/toc/2045-2322Abstract Modification of membrane receptor makeup is one of the most efficient ways to control input-output signals but is usually achieved by expressing DNA or RNA-encoded proteins or by using other genome-editing methods, which can be technically challenging and produce unwanted side effects. Here we develop and validate a nanodelivery approach to transfer in vitro synthesized, functional membrane receptors into the plasma membrane of living cells. Using β2-adrenergic receptor (β2AR), a prototypical G-protein coupled receptor, as an example, we demonstrated efficient incorporation of a full-length β2AR into a variety of mammalian cells, which imparts pharmacologic control over cellular signaling and affects cellular phenotype in an ex-vivo wound-healing model. Our approach for nanodelivery of functional membrane receptors expands the current toolkit for DNA and RNA-free manipulation of cellular function. We expect this approach to be readily applicable to the synthesis and nanodelivery of other types of GPCRs and membrane receptors, opening new doors for therapeutic development at the intersection between synthetic biology and nanomedicine.Tommaso PatriarchiAo ShenWei HeMo BaikoghliR. Holland ChengYang K. XiangMatthew A. ColemanLin TianNature PortfolioarticleMedicineRScienceQENScientific Reports, Vol 8, Iss 1, Pp 1-11 (2018)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Tommaso Patriarchi
Ao Shen
Wei He
Mo Baikoghli
R. Holland Cheng
Yang K. Xiang
Matthew A. Coleman
Lin Tian
Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
description Abstract Modification of membrane receptor makeup is one of the most efficient ways to control input-output signals but is usually achieved by expressing DNA or RNA-encoded proteins or by using other genome-editing methods, which can be technically challenging and produce unwanted side effects. Here we develop and validate a nanodelivery approach to transfer in vitro synthesized, functional membrane receptors into the plasma membrane of living cells. Using β2-adrenergic receptor (β2AR), a prototypical G-protein coupled receptor, as an example, we demonstrated efficient incorporation of a full-length β2AR into a variety of mammalian cells, which imparts pharmacologic control over cellular signaling and affects cellular phenotype in an ex-vivo wound-healing model. Our approach for nanodelivery of functional membrane receptors expands the current toolkit for DNA and RNA-free manipulation of cellular function. We expect this approach to be readily applicable to the synthesis and nanodelivery of other types of GPCRs and membrane receptors, opening new doors for therapeutic development at the intersection between synthetic biology and nanomedicine.
format article
author Tommaso Patriarchi
Ao Shen
Wei He
Mo Baikoghli
R. Holland Cheng
Yang K. Xiang
Matthew A. Coleman
Lin Tian
author_facet Tommaso Patriarchi
Ao Shen
Wei He
Mo Baikoghli
R. Holland Cheng
Yang K. Xiang
Matthew A. Coleman
Lin Tian
author_sort Tommaso Patriarchi
title Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
title_short Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
title_full Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
title_fullStr Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
title_full_unstemmed Nanodelivery of a functional membrane receptor to manipulate cellular phenotype
title_sort nanodelivery of a functional membrane receptor to manipulate cellular phenotype
publisher Nature Portfolio
publishDate 2018
url https://doaj.org/article/d4115b454b4245c79e61e876075b3332
work_keys_str_mv AT tommasopatriarchi nanodeliveryofafunctionalmembranereceptortomanipulatecellularphenotype
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AT mobaikoghli nanodeliveryofafunctionalmembranereceptortomanipulatecellularphenotype
AT rhollandcheng nanodeliveryofafunctionalmembranereceptortomanipulatecellularphenotype
AT yangkxiang nanodeliveryofafunctionalmembranereceptortomanipulatecellularphenotype
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