Cargando…

Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring

The new and rapid advancement in the complexity of biologics drug discovery has been driven by a deeper understanding of biological systems combined with innovative new therapeutic modalities, paving the way to breakthrough therapies for previously intractable diseases. These exciting times in biome...

Descripción completa

Detalles Bibliográficos
Autores principales: Jorgolli, Marsela, Nevill, Tanner, Winters, Aaron, Chen, Irwin, Chong, Su, Lin, Fen‐Fen, Mock, Marissa, Chen, Ching, Le, Kim, Tan, Christopher, Jess, Philip, Xu, Han, Hamburger, Agi, Stevens, Jennitte, Munro, Trent, Wu, Ming, Tagari, Philip, Miranda, Les P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771990/
https://www.ncbi.nlm.nih.gov/pubmed/31112285
http://dx.doi.org/10.1002/bit.27024
_version_ 1783455810337112064
author Jorgolli, Marsela
Nevill, Tanner
Winters, Aaron
Chen, Irwin
Chong, Su
Lin, Fen‐Fen
Mock, Marissa
Chen, Ching
Le, Kim
Tan, Christopher
Jess, Philip
Xu, Han
Hamburger, Agi
Stevens, Jennitte
Munro, Trent
Wu, Ming
Tagari, Philip
Miranda, Les P.
author_facet Jorgolli, Marsela
Nevill, Tanner
Winters, Aaron
Chen, Irwin
Chong, Su
Lin, Fen‐Fen
Mock, Marissa
Chen, Ching
Le, Kim
Tan, Christopher
Jess, Philip
Xu, Han
Hamburger, Agi
Stevens, Jennitte
Munro, Trent
Wu, Ming
Tagari, Philip
Miranda, Les P.
author_sort Jorgolli, Marsela
collection PubMed
description The new and rapid advancement in the complexity of biologics drug discovery has been driven by a deeper understanding of biological systems combined with innovative new therapeutic modalities, paving the way to breakthrough therapies for previously intractable diseases. These exciting times in biomedical innovation require the development of novel technologies to facilitate the sophisticated, multifaceted, high‐paced workflows necessary to support modern large molecule drug discovery. A high‐level aspiration is a true integration of “lab‐on‐a‐chip” methods that vastly miniaturize cellulmical experiments could transform the speed, cost, and success of multiple workstreams in biologics development. Several microscale bioprocess technologies have been established that incrementally address these needs, yet each is inflexibly designed for a very specific process thus limiting an integrated holistic application. A more fully integrated nanoscale approach that incorporates manipulation, culture, analytics, and traceable digital record keeping of thousands of single cells in a relevant nanoenvironment would be a transformative technology capable of keeping pace with today's rapid and complex drug discovery demands. The recent advent of optical manipulation of cells using light‐induced electrokinetics with micro‐ and nanoscale cell culture is poised to revolutionize both fundamental and applied biological research. In this review, we summarize the current state of the art for optical manipulation techniques and discuss emerging biological applications of this technology. In particular, we focus on promising prospects for drug discovery workflows, including antibody discovery, bioassay development, antibody engineering, and cell line development, which are enabled by the automation and industrialization of an integrated optoelectronic single‐cell manipulation and culture platform. Continued development of such platforms will be well positioned to overcome many of the challenges currently associated with fragmented, low‐throughput bioprocess workflows in biopharma and life science research.
format Online
Article
Text
id pubmed-6771990
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-67719902019-10-07 Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring Jorgolli, Marsela Nevill, Tanner Winters, Aaron Chen, Irwin Chong, Su Lin, Fen‐Fen Mock, Marissa Chen, Ching Le, Kim Tan, Christopher Jess, Philip Xu, Han Hamburger, Agi Stevens, Jennitte Munro, Trent Wu, Ming Tagari, Philip Miranda, Les P. Biotechnol Bioeng REVIEW The new and rapid advancement in the complexity of biologics drug discovery has been driven by a deeper understanding of biological systems combined with innovative new therapeutic modalities, paving the way to breakthrough therapies for previously intractable diseases. These exciting times in biomedical innovation require the development of novel technologies to facilitate the sophisticated, multifaceted, high‐paced workflows necessary to support modern large molecule drug discovery. A high‐level aspiration is a true integration of “lab‐on‐a‐chip” methods that vastly miniaturize cellulmical experiments could transform the speed, cost, and success of multiple workstreams in biologics development. Several microscale bioprocess technologies have been established that incrementally address these needs, yet each is inflexibly designed for a very specific process thus limiting an integrated holistic application. A more fully integrated nanoscale approach that incorporates manipulation, culture, analytics, and traceable digital record keeping of thousands of single cells in a relevant nanoenvironment would be a transformative technology capable of keeping pace with today's rapid and complex drug discovery demands. The recent advent of optical manipulation of cells using light‐induced electrokinetics with micro‐ and nanoscale cell culture is poised to revolutionize both fundamental and applied biological research. In this review, we summarize the current state of the art for optical manipulation techniques and discuss emerging biological applications of this technology. In particular, we focus on promising prospects for drug discovery workflows, including antibody discovery, bioassay development, antibody engineering, and cell line development, which are enabled by the automation and industrialization of an integrated optoelectronic single‐cell manipulation and culture platform. Continued development of such platforms will be well positioned to overcome many of the challenges currently associated with fragmented, low‐throughput bioprocess workflows in biopharma and life science research. John Wiley and Sons Inc. 2019-06-24 2019-09 /pmc/articles/PMC6771990/ /pubmed/31112285 http://dx.doi.org/10.1002/bit.27024 Text en © 2019 The Authors. Biotechnology and Bioengineering Published by Wiley Periodicals, Inc. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle REVIEW
Jorgolli, Marsela
Nevill, Tanner
Winters, Aaron
Chen, Irwin
Chong, Su
Lin, Fen‐Fen
Mock, Marissa
Chen, Ching
Le, Kim
Tan, Christopher
Jess, Philip
Xu, Han
Hamburger, Agi
Stevens, Jennitte
Munro, Trent
Wu, Ming
Tagari, Philip
Miranda, Les P.
Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title_full Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title_fullStr Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title_full_unstemmed Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title_short Nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
title_sort nanoscale integration of single cell biologics discovery processes using optofluidic manipulation and monitoring
topic REVIEW
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6771990/
https://www.ncbi.nlm.nih.gov/pubmed/31112285
http://dx.doi.org/10.1002/bit.27024
work_keys_str_mv AT jorgollimarsela nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT nevilltanner nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT wintersaaron nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT chenirwin nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT chongsu nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT linfenfen nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT mockmarissa nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT chenching nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT lekim nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT tanchristopher nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT jessphilip nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT xuhan nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT hamburgeragi nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT stevensjennitte nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT munrotrent nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT wuming nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT tagariphilip nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring
AT mirandalesp nanoscaleintegrationofsinglecellbiologicsdiscoveryprocessesusingoptofluidicmanipulationandmonitoring