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Method Article

From Cells to Cell-Free Protein Synthesis within 24 Hours Using Cell-Free Autoinduction Workflow

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DOI:

10.3791/62866

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July 22nd, 2021

In This Article

Erratum Notice

Important: There has been an erratum issued for this article. View Erratum Notice

Summary

This work describes the preparation of cell extract from Escherichia coli (E. coli) followed by cell-free protein synthesis (CFPS) reactions in under 24 hours. Explanation of the cell-free autoinduction (CFAI) protocol details improvements made to reduce researcher oversight and increase quantities of cell extract obtained.

Abstract

Cell-free protein synthesis (CFPS) has grown as a biotechnology platform that captures transcription and translation machinery in vitro. Numerous developments have made the CFPS platform more accessible to new users and have expanded the range of applications. For lysate based CFPS systems, cell extracts can be generated from a variety of organisms, harnessing the unique biochemistry of that host to augment protein synthesis. Within the last 20 years, Escherichia coli (E. coli) has become one of the most widely used organisms for supporting CFPS due to its affordability and versatility. Despite numerous key advances, the workflow for E. coli cell extract preparation has remained a key bottleneck for new users to implement CFPS for their applications. The extract preparation workflow is time-intensive and requires technical expertise to achieve reproducible results. To overcome these barriers, we previously reported the development of a 24 hour cell-free autoinduction (CFAI) workflow that reduces user input and technical expertise required. The CFAI workflow minimizes the labor and technical skill required to generate cell extracts while also increasing the total quantities of cell extracts obtained. Here we describe that workflow in a step-by-step manner to improve access and support the broad implementation of E. coli based CFPS.

Introduction

The use of cell-free protein synthesis (CFPS) for biotechnology applications has grown substantially over the past few years1,2,3. This development can be attributed in part to increased efforts in understanding the processes that occur in CFPS and the role of each component4,5. Additionally, reduced costs attributed to optimized set-ups and alternative energy sources have made cell-free technology easier to implement for new users6,7,

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Protocol

1. Media growth

  1. Prepare 960 mL of CFAI media as described in Table 1 and adjust the pH to 7.2 using KOH.
  2. Transfer culture media to a 2.5 L baffled flask and autoclave for 30 min at 121 °C.
  3. Prepare a 40 mL sugar solution as described in Table 1. Filter-sterilize the solution into a separate autoclaved glass container.
    NOTE: The sugar solution can be stored in a 30 °C incubator until further use.
  4. Allow the media to completely cool to below 40 °C after autoclaving.
  5. Prior to inoculation of the CFAI media, add the sugar solution directly to the CFAI media.
  6. ....

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Results

When preparing CFAI media, glucose was exchanged for an increase in lactose and glycerol as the main energy substrate in the media. Additionally, the buffering capacity of the CFAI media was increased as well. These specific components are given in Table 1.

The cells were then grown to both an OD600 of 10 and the standard 2.5 in CFAI media to show consistency with extract quality despite varying extract quantities. The 2.5 OD600 CFAI media was grown after.......

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Discussion

Researcher oversight is traditionally needed for two key actions during cell growth: the induction of T7 RNAP and harvesting cells at a specific OD600. CFAI obviates both of those requirements to decrease the researcher's time and technical training required in order to prepare high quality cell extracts. Auto-induction of T7 RNAP is achieved by replacing glucose with lactose as the primary sugar in the media, obviating the previous need to actively monitor the growth and then induce with IPTG at a pr.......

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Disclosures

The authors declare that they have no competing financial conflicts of interest.

Acknowledgements

Authors would like to acknowledge Dr. Jennifer VanderKelen and Andrea Laubscher for technical support. Authors would also like to thank Nicole Gregorio, Max Levine, Alissa Mullin, Byungcheol So, August Brookwell, Elizabeth (Lizzy) Vojvoda, Logan Burrington and Jillian Kasman for helpful discussions. Authors also acknowledge funding support from the Bill and Linda Frost Fund, Center for Applications in Biotechnology's Chevron Biotechnology Applied Research Endowment Grant, Cal Poly Research, Scholarly, and the National Science Foundation (NSF-1708919).

....

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
1.5 mL Microfuge TubesPhenixMPC-425Q
1L Centrifuge TubeBeckman CoulterA99028
Avanti J-E CentrifugeBeckman Coulter369001
CoASigma-AldrichC3144-25MG
Cytation 5 Cell Imaging Multi-Mode ReaderBiotekBTCYT5F
D-GlucoseFisherD16-3
D-LactoseAlfa AesarJ66376
DTTThermoFisher15508013
Folinic AcidSigma-AldrichF7878-100MG
GlycerolFisherBP229-1
GlycineSigma-AldrichG7126-100G
HEPESThermoFisher11344041
IPTGSigma-AldrichI6758-1G
JLA-8.1000 RotorBeckman Coulter366754
K(Glu)Sigma-AldrichG1501-500G
K(OAc)Sigma-AldrichP1190-1KG
KOHSigma-AldrichP5958-500G
L-AlanineSigma-AldrichA7627-100G
L-ArginineSigma-AldrichA8094-25G
L-AsparagineSigma-AldrichA0884-25G
L-Aspartic AcidSigma-AldrichA7219-100G
L-CysteineSigma-AldrichC7352-25G
L-Glutamic AcidSigma-AldrichG1501-500G
L-GlutamineSigma-AldrichG3126-250G
L-HistadineSigma-AldrichH8000-25G
L-IsoleucineSigma-AldrichI2752-25G
L-LeucineSigma-AldrichL8000-25G
L-LysineSigma-AldrichL5501-25G
L-MethionineSigma-AldrichM9625-25G
L-PhenylalanineSigma-AldrichP2126-100G
L-ProlineSigma-AldrichP0380-100G
L-SerineSigma-AldrichS4500-100G
L-ThreonineSigma-AldrichT8625-25G
L-TryptophanSigma-AldrichT0254-25G
L-TyrosineSigma-AldrichT3754-100G
Luria BrothThermoFisher12795027
L-ValineSigma-AldrichV0500-25G
Mg(Glu)2Sigma-Aldrich49605-250G
Mg(OAc)2Sigma-AldrichM5661-250G
Microfuge 20Beckman CoulterB30134
Molecular Grade WaterSigma-Aldrich7732-18-5
NaClAlfa AesarA12313
NADSigma-AldrichN8535-15VL
New Brunswick Innova 42/42R IncubatorEppendorfM1335-0000
NH4(Glu)Sigma-Aldrich09689-250G
NTPsThermoFisherR0481
Oxalic AcidSigma-AldrichP0963-100G
PEPSigma-Aldrich860077-250MG
Potassium Phosphate DibasicAcros, OrganicsA0382124
Potassium Phosphate MonobasicAcros, OrganicsA0379904
PureLink HiPure Plasmid Prep KitThermoFisherK210007
PutrescineSigma-AldrichD13208-25G
SpermidineSigma-AldrichS0266-5G
Tris(OAc)Sigma-AldrichT6066-500G
tRNASigma-Aldrich10109541001
TryptoneFisher Bioreagents73049-73-7
Tunair 2.5L Baffled Shake FlaskSigma-AldrichZ710822
Ultrasonic ProcessorQSonicaQ125-230V/50HZ
Yeast ExtractFisher Bioreagents1/2/8013

References

  1. Gregorio, N. E., Levine, M. Z., Oza, J. P. A user's guide to cell-free protein synthesis. Methods and Protocols. 2 (1), 1-34 (2019).
  2. Silverman, A. D., Karim, A. S., Jewett, M. C. Cell-free gene expression: an expanded repertoire of applications. Nature Reviews Genetics.....

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Reprints and Permissions

Erratum


Formal Correction: Erratum: From Cells to Cell-Free Protein Synthesis within 24 Hours using Cell-Free Autoinduction Workflow
Posted by JoVE Editors on 5/23/2022. Citeable Link.

An erratum was issued for: From Cells to Cell-Free Protein Synthesis within 24 Hours using Cell-Free Autoinduction Workflow. The Authors section was updated.

The Authors section was updated from:

Philip E.J. Smith1,2, Taylor Slouka1,2, Javin P. Oza1,2
1Department of Chemistry and Biochemistry, California Polytechnic State University
2Center for Application in Biotechnology, California Polytechnic State University

to:

Philip E.J. Smith1,2, Taylor Slouka1,2, Mona Dabbas 1,2, Javin P. Oza1,2
1Department of Chemistry and Biochemistry, California Polytechnic State University
2Center for Application in Biotechnology, California Polytechnic State University

Tags

E. Coli ExtractsCell-Free ExpressionProtein EngineeringCell LysisSonication MethodFluorescence QuantificationS30 BufferBiotechnology Education