Published March 2021 | Version public
Journal Article

Nanotechnology to advance CRISPR-Cas genetic engineering of plants

  • 1. ROR icon University of California, Berkeley
  • 2. ROR icon University of California, Davis
  • 3. ROR icon Joint BioEnergy Institute
  • 4. ROR icon Lawrence Berkeley National Laboratory
  • 5. ROR icon University of Adelaide
  • 6. ROR icon Innovative Genomics Institute
  • 7. ROR icon CZ Biohub

Abstract

CRISPR–Cas genetic engineering of plants holds tremendous potential for providing food security, battling biotic and abiotic crop stresses caused by climate change, and for environmental remediation and sustainability. Since the discovery of CRISPR–Cas technology, its usefulness has been demonstrated widely, including for genome editing in plants. Despite the revolutionary nature of genome-editing tools and the notable progress that these tools have enabled in plant genetic engineering, there remain many challenges for CRISPR applications in plant biotechnology. Nanomaterials could address some of the most critical challenges of CRISPR genome editing in plants through improvements in cargo delivery, species independence, germline transformation and gene editing efficiency. This Perspective identifies major barriers preventing CRISPR-mediated plant genetic engineering from reaching its full potential, and discusses ways that nanoparticle technologies can lower or eliminate these barriers. We also describe advances that are needed in nanotechnology to facilitate and accelerate plant genome editing. Timely advancement of the application of CRISPR technologies in plant engineering is crucial for our ability to feed and sustain the growing human population under a changing global climate.

Additional Information

© 2022 Springer Nature Limited. Received 28 August 2020. Accepted 14 January 2021. Published 12 March 2021. Issue Date March 2021. We thank W. Dwyer and J. Krupp for helpful discussions. G.S.D. is funded by the Schlumberger Foundation Faculty for the Future Program and the Resnick Sustainability Institute. C.T.J. acknowledges the support of the National Science Foundation Graduate Research Fellowships Program. We acknowledge support of a Burroughs Wellcome Fund Career Award at the Scientific Interface (CASI) (M.P.L.), a Beckman Foundation Young Investigator Award (M.P.L.), a USDA AFRI award (M.P.L.), a USDA NIFA award (M.P.L.), a CZI deep tissue imaging award (M.P.L.), and an FFAR New Innovator Award (M.P.L.). M.P.L. is a Chan Zuckerberg Biohub investigator. This research was supported, in part, by the US Department of Energy, Office of Science, Office of Biological and Environmental Research, Genomic Science Program grant no. DE-DE-SC0020366 (S.Y.R., J.C.M., M.P.L. and D.W.E.) and DE-SC0018277 (S.Y.R.), the DOE Joint BioEnergy Institute (http://www.jbei.org) supported by the US Department of Energy, Office of Science, Office of Biological and Environmental Research, through contract DE-AC02-05CH11231 between Lawrence Berkeley National Laboratory (J.C.M.) and the US Department of Energy, and the US National Science Foundation grants IOS-1546838 (S.Y.R.) and MCB-1617020 (S.Y.R.). The authors declare no competing interests. Peer review information. Nature Nanotechnology thanks Sandeep Kumar, Neena Mitter, Yiping Qi and the other, anonymous, reviewer(s) for their contribution to the peer review of this work.

Additional details

Identifiers

Eprint ID
113694
DOI
10.1038/s41565-021-00854-y
Resolver ID
CaltechAUTHORS:20220302-323754000

Related works

Funding

Schlumberger Foundation
Resnick Sustainability Institute
NSF Graduate Research Fellowship
Burroughs Wellcome Fund
Arnold and Mabel Beckman Foundation
Department of Agriculture
Chan-Zuckerberg Biohub
Foundation for Food and Agriculture Research
Department of Energy (DOE)
DE-SC0020366
Department of Energy (DOE)
DE-SC0018277
Department of Energy (DOE)
DE-AC02-05CH11231
NSF
IOS-1546838
NSF
MCB-1617020

Dates

Created
2022-03-03
Created from EPrint's datestamp field
Updated
2022-03-03
Created from EPrint's last_modified field

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