Fraiture, M.-A.; D’aes, J.; Guiderdoni, E.; Meunier, A.-C.; Delcourt, T.; Hoffman, S.; Vandermassen, E.; De Keersmaecker, S.C.J.; Vanneste, K.; Roosens, N.H.C.
Targeted High-Throughput Sequencing Enables the Detection of Single Nucleotide Variations in CRISPR/Cas9 Gene-Edited Organisms. Foods 2023, 12, 455.
https://doi.org/10.3390/foods12030455
AMA Style
Fraiture M-A, D’aes J, Guiderdoni E, Meunier A-C, Delcourt T, Hoffman S, Vandermassen E, De Keersmaecker SCJ, Vanneste K, Roosens NHC.
Targeted High-Throughput Sequencing Enables the Detection of Single Nucleotide Variations in CRISPR/Cas9 Gene-Edited Organisms. Foods. 2023; 12(3):455.
https://doi.org/10.3390/foods12030455
Chicago/Turabian Style
Fraiture, Marie-Alice, Jolien D’aes, Emmanuel Guiderdoni, Anne-Cécile Meunier, Thomas Delcourt, Stefan Hoffman, Els Vandermassen, Sigrid C. J. De Keersmaecker, Kevin Vanneste, and Nancy H. C. Roosens.
2023. "Targeted High-Throughput Sequencing Enables the Detection of Single Nucleotide Variations in CRISPR/Cas9 Gene-Edited Organisms" Foods 12, no. 3: 455.
https://doi.org/10.3390/foods12030455
APA Style
Fraiture, M.-A., D’aes, J., Guiderdoni, E., Meunier, A.-C., Delcourt, T., Hoffman, S., Vandermassen, E., De Keersmaecker, S. C. J., Vanneste, K., & Roosens, N. H. C.
(2023). Targeted High-Throughput Sequencing Enables the Detection of Single Nucleotide Variations in CRISPR/Cas9 Gene-Edited Organisms. Foods, 12(3), 455.
https://doi.org/10.3390/foods12030455