Gaillard, W.R.; Sustarich, J.; Li, Y.; Carruthers, D.N.; Gupta, K.; Liang, Y.; Kuo, R.; Tan, S.; Yoder, S.; Adams, P.D.;
et al. High-Throughput Microfluidic Electroporation (HTME): A Scalable, 384-Well Platform for Multiplexed Cell Engineering. Bioengineering 2025, 12, 788.
https://doi.org/10.3390/bioengineering12080788
AMA Style
Gaillard WR, Sustarich J, Li Y, Carruthers DN, Gupta K, Liang Y, Kuo R, Tan S, Yoder S, Adams PD,
et al. High-Throughput Microfluidic Electroporation (HTME): A Scalable, 384-Well Platform for Multiplexed Cell Engineering. Bioengineering. 2025; 12(8):788.
https://doi.org/10.3390/bioengineering12080788
Chicago/Turabian Style
Gaillard, William R., Jess Sustarich, Yuerong Li, David N. Carruthers, Kshitiz Gupta, Yan Liang, Rita Kuo, Stephen Tan, Sam Yoder, Paul D. Adams,
and et al. 2025. "High-Throughput Microfluidic Electroporation (HTME): A Scalable, 384-Well Platform for Multiplexed Cell Engineering" Bioengineering 12, no. 8: 788.
https://doi.org/10.3390/bioengineering12080788
APA Style
Gaillard, W. R., Sustarich, J., Li, Y., Carruthers, D. N., Gupta, K., Liang, Y., Kuo, R., Tan, S., Yoder, S., Adams, P. D., Garcia Martin, H., Hillson, N. J., & Singh, A. K.
(2025). High-Throughput Microfluidic Electroporation (HTME): A Scalable, 384-Well Platform for Multiplexed Cell Engineering. Bioengineering, 12(8), 788.
https://doi.org/10.3390/bioengineering12080788