Navaee, F.; Renaud, P.; Piacentini, N.; Durand, M.; Bayat, D.Z.; Ledroit, D.; Heub, S.; Boder-Pasche, S.; Kleger, A.; Braschler, T.;
et al. Toward a Physiologically Relevant 3D Helicoidal-Oriented Cardiac Model: Simultaneous Application of Mechanical Stimulation and Surface Topography. Bioengineering 2023, 10, 266.
https://doi.org/10.3390/bioengineering10020266
AMA Style
Navaee F, Renaud P, Piacentini N, Durand M, Bayat DZ, Ledroit D, Heub S, Boder-Pasche S, Kleger A, Braschler T,
et al. Toward a Physiologically Relevant 3D Helicoidal-Oriented Cardiac Model: Simultaneous Application of Mechanical Stimulation and Surface Topography. Bioengineering. 2023; 10(2):266.
https://doi.org/10.3390/bioengineering10020266
Chicago/Turabian Style
Navaee, Fatemeh, Philippe Renaud, Niccolò Piacentini, Mathilde Durand, Dara Zaman Bayat, Diane Ledroit, Sarah Heub, Stephanie Boder-Pasche, Alexander Kleger, Thomas Braschler,
and et al. 2023. "Toward a Physiologically Relevant 3D Helicoidal-Oriented Cardiac Model: Simultaneous Application of Mechanical Stimulation and Surface Topography" Bioengineering 10, no. 2: 266.
https://doi.org/10.3390/bioengineering10020266
APA Style
Navaee, F., Renaud, P., Piacentini, N., Durand, M., Bayat, D. Z., Ledroit, D., Heub, S., Boder-Pasche, S., Kleger, A., Braschler, T., & Weder, G.
(2023). Toward a Physiologically Relevant 3D Helicoidal-Oriented Cardiac Model: Simultaneous Application of Mechanical Stimulation and Surface Topography. Bioengineering, 10(2), 266.
https://doi.org/10.3390/bioengineering10020266