Zhao, T.; Li, R.; Tan, X.; Zhang, J.; Fan, C.; Zhao, Q.; Deng, Y.; Xu, A.; Lukong, K.E.; Genth, H.;
et al. Simulated Microgravity Reduces Focal Adhesions and Alters Cytoskeleton and Nuclear Positioning Leading to Enhanced Apoptosis via Suppressing FAK/RhoA-Mediated mTORC1/NF-κB and ERK1/2 Pathways. Int. J. Mol. Sci. 2018, 19, 1994.
https://doi.org/10.3390/ijms19071994
AMA Style
Zhao T, Li R, Tan X, Zhang J, Fan C, Zhao Q, Deng Y, Xu A, Lukong KE, Genth H,
et al. Simulated Microgravity Reduces Focal Adhesions and Alters Cytoskeleton and Nuclear Positioning Leading to Enhanced Apoptosis via Suppressing FAK/RhoA-Mediated mTORC1/NF-κB and ERK1/2 Pathways. International Journal of Molecular Sciences. 2018; 19(7):1994.
https://doi.org/10.3390/ijms19071994
Chicago/Turabian Style
Zhao, Tuo, Rong Li, Xin Tan, Jun Zhang, Cuihong Fan, Qin Zhao, Yulin Deng, Aizhang Xu, Kiven Erique Lukong, Harald Genth,
and et al. 2018. "Simulated Microgravity Reduces Focal Adhesions and Alters Cytoskeleton and Nuclear Positioning Leading to Enhanced Apoptosis via Suppressing FAK/RhoA-Mediated mTORC1/NF-κB and ERK1/2 Pathways" International Journal of Molecular Sciences 19, no. 7: 1994.
https://doi.org/10.3390/ijms19071994
APA Style
Zhao, T., Li, R., Tan, X., Zhang, J., Fan, C., Zhao, Q., Deng, Y., Xu, A., Lukong, K. E., Genth, H., & Xiang, J.
(2018). Simulated Microgravity Reduces Focal Adhesions and Alters Cytoskeleton and Nuclear Positioning Leading to Enhanced Apoptosis via Suppressing FAK/RhoA-Mediated mTORC1/NF-κB and ERK1/2 Pathways. International Journal of Molecular Sciences, 19(7), 1994.
https://doi.org/10.3390/ijms19071994