W. M. Pardridge, The blood-brain barrier: bottleneck in brain drug development, NeuroRx, vol.2, pp.3-14, 2005.

K. Hynynen, N. Mcdannold, N. Vykhodtseva, F. A. Jolesz, and M. R. Noninvasive, imaging-guided focal opening of the blood-brain barrier in rabbits, Radiology, vol.220, pp.640-646, 2001.

Y. S. Tung, In vivo transcranial cavitation threshold detection during ultrasound-induced blood-brain barrier opening in mice, Phys. Med. Biol, vol.55, pp.6141-6155, 2010.

N. Mcdannold, N. Vykhodtseva, and K. Hynynen, Targeted disruption of the blood-brain barrier with focused ultrasound: association with cavitation activity, Phys. Med. Biol, vol.51, pp.793-807, 2006.

A. Dasgupta, Ultrasound-mediated drug delivery to the brain: principles, progress and prospects, Drug Discov. Today Technol, vol.20, pp.41-48, 2016.

C. D. Arvanitis, M. S. Livingstone, and N. Mcdannold, Combined ultrasound and MR imaging to guide focused ultrasound therapies in the brain, Phys. Med. Biol, vol.58, pp.4749-4761, 2013.

S. Sirsi and M. Borden, Microbubble Compositions, Properties and Biomedical Applications, Bubble Sci. Eng. Technol, vol.1, pp.3-17, 2009.

N. De-jong, A. Bouakaz, and P. Frinking, Basic acoustic properties of microbubbles, Echocardiography, vol.19, pp.229-240, 2002.

S. R. Haqshenas and N. Saffari, Multi-resolution analysis of passive cavitation detector signals, Journal of Physics: Conference Series, vol.581, p.12004, 2015.

M. A. O'reilly and K. Hynynen, Blood-brain barrier: real-time feedback-controlled focused ultrasound disruption by using an acoustic emissions-based controller, Radiology, vol.263, pp.96-106, 2012.

J. J. Choi, R. C. Carlisle, C. Coviello, L. Seymour, and C. C. Coussios, Non-invasive and real-time passive acoustic mapping of ultrasound-mediated drug delivery, Phys. Med. Biol, vol.59, pp.4861-4877, 2014.

H. A. Kamimura, Feedback control of microbubble cavitation for ultrasound-mediated blood-brain barrier disruption in nonhuman primates under magnetic resonance guidance, J. Cereb. Blood Flow Metab, 2018.
URL : https://hal.archives-ouvertes.fr/cea-02043269

Y. Huang, R. Alkins, M. L. Schwartz, and K. Hynynen, Opening the Blood-Brain Barrier with MR Imaging-guided Focused Ultrasound: Preclinical Testing on a Trans-Human Skull Porcine Model, Radiology, vol.282, pp.123-130, 2017.

C. D. Arvanitis, M. S. Livingstone, N. Vykhodtseva, and N. Mcdannold, Controlled ultrasound-induced blood-brain barrier disruption using passive acoustic emissions monitoring, PLoS One, vol.7, 2012.

C. H. Tsai, J. W. Zhang, Y. Y. Liao, and H. L. Liu, Real-time monitoring of focused ultrasound blood-brain barrier opening via subharmonic acoustic emission detection: implementation of confocal dual-frequency piezoelectric transducers, Phys. Med. Biol, vol.61, pp.2926-2946, 2016.

T. Sun, Acoustic cavitation-based monitoring of the reversibility and permeability of ultrasound-induced blood-brain barrier opening, Phys. Med. Biol, vol.60, pp.9079-9094, 2015.

C. Bing, Characterization of different bubble formulations for blood-brain barrier opening using a focused ultrasound system with acoustic feedback control, vol.7986, 2018.

T. Sun, Closed-loop control of targeted ultrasound drug delivery across the blood-brain/tumor barriers in a rat glioma model, Proc. Natl. Acad. Sci. USA, vol.114, pp.10281-10290, 2017.

A. Patel, S. J. Schoen, . Jr, and C. D. Arvanitis, Closed Loop Spatial and Temporal Control of Cavitation Activity with Passive Acoustic Mapping, IEEE Trans. Biomed. Eng, 2018.

H. Shekhar, I. Awuor, K. Thomas, J. J. Rychak, and M. M. Doyley, The delayed onset of subharmonic and ultraharmonic emissions from a phospholipid-shelled microbubble contrast agent, Ultrasound Med. Biol, vol.40, pp.727-738, 2014.

K. Kooiman, Focal areas of increased lipid concentration on the coating of microbubbles during short tone-burst ultrasound insonification, PLoS One, vol.12, 2017.

Y. Luan, Lipid shedding from single oscillating microbubbles, Ultrasound Med. Biol, vol.40, pp.1834-1846, 2014.

F. Guidi, H. J. Vos, R. Mori, N. De-jong, and P. Tortoli, Microbubble characterization through acoustically induced deflation, IEEE transactions on ultrasonics, ferroelectrics, and frequency control, vol.57, pp.193-202, 2010.

M. A. Borden, Influence of lipid shell physicochemical properties on ultrasound-induced microbubble destruction, IEEE transactions on ultrasonics, ferroelectrics, and frequency control, vol.52, 1992.

M. Postema, P. Marmottant, C. T. Lancee, S. Hilgenfeldt, and N. De-jong, Ultrasound-induced microbubble coalescence, Ultrasound Med. Biol, vol.30, pp.1337-1344, 2004.

P. Marmottant, S. Van-der-meer, M. Emmer, and M. Versluis, A model for large amplitude oscillations of coated bubbles accounting for buckling and rupture, J. Acoust. Soc. Am, vol.118, pp.3499-3505, 2005.

J. Sijl, Subharmonic behavior of phospholipid-coated ultrasound contrast agent microbubbles, J. Acoust. Soc. Am, vol.128, pp.3239-3252, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00734981

D. H. Thomas, The "quasi-stable" lipid shelled microbubble in response to consecutive ultrasound pulses, Applied Physics Letter, vol.101, p.71601, 2012.

J. P. O'brien, E. Stride, and N. Ovenden, Surfactant shedding and gas diffusion during pulsed ultrasound through a microbubble contrast agent suspension, J. Acoust. Soc. Am, vol.134, pp.1416-1427, 2013.

R. Magnin, Magnetic resonance-guided motorized transcranial ultrasound system for blood-brain barrier permeabilization along arbitrary trajectories in rodents, J. Ther. Ultrasound, vol.3, 2015.
URL : https://hal.archives-ouvertes.fr/cea-02043280

S. Khalili and M. Mahdi, Numerical analyses of nonlinear behavior of microbubble contrast agents in ultrasound field and effective parameters, J. Acoust. Soc. Am, vol.143, 2018.

T. Li, Passive cavitation detection during pulsed HIFU exposures of ex vivo tissues and in vivo mouse pancreatic tumors, Ultrasound Med. Biol, vol.40, pp.1523-1534, 2014.

M. Gerstenmayer, B. Fellah, R. Magnin, E. Selingue, and B. Larrat, Acoustic Transmission Factor through the Rat Skull as a Function of Body Mass, Frequency and Position, Ultrasound Med. Biol, vol.44, pp.2336-2344, 2018.
URL : https://hal.archives-ouvertes.fr/cea-02043267

J. J. Choi, Noninvasive and localized blood-brain barrier disruption using focused ultrasound can be achieved at short pulse lengths and low pulse repetition frequencies, J. Cereb. Blood Flow Metab, vol.31, pp.725-737, 2011.

J. J. Choi, K. Selert, F. Vlachos, A. Wong, and E. E. Konofagou, Noninvasive and localized neuronal delivery using short ultrasonic pulses and microbubbles, Proc. Natl. Acad. Sci. USA, vol.108, pp.16539-16544, 2011.

C. Poon, D. Mcmahon, and K. Hynynen, Noninvasive and targeted delivery of therapeutics to the brain using focused ultrasound, Neuropharmacology, vol.120, pp.20-37, 2017.

N. Mcdannold, N. Vykhodtseva, and K. Hynynen, Effects of acoustic parameters and ultrasound contrast agent dose on focusedultrasound induced blood-brain barrier disruption, Ultrasound Med. Biol, vol.34, pp.930-937, 2008.

K. Hynynen, N. Mcdannold, H. Martin, F. A. Jolesz, and N. Vykhodtseva, The threshold for brain damage in rabbits induced by bursts of ultrasound in the presence of an ultrasound contrast agent (Optison), Ultrasound Med. Biol, vol.29, pp.473-481, 2003.

S. V. Morse, Rapid Short-pulse Ultrasound Delivers Drugs Uniformly across the Murine Blood-Brain Barrier with Negligible Disruption, Radiology, vol.291, pp.459-466, 2019.

M. Guedra, S. Cleve, C. Mauger, P. Blanc-benon, and C. Inserra, Dynamics of nonspherical microbubble oscillations above instability threshold, Phys. Rev. E, vol.96, p.63104, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01705578

J. Viti, Correspondence -Nonlinear oscillations of deflating bubbles, IEEE transactions on ultrasonics, ferroelectrics, and frequency control, vol.59, pp.2818-2824, 2012.

S. Cleve, M. Guedra, C. Inserra, C. Mauger, and P. Blanc-benon, Surface modes with controlled axisymmetry triggered by bubble coalescence in a high-amplitude acoustic field, Phys. Rev. E, vol.98, p.33115, 2018.
URL : https://hal.archives-ouvertes.fr/hal-02085848

J. R. Collin and C. C. Coussios, Quantitative observations of cavitation activity in a viscoelastic medium, J. Acoust. Soc. Am, vol.130, pp.3289-3296, 2011.

M. Gyongy and C. C. Coussios, Passive cavitation mapping for localization and tracking of bubble dynamics, J. Acoust. Soc. Am, vol.128, pp.175-180, 2010.

A. Novell, J. M. Escoffre, and A. Bouakaz, Second harmonic and subharmonic for non-linear wideband contrast imaging using a capacitive micromachined ultrasonic transducer array, Ultrasound Med. Biol, vol.39, pp.1500-1512, 2013.

C. Cornu, Ultrafast monitoring and control of subharmonic emissions of an unseeded bubble cloud during pulsed sonication, Ultrason. Sonochem, vol.42, pp.697-703, 2018.