Microbubble contrast agents are widely used in ultrasound imaging and therapy, typically with transmission center frequencies in the MHz range. Currently, an ultrasound center frequency near 250 kHz is proposed for clinical trials in which ultrasound combined with microbubble contrast agents is applied to open the blood brain barrier, since at this low frequency focusing through the human skull to a predetermined location can be performed with reduced distortion and attenuation compared to higher frequencies. However, the microbubble vibrational response has not yet been carefully evaluated at this low frequency (an order of magnitude below the resonance frequency of these contrast agents). In the past, it was assumed that encapsulated microbubble expansion is maximized near the resonance frequency and monotonically decreases with decreasing frequency. Our results indicated that microbubble expansion was enhanced for 250 kHz transmission as compared with the 1 MHz center frequency. Following 250 kHz insonation, microbubble expansion increased nonlinearly with increasing ultrasonic pressure, and was accurately predicted by either the modified Rayleigh-Plesset equation for a clean bubble or the Marmottant model of a lipid-shelled microbubble. The expansion ratio reached 30-fold with 250 kHz at a peak negative pressure of 400 kPa, as compared to a measured expansion ratio of 1.6 fold for 1 MHz transmission at a similar peak negative pressure. Further, the range of peak negative pressure yielding stable cavitation in vitro was narrow (similar to 100 kPa) for the 250 kHz transmission frequency. Blood brain barrier opening using in vivo transcranial ultrasound in mice followed the same trend as the in vitro experiments, and the pressure range for safe and effective treatment was 75-150 kPa. For pressures above 150 kPa, inertial cavitation and hemorrhage occurred. Therefore, we conclude that (1) at this low frequency, and for the large oscillations, lipid-shelled microbubbles can be approximately modeled as clean gas microbubbles and (2) the development of safe and successful protocols for therapeutic delivery to the brain utilizing 250 kHz or a similar center frequency requires consideration of the narrow pressure window between stable and inertial cavitation.
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Yokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Fourth Mil Med Univ, Dept Ultrasound, Xijing Hosp, Xian 710032, Shaanxi, Peoples R ChinaYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Luo, Wen
Numata, Kazushi
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Yokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Numata, Kazushi
Morimoto, Manabu
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Yokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Morimoto, Manabu
Kondo, Masaaki
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Yokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Kondo, Masaaki
Takebayashi, Shigeo
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Yokohama City Univ, Med Ctr, Dept Radiol, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Takebayashi, Shigeo
Okada, Masahiro
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Kinki Univ, Sch Med, Dept Radiol, Osaka 589, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Okada, Masahiro
Morita, Satoshi
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Yokohama City Univ, Med Ctr, Dept Biostat & Epidemiol, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
Morita, Satoshi
Tanaka, Katsuaki
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Yokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, JapanYokohama City Univ, Med Ctr, Gastroenterol Ctr, Minami Ku, Kanagawa 2320024, Japan
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Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R ChinaGuangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
Jin, Bin-Bin
Ma, Yan
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Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R ChinaGuangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
Ma, Yan
Zhao, Xiu-Hua
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Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R ChinaGuangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
Zhao, Xiu-Hua
Teng, Yi-Ling
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Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R ChinaGuangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
Teng, Yi-Ling
Zhu, Shang-Yong
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Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
Guangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, 6 Shuangyong Rd, Nanning 530021, Guangxi, Peoples R ChinaGuangxi Med Univ, Dept Med Ultrasound, Affiliated Hosp 1, Nanning, Peoples R China
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Natl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, JapanNatl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, Japan
Nagase, M
Furuse, J
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Natl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, JapanNatl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, Japan
Furuse, J
Ishii, H
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Natl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, JapanNatl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, Japan
Ishii, H
Yoshino, M
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Natl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, JapanNatl Canc Ctr Hosp E, Div Hepatobiliary Pancreat Med Oncol, Chiba 2778577, Japan