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1.
Proc Natl Acad Sci U S A ; 114(48): E10281-E10290, 2017 11 28.
Article in English | MEDLINE | ID: mdl-29133392

ABSTRACT

Cavitation-facilitated microbubble-mediated focused ultrasound therapy is a promising method of drug delivery across the blood-brain barrier (BBB) for treating many neurological disorders. Unlike ultrasound thermal therapies, during which magnetic resonance thermometry can serve as a reliable treatment control modality, real-time control of modulated BBB disruption with undetectable vascular damage remains a challenge. Here a closed-loop cavitation controlling paradigm that sustains stable cavitation while suppressing inertial cavitation behavior was designed and validated using a dual-transducer system operating at the clinically relevant ultrasound frequency of 274.3 kHz. Tests in the normal brain and in the F98 glioma model in vivo demonstrated that this controller enables reliable and damage-free delivery of a predetermined amount of the chemotherapeutic drug (liposomal doxorubicin) into the brain. The maximum concentration level of delivered doxorubicin exceeded levels previously shown (using uncontrolled sonication) to induce tumor regression and improve survival in rat glioma. These results confirmed the ability of the controller to modulate the drug delivery dosage within a therapeutically effective range, while improving safety control. It can be readily implemented clinically and potentially applied to other cavitation-enhanced ultrasound therapies.


Subject(s)
Antibiotics, Antineoplastic/pharmacology , Blood-Brain Barrier/metabolism , Brain Neoplasms/therapy , Doxorubicin/analogs & derivatives , Drug Delivery Systems/methods , Glioma/therapy , Ultrasonic Therapy/methods , Acoustics/instrumentation , Animals , Antibiotics, Antineoplastic/chemistry , Antibiotics, Antineoplastic/pharmacokinetics , Brain Neoplasms/diagnostic imaging , Brain Neoplasms/metabolism , Brain Neoplasms/pathology , Carbocyanines/chemistry , Carbocyanines/pharmacokinetics , Corpus Striatum/diagnostic imaging , Corpus Striatum/drug effects , Corpus Striatum/metabolism , Corpus Striatum/pathology , Disease Models, Animal , Doxorubicin/chemistry , Doxorubicin/pharmacokinetics , Doxorubicin/pharmacology , Drug Delivery Systems/instrumentation , Fluorescent Dyes/chemistry , Fluorescent Dyes/pharmacokinetics , Glioma/diagnostic imaging , Glioma/metabolism , Glioma/pathology , Hippocampus/diagnostic imaging , Hippocampus/drug effects , Hippocampus/metabolism , Hippocampus/pathology , Luminescent Proteins/chemistry , Luminescent Proteins/pharmacokinetics , Magnetic Resonance Imaging , Male , Microbubbles , Molecular Targeted Therapy , Polyethylene Glycols/chemistry , Polyethylene Glycols/pharmacokinetics , Polyethylene Glycols/pharmacology , Rats , Rats, Sprague-Dawley , Transducers , Ultrasonic Waves
2.
Expert Opin Drug Deliv ; 10(5): 573-92, 2013 May.
Article in English | MEDLINE | ID: mdl-23448121

ABSTRACT

INTRODUCTION: Ultrasound (US) has been developed as both a valuable diagnostic tool and a potent promoter of beneficial tissue bioeffects for the treatment of cardiovascular disease. These effects can be mediated by mechanical oscillations of circulating microbubbles, or US contrast agents, which may also encapsulate and shield a therapeutic agent in the bloodstream. Oscillating microbubbles can create stresses directly on nearby tissue or induce fluid effects that effect drug penetration into vascular tissue, lyse thrombi or direct drugs to optimal locations for delivery. AREAS COVERED: The present review summarizes investigations that have provided evidence for US-mediated drug delivery as a potent method to deliver therapeutics to diseased tissue for cardiovascular treatment. In particular, the focus will be on investigations of specific aspects relating to US-mediated drug delivery, such as delivery vehicles, drug transport routes, biochemical mechanisms and molecular targeting strategies. EXPERT OPINION: These investigations have spurred continued research into alternative therapeutic applications, such as bioactive gas delivery and new US technologies. Successful implementation of US-mediated drug delivery has the potential to change the way many drugs are administered systemically, resulting in more effective and economical therapeutics, and less-invasive treatments.


Subject(s)
Cardiovascular Diseases/drug therapy , Drug Delivery Systems/methods , Molecular Targeted Therapy/methods , Pharmaceutical Preparations/administration & dosage , Ultrasonic Therapy , Animals , Humans , Microbubbles
3.
Ultrasound Med Biol ; 39(5): 813-24, 2013 May.
Article in English | MEDLINE | ID: mdl-23453629

ABSTRACT

We investigated ultrasound-enhanced thrombolysis in two whole-blood clot models using a Food and Drug Administration-approved contrast agent (Definity, Lantheus Medical Imaging; Billerica, MA USA) and thrombolytic drug (recombinant tissue-type plasminogen activator [rt-PA]) (Genentech; South San Francisco, CA USA). Porcine venous blood was collected from donor hogs and coagulated in vials made of two different materials. This method produced clots with differing compositional properties, as determined by routine scanning electron microscopy and histology. Clots were deployed in an ex vivo porcine thrombosis model, and exposed to an intermittent ultrasound scheme previously developed to maximize stable cavitation while acoustic emissions were detected. Exposure to 3.15 µg/mL rt-PA promoted lysis in both clot models, compared with exposure to plasma alone. However, only unretracted clots experienced significant enhancement of thrombolysis in the presence of rt-PA, Definity, and ultrasound, compared with treatment with rt-PA. In these clots, microscopy revealed loose erythrocyte aggregates, a significantly less extensive fibrin network and a higher porosity, which may facilitate increased penetration of thrombolytics by cavitation.


Subject(s)
Blood Coagulation/radiation effects , Thrombolytic Therapy/methods , Thrombosis/physiopathology , Thrombosis/therapy , Tissue Plasminogen Activator/therapeutic use , Ultrasonic Therapy/methods , Animals , Combined Modality Therapy/methods , Fibrinolytic Agents/therapeutic use , High-Energy Shock Waves , In Vitro Techniques , Swine , Treatment Outcome
4.
Ultrasound Med Biol ; 37(8): 1240-51, 2011 Aug.
Article in English | MEDLINE | ID: mdl-21723448

ABSTRACT

Ultrasound is known to enhance recombinant tissue plasminogen activator (rt-PA) thrombolysis. In this study, occlusive porcine whole blood clots were placed in flowing plasma within living porcine carotid arteries. Ultrasonically induced stable cavitation was investigated as an adjuvant to rt-PA thrombolysis. Aged, retracted clots were exposed to plasma alone, plasma containing rt-PA (7.1 ± 3.8 µg/mL) or plasma with rt-PA and Definity® ultrasound contrast agent (0.79 ± 0.47 µL/mL) with and without 120-kHz continuous wave ultrasound at a peak-to-peak pressure amplitude of 0.44 MPa. An insonation scheme was formulated to promote and maximize stable cavitation activity by incorporating ultrasound quiescent periods that allowed for the inflow of Definity®-rich plasma. Cavitation was measured with a passive acoustic detector throughout thrombolytic treatment. Thrombolytic efficacy was measured by comparing clot mass before and after treatment. Average mass loss for clots exposed to rt-PA and Definity® without ultrasound (n = 7) was 34%, and with ultrasound (n = 6) was 83%, which constituted a significant difference (p < 0.0001). Without Definity® there was no thrombolytic enhancement by ultrasound exposure alone at this pressure amplitude (n = 5, p < 0.0001). In the low-oxygen environment of the ischemic artery, significant loss of endothelium occurred but no correlation was observed between arterial tissue damage and treatment type. Acoustic stable cavitation nucleated by an infusion of Definity® enhances rt-PA thrombolysis without apparent treatment-related damage in this ex vivo porcine carotid artery model.


Subject(s)
Carotid Arteries , Contrast Media/pharmacology , Fibrinolytic Agents/pharmacology , Fluorocarbons/pharmacology , Recombinant Proteins/pharmacology , Thrombolytic Therapy/methods , Thrombosis/drug therapy , Tissue Plasminogen Activator/pharmacology , Ultrasonic Therapy/methods , Analysis of Variance , Animals , In Vitro Techniques , Swine , Thrombosis/diagnostic imaging , Ultrasonography
5.
J Control Release ; 144(3): 288-95, 2010 Jun 15.
Article in English | MEDLINE | ID: mdl-20202474

ABSTRACT

The goal of this study was to determine whether targeted, Rhodamine-labeled echogenic liposomes (Rh-ELIP) containing nanobubbles could be delivered to the arterial wall, and whether 1-MHz continuous wave ultrasound would enhance this delivery profile. Aortae excised from apolipoprotein-E-deficient (n=8) and wild-type (n=8) mice were mounted in a pulsatile flow system through which Rh-ELIP were delivered in a stream of bovine serum albumin. Half the aortae from each group were treated with 1-MHz continuous wave ultrasound at 0.49 MPa peak-to-peak pressure, and half underwent sham exposure. Ultrasound parameters were chosen to promote stable cavitation and avoid inertial cavitation. A broadband hydrophone was used to monitor cavitation activity. After treatment, aortic sections were prepared for histology and analyzed by an individual blinded to treatment conditions. Delivery of Rh-ELIP to the vascular endothelium was observed, and sub-endothelial penetration of Rh-ELIP was present in five of five ultrasound-treated aortae and was absent in those not exposed to ultrasound. However, the degree of penetration in the ultrasound-exposed aortae was variable. There was no evidence of ultrasound-mediated tissue damage in any specimen. Ultrasound-enhanced delivery within the arterial wall was demonstrated in this novel model, which allows quantitative evaluation of therapeutic delivery.


Subject(s)
Aorta/metabolism , Drug Delivery Systems/methods , Liposomes/administration & dosage , Ultrasonics , Animals , Aorta/diagnostic imaging , Aorta/pathology , Apolipoproteins E/genetics , Apolipoproteins E/physiology , Equipment Design , Female , In Vitro Techniques , Lipid Bilayers/metabolism , Liposomes/pharmacokinetics , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Microscopy, Electron, Transmission , Models, Animal , Rhodamines/chemistry , Spectrometry, Fluorescence , Ultrasonography
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