Improving ultrasound-mediated treatments

Administering vasospasm inhibitors with gas-filled microvesicles and therapeutic ultrasound addresses the issue of transient vasospasm, enhancing the efficacy of ultrasound-mediated therapies for drug delivery, clot disruption, blood-brain barrier opening, immunomodulation, neuromodulation, radiosensitization, and hyperthermia.

JP2026035634APending Publication Date: 2026-03-04BRACCO SUISSE SA
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-11-12
Publication Date
2026-03-04

AI Technical Summary

Technical Problem

The effectiveness of combined therapeutic treatments using gas-filled microvesicles and therapeutic ultrasound is compromised by transient vasospasm, which has not been previously addressed in the literature.

Method used

The use of a vasospasm inhibitor, such as dihydropyridine calcium channel blockers or nitrovasodilators like nimodipine, is administered with gas-filled microvesicles to enhance the efficacy of ultrasound-mediated therapies.

Benefits of technology

The combination of vasospasm inhibitors with gas-filled microvesicles and therapeutic ultrasound maintains or enhances the therapeutic efficacy by mitigating the negative effects of vasospasm, improving drug delivery, clot disruption, blood-brain barrier opening, immunomodulation, neuromodulation, radiosensitization, hyperthermia, and non-thermal tissue ablation.

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Abstract

A method for enhancing the effectiveness of therapeutic treatments mediated by ultrasound in combination with gas-filled microvesicles is provided. A vasospasm inhibitor is provided for use in enhancing the efficacy of a therapeutic treatment combining gas-filled microvesicles and therapeutic ultrasound, the method comprising the steps of: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of the subject; and c) applying therapeutic ultrasound to a region of interest in the subject.
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Description

[Technical Field]

[0001] The present invention relates generally to the field of ultrasound-mediated therapeutic treatments in combination with gas-filled microvesicles.

[0002] In particular, the present invention relates to a vasospasm inhibitor for use in enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, and to a method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound. [Background technology]

[0003] Gas-filled microvesicles (MVs) are acoustic resonators that, when placed in an acoustic field, scatter the received acoustic energy through various processes, including (i) vibration, also called cavitation, which gives gas-filled microvesicles their acoustic and mechanical properties, and (ii) heating.

[0004] In recent decades, the acoustic properties of gas-filled microvesicles have been primarily utilized for contrast-enhanced ultrasound imaging (CEUS). However, their mechanical and heating properties are currently being evaluated for applications in ultrasound-mediated therapies, such as enhancing / augmenting drug (Ref. 1) or gene delivery, assisting in clot disruption (Ref. 2), opening the blood-brain barrier (Ref. 3), immunomodulation (Ref. 4), neuromodulation (Ref. 5), radiosensitization (Ref. 6), MV-enhanced thermal ablation (Ref. 7), hyperthermia (Ref. 8), or assisting in non-thermal tissue ablation (Ref. 9).

[0005] Therapeutic ultrasound (US) typically consists of high-intensity ultrasound, characterized by a high mechanical index and long pulse duration, and is generally not suitable for diagnostic imaging.

[0006] Despite the increasing number of applications of gas-filled microvesicles in ultrasound-mediated therapy, the applicant has observed that these combined therapeutic treatments may be less effective under certain ultrasound irradiation conditions.

[0007] Applicants have unexpectedly discovered that the use of a vasospasm inhibitor (VI) in combination with the use of gas-filled microvesicles and ultrasound-mediated therapy can improve the overall effectiveness of the treatment.

[0008] Indeed, the applicant has observed that a (substantial) decrease in the effectiveness of such therapeutic treatments may be associated with a transient vasomotor response that occurs in subjects upon ultrasound / gas-filled microvesicle exposure. Such a phenomenon, also known as "vasospasm," has been described in the literature (see, e.g., Reference 10), but to the applicant's knowledge, has never been associated with a decrease in the effectiveness of therapeutic treatments based on the combined use of gas-filled microvesicles and ultrasound.

[0009] Advantageously, the solution proposed by the applicant makes it possible to substantially limit or avoid the above-mentioned decrease in therapeutic efficacy, while said efficacy is particularly enhanced for combined microvesicle / ultrasound-mediated treatments carried out in the absence of vasospasm inhibitors. From another perspective, the use of such vasospasm inhibitors makes it possible to maintain an acceptable level of therapeutic efficacy of combined microvesicle / ultrasound-mediated treatments.

[0010] The use of vasospasm inhibitors and gas-filled microvesicles in combination with ultrasound is known in the field of diagnostic imaging.

[0011] For example, reference 11 deals with an improved method for diagnostic imaging which involves administering a contrast agent and a coronary vasodilator to the patient.

[0012] Reference 12 deals with a combination formulation comprising an injectable aqueous gas dispersion and a vasodilator, namely adenosine, used to produce enhanced images.

[0013] Reference 13 relates to acoustically responsive stabilized gas-loaded microbubbles containing an encapsulated bioactive gas for promoting local vasodilation in a patient in need thereof, the release of the encapsulated bioactive agent promoting local vasodilation. Summary of the Invention [Problem to be solved by the invention]

[0014] Thus, to the applicant's knowledge, the use of vasospasm inhibitors to limit or avoid the loss of therapeutic efficacy of the combination of ultrasound and gas-filled microvesicles in therapeutic treatment has never been described. [Means for solving the problem]

[0015] One aspect of the present invention relates to a vasospasm inhibitor (VI) for use in enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound.

[0016] In one embodiment, the vasospasm inhibitor is selected from the group consisting of dihydropyridine calcium channel blockers, alpha blockers, and nitrovasodilators.

[0017] In a further embodiment, said vasospasm inhibitor is preferably selected from the group consisting of nimodipine, nifedipine, magnesium, prazosin and nitroglycerin; even more preferably, said vasospasm inhibitor is nimodipine.

[0018] The vasospasm inhibitor may be administered simultaneously or sequentially with the suspension of gas-filled microvesicles.

[0019] When the VI is administered simultaneously with a suspension of gas-filled microvesicles, it can be co-administered as a suspension of microvesicles containing the VI, or as two separate solutions that are co-administered.

[0020] When the VI is administered consecutively with the suspension of gas-filled microvesicles, it is preferably administered prior to the suspension of gas-filled microvesicles, for example, 1 second to 15 minutes, preferably 5 seconds to 12 minutes, more preferably at least 10 minutes.

[0021] Another aspect of the present invention relates to a method of combined gas-filled microvesicles and therapeutic ultrasound therapeutic treatment, said method comprising: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of a subject; c) applying therapeutic ultrasound to a region of interest of the subject Includes:

[0022] In particular, the use of a vasospasm inhibitor in the method can enhance the efficacy of the combined therapeutic treatment.

[0023] In one embodiment, the drug delivery protocol of the present invention relates to a method of combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, said method comprising: a') administering a bioactive agent to the vasculature of a subject; a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of a subject; c) applying therapeutic ultrasound to a region of interest of the subject Includes:

[0024] In particular, the use of a vasospasm inhibitor in the method can enhance the efficacy of the combined therapeutic treatment.

[0025] In one embodiment of the present invention, step a') and step a) of the disclosed method are performed simultaneously or sequentially. [Brief explanation of the drawings]

[0026] [Figure 1] Quantification of intraprocedural mass perfusion by US+VI. Upper panel: no VI pretreatment; lower panel: VI pretreatment. DETAILED DESCRIPTION OF THE INVENTION

[0027] The applicant has found that administering a vasospasm inhibitor (VI) together with gas-filled microvesicles in ultrasound therapy can improve the efficacy of the therapeutic treatment.

[0028] As used herein, the term "efficacy" refers to the ability of the combination of therapeutic ultrasound and gas-filled microvesicles (US-MVs) to provide a beneficial therapeutic effect.

[0029] For example, the effectiveness of the US-MV combination for drug delivery can be assessed by its ability to increase the concentration of bioactive molecules (e.g., therapeutic agents or contrast agents) in the vascular compartment of the target region; the extent of extravasation through the blood vessels; and / or the extent of intracellular delivery.

[0030] In the combined use of US-MV for sonothrombolysis (i.e., disruption of blood clots), the effectiveness of the treatment can be assessed either directly, for example, by imaging follow-up (e.g., by angiography, computed tomography, laser Doppler, contrast-enhanced ultrasound imaging, or magnetic resonance imaging), or indirectly, for example, by assessment of biological analysis of blood samples; electrocardiogram changes; and / or clinical improvement(s) (e.g., neurological or cardiac function), e.g., by its ability to increase perfusion or induce reperfusion of blood vessels.

[0031] The effectiveness of the US-MV combination for MV-enhanced thermal ablation can be assessed, for example, by measuring the temperature rise in a specific volume of tissue and by reducing the sonication time required to reach this temperature; by reducing the acoustic energy or power required to reach the heat rise; or by tracking tissue damage by imaging.

[0032] The effectiveness of the US-MV combination for MV-enhanced hyperthermia can be assessed, for example, by measuring the temperature increase in a specific volume of tissue (e.g., by magnetic resonance thermometry or thermocouples); by reducing the acoustic energy or power required to achieve hyperthermia; by increasing blood flow in the treatment area (e.g., by angiography, magnetic resonance imaging, computed tomography, laser Doppler, contrast-enhanced ultrasound imaging), by tracking drug delivery, and / or by assessments similar to those described below for "drug transport."

[0033] The effectiveness of the US-MV combination for BBB opening can be assessed, for example, by its ability to enhance extravasation of vascular bioactive molecules (e.g., therapeutic agents or contrast agents) from blood vessels into the brain.

[0034] US+MV-induced neuromodulation, i.e., modulation of neuronal function, is another therapeutic application area where US-MV combinations are applicable. In this case, the efficacy of combined US-MV treatment can be assessed, for example, by variations in neuronal electrical activity.

[0035] The efficacy of the US-MV combination for application in tumor treatment by radiosensitization, i.e., enhancing the effect of radiation therapy (RT) using US and MV, can be assessed by detecting, for example, the presence of treatment-induced lesions highlighted by any of the following: changes in tissue hemodynamics; increased levels of cell death and apoptosis in cells exposed to US+RT; decreased tumor growth and / or increased survival over the weeks.

[0036] The effectiveness of the US-MV combination for non-thermal ablation applications can be assessed by detecting, for example, the presence of treatment-induced lesion(s), highlighted by reduced blood flow and / or by tracking necrosis and apoptosis in sonicated tissue.

[0037] The US-MV combination can also be applied in antitumor therapy, exerting its antitumor effect through immunomodulation, i.e., stimulation of antitumor immune responses. Because US-MV-induced immunomodulation can be achieved through various mechanisms, such as thermal ablation, mild hyperthermia, mechanical disruption, or vascular permeabilization for delivery of immunotherapeutic drugs (e.g., DNA, mRNA, drugs, or antibodies), improving these mechanisms is expected to improve immunomodulatory effects. The effectiveness of the US-MV combination for immunomodulatory applications can be evaluated, for example, by the induction or modification of immune responses; modification of responses to immunotherapy; and / or modification of biological responses (e.g., tumor growth).

[0038] In this description and claims, the expression "combined therapeutic ultrasound and suspension of gas-filled microvesicles" (abbreviated as "combined US-MV") refers to any therapeutic treatment based on the use of therapeutic ultrasound in combination with a suspension of gas-filled microvesicles.

[0039] As described above, these therapeutic treatments may be used, for example, to increase vascular permeability, to facilitate / increase delivery of, for example, drugs or genes, to assist in the disruption of thrombi, to open the blood-brain barrier, for immunomodulation, for neuromodulation, for radiosensitization, or to assist in hyperthermia, MV-enhanced thermal ablation, and non-thermal tissue ablation.

[0040] As used herein, the term "therapeutic ultrasound" refers to the use of ultrasound to achieve a biological effect for the purpose of treating a disease or disorder in a subject. In this description and claims, the terms "therapeutic US" or "therapeutic US" are used interchangeably.

[0041] Therapeutic ultrasound can be produced by various types of transducers. Suitable examples of transducers for therapeutic ultrasound are focused or unfocused transducers with single or multiple piezoelectric elements.

[0042] Therapeutic ultrasound is typically provided on dedicated platforms (eg, coupled to MRI scanners) and clinical ultrasound platforms.

[0043] To achieve a biological effect, several parameters of therapeutic ultrasound must be considered.

[0044] Therapeutic ultrasound is generally characterized by a treatment duration, preferably comprised between a few seconds (i.e., 1 second) and 170 minutes. The expression "treatment duration" as used herein refers to the entire period between the onset and termination of ultrasound application in the area of ​​interest. The unit of treatment duration is time.

[0045] The pulse length characterizing therapeutic ultrasound is generally comprised between 5 μs and 60 s, preferably between 5 μs and 10 s, and even more preferably between 100 μs and 5 ms. The expression "pulse length" refers to the time from the beginning of a pulse ("on") to the end of that pulse ("off"), indicating the actual time that the pulse is "on". The unit of pulse length is time (e.g., a few microseconds to a few seconds).

[0046] The frequency of therapeutic ultrasound is generally between 20 kHz and 70 MHz, preferably between 0.10 MHz and 50 MHz, and even more preferably between about 0.15 and about 2 MHz. The term "frequency" refers to the number of specific events occurring during a specific time duration. The unit of frequency is Hertz (i.e., 1 / s).

[0047] The sound pressure of therapeutic ultrasound is generally comprised between 10 kPa and 100 MPa, preferably between 20 kPa and 50 MPa, and even more preferably between 50 kPa and 25 MPa.

[0048] Acoustic intensity of therapeutic ultrasound (watt / cm 2 or W / cm 2 ) is generally 0.1 to 990 W / cm 2preferably 1.3 W / cm 2 ~21.5W / cm 2 and even more preferably between 1.3 and 5 W / cm 2 The term "acoustic intensity" refers to the power carried by a sound wave per unit area in a sound beam. The unit of acoustic intensity is watts / cm. 2 is.

[0049] Therapeutic ultrasound is almost always performed at a different frequency than diagnostic ultrasound: specifically, it is desirable to perform therapeutic ultrasound at a lower frequency to achieve low attenuation, while diagnostic ultrasound uses a higher frequency to obtain better resolution (14).

[0050] Therapeutic ultrasound can also be distinguished from diagnostic ultrasound due to its ability to induce biological effects (with or without MV).

[0051] For therapeutic purposes, ultrasound can induce effects not only through thermal mechanisms but also through non-thermal mechanisms, including acoustic cavitation, radiation force, shear stress, and acoustic streaming / microstreaming, shock waves, or other undetermined non-thermal processes. Thermal effects and acoustic cavitation are the most significant effects, and their mechanisms of action and biological effects are well known in the art. As used herein, therapeutic US refers to ultrasound capable of inducing biological effects, including, for example, local temperature increase, vascular permeabilization, vessel rupture, and / or shear stress, in a subject undergoing therapeutic ultrasound treatment.

[0052] Thermal effects depend on the temperature and duration of the treatment: for example, a low temperature increase (e.g., >43°C for 1 hour) sensitizes tissue to chemotherapy or radiotherapy, whereas a higher temperature increase (e.g., 56°C for 1 second) causes irreversible damage, such as thermal coagulation and cell death.

[0053] The acoustic cavitation and mechanical effects of therapeutic US cause severe mechanical and thermal effects as well as chemical and optical effects, resulting in various biological effects such as local temperature increase, vascular permeabilization, vascular rupture, cell death and shear stress.

[0054] In one embodiment, therapeutic US refers to US capable of inducing vascular permeabilization.

[0055] Therapeutic ultrasound is widely used for tissue thermal ablation in various types of pathologies such as symptomatic uterine fibroids, cancer (e.g., breast and liver prostate cancer), pain and neurological disorders, but also for sonothrombolysis and histotripsy.

[0056] The use of MVs in combination with therapeutic ultrasound enhances the effectiveness of many different therapeutic responses known to involve acoustic cavitation. Indeed, when injected, MVs act as cavitation nuclei, lowering the threshold for acoustic cavitation. By adjusting the US conditions, it is possible to control the cavitation regime of MVs, transitioning from a stable regime of vibration (stable cavitation) to violent collapse at higher energies. This cavitation regimen can be selectively used to improve thermal ablation (MV-enhanced thermal ablation), dissolve thrombi (sonothrombolysis), permeabilize blood vessels (opening the blood-brain barrier), achieve specific drug or gene delivery, and for immunomodulation, neuromodulation, radiosensitization, adjuncts to hyperthermia, and non-thermal tissue ablation.

[0057] The term "gas-filled microvesicles" as used herein includes any structure containing micrometer- or nanometer-sized gas bubbles surrounded by an envelope or layer (including a film-shaped layer) of a stabilizing material. The term includes those known in the art as gas-filled liposomes, microbubbles, microspheres, microballoons, or microcapsules. The stabilizing material may be any material typically known in the art, including, for example, surfactants, lipids, sphingolipids, oligolipids, glycolipids, phospholipids, proteins, polypeptides, carbohydrates, and synthetic or natural polymeric materials.

[0058] The term "precursor" of gas-filled microvesicles includes any composition that, when reconstituted with an aqueous carrier in the presence of a gas, produces a suspension of gas-filled microvesicles. The composition typically comprises any of the above-described stabilized materials in dry, powdered form (e.g., freeze-dried or spray-dried) that is capable of forming gas-filled microvesicles upon shaking the aqueous suspension in the presence of a gas.

[0059] The term "microbubbles" includes aqueous suspensions in which gas bubbles are bounded at the gas / liquid interface by a very thin envelope (film) comprising a stabilizing amphiphilic material located at the gas and liquid interface. Microbubble suspensions can be prepared by contacting a suitable precursor thereof, such as a powdered amphiphilic material (e.g., lyophilized preformed liposomes or lyophilized or spray-dried phospholipid solutions), with air or other gas, and then with an aqueous carrier, with stirring, to produce a microbubble suspension, which can then be administered, preferably immediately after its preparation.

[0060] Gas-filled microbubbles are generally stabilized by one or more amphiphilic components. Suitable amphiphilic components for forming the stabilizing envelope of the microbubbles include, for example, phospholipids; lysophospholipids; fatty acids, such as palmitic acid, stearic acid, arachidonic acid, or oleic acid; polymers, such as chitin, hyaluronic acid, polyvinylpyrrolidone, or lipids bearing polyethylene glycol (PEG) (also called "PEGylated lipids"); sulfonated mono- Lipids bearing di-, oligo-, or polysaccharides; cholesterol, cholesterol sulfate, or cholesterol hemisuccinate; tocopherol hemisuccinate; lipids containing ether or ester-linked fatty acids; polymeric lipids; diacetyl phosphate; dicetyl phosphate; ceramides; polyoxyethylene fatty acid esters (e.g., polyoxyethylene fatty acid stearates), polyoxyethylene fatty alcohols, polyoxyethylene fatty alcohol ethers, polyoxyethylated sorbitan fatty acid esters, glycerol polyethylene glycol ricinoleate, ethoxylated soybean sterols, ethoxylated castor oil, or ethylene oxide (EO) and propylene oxide (PO) block copolymers; cholesterol butyrate, cholesterol isobutyrate, cholesterol palmitate, cholesterol stearate, lanosterol acetate, ergosterol palmitate, or plant sterol butyrate; sterol esters of sugar acids, including cholesterol glucuronide, lanosterol glucuronide, 7-dehydrocholesterol glucuronide, ergosterol gluconide, cholesterol gluconate, lanosterol gluconate, or ergosterol gluconate; esters of alcohols and sugar acids, including lauryl glucuronide, stearoyl glucuronide, myristoyl glucuronide, lauryl gluconate, myristoyl gluconate, or stearoyl gluconate; esters of fatty acids and sugars, including sucrose laurate, fructose laurate, sucrose palmitate, sucrose stearate, glucuronic acid, gluconic acid, or polyuronic acid; saponins, including sarsasapogenin, smilagenin, hederagenin, oleanolic acid, or digitoxigenin;Glycerol or glycerol esters, including glycerol tripalmitate, glycerol distearate, glycerol tristearate, glycerol dimyristate, glycerol trimyristate, glycerol dilaurate, glycerol trilaurate, and glycerol dipalmitate; N-succinyldioleylphosphatidylethanolamine; 1,2-dioleyl-sn-glycerol; 1,2-dipalmitoyl-sn-3-succinylglycerol; 1,3-dipalmitoyl-2-succinylglycerol; 1-hexadecyl-2-palmitoylglycerophosphoethanolamine or palmitoylhomocysteine; alkylamines or alkylammonium salts, including at least one of the following: (C; 10 -C 20 ), preferably (C 14 -C 18 ) alkyl chains, such as N-stearylamine, N,N'-distearylamine, N-hexadecylamine, N,N'-dihexadecylamine, N-stearylammonium chloride, N,N'-distearylammonium chloride, N-hexadecylammonium chloride, N,N'-dihexadecylammonium chloride, dimethyldioctadecylammonium bromide (DDAB), hexadecyltrimethylammonium bromide (CTAB); tertiary or quaternary ammonium salts, including: one or preferably two (C 10 -C 20 ), preferably (C 14 -C 18 ) acyl chains (linked to the N atom through a (C3-C6) alkylene bridge), such as 1,2-distearoyl-3-trimethylammonium-propane (DSTAP), 1,2-dipalmitoyl-3-trimethylammonium-propane (DPTAP), 1,2-oleoyl-3-trimethylammonium-propane (DOTAP), 1,2-distearoyl-3-dimethylammonium-propane (DSDAP); and mixtures or combinations thereof.

[0061] As used herein, the term "phospholipid" is intended to encompass any amphiphilic phospholipid compound whose molecules are capable of forming a stabilizing film of material (typically in the form of a monolayer) at the gas-water interface in the final microbubble suspension. These materials are therefore also referred to in the art as "film-forming phospholipids."

[0062] Phospholipids typically contain at least one phosphate group and at least one, and preferably two, lipophilic long-chain hydrocarbon groups.

[0063] Examples of suitable phospholipids include esters of one or preferably two (equivalent or different) fatty acid residues and phosphoric acid with glycerol, where the phosphate residue is then linked to a hydrophilic group, such as choline (phosphatidylcholine-PC), serine (phosphatidylserine-PS), glycerol (phosphatidylglycerol-PG), ethanolamine (phosphatidylethanolamine-PE), or inositol (phosphatidylinositol-PI). Esters of phospholipids with only one fatty acid residue are generally referred to in the art as "lyso" forms of phospholipids or "lysophospholipids." The fatty acid residues present in phospholipids are generally long-chain fatty acids, typically containing 12 to 24 carbon atoms, preferably 14 to 22; the aliphatic chain may contain one or more unsaturations or is preferably fully saturated. Examples of suitable fatty acids for inclusion in phospholipids are, for example, lauric acid, myristic acid, palmitic acid, stearic acid, arachidic acid, behenic acid, oleic acid, linoleic acid, and linolenic acid. Preferably, saturated fatty acids such as myristic acid, palmitic acid, stearic acid, and arachidic acid are used.

[0064] Further examples of phospholipids are phosphatidic acids, i.e., diesters of fatty acids and glycerol-phosphate; sphingolipids such as sphingomyelins, i.e., phosphatidylcholine analogues in which the glycerol diester residue with a fatty acid is replaced by a ceramide chain; cardiolipins, i.e., esters of fatty acids and 1,3-diphosphatidylglycerol; glycolipids, such as ganglioside GM1 (or GM2) or cerebrosides; glycolipids; sulfatides and glycosphingolipids.

[0065] As used herein, the term "phospholipid" includes products of either natural origin, semi-synthetic or synthetically prepared, which may be used either alone or in mixtures.

[0066] Examples of phospholipids of natural origin are natural lecithins (phosphatidylcholine (PC) derivatives), such as typically soybean or egg yolk lecithins.

[0067] Examples of semi-synthetic phospholipids are partially or fully hydrogenated derivatives of naturally occurring lecithins. Preferred phospholipids are fatty acid diesters of phosphatidylcholine, ethylphosphatidylcholine, phosphatidylglycerol, phosphatidic acid, phosphatidylethanolamine, phosphatidylserine, phosphatidylinositol or sphingomyelin.

[0068] Specific examples of phospholipids include dilauroyl-phosphatidylcholine (DLPC), dimyristoyl-phosphatidylcholine (DMPC), dipalmitoyl-phosphatidylcholine (DPPC), diarachidoyl-phosphatidylcholine (DAPC), distearoyl-phosphatidylcholine (DSPC), dioleoyl-phosphatidylcholine (DOPC), 1,2 distearoyl-sn-glycero-3-ethylphosphocholine (ethyl-DSPC), dipentadecanoyl-phosphatidylcholine (DPDPC), 1-myristoyl-2-palmito ...-myristoyl-2-palmitoyl-phosphatidylcholine (DSPC), dioleoyl-phosphatidylcholine (DOPC), 1-myristoyl-2-palmitoyl-phosphatidylcholine (DSPC), dioleoyl-phosphatidylcholine (DOPC), 1-myristoyl-2-palmitoyl-phosphatidylcholine (DSPC), dioleoyl-phospha 1-palmitoyl-2-myristoyl-phosphatidylcholine (MPPC), 1-palmitoyl-2-stearoyl-phosphatidylcholine (PMPC), 1-palmitoyl-2-stearoyl-phosphatidylcholine (PSPC), 1-stearoyl-2-palmitoyl-phosphatidylcholine (SPPC), 1-palmitoyl-2-oleylphosphatidylcholine (POPC), 1-oleyl-2-palmitoyl-phosphatidylcholine (OPPC), dilauroyl-phosphatidylglycerol (DLPG) and its alkali metal salts, diarachidoylphosphatidyl dioleoyl-glycerol (DAPG) and its alkali metal salts, dimyristoyl phosphatidylglycerol (DMPG) and its alkali metal salts, dipalmitoyl phosphatidylglycerol (DPPG) and its alkali metal salts, distearoyl phosphatidylglycerol (DSPG) and its alkali metal salts, dioleoyl-phosphatidylglycerol (DOPG) and its alkali metal salts, dimyristoyl phosphatidic acid (DMPA) and its alkali metal salts, dipalmitoyl phosphatidic acid (DPPA) and and its alkali metal salts, distearoylphosphatidic acid (DSPA), diarachidoylphosphatidic acid (DAPA) and its alkali metal salts, dimyristoyl-phosphatidylethanolamine (DMPE), dipalmitoylphosphatidylethanolamine (DPPE), distearoylphosphatidylethanolamine (DSPE), dioleylphosphatidylethanolamine (DOPE), diarachidoylphosphatidylethanolamine (DAPE), dilinoleylphosphatidylethanolamine (DLPE),Dimyristoylphosphatidylserine (DMPS), diarachidoylphosphatidylserine (DAPS), dipalmitoylphosphatidylserine (DPPS), distearoylphosphatidylserine (DSPS), dioleoylphosphatidylserine (DOPS), dipalmitoylsphingomyelin (DPSP), and distearoylsphingomyelin (DSSP), dilauroyl-phosphatidylinositol (DLPI), diarachidoylphosphatidylinositol (DAPI), dimyristoylphosphatidylinositol (DMPI), dipalmitoylphosphatidylinositol (DPPI), distearoylphosphatidylinositol (DSPI), and dioleoyl-phosphatidylinositol (DOPI). Specifically, phospholipids selected from DAPC, DSPC, DPPC, DMPA, DPPA, DSPA, DMPG, DPPG, DSPG, DMPS, DPPS, DSPS, ethyl-DSPC, ethyl-DPPC, or mixtures thereof can be used, more specifically, DPPG, DPPS, and DSPC. The phospholipid may further include a phospholipid modified by conjugation of a hydrophilic polymer, such as polyethylene glycol (PEG) or polypropylene glycol (PPG). Preferred polymer-modified phospholipids include "PEGylated phospholipids," i.e., phospholipids conjugated to PEG polymers. Examples of PEGylated phospholipids include PEGylated phosphatidylethanolamines (abbreviated "PE-PEG"), i.e., phosphatidylethanolamines in which the hydrophilic ethanolamine moiety is conjugated to a PEG molecule of variable molecular weight (e.g., 300-20,000 daltons, preferably 500-5,000 daltons), such as DPPE-PEG (or DSPE-PEG, DMPE-PEG, DAPE-PEG, or DOPE-PEG). For example, DPPE-PEG2000 refers to DPPE with an attached PEG polymer having an average molecular weight of about 2000. Examples of typical PEGylated phospholipids include DPPE-PEG2000, DSPE-PEG2000, DPPE-PEG5000, and DSPE-PEG5000.

[0069] Pegylated derivatives of phosphatidylethanolamine, specifically DPPE-PEG and / or DSPE-PEG, are typically used in admixture with any of the above-mentioned phospholipids.

[0070] Typically, phospholipids are the major component of the stabilizing envelope of the microbubbles, accounting for at least 50% (w / w), preferably at least 75%, of the total amount of components forming the envelope of the gas-filled microbubbles. In some preferred embodiments, the envelope may be formed substantially entirely (i.e., at least 90% w / w) from phospholipids.

[0071] Phospholipids can be suitably used in combination with any of the amphiphilic compounds listed above. Thus, for example, lipids such as cholesterol, ergosterol, plant sterols, sitosterol, lanosterol, tocopherol, propyl gallate or ascorbyl palmitate, fatty acids such as myristic acid, palmitic acid, stearic acid, arachidic acid and their derivatives, or butylated hydroxytoluene and / or other non-phospholipid compounds may be optionally added to one or more of the aforementioned phospholipids, for example, preferably in a proportion ranging from 0 to 50% by weight, more preferably up to 25%. Palmitic acid is particularly preferred.

[0072] Other excipients or additives may be present in the dry formulation of the microbubbles or may be added together with the aqueous carrier used for their reconstitution, without necessarily participating (or only partially participating) in the formation of the stabilizing envelope of the microbubbles. These include pH adjusters, osmolality adjusters, viscosity enhancers, emulsifiers, bulking agents, etc., and may be used in conventional amounts. For example, compounds such as polyoxypropylene glycol and polyoxyethylene glycol and their copolymers may be used. Examples of viscosity enhancers or stabilizers are compounds selected from linear and cross-linked poly- and oligosaccharides, sugars, and hydrophilic polymers, such as polyethylene glycol.

[0073] Since the preparation of gas-filled microbubbles may involve a freeze-drying or spray-drying process, it may be advantageous to include in the formulation freeze-drying additives, for example, agents with cryoprotective and / or lyoprotective effects, and / or bulking agents, for example, amino acids such as glycine or histidine; carbohydrates, for example, monosaccharides such as sucrose, mannitol, maltose, trehalose, glucose, lactose or cyclodextrin, or polysaccharides such as dextran, chitosan and its derivatives (for example: carboxymethylchitosan, trimethylchitosan); or polyoxyalkylene glycols, such as polyethylene glycol.

[0074] Microbubbles can be produced according to any method known in the art. Typically, the production method involves preparing a frozen powdered material containing the above-mentioned amphiphilic material, preferably by lyophilization (freeze-drying) of an aqueous or organic suspension containing the material. Examples of the preparation of microbubbles and their precursors are disclosed, for example, in Reference 15 or Reference 16. According to this latter production procedure, phospholipids (and any other film-forming materials), a lyoprotecting agent, and any other additives can be dispersed in a mixture of water and a water-immiscible organic solvent under stirring to form a microemulsion. The resulting microemulsion, containing microdroplets of solvent surrounded and stabilized by phospholipids (and optionally other amphiphilic film-forming compounds and / or additives), can then be lyophilized according to conventional techniques to obtain a lyophilized material that can be stored (e.g., in a vial in the presence of a suitable gas) and reconstituted with an aqueous carrier to ultimately obtain a gas-filled microbubble suspension.

[0075] Alternatively, calibrated gas-filled microbubbles can be prepared, for example, by using a flow focusing device as disclosed in ref.

[0076] The lyophilized product is generally in the form of a powder or cake and can be stored (e.g., in a vial) in contact with the desired gas. The product can typically be easily reconstituted in a suitable injectable physiologically acceptable aqueous liquid carrier, and upon gentle agitation of the suspension, gas-filled microbubbles are formed. Suitable physiologically acceptable liquid carriers are aqueous solutions such as sterile water, saline (which may be advantageously balanced so that the final product for injection is not hypotonic), or solutions of one or more osmolytes, such as salts or sugars, sugar alcohols, glycols, or other non-ionic polyol materials (e.g., glucose, sucrose, sorbitol, mannitol, glycerol, polyethylene glycol, propylene glycol, etc.), chitosan derivatives such as carboxymethylchitosan, trimethylchitosan, or gelling compounds such as carboxymethylcellulose, hydroxyethyl starch, or dextran.

[0077] Other suitable gas-filled microvesicles are referred to in the art as "microballoons," "microcapsules," or "microspheres." These gas-filled microvesicles comprise suspensions in which gas bubbles are surrounded by a solid material envelope, which may be, for example, polymeric (natural or synthetic), proteinaceous, water-insoluble lipid, or any combination thereof. Examples of microballoons made from polymeric materials are disclosed, for example, in Reference 18. Examples of microcapsules made from insoluble lipids (e.g., tripalmitin or tristearin) are disclosed, for example, in Reference 19. Microspheres with a proteinaceous envelope (e.g., natural proteins such as albumin) are disclosed, for example, in Reference 20.

[0078] Any biocompatible gas, gas precursor, or mixture thereof may be used to fill the microvesicles (hereinafter also referred to as "microvesicle-forming gas").

[0079] The gas may include, for example, air; nitrogen; oxygen; carbon dioxide; hydrogen; nitrous oxide; noble or inert gases such as helium, argon, xenon, or krypton; low molecular weight hydrocarbons (e.g., containing up to 7 carbon atoms), such as alkanes such as methane, ethane, propane, butane, isobutane, pentane, or isopentane, cycloalkanes such as cyclobutane or cyclopentane, alkenes such as propene, butene, or isobutene, or alkynes such as acetylene; ethers; ketones; esters; halogenated gases, preferably fluorinated gases, such as halogenated, fluorinated, or perfluorinated low molecular weight hydrocarbons (e.g., containing up to 7 carbon atoms); or a mixture of any of the foregoing. When halogenated hydrocarbons are used, preferably at least some, more preferably all, of the halogen atoms in the compound are fluorine atoms.

[0080] Fluorinated gases are preferred, and perfluorinated gases are particularly preferred. Fluorinated gases include materials containing at least one fluorine atom, such as fluorinated hydrocarbons (organic compounds containing one or more carbon atoms and fluorine); sulfur hexafluoride; fluorinated, preferably perfluorinated ketones, such as perfluoroacetone; and fluorinated, preferably perfluorinated ethers, such as perfluorodiethyl ether. Preferred compounds are perfluorinated gases, such as SF6 or perfluorocarbons (perfluorinated hydrocarbons), i.e., hydrocarbons in which all hydrogen atoms are replaced by fluorine atoms, which are known to form particularly stable microbubble suspensions. The term "perfluorocarbon" includes saturated, unsaturated, and cyclic perfluorocarbons. Examples of biocompatible, physiologically acceptable perfluorocarbons include perfluoroalkanes, such as perfluoromethane, perfluoroethane, perfluoropropane, perfluorobutane (e.g., perfluoro-n-butane, optionally mixed with other isomers, such as perfluoroisobutane), perfluoropentane, perfluorohexane, or perfluoroheptane; perfluoroalkenes, such as perfluoropropene, perfluorobutene (e.g., perfluorobut-2-ene), or perfluorobutadiene; perfluoroalkynes (e.g., perfluorobut-2-yne); and perfluorocycloalkanes (e.g., perfluorocyclobutane, perfluoromethylcyclobutane, perfluorodimethylcyclobutane, perfluorotrimethylbutane, perfluorocyclopentane, perfluoromethylcyclopentane, perfluorodimethylcyclopentane, perfluorocyclohexane, perfluoromethylcyclohexane, and perfluorocycloheptane). Preferred saturated perfluorocarbons include, for example, CF4, C2F6, C3F8, C4F8, C4F 10 , C5F 12 and C6F 14 include.

[0081] It may also be advantageous to use a mixture of any of the above gases in any ratio. For example, the mixture may contain a conventional gas, such as nitrogen, air, or carbon dioxide, and a gas that forms a stable microbubble suspension, such as sulfur hexafluoride or one of the perfluorocarbons listed above. Examples of suitable gas mixtures can be found, for example, in Reference 21, incorporated herein by reference. The following combinations are particularly preferred: a mixture of gases (A) and (B), where gas (B) is a fluorinated gas selected from those exemplified above, including mixtures thereof, and (A) is selected from air, oxygen, nitrogen, carbon dioxide, or mixtures thereof. The amount of gas (B) can represent about 0.5% to about 95% v / v of the total mixture, preferably about 5% to 80%.

[0082] Particularly preferred gases are SF6, C3F8, and C4F 10 or a mixture thereof, which may be a mixture with air, oxygen, nitrogen, carbon dioxide or a mixture thereof.

[0083] In certain situations, it may be desirable to include a precursor of a gaseous substance (i.e., a material capable of being converted into a gas in vivo). Preferably, the gaseous precursor and the resulting gas are physiologically acceptable. The gaseous precursor may be pH-activated, light-activated, temperature-activated, or the like. For example, certain perfluorocarbons may be used as temperature-activated gaseous precursors. These perfluorocarbons, such as perfluoropentane or perfluorohexane, have liquid / gas phase transition temperatures that are higher than room temperature (or the temperature at which the agent is produced and / or stored) but lower than body temperature; therefore, they undergo a liquid / gas phase transition and are converted into a gas in the human body.

[0084] Commercially available gas-filled microvesicles such as SonoVue® / Lumason (Bracco), Definity / Luminity (Lantheus), or Optison (GE Healthcare) are approved for diagnostic use only, although their off-label use in therapeutic applications has been described in the art (see, e.g., References 22 and 23).

[0085] Applicants have observed that the efficacy of therapeutic methods based on the combined use of therapeutic ultrasound and gas-filled microvesicles (US-MVs) may be reduced.

[0086] Without wishing to be bound by any particular theory, the applicant has observed that such reduced efficacy may be related in part to a transient vasomotor response (also known as "vasospasm") that occurs in the subject, specifically in the treated area following exposure to US / gas-filled microvesicles.

[0087] vasospasm In the present description and claims, the term "vasospasm" refers to the strong vasomotor response induced by the combined use of therapeutic ultrasound and a suspension of gas-filled microvesicles.

[0088] The occurrence and effects of this (transient) vasomotor response are described, for example, in Ref.

[0089] Without wishing to be bound by any particular theory, the reduced effectiveness of the combined treatment of gas-filled microvesicles and ultrasound-mediated therapy may be related in part to this transient vasomotor response that occurs in the subject, specifically in the treated area following US / gas-filled microvesicle exposure.

[0090] Applicants have unexpectedly found that the overall efficacy of a combined treatment of gas-filled microvesicles and ultrasound-mediated therapy can be improved by the use of a vasospasm inhibitor (VI).

[0091] Vasospasm induced by the combination of gas-filled microvesicles and therapeutic ultrasound primarily results in a transient decrease in blood flow, i.e., a decrease in blood flow due to vasoconstriction. In fact, the decrease in blood flow caused by vascular constriction may also affect the continuous transport of gas-filled microvesicles through the acoustic field, resulting in a shortage of gas-filled microvesicles in a localized area, substantially reducing or substantially eliminating the effectiveness of the ultrasound pulse.

[0092] Advantageously, the solution proposed by the applicant makes it possible to substantially limit or avoid the aforementioned decrease in therapeutic efficacy, while said efficacy is particularly enhanced compared to combined microvesicle / ultrasound-mediated treatments carried out in the absence of vasospasm inhibitors. From another perspective, the use of such vasospasm inhibitors makes it possible to maintain an acceptable level of therapeutic efficacy of combined microvesicle / ultrasound-mediated treatments.

[0093] vasospasm inhibitors As used herein, the expression "vasospasm inhibitor" (VI) refers to a substance that can enhance the overall effectiveness of the combined treatment of gas-filled microvesicles and therapeutic ultrasound, particularly by substantially reducing or avoiding the occurrence of vasospasm caused by US-MV treatment.

[0094] Vasospasm inhibitors can induce relaxation of vascular smooth muscle cells through various mechanisms, primarily based on, for example, reducing intracellular calcium concentration and inducing dephosphorylation of myosin (really replacing ATP for ADP).

[0095] Among all compounds known to act as vasospasm inhibitors, the applicant has surprisingly found that vasospasm inhibitors classified into the classes of dihydropyridine calcium channel blockers, α-adrenergic receptor antagonists and nitrovasodilators are particularly capable of enhancing the overall effectiveness of the combined treatment of gas-filled microvesicles and therapeutic ultrasound.

[0096] Vasospasm inhibitors, classified as calcium channel blockers (or calcium antagonists or calcium channel blockers), inhibit calcium-induced vascular smooth muscle contraction by blocking calcium ion influx into vascular smooth muscle cells.

[0097] A preferred calcium channel blocker VI may be a dihydropyridine calcium channel blocker.

[0098] Examples of dihydropyridine calcium channel blockers include amlodipine, aranidipine, azelnidipine, barnidipine, benidipine, cilnidipine, clevidipine, efonidipine, felodipine, isradipine, lacidipine, lercanidipine, manidipine, nicardipine, nifedipine, nilvadipine, nimodipine, nisoldipine and pranidipine, with nifedipidine and nimodipine being particularly preferred.

[0099] Preferably, VI is nifedipine or nimodipine, more preferably nimodipine.

[0100] Magnesium also has similar properties to calcium antagonists and is considered a physiological calcium blocker and can be used as a VI.

[0101] Vasospasm inhibitors, classified as α-adrenergic receptor antagonists (or α-blockers), block the effects of α-1-adrenergic receptors on vascular smooth muscle, resulting in vasodilation. Examples of α-adrenergic receptor antagonists include alfuzosin, doxazosin, prazosin, silodosin, tamsulosin, and terazosin, with prazosin being particularly preferred.

[0102] Vasospasm inhibitors can also be classified as nitrovasodilators. The term "nitrovasodilator" generally refers to the pharmacological origin of nitric oxide as an organic nitrate vasodilator that can be metabolically converted to biologically active nitric oxide. Suitable examples of nitrovasodilators, which are usually administered exogenously, include diethylene glycol dinitrate, glyceryl trinitrate (nitroglycerin), isosorbide mononitrate and dinitrate, itramin tosylate, pentaerythryl tetranitrate, propatylnitrate, sinitrodil, tenitramine, and trolnitrate, with nitroglycerin being particularly preferred.

[0103] Nitric oxide relaxes vascular smooth muscle through stimulation of soluble guanylate cyclase and increases intracellular levels of cyclic guanosine monophosphate (cGMP).

[0104] In one embodiment, the vasospasm inhibitor is selected from the group consisting of dihydropyridine calcium channel blockers, alpha blockers, and nitrovasodilators.

[0105] In a further embodiment of the invention, said vasospasm inhibitor is preferably selected from the group consisting of nimodipine, nifedipine, magnesium, prazosin and nitroglycerin; even more preferably, said vasospasm inhibitor is nimodipine.

[0106] Generally, the vasospasm inhibitor is not substantially bound to the gas-filled microvesicles.

[0107] The term "unbound" indicates that the vasospasm inhibitor has substantially no physical or chemical interaction with the gas-filled microvesicles; more specifically, it indicates that the VI is not bound to the gas-filled microvesicles via either covalent or non-covalent bonds (e.g., physical and / or electrostatic interactions).

[0108] In one embodiment, the VI is contained within a separate pharmaceutical composition and is not physically associated with the gas-filled microvesicle suspension.

[0109] Examples of separate pharmaceutical compositions containing vasospasm inhibitors include available commercial formulations, such as oral and parenteral dosage forms for both traditional and / or controlled release.

[0110] The vasospasm inhibitor may be administered simultaneously or sequentially with the suspension of gas-filled microvesicles.

[0111] As used herein, the phrase "concurrent administration" refers to administration of the VI and gas-filled microvesicles at the same or substantially the same time, and by the same or different routes of administration.

[0112] According to the present invention, the expression "sequential administration" refers to the administration of VI and gas-filled microvesicles at different times, with the same or different routes of administration.

[0113] In one embodiment of the present invention, the VI is administered simultaneously with a suspension of gas-filled microvesicles.

[0114] For example, the VI can be added directly to a suspension of freeze-dried gas-filled microvesicles immediately prior to administration, or the VI can be added to a physiologically acceptable aqueous carrier (e.g., saline) used to reconstitute the freeze-dried gas-filled microvesicles.

[0115] In one embodiment of the invention, the vasospasm inhibitor is magnesium.

[0116] In a further embodiment, magnesium is administered simultaneously with the administration of a suspension of gas-filled microvesicles (by diluting such microvesicles in a magnesium solution).

[0117] In an alternative embodiment of the invention, the VI is administered sequentially in a suspension of gas-filled microvesicles.

[0118] In a preferred embodiment, the VI is administered 1 second to 15 minutes, preferably 5 seconds to 12 minutes, even more preferably at least 10 minutes before the suspension of gas-filled microvesicles.

[0119] The suspension of gas-filled microvesicles and the VI can be administered simultaneously or sequentially by intravenous infusion. Alternatively, the suspension of gas-filled microvesicles can be administered by intravenous infusion, and the VI can be administered orally simultaneously or sequentially.

[0120] VI is preferably administered by intravenous infusion, typically at approved therapeutic doses.

[0121] The expression "approved therapeutic dose" refers to the dose of vasospasm inhibitor that is approved for use by regulatory authorities (such as FDA and EMA).For example, approved therapeutic use can be expressed by the VI dose (mg / kg) per body weight of the subject being treated, or by the VI dose per day (mg / day), or by the VI weight per time unit (mg / hour).

[0122] According to the present invention, the suspension of gas-filled microvesicles can be administered using continuous infusion of the suspension or by injecting at least one bolus of a specific volume of the suspension into the subject.

[0123] For example, the total amount of microvesicles for each injection volume of suspension is 6 x 10 5 ~15×10 9 Microvesicles / kg of patient, preferably 1 x 10 7 ~12×10 9 microvesicles / kg, even more preferably 2 x 10 7 ~10×10 9 The volume of each infusion bolus is adapted to the required total amount of microvesicles to be infused (usually dependent on the specific treatment being performed), taking into account the concentration of microvesicles in the infusion suspension and the patient's weight. As a general rule, approximately 1 x 10 8 ~Approx. 3×10 9For a concentration of microvesicles in suspension of microvesicles / mL, the bolus volume may vary from 0.01 to 120 mL, preferably from 0.2 to 60 mL, and even more preferably from 0.4 to 20 mL.

[0124] In the present description and claims, the expression "infusion administration" refers to an administration procedure that can be performed by any suitable means of continuous administration, including, for example, gravity (e.g., saline infusion bag) or dedicated devices, such as (rotating) syringes that release controlled volumes.

[0125] The term "bolus administration" refers to a single intravascular injection of a specific volume of a suspension of gas-filled microvesicles, for example, using a catheter and syringe placed in a peripheral vein. The bolus administration generally occurs within a few seconds (e.g., 5 to 120 seconds, preferably within 60 seconds).

[0126] In one embodiment of the invention, the administration of said suspension of gas-filled microvesicles is administered to the patient as at least one bolus, preferably as at least one bolus and up to four boluses, for example every 5 minutes.

[0127] In a further embodiment of the invention, administering said suspension of gas-filled microvesicles comprises administering an effective amount of gas-filled microvesicles.

[0128] To this extent, and unless otherwise specified, the term "effective dose" or "effective amount" as used herein refers to any quantity of a suspension of gas-filled microvesicles according to the present invention sufficient to fulfill its intended therapeutic purpose(s): for example, improving drug delivery of a therapeutic agent in an area of ​​interest.

[0129] The application of therapeutic ultrasound to the region of interest can be carried out at any time before, during, or after the administration of gas-filled microvesicles. Generally, it is preferable to start ultrasound irradiation after the administration of VI. In certain embodiments, when VI and microvesicles are administered sequentially (e.g., VI is administered first, followed by MV), ultrasound irradiation of the region of interest can begin at the time of administration of the microvesicles or immediately after administration. Alternatively, when VI and MV are administered simultaneously, ultrasound irradiation of the region of interest can begin at the time of administration of the microvesicles or immediately after administration. In certain embodiments, the arrival of microvesicles in the region of interest can be determined (e.g., via physiological parameters or via contrast ultrasonography imaging of the region of interest), and ultrasound irradiation can begin when a desired amount of microvesicles has reached the region of interest.

[0130] As used herein, the expression "area of ​​interest" refers to a body part, organ or tissue of a subject that is to receive therapeutic treatment according to the present invention.

[0131] According to this description and claims, the term "subject" or "patient" refers to a living human or animal patient, preferably a human undergoing ultrasound-mediated treatment of the present invention.

[0132] One aspect of the present invention relates to a method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, said method comprising: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of a subject; c) applying therapeutic ultrasound to a region of interest of the subject Includes:

[0133] The vasospasm inhibitor is preferably selected from the group consisting of dihydropyridine calcium channel blockers, alpha blockers, and nitrovasodilators; more preferably, selected from the group consisting of nimodipine, nifedipine, magnesium, prazosin, and nitroglycerin; even more preferably, the vasospasm inhibitor is nimodipine.

[0134] The vasospasm inhibitor is preferably administered at an approved therapeutic dosage into the subject's vasculature, for example, by intravenous infusion.

[0135] The suspension of gas-filled microvesicles can be administered to the subject using continuous infusion or by injecting at least one bolus of a specific volume of the suspension; more preferably, the suspension of gas-filled microvesicles is administered to the subject as at least one bolus.

[0136] The suspension of gas-filled microvesicles is administered to the subject in an effective dose.

[0137] In one embodiment of the present disclosure, steps a) and b) are carried out simultaneously or sequentially.

[0138] In a preferred embodiment, step a) is carried out simultaneously with step b).

[0139] In an alternative embodiment, step a) is performed consecutively to step b), preferably between 1 second and 15 minutes, more preferably between 5 seconds and 12 minutes, and even more preferably at least 10 minutes before step b).

[0140] In a further embodiment, step b) is performed consecutively to step a).

[0141] The acoustic parameters, such as acoustic pressure, acoustic intensity and pulse length, are as described above.

[0142] In particular, in step c) of the method of the invention, the therapeutic ultrasound has a sound pressure comprised between 100 kPa and 900 kPa, preferably between 200 kPa and 800 kPa.

[0143] In a further embodiment, in step c) of the method of the present invention, the therapeutic ultrasound has a frequency of 0.1 to 990 W / cm 2 Preferably within 1.3 W / cm 2 ~21.5W / cm 2 The acoustic intensity is included in

[0144] In a further embodiment of the invention, in step c), said therapeutic ultrasound has a pulse length comprised between 5 μs and 60 s, preferably between 5 μs and 10 s, and even more preferably the pulse length is 1 ms.

[0145] Moreover, in a further embodiment, in step c), said therapeutic ultrasound is applied for a time comprised between 1 s and 170 minutes, preferably between 2 and 10 minutes.

[0146] Furthermore, in a further embodiment, in step c), the therapeutic ultrasound has a frequency comprised between 20 kHz and 70 MHz.

[0147] According to one embodiment, step c) is performed after step b) (eg, within a few seconds of administering the microvesicles).

[0148] Alternatively, step c) can be performed between steps a) and b), for example, sonication can be initiated (e.g., 1 to 15 minutes) after administration of the VI, before or simultaneously with injection of the gas-filled microvesicles.

[0149] In one general embodiment, a vasospasm inhibitor is used in (to enhance the effectiveness of) a combined therapeutic treatment of gas-filled microvesicles and ultrasound, where the combined therapeutic treatment induces vascular permeability, for example, to allow or enhance extravasation of a bioactive agent. In a specific embodiment, the combined therapeutic treatment induces opening or disruption of the blood-brain barrier (BBB opening / disruption), for example, in combination with the delivery of a bioactive agent. In another specific embodiment, the combined therapeutic treatment induces tumor perfusion, for example, for the delivery of a bioactive agent.

[0150] In another embodiment, vasospasm inhibitors are used in a combined therapeutic treatment of gas-filled microvesicles and ultrasound (to enhance their effectiveness) to dissolve blood clots (sonothrombolysis).

[0151] In a further embodiment, vasospasm inhibitors are used to improve thermal ablation in a combined therapeutic treatment of gas-filled microvesicles and ultrasound (MV-enhanced thermal ablation).

[0152] Furthermore, in further embodiments, vasospasm inhibitors can be used to enhance the effectiveness of combined therapeutic treatments of gas-filled microvesicles and ultrasound for immunomodulation, neuromodulation, radiosensitization, adjunct to hyperthermia, or non-thermal ablation of tissue.

[0153] As Applicants have shown, administration of VI can enhance the drug delivery efficacy of the combined therapeutic treatment US-MV. In certain embodiments, the use of VI resulted in a nearly two-fold increase in extravasation of the bioactive agent in the surrounding tumor tissue compared to the extravasation achieved using combined US-MV treatment alone without VI.

[0154] In the present invention, the term "drug delivery" refers to a therapeutic protocol that includes administering at least a bioactive agent, said bioactive agent being different from a vasospasm inhibitor.

[0155] Bioactive agents include any molecule, compound, preparation or material that can be used in therapeutic treatments mediated by ultrasound in combination with gas-filled microvesicles and that can produce a biologically or therapeutically active effect on the area or organ being treated.

[0156] Examples of bioactive agents include anti-neoplastic agents such as vincristine, vinblastine, vindesine, busulfan, chlorambucil, spiroplatin, cisplatin, carboplatin, methotrexate, adriamycin, mitomycin, bleomycin, cytosine arabinoside, arabinosyl adenine, mercaptopurine, mitotane, procarbazine, dactinomycin (antinomycin D), daunorubicin, doxorubicin hydrochloride, taxol, plicamycin, aminoglutethimide, estram, antifungal agents, such as ketoconazole, nystatin, griseofulvin, flucytosine, miconazole, or amphotericin B; hormones or hormone analogs, such as growth hormone, steroids ... Hormones, such as melanocyte-stimulating hormone, estradiol, beclomethasone dipropionate, betamethasone, cortisone acetate, dexamethasone, flunisolide, hydrocortisone, methylprednisolone, paramethasone acetate, prednisolone, prednisone, triamcinolone, or fludrocortisone acetate; vitamins, such as cyanocobalamin or retinoids; enzymes, such as alkaline phosphatase or manganese superoxide dismutase; antiallergic agents, such as amlexanox (a melexanox); anticoagulants, such as warfarin, phenprocoumon or heparin; antithrombotic agents; circulatory system agents, such as propranolol; metabolic enhancers, such as glutathione; antitubercular agents, such as p-aminosalicylic acid, isoniazid, capreomycin sulfate, cyclosexine, ethambutol, ethionamide, pyrazinamide, rifampin or streptomycin sulfate; antiviral agents, such as acyclovir, amantadine, azidothymidine, ribavirin or vidarabine;vasodilators, such as diltiazem, nifedipine, verapamil, erythritol tetranitrate, isosorbide dinitrate, nitroglycerin or pentaerythritol tetranitrate; antibiotics, such as dapsone, chloramphenicol, neomycin, cefaclor, cefadroxil, cephalexin, cephradine, erythromycin, clindamycin, lincomycin, amoxicillin, ampicillin, bacampicillin, carbenicillin, dicloxacillin, cyclacillin , picloxacillin, hetacillin, methicillin, nafcillin, penicillin or tetracycline; anti-inflammatory drugs such as diflunisal, ibuprofen, indomethacin, meclofenamate, mefenamic acid, naproxen, phenylbutazone, piroxicam, tolmetin, aspirin or salicylic acid; antiprotozoal drugs such as chloroquine, metronidazole, quinine or meglumine antimonate; antirheumatic drugs such as penicillin opiates, such as codeine, morphine or opium; cardiac glycosides, such as deslaneside, digitoxin, digoxin, digitalin or digitalis; neuromuscular blocking agents, such as atracurium mesylate, gallamine triethiodide, hexafluorenium bromide, methocrine iodide, pancuronium bromide, succinylcholine chloride, tubocurarine chloride or vecuronium bromide; sedatives, such as amobarbital, amobarbital sodium methicone, apropbarbital, butabarbital sodium, chloral hydrate, ethchlorvynol, etinamate, flurazepam hydrochloride, glutethimide, methotrimeprazine hydrochloride, methyprylon, midazolam hydrochloride, paraldehyde, pentobarbital, secobarbital sodium, talbutal, temazepam, or triazolam; local anesthetics, such as bupivacaine, chloroprocaine, etidocaine, lidocaine, mepivacaine, procaine, or tetracaine;Included are general anesthetics, such as droperidol, etomidate, fentanyl citrate with droperidol, ketamine hydrochloride, methohexital sodium or thiopental and their pharmaceutically acceptable salts (e.g., acid addition salts, e.g., hydrochloride or hydrobromide salts or base salts, e.g., sodium, calcium or magnesium salts) or derivatives (e.g., acetate salts); and radiochemicals (e.g., including α-, β-, or γ-emitters, e.g., 177Lu, 90Y or 131I). Of particular importance are antithrombotic agents, such as heparin, and agents with heparin-like activity, such as antithrombin III, dalteparin, and enoxaparin; platelet aggregation inhibitors, such as ticlopidine, aspirin, dipyridamole, iloprost, and abciximab; and thrombolytic enzymes, such as streptokinase and plasminogen activators; analgesics, such as codeine, fentanyl, hydroconazole, acetaminophen, oxycodone; drugs acting on the central or peripheral nervous system, such as antiepileptics, antiparkinsonian drugs, tranquilizers, or psychostimulants;Other examples of bioactive agents include antibodies, such as adalimumab, avelumab, durvalumab infliximab, atezolizumab, nivolumab, bevacizumab, pembrolizumab, ramucirumab, trastuzumab pertuzumab, ipilimumab, panitumumab, natalizumab, cetuximab, or antibody fragments. Other examples of bioactive agents include nanoformulated drugs, such as poractant alfa, liposomal doxorubicin HCl injectate, liposomal amphotericin B lipid complex, liposomal amphotericin B, liposomal morphine sulfate, liposomal cytarabine, liposomal vincristine, liposomal irinotecan, liposomal verteporfin, liposomal daunorubicin and cytarabine, and albumin-bound paclitaxel. Other examples of bioactive agents also include genetic material, such as nucleic acids, RNA, and DNA, of natural or synthetic origin, including recombinant RNA and DNA. DNA-encoded specific proteins can be used to treat many different types of diseases. For example, tumor necrosis factor or interleukin-2 may be provided to treat advanced cancer; thymidine kinase may be provided to treat ovarian cancer or brain tumor; interleukin-2 may be provided to treat neuroblastoma, malignant melanoma, or renal cancer; and interleukin-4 may be provided to treat cancer. Diagnostic agents are any compounds, compositions, or particles that can provide imaging enhancement for diagnostic techniques, including magnetic resonance imaging, X-rays, particularly computed tomography, optical imaging, nuclear imaging, or molecular imaging.

[0157] Examples of suitable diagnostic agents are, for example, magnetite nanoparticles, iodinated compounds such as Iomeprol®, or paramagnetic ion complexes such as hydrophobic gadolinium complexes.

[0158] According to the present invention, the administration of a vasospasm inhibitor (VI) can enhance the therapeutic / diagnostic effect of said bioactive agent administered in combination with the therapeutic treatment US-MV.

[0159] The therapeutic / diagnostic effect of a bioactive agent can be enhanced by vasospasm inhibitors through various mechanisms, as described above. For example, vasospasm inhibitors can increase (1) the concentration of a bioactive agent (e.g., a therapeutic agent or imaging agent) within the vascular compartment of a target region, (2) its extravasation through the blood vessels, (3) its intracellular delivery, and / or (4) blood perfusion.

[0160] The bioactive agent can be administered in a formulation separate from the gas-filled microvesicles and / or be contained within the structure of the gas-filled microvesicles.

[0161] In the former case, the bioactive agent is administered, for example by injection, simultaneously or sequentially with the combined US-MV therapeutic treatment.

[0162] The bioactive agent may be a bioactive molecule (or mixture of bioactive molecules), or may be a suitable pharmaceutical composition comprising the bioactive molecule(s), e.g., in the form of a commercially available formulation, or a ready-to-use formulation obtained by mixing the bioactive molecule(s) with a suitable aqueous carrier, preferably physiologically acceptable, including water (preferably sterile water), an aqueous solution such as saline (which may be advantageously balanced so that the final product for injection is not hypotonic), or a solution of one or more osmolytes. Osmolytes include salts or sugars, sugar alcohols, glycols or other non-ionic polyol materials (e.g., glucose, sucrose, sorbitol, mannitol, glycerol, polyethylene glycol, propylene glycol, etc.), chitosan derivatives such as carboxymethylchitosan, trimethylchitosan, or gelling compounds such as carboxymethylcellulose, hydroxyethyl starch, or dextran.

[0163] The bioactive agent is administered to the subject at an effective dose, which is a dose adequate to exert a therapeutic effect of the bioactive agent.

[0164] The bioactive agent can be administered to the subject using continuous infusion or by injecting at least one bolus of a specific volume of the suspension; more preferably, the suspension of gas-filled microvesicles is administered to the subject as at least one bolus.

[0165] In one embodiment, the drug delivery protocol of the present invention relates to a method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, said method comprising: a') administering a bioactive agent to the vasculature of a subject; a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of a subject; c) applying therapeutic ultrasound to a region of interest of the subject Includes:

[0166] In one embodiment of the present invention, step a') and step a) of the disclosed method are performed simultaneously or sequentially.

[0167] In one embodiment, step a') and step a) are carried out simultaneously.

[0168] In another embodiment, steps a') and a) are performed sequentially.

[0169] In principle, steps a), a') and / or b) can be performed simultaneously or sequentially in any order depending on the particular treatment and protocol, including a combination of simultaneous (only two of the above steps) and sequential protocols of administration.

[0170] For example, steps a) and / or a') can be performed simultaneously or sequentially with step b).

[0171] In one embodiment, step a) and / or step a') are carried out simultaneously with step b).

[0172] In an alternative embodiment, step a) and / or step a') are performed consecutively to step b), for example, steps a) / a') are performed (simultaneously or consecutively) 1 second to 15 minutes, more preferably 5 seconds to 12 minutes, even more preferably at least 10 minutes before step b).

[0173] In a further embodiment, steps a') and b) can be performed simultaneously, e.g., the suspension of microvesicles can include a bioactive agent; said suspension can be administered simultaneously with VI or sequentially, e.g., after administration of VI.

[0174] In a further embodiment, the bioactive agent can be included within the structure of the gas-filled microvesicles via various mechanisms: i) it can be bound to the amphiphilic molecules of the gas-filled microvesicles via covalent bonds; ii) it may be appropriately associated with the gas-filled microvesicles via physical and / or electrostatic interactions; and iii) it can be a compound that is mixed with the components that form the gas-filled microvesicles and is ultimately incorporated into the gas-filled microvesicle structure.

[0175] In a further embodiment, the drug delivery protocol of the present invention relates to a method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, said method comprising: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering to the vasculature of a subject a suspension of gas-filled microvesicles containing a bioactive agent, wherein the bioactive agent is contained within the structure of the gas-filled microvesicles; c) applying therapeutic ultrasound to a region of interest of the subject Includes:

[0176] In one embodiment of the present invention, steps a) and b) of the disclosed method are performed simultaneously or sequentially.

[0177] In one embodiment, step a) is carried out simultaneously with step b).

[0178] In an alternative embodiment, step a) is performed consecutively to step b), preferably 1 second to 15 minutes, more preferably 5 seconds to 12 minutes, even more preferably at least 10 minutes before step b).

[0179] The suspension of gas-filled microvesicles containing a bioactive agent can be administered to the subject using continuous infusion or by injecting at least one bolus of a specific volume of the suspension; more preferably, the suspension of gas-filled microvesicles is administered to the subject as at least one bolus.

[0180] A suspension of gas-filled microvesicles containing a bioactive agent is administered to a subject at an effective dose, wherein the effective dose is a dose in which both the gas-filled microvesicles and the bioactive agent contained within the structure are administered in amounts adequate to exert their therapeutic effect.

[0181] The following examples will help to further illustrate the invention. [Example]

[0182] [material and method] Preparation of formulation P01 Formulation P01 was prepared according to the procedure described in Reference 17 (see Example 2). The amphiphilic material in the formulation was DSPC:DPPE-PEG5000 (molar ratio 9:1). The concentration of MV in the solution was assessed by the Coulter Counter method (e.g., Coulter Counter Multisizer 3 with Multisizer 3 software).

[0183] Preparation of formulation P02 The procedure given in the example of reference 16 was used to prepare formulation (P02). Briefly, an emulsion of cyclooctane and water (approximately 1.5 / 100 v / v) containing approximately 90 mg / L DSPC, 7 mg / L palmitic acid, 60 mg / L DPPE-PEG5000, and 100 g / L PEG4000 was prepared (Megatron MT3000, Kinematica; 10 000 rpm) and sampled into DIN8R vials (approximately 1 mL / vial).

[0184] The vials were cooled under vacuum at -50°C and then subjected to lyophilization, followed by secondary drying at a temperature higher than room temperature until complete removal of water and solvent (less than 0.5% by weight). At the end of the lyophilization process, the headspace of the vials was saturated with a 35 / 65 mixture of C4F10 / N2, ​​and the vials were stoppered and sealed. The lyophilized formulation (concentration 15 mg / mL) was reconstituted in NaCl solution (0.9%) under gentle stirring in the presence of gas to obtain a microvesicle solution. The reconstitution volume was adapted to obtain an appropriate volume for injection relative to the animal's weight.

[0185] Preparation of Definity® / Luminity® Microvesicles were activated according to the manufacturer's recommendations. Microvesicle concentration was determined by the Coulter counter method (e.g., Coulter Counter Multisizer 3 with Multisizer 3 software).

[0186] Administration The volume of the microvesicle suspension is diluted as needed to obtain a bolus containing 200-500 µL for rats and 50-200 µL for mice. A saline flush is performed after each injection.

[0187] Boluses were spaced 5 minutes apart for a treatment duration of 20 minutes.

[0188] The microvesicle dose is expressed as total number of microvesicles per kg depending on the protocol, model, and species. Depending on the protocol, the total dose can be divided into several boluses.

[0189] [Example 1] Enhanced efficacy of combined therapeutic treatments with gas-filled microvesicles and ultrasound Model and animal preparation The model used was the NMU rat tumor model. Prepubertal female Sprague Dawley rats received a single intraperitoneal injection of 50 mg / kg NMU (N-nitroso-N-methylurea, Sigma, Switzerland). Rats that developed tumors were enrolled in the protocol. In the NMU model, animals develop several tumors, so in the same animal, tumors can be treated with microvesicles and therapeutic ultrasound; and tumors without ultrasound exposure (referred to as untreated). Rats were anesthetized and placed in a dorsal recumbent position. A catheter was placed in the tail vein to inject drugs and microvesicles. The US treatment transducer was positioned 5 cm from the tumor (spaced apart by a water tank). After perfusion, contrast ultrasound examination (C10-3v probe, EpiQ 7G, Philips) was performed, positioned near the tumor at a 40-45° angle.

[0190] To assess the efficiency of molecular extravasation, 150 kDa-dextran labeled with the Cy(c)5.5 fluorophore was injected immediately before therapeutic treatment with ultrasound and microvesicles.

[0191] Five experimental conditions were tested: i) Group 1 rats (naive) were not exposed to US-MV (basal extravasation at CY5.5h); ii) a second group of tumors received MV only; iii) the third group was pretreated with a vasospasm inhibitor and then administered MV; iv) a fourth group of rats received US-MV treatment; and v) A fifth group was pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0192] For US+MV treatment, therapeutic US was applied with an acoustic pressure of 600 kPa, a pulse scheme of 1 ms on / 10 s off, and a duration of 20 min.

[0193] For the study, two MV formulations, P02 (prepared according to Materials and Methods) or Definity, were administered at a dose of 8 μl gas / kg, divided into four boluses, each 5 minutes apart. In terms of the number of MVs, the equivalent of this gas volume was 1.2 × 10 for the P02 formulation. 8 / kg and Definity: 5.2 × 10 9 / kg.

[0194] For pretreatment with vasospasm inhibitors, nimodipine (Sigma Aldrich, Switzerland) powder was first diluted in DMSO (40 mg / ml); the injection dose (1.4 mg / kg) was extemporaneously prepared in NaCl 0.9% and injected 10 min before treatment.

[0195] Tumors were then harvested from sacrificed animals; fluorescence was quantified on images acquired ex vivo (Fluobeam® 700). Fluorescence was quantified by ImageJ software.

[0196] result The results showed that administration of nimodipine can enhance the drug delivery efficacy of the combined therapeutic treatment US-MV. Pretreatment with VI before the MV-US combination increased Cy®5.5 dye extravasation in tumor tissues by nearly twofold compared to the extravasation obtained in the other conditions. In particular, the mean fluorescence signal in the first group (CY5.5h alone) was 1020 RFU / px / ms, in the second group (MV alone) 930 RFU / px / ms, in the third group (VI+MV) 1030 RFU / px / ms, and in the fourth group (US-MV) 990 RFU / px / ms. Surprisingly, in the fifth group, the mean fluorescence value assessed after pre-administration of VI followed by US-MV was 2060 RFU / px / ms, i.e., a fluorescence value twice that of the other groups.

[0197] [Example 2] Evaluation of various US parameters in the induction of vasospasm Model and animal preparation The model used in these experiments was the mesenteric rat microcirculation. Briefly, anesthetized animals were prepared and the intestinal loops were visualized. Injections were performed in the tail vein.

[0198] The rat was placed under an inverted microscope (Olympus® X2) equipped with a X20 objective (final magnification: 200). A digital camera driven by open-source software captured and recorded 30-second videos at each required time point according to the protocol.

[0199] Formulation 01 was administered in this study.

[0200] US treatment was delivered by an experimental single-element transducer (non-focal, planar, 1.5 MHz). Table 1 reports the US parameters tested for each protocol, including pulse scheme, acoustic pressure, and duration of US application. The transducer was focused on the optical objective and positioned at a working distance of 5 cm.

[0201] Image sequences were acquired before, during, and after treatment. Additional acquisitions were performed every 5 minutes up to 40 minutes after the start of US exposure to monitor for resolution of vasospasm. Vasospasm was confirmed when a decrease in the lumen of microvessels (i.e., venules, arterioles, or capillaries) and / or a decrease and / or cessation of blood flow (compared to control conditions) was observed.

[0202] result: As reported in Table 1, the results confirmed that vasospasm occurred immediately after the first ultrasound pulse at any tested acoustic pressure and for all studied treatment durations (2, 5, and 20 min), microvesicle doses, and administration modes (single or multiple boluses). The term "ultrasound pulse" refers to a multi-cycle ultrasound wave transmitted by an ultrasound transducer and propagating through a medium. It is characterized by its duration (e.g., 1 ms on), frequency, and amplitude, referred to as "time-on."

[0203] JPEG2026035634000001.jpg97166

[0204] [Example 3] Evaluation of different types of gas-filled microvesicles in the induction of vasospasm Model and animal preparation The model used in these experiments was the mesenteric rat microcirculation. The model and animal preparation are described in Example 2. This study aimed to evaluate different types of gas-filled microvesicles in inducing vasospasm. To this end, different microvesicle formulations, namely formulations P02 and Luminity® (Lantheus), were investigated at different acoustic pressures (from 400 kPa to 800 kPa). Table 2 reports the experimental conditions investigated.

[0205] result As can be seen from Table 2, the results confirmed that vasospasm occurred immediately after the first ultrasound pulse at any acoustic pressure tested and any gas-filled formulation investigated.

[0206] JPEG2026035634000002.jpg68166

[0207] [Example 4] Testing calcium channel blocker-mediated inhibition of vasospasm in a non-tumor model Model and animal preparation The model used in these experiments was the mesenteric rat microcirculation. The model and animal preparation are described in Example 2.

[0208] This study was aimed at evaluating vasospasm inhibitor compounds, specifically the inhibition of vasospasm induced by the dihydropyridine calcium channel blocker nimodipine.

[0209] For this purpose, rats were pretreated with nimodipine 10 minutes before the combined treatment of gas-filled microvesicles and therapeutic ultrasound.

[0210] Nimodipine (Sigma Aldrich, Switzerland) powder was initially diluted in DMSO (40 mg / ml); the injection dose (1.4 mg / kg) was extemporaneously prepared in NaCl 0.9% and injected 10 minutes before treatment.

[0211] Treatment parameters were chosen according to a previous study to obtain the incidence of vasospasm, in which the P01 formulation was administered.

[0212] result: Table 3 shows that pretreatment with VI was able to inhibit the development of vasospasm in 100% of animals subjected to a combination of therapeutic ultrasound and a suspension of gas-filled microvesicles.

[0213] JPEG2026035634000003.jpg47166

[0214] [Example 5] Effect of US-mediated therapy combined with gas-filled microvesicles on tumor perfusion (DA3 tumor model). Animal models and formulations A murine DA3 tumor model was used in these studies. US treatment was delivered by a Verasonic® system (probe P4-2). The probe was placed 5 cm from the tumor (spaced by a water tank filled with degassed water).

[0215] The tumors were then subjected to therapeutic ultrasound irradiation with a series of bolus injections of gas-filled microvesicles (P01) (frequency, acoustic pressure, and pulse characteristics as defined in Table 4). Perfusion of each tumor was tracked by the sonographic signal of the microvesicles (Verasonic® system). Signals were recorded and post-hoc analyzed using Vuebox® software. The occurrence of vasospasm was evidenced by a decrease in perfusion (i.e., a decrease in microvesicle signal intensity and / or an increase in refill time after the US pulse compared to control conditions).

[0216] The expression "refill time" refers to the time required to supply fresh gas-filled microvesicles to the area under the ultrasound beam with blood vessels after the substantial destruction of MVs caused by each US pulse.

[0217] The expression "MV destruction" corresponds to the loss of MV integrity or structure due to acoustic activation of MVs by US. This can be caused, for example, by MV collapse or gas dissolution, and is monitored by tracking the acoustic signal.

[0218] All parameters for microvesicles and ultrasound treatment were fixed (see Table 4). Therapeutic ultrasound exposure parameters were selected according to previous studies to obtain vascular permeabilization in DA3 tumors. The P01 dose was selected to allow stable perfusion of the tumor (1.3E+09 microvesicles / kg; divided into four boluses, injected every 6 minutes). Two groups of animals were tested: one group was pretreated IV (nimodipine, 1.4 mg / kg, iv, from a stock solution, 10 minutes before treatment) and compared with a group receiving only NaCl 0.9%.

[0219] result A reduction in perfusion between each US pulse was observed in 100% of saline-treated animals. After pretreatment with VI, tumor perfusion was stable in 100% of the animals tested, suggesting inhibition of vasospasm. The results are summarized in Table 4.

[0220] Furthermore, Figure 1 reports the quantification of tumor perfusion during treatment with US+MV, comparing the results obtained without VI pretreatment (upper panel) with those obtained with VI pretreatment (nimodipine 1.4 mg / kg IV) (lower panel). The results confirmed the improvement in tumor perfusion obtained after VI administration. Indeed, pretreatment with VI ensured a continuous replenishment of microvesicles after destruction by the US pulse, compared with that obtained without pretreatment.

[0221] JPEG2026035634000004.jpg53166

[0222] [Example 6] Effect of US-mediated therapy combined with gas-filled microvesicles on tumor perfusion (NMU tumor model). Model and animal preparation Prepubertal rats (female, Sprague Dawley) were given a single intraperitoneal injection of 50 mg / kg NMU (N-nitroso-N-methylurea, Sigma, Switzerland) in the model described in Example 1.

[0223] A series of bolus injections of gas-filled microvesicles (as specified in Table 5) were administered and the tumor was subjected to therapeutic ultrasound irradiation (frequency, acoustic pressure and pulse characteristics as specified in the Examples below).

[0224] Tumor perfusion during treatment was assessed as described in Example 5.

[0225] All parameters for microvesicles and ultrasound treatment were fixed (see Table 5). Therapeutic ultrasound exposure parameters were selected according to previous studies to obtain vascular permeabilization in NMU tumors. The P02 dose was selected to allow stable perfusion of the tumor (i.e., 1.2E+09 microvesicles / kg, divided into four boluses; one bolus every 5 minutes).

[0226] Animals were pre-treated with nimodipine (1.4 mg / kg, iv, from a stock solution, 10 minutes prior to treatment, as detailed in Example 3) and compared with an infusion of NaCl 0.9%.

[0227] result A decrease in contrast signal was observed after the first US pulse. All tumors showed loss of perfusion after the first pulse. Nevertheless, rats pretreated with the dihydropyridine calcium channel blocker nimodipine (1.4 mg / kg, 10 min prior) showed stable tumor perfusion throughout the treatment, suggesting inhibition of vasospasm.

[0228] JPEG2026035634000005.jpg57166

[0229] [Example 7] Evaluation of various pharmacological classes of vasospasm inhibitors in the induction of vasospasm Model and animal preparation The model used in these experiments was the mesenteric rat microcirculation. The model and animal preparation are described in Example 2.

[0230] This study aimed to evaluate the efficacy of various pharmacological classes of vasospasm inhibitors currently used in the clinic for vasospasm inhibition. All parameters for microvesicle and ultrasound treatment were fixed as shown in Table 6. The selected vasospasm inhibitors and their associated doses are reported in Table 6. The duration between pretreatment and ultrasound treatment and microvesicle injection was in accordance with the pharmacokinetics and pharmacodynamics of each drug.

[0231] result As reported in Table 6, the results showed that dihydropyridine calcium channel blockers, such as nimodipine and nifedipine, magnesium, and nitrovasodilators, such as trinitrine, exhibited good potency in inhibiting vasospasm. The α-adrenergic receptor antagonist prazosin showed lower potency, while the non-dihydropyridine calcium channel blocker diltiazem and the ACE (angiotensin-converting enzyme) inhibitor captopril did not show any relevant inhibitory activity against the development of vasospasm.

[0232] JPEG2026035634000006.jpg138166

[0233] [Example 8] Further experiments demonstrating the high efficacy of combined therapeutic treatment with gas-filled microvesicles and ultrasound 8.1 Clot destruction The model used was a healthy rat with occlusion of the middle cerebral artery in one hemisphere. This occlusion resulted in a reduction in blood perfusion in the corresponding hemisphere, as characterized by a slop in total vascular volume measured by computed tomography. To assess the efficiency of US-MV for clot destruction, the total vascular volume after US-MV treatment was compared with a reference value (i.e., the total vascular volume before and after MCA occlusion).

[0234] Six experimental conditions are tested: vi) rats in the first group (naive) are exposed to US (basal effect of US on clot lysis); vii) a second group of rats is pretreated with a vasospasm inhibitor and exposed to US; viii) a third group of rats receives MV only; ix) the fourth group is pretreated with a vasospasm inhibitor and then administered MV; x) a fifth group of rats receives US-MV treatment; and xi) The sixth group will be pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0235] US therapy is applied to the occluded MCA at a frequency of approximately 0.25 to 2 MHz (e.g., 1 MHz) and a sound pressure of approximately 0.4 to 1.5 MPa (e.g., 0.6 MPa), with a pulse length of approximately several ms to several seconds (e.g., 10 ms).

[0236] For pre-treatment with a vasospasm inhibitor, the vasospasm inhibitor (eg, nimodipine, about 40 mg / kg) is administered prior to the procedure, eg, 5 minutes prior to administration of MV.

[0237] MV formulations are administered at approximately 0.1-50 μl gas / kg (e.g., 1 μl gas / kg, 2.10 8 The equivalent of this gas volume in terms of the number of MV is approximately 2 x 10 7 / kg~10×10 9 Equivalent to MV / kg.

[0238] The administration of vasospasm inhibitors as exemplified above can enhance the effectiveness of reperfusion induced by the combined therapeutic treatment US-MV. Indeed, pretreatment with VI before the combined MV-US allows a significant increase in total vascular volume compared to other conditions. Reperfusion can be observed to a lesser extent in animals treated with US+MV alone, and even less in animals treated with US or US+VI. Groups US and US+VI achieve similar reperfusion. No substantial effect on reperfusion is observed in the other groups: MV alone or MV+VI.

[0239] 8.2 BBB opening The models used were healthy rats or brain tumor-bearing rats. To evaluate the efficacy of US+MV on BBB opening, all animals were injected with Evans blue dye solution before undergoing ultrasound treatment. The amount of extravasated dye in the brain correlates with increased blood-brain barrier permeability (BBB opening).

[0240] Six experimental conditions are tested: i) The first group of rats (naive) is exposed to US (basal effect of US on BBBO); ii) a second group of rats is pretreated with a vasospasm inhibitor and exposed to US; iii) rats in the third group receive MV only; iv) the fourth group is pretreated with a vasospasm inhibitor and then receives MV; v) a fifth group of rats receives US-MV treatment; and vi) The sixth group will be pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0241] For pre-treatment with a vasospasm inhibitor, the vasospasm inhibitor (eg, nimodipine, about 40 mg / kg) is administered prior to the procedure, eg, 5 minutes prior to administration of MV.

[0242] The MV preparation (approximately 0.1-50 μl gas / kg; e.g., 1 μl gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is approximately 2 × 10 7 / kg~10×10 9 MV / kg (e.g., 2.10 8 MV / kg).

[0243] US therapy is applied through the skull (approximately 0.2 MHz to 2 MHz, eg, 0.25 MHz) with a sound pressure range of approximately 150 kPa to 1.8 MPa (eg, 400 kPa) and a pulse length of approximately several μs to tens of ms on (eg, 10 ms on).

[0244] Compared with other conditions, administration of vasospasm inhibitors in combination with US+MV treatment increased the amount of Evans blue extravasated in the brain parenchyma, reflecting a greater degree of blood-brain barrier opening. BBBO was observed to a lesser extent in animals treated with US+MV, whereas no BBBO was observed in the other groups: US or MV alone; US or MV combined with vasospasm inhibitors.

[0245] 8.3 MV enhanced thermal ablation The model is a healthy rabbit. The effectiveness of thermal ablation is highlighted by the increase in temperature of the hindlimb muscle upon exposure to ultrasound and the observation of thermal lesions within this tissue after dissection. The temperature increase during the procedure is tracked using a thermocouple probe inserted within the sonicated area of ​​the muscle bundle.

[0246] Six experimental conditions are tested: i) The first group of rabbits (naive) is exposed to US (basal effect of US on thermal ablation); ii) A second group of rabbits was pretreated with a vasospasm inhibitor and exposed to US. iii) a third group of rabbits receives MV only; iv) a fourth group of rabbits will be pretreated with a vasospasm inhibitor and then administered MV; v) a fifth group of rabbits will be subjected to US-MV treatment; and vi) The sixth group will be pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0247] For pretreatment with a vasospasm inhibitor, a vasospasm inhibitor (eg, nimodipine approximately 40 mg / kg) is administered prior to the procedure (5 minutes).

[0248] The MV preparation (approximately 0.1-50 μl gas / kg, e.g., 5 μl gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is approximately 2 × 10 7 / kg~10×10 9 MV / kg (e.g., 10 × 10 8 MV / kg).

[0249] US therapy is applied to muscle tissue (approximately 0.25 MHz to 2 MHz, e.g., 0.5 MHz) with a sound pressure range of approximately several hundred kPa to several MPa (e.g., 2.7 MPa) and a pulse length of approximately several ms to several seconds on (e.g., 15 s).

[0250] The temperature increase that induces thermal lesions is achieved using US, US+VI, US+MV, or US+MV+VI. No difference is observed between the two groups, US and US+VI. However, compared with US or US+VI, the use of US+MV allows for a higher and faster temperature increase and reduces the energy level required to achieve such a temperature increase and induce such thermal lesions. This observed effect is greater when a vasospasm inhibitor is administered in combination with US+MV compared with all other groups. No thermal lesions are observed in the other groups: MV alone or MV combined with a vasospasm inhibitor.

[0251] 8.4 Neuromodulation The animal model used was rats. The modulation of neuronal function induced by US+MV was evaluated by measuring changes in the electrical activity of neurons located in the somatosensory brain cortex. The method used is called stimulus-driven somatosensory evoked potentials (SSEPs). This method evaluates the response of brain neurons by measuring the SSEP waveforms (amplitude and latency) evoked by electrical stimulation of the forelimb. Here, we compare the waveform changes induced by US+MV.

[0252] Six experimental conditions are tested: i) The first group of rats (naive) is exposed to US to assess the effect of US on neuronal responses; ii) a second group of rats is pretreated with a vasospasm inhibitor and exposed to US; iii) rats in the third group receive MV only; iv) the fourth group is pretreated with a vasospasm inhibitor and then receives MV; v) a fifth group of rats receives US-MV treatment; and vi) A sixth group of rats is pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0253] For all experiments, a baseline signal is recorded before the procedure to assess stimulation-induced waveform changes.

[0254] For pretreatment with a vasospasm inhibitor, the vasospasm inhibitor (eg, nimodipine about 40 mg / kg) is administered prior to the procedure (eg, 5 minutes).

[0255] The MV formulation (approximately μl gas / kg, e.g., 1 μl gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is approximately 2×10 7 / kg~10×10 9 MV / kg, e.g., 2.10 8 Equivalent to MV / kg.

[0256] US therapy is applied to the brain (approximately 0.25 MHz to 2 MHZ, eg, 0.5 MHz) with a sound pressure range of approximately several hundred kPa to several MPa (eg, 0.4 MPa) and a pulse length of approximately several ms to several seconds on (eg, 10 ms).

[0257] Stimulation of the somatosensory cortex with US+MV induces a reduction in SEPP signal amplitude and an increase in latency compared to baseline signals. Administration of VI combined with US+MV stimulation induces a greater reduction in SEPP amplitude and a greater increase in signal latency compared to US+MV. The energy level required to induce such signal changes is also lower in the group treated with US+MV+VI compared to the other groups. No waveform changes are observed with US or US+VI or MV or US+VI.

[0258] 8.5 Non-thermal ablation The model involves healthy rats or rats bearing brain tumors. The brains are exposed to US to remove tissue. The efficacy of the procedure is assessed by detecting the presence of treatment-induced lesions, as evidenced by: i) changes in tissue hemodynamics; ii) increased levels of necrosis and apoptosis in the target tissue; and iii) reduced tumor growth over a period of weeks.

[0259] Six experimental conditions are tested: i) The first group of rats (naive) is exposed to US (basal effect of US on non-thermal ablation); ii) a second group of rats is pretreated with a vasospasm inhibitor and exposed to US; iii) rats in the third group receive MV only; iv) rats in the fourth group are pretreated with a vasospasm inhibitor and then administered MV; v) a fifth group of rats receives US-MV treatment; and vi) The sixth group will be pre-treated with a vasospasm inhibitor followed by US-MV treatment.

[0260] For pretreatment with a vasospasm inhibitor, the vasospasm inhibitor (eg, nimodipine about 40 mg / kg) is administered prior to the procedure (eg, 5 minutes).

[0261] The MV preparation (approximately 0.1-50 μl gas / kg, e.g., 1 μl gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is approximately 2 × 10 7 MV / kg ~ 10 x 10 9 MV / kg (e.g., 2.10 8 MV / kg).

[0262] US therapy is applied to the tissue (approximately 0.25 MHz to 2 MHz, eg, 1 MHz) with acoustic pressures ranging from approximately several hundred kPa to several MPa (eg, 1 MPa) and pulse lengths and on times of several ms to several seconds (eg, 20 ms).

[0263] Compared to all other conditions, administration of vasospasm inhibitors in combination with US+MV allows for a greater reduction in blood flow and a higher level of necrosis and apoptosis in the treated tissue. This translates into a greater reduction in tumor growth over the week compared to all other groups. A similar effect is observed, but to a lesser extent, in animals treated with US+MV. No lesions are observed in the following groups: US or US+VI or MV or MV+VI.

[0264] 8.6 Radiosensitization The model is tumor-bearing rats. The goal is to treat tumors with US+MV to enhance the effects of radiation therapy (RT). The efficacy of the procedure is assessed by detecting i) changes in tissue hemodynamics, ii) increased levels of cell death and apoptosis in tissues exposed to US+RT, and iii) the presence of treatment-induced lesions as highlighted by decreased tumor growth and increased survival over the course of weeks.

[0265] Ten experimental conditions are tested: i) A first group of rats is exposed to RT to assess the effect of the treatment alone; ii) a second group of rats is exposed to RT and a vasospasm inhibitor; iii) a third group of rats is exposed to US; iv) a fourth group is exposed to US and a vasospasm inhibitor; v) a fifth (fifth third) group of rats receives MV only; vi) the sixth group will be pre-treated with a vasospasm inhibitor and then administered MV; vii) rats in the seventh group are subjected to US-MV treatment; viii) the eighth group will be pre-treated with a vasospasm inhibitor followed by US-MV treatment; ix) the ninth group will undergo US-MV and RT procedures; x) Group 10 will be pre-treated with a vasospasm inhibitor followed by US-MV and RT treatment.

[0266] For pretreatment, a vasospasm inhibitor (eg, nimodipine about 40 mg / kg) is administered prior to the procedure (eg, 5 minutes).

[0267] The MV preparation (approximately 0.1-50 μl of gas / kg, e.g., 1 μl of gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is approximately 2 × 10 7 / kg~10×10 9 MV / kg (e.g., 2.10 8 MV / kg).

[0268] US therapy is applied to the tumor (approximately 0.25 MHz to 2 MHz, for example, 0.25 MHz). US therapy is applied to the tissue with an acoustic pressure of approximately several hundred kPa to several MPa (for example, 600 kPa) and a pulse length of several ms to several seconds (for example, 10 ms).

[0269] Radiation therapy is applied to the same tissues after the US procedure.

[0270] Compared with other conditions, administering a vasospasm inhibitor before RT+US+MV allows for a greater reduction in blood flow and a higher level of cell death and apoptosis in the treated tissue. This translates into reduced tumor growth and a higher survival rate compared with other groups. At lower levels, MV+US+RT, MV+US+ / -VI, or RT+ / -VI also reduce blood flow, induce cell death and apoptosis in tumor tissue, and reduce tumor growth. This effect is superior in the group treated with MV+US+VI compared with MV+US. No difference is observed between RT or RT+VI. No effect is observed in the groups treated with MV, MV+VI, US, or US+VI.

[0271] 8.7 Heat Therapy The model is a tumor-bearing rabbit, and the goal is to treat the tumor with a fluorescent-cytotoxic drug and enhance drug delivery in a US hyperthermia-induced manner.

[0272] Hyperthermia is assessed by monitoring intratumoral temperature using MR thermometry, which allows for temperature mapping of the treated area. The effectiveness of drug delivery is assessed by quantifying intratumoral fluorescence accumulation using fluorometry.

[0273] Seven sets of experimental conditions are tested: all groups receive cytotoxic drugs. i) the first group receives only the cytotoxic drug (basal accumulation of fluorescent signal in the tumor); ii) a second group of rabbits is treated with US+ / - ​​cytotoxic drugs; iii) a third group of rabbits will be pretreated with a vasospasm inhibitor and exposed to US+ / - ​​cytotoxic drugs; iv) a fourth group of rabbits receives MV+ / - cytotoxic drug; v) A fifth group of rabbits will be pre-treated with a vasospasm inhibitor and then administered MV+ / - cytotoxic drugs; vi) A sixth group of rabbits is exposed to US-MV treatment + / - a cytotoxic drug; and xvii) A seventh group will be pre-treated with a vasospasm inhibitor and then exposed to US-MV treatment + / - a cytotoxic drug.

[0274] For pretreatment with a vasospasm inhibitor, the vasospasm inhibitor (eg, nimodipine about 40 mg / kg) is administered prior to treatment (eg, 5 minutes).

[0275] The MV preparation (e.g., about 0.1-50 μl of gas / kg) is administered immediately prior to US application. In terms of the number of MVs, the equivalent of this gas volume is about 2 × 10 7 / kg~10×10 9 MV / kg (e.g., 2.10 8 MV / kg).

[0276] US therapy is applied to the tumor (about 0.25 MHz to 2 MHz, eg, 0.5 MHz) with an acoustic pressure range of approximately 200 kPa to 1 MPa (eg, 500 kPa) and a pulse length of approximately 1 ms to 10 seconds on (eg, 10 ms).

[0277] No substantial increase in temperature was observed for groups VI or MV, nor for MV+VI. Hyperthermia was achieved using US, US+VI, US+MV, or US+MV+VI. The energy level required to achieve and maintain hyperthermia was reduced in groups MV+US and to a greater extent in group US+MV+VI.

[0278] In all groups where hyperthermia was effective, an increase in the accumulation of fluorescent signals was measured. This effect was more pronounced in the US+MV+VI group compared to the MV+US group, reflecting a higher delivery of cytotoxic drugs with the US-MV and VI combination.

[0279] JPEG2026035634000007.jpg231166JPEG2026035634000008.jpg86166

Claims

1. A vasospasm inhibitor for use in enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound.

2. The vasospasm inhibitor for use according to claim 1, wherein the vasospasm inhibitor is selected from the group consisting of dihydropyridine calcium channel blockers, alpha blockers and nitrovasodilators.

3. The vasospasm inhibitor for use according to claim 2, wherein the vasospasm inhibitor is selected from the group consisting of nimodipine, nifedipine, magnesium, prazosin and nitroglycerin.

4. The vasospasm inhibitor for use according to any one of claims 1 to 3, wherein said vasospasm inhibitor is administered simultaneously or sequentially with the administration of a suspension of gas-filled microvesicles.

5. The vasospasm inhibitor for use according to claim 4, wherein the vasospasm inhibitor is administered 1 second to 15 minutes prior to administration of the suspension of gas-filled microvesicles.

6. 1. A method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, comprising: The method comprises: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of said subject; c) applying therapeutic ultrasound to a region of interest of said subject. Including, method.

7. 7. The method of claim 6, wherein the vasospasm inhibitor is selected from the group consisting of dihydropyridine calcium channel blockers, alpha blockers, and nitrovasodilators.

8. 8. The method of claim 7, wherein the vasospasm inhibitor is selected from the group consisting of nimodipine, nifedipine, magnesium, prazosin, and nitroglycerin.

9. The method of any one of claims 6 to 8, wherein the suspension of gas-filled microvesicles is administered by continuous infusion or by injecting at least one bolus.

10. The method according to any one of claims 6 to 9, wherein steps a) and b) of the method are carried out simultaneously or sequentially.

11. 11. The method of claim 10, wherein step a) occurs between 1 second and 15 minutes before step b).

12. 12. The method according to any one of claims 6 to 11, wherein the therapeutic ultrasound has a sound pressure comprised between 100 and 900 kPa.

13. 13. The method according to any one of claims 6 to 12, wherein the therapeutic ultrasound has a pulse length comprised between 5 μs and 60 s.

14. 14. The method according to any one of claims 6 to 13, wherein said therapeutic ultrasound is applied for a time comprised between 1 second and 170 minutes.

15. 15. The method according to any one of claims 6 to 14, wherein the therapeutic ultrasound has a frequency comprised between 20 kHz and 70 MHz.

16. 1. A method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, comprising: a') administering a bioactive agent to the vasculature of a subject; a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of said subject; c) applying therapeutic ultrasound to a region of interest of said subject. Including, method.

17. 1. A method for enhancing the effectiveness of a combined therapeutic treatment of gas-filled microvesicles and therapeutic ultrasound, comprising: a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering to the vasculature of the subject a suspension of gas-filled microvesicles containing a bioactive agent, wherein the bioactive agent is contained within the structure of the gas-filled microvesicles; c) applying therapeutic ultrasound to a region of interest of said subject. Including, method.

18. A vasospasm inhibitor for use according to claims 1 to 5, comprising The use, a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of said subject; c) applying therapeutic ultrasound to a region of interest of said subject. Including, Vasospasm inhibitors.

19. A vasospasm inhibitor for use according to any one of claims 1 to 5, comprising The use, a') administering a bioactive agent to the vasculature of a subject; a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering a suspension of gas-filled microvesicles to the vasculature of said subject; c) applying therapeutic ultrasound to a region of interest of said subject. Including, Vasospasm inhibitors.

20. A vasospasm inhibitor for use according to any one of claims 1 to 5, comprising The use, a) administering a vasospasm inhibitor to the vasculature of a subject; b) administering to the vasculature of the subject a suspension of gas-filled microvesicles containing a bioactive agent, wherein the bioactive agent is contained within the structure of the gas-filled microvesicles; c) applying therapeutic ultrasound to a region of interest of said subject. Including, Vasospasm inhibitors.