EP0467031A2

Medical-grade lipid-coated microbubbles, paramagnetic labelling thereof and their therapeutic use.

Abstract

This invention relates to a large scale method for the production of medical grade lipid-coated microbubbles, to the paramagnetic labeling of such microbubbles and to therapeutic applications for the microbubbles. More particularly, the invention relates to a method of the production of medical grade, concentrated suspensions of stable, paramagnetically derivatized or underivatized microbubbles useful for ultrasonic and magnetic resonance imaging and also relates to therapeutic interventions such as selective tumor destruction.

EP0467031A2, drawing sheet 1
Sheet 1 of 6

Term

Term ended

Projected expiry passed 13 May 2011, 15.4 years ago.

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20 claims: 3 independent, 17 dependent

  1. 1
    A method of preparing medical-grade lipid-coated microbubbles comprising the steps of:A. forming at least a substantially saturated saline solution of a surfactant mixture comprising: (a) a member selected from the group consisting of glycerol monoesters of saturated carboxylic acids containing from about 10 to about 18 carbon atoms and aliphatic alcohols containing from about 10 to about 18 carbon atoms;(b) a sterol-aromatic acid ester;(c) a member selected from the group consisting of sterols, terpenes, bile acids and alkali metal salts of bile acids;(d) a member selected from the group consisting of sterol esters of aliphatic acids containing from one to about 18 carbon atoms;sterol esters of sugar acids;esters of sugar acids and aliphatic alcohols containing from about 10 to about 18 carbon atoms, esters of sugars and aliphatic acids containing from about 10 to about 18 carbon atoms;sugar acids;saponins;and sapogenins;and (e) a member selected from the group consisting of glycerol, glycerol di or triesters of aliphatic acids containing from about 10 to about 18 carbon atoms and aliphatic alcohols containing from about 10 to about 18 carbon atoms;B. shaking said solution mechanically for from about 2 to about 10 seconds in a gaseous atmosphere at room temperature, thereby forming a concentrated gas-in-liquid emulsion;and C. passing the thus obtained solution through a sterile polysulfone membrane filter having an average pore diameter of about .40 to about 6.0 /1.m.
  2. 5
    A method according to any of the claims 1 to 4, further comprising the step of dissolving a paramagnetic compound in the saline, in an amount of about 75 mg to about 200 mg.
  3. 6
    A concentrated, storable imaging agent suitable for enhancement for ultrasonic imaging and magnetic resonance imaging, comprising:lipid-coated microbubbles associated with a paramagnetic complex, wherein the mean microbubble diameter is about 1.5 to about 4.5 µm and 100 % of the microbubbles are less than 6 µm in diameter, the imaging agent being preferably prepared by a method according to any one of the claims 1 to 5.
  4. 9
    A method for preparing an imaging agent suitable for enhancement of ultrasonic imaging and magnetic resonance imaging comprising the steps of:A. obtaining a hydrophobic polymer labeled with a paramagnetic complex;B. dissolving the labeled, hydrophobic polymer in a saline solution in an amount of about 10mM;C. adding a surfactant mixture according to any of the claims 1 to 5;and D. processing the solution obtained in step C. according to any of the claims 1 to 5.
  5. 13
    A method of enhancing ultrasonic imaging of a tumor by increasing image contrast, comprising the steps of:A. providing a suspension of medical-grade, lipid-coated microbubbles;B. injecting the microbubble suspension into the tumor-bearing individual;C. allowing the microbubbles to pool in the tumor tissue;and D. employing high frequency diagnostic ultrasound in the area of the tumor;E. receiving reflections of ultrasound wave signals from the underlying area enhanced by reflections from the microbubbles and transforming the signal data into images.
  6. 16
    Use of lipid-coated microbubbles for the manufacture of a therapeutic agent for destruction of tumors by ultrasound heating and/or cavitation of microbubbles at a tumor site.
  7. 19
    Use of lipid-coated microbubbles according to any one of claims 16 to 18, wherein after detecting the tumor site the intensity of ultrasound on a specific tumor volume is increased, the sound waves creating by interaction with the microbubbles a localized heating and/or cavitation.