Nova Patents
AU758331B2

MR signal-emitting coatings

Abstract

The present invention provides a coating that emits magnetic resonance signals and a method for coating medical devices therewith. The coating includes a paramagnetic metal ion-containing polymer complex that facilitates diagnostic and therapeutic techniques by readily visualizing medical devices coated with the complex.

Term

Term ended

Expired 26 May 2019, 7.3 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

7 claims: 6 independent, 1 dependent

  1. 1
    THE CLAIMS DEFINING THE INVENTION ARE AS FOLLOWS:1. A magnetic resonance imaging system, comprising: a magnetic resonance device for generating a magnetic resonance image of a target object in an imaging region;and 5 an instrument for use with the target object in the imaging region, said instrument including a body sized for use in the target object and a polymericparamagnetic ion complex coating thereon in which said complex is represented by formula (1) P-X-L-M n+ (1) ' wherein P is a polymer, X is a surface functional group, L is a chelate, M is a paramagnetic ion and n is an integer that is 2 or greater. The system of claim 1, wherein P is selected from the group consisting of polyethylene, polypropylene, polyesters, polyamides, polyfluoroethylene and polyurethanes. The system of claim 1, wherein X is an amino group or a carboxyl group. 4. The system of claim 1, wherein M is a lanthanide or a transition metal which is iron, manganese, chromium, cobalt or nickel. A coating when used for visualizing medical devices in magnetic resonance imaging, comprising a complex of formula (1): P-X-L —M n+ (1) wherein P is a polymer, X is a surface functional group, L is a chelate, M is a paramagnetic ion and n is an integer that is 2 or greater. The coating of claim 5, wherein P is selected from the group consisting of polyethylene, polypropylene, polyesters, polyamides, polyfluoroethylene and polyurethanes. 7. The coating of claim 5, wherein X is an amino group or a carboxyl group. 8. The coating of claim 5, wherein M is a lanthanide or is a transition metal which is iron, manganese, chromium, cobalt or nickel. 9· A coating when used for visualizing medical devices in magnetic resonance imaging, comprising a complex of formula (11): P-X-J—L-M n+ (11) wherein P is a polymer, X is a surface functional group, L is a chelate, M is a 5 paramagnetic ion, n is an integer that is 2 or greater and J is the linker or spacer molecule. 10. The coating of claim 9, wherein P is selected from the group consisting of polyethylene, polypropylene, polyesters, polyamides, polyfluoroethylene and polyurethanes. 10 11. The coating of claim 9, wherein X is an amino group or a carboxyl group. 12. The coating of claim 9, wherein M is a lanthanide or is a transition metal which is iron, manganese, chromium, cobalt or nickel. 13. The coating of claim 9, wherein J is a lactam. clrm M0111252383vl 304635221 9.1.2003 Plasma 1,1 -'Carbonyldiimidazole Pyridine WO 99/60920 PCT/US99/11672 WO 99/60920 PCT/US99/11672
  2. 2
    2/7 f NH 2 lactam ^η 2 z^ NH 2 UiNH, 2 l_^NH 2 U—NHz U_J4H 2 ί^ΚΖΝΗζ NH-CO/CHjCH^- NH 2 1DTPA HOCOCH^ ^CH 2 COOH HOCOCHf | x ί ^CIKCOOH CH 2 2 NH-CO-(CH 2 CH 2 ) ra - NH FIG. 2 WO 99/60920 PCT/US99/11672
  3. 3
    3/7 HG. 34 WO 99/60920 PCT/US99/11672
  4. 4
    4/7 WO 99/60920 PCT/US99/11672
  5. 5
    5/7 (a) (b) (a,b) Two temporal snapshots from a time series of 27 coronal images of a 6 French catheter filled with Gd-DTPA during movement through a static phantom. Scan parameters:TR = 4.6 msec, TE = 1.3 msec, acquisition matrix = 160 X 256, reconstruction matrix = 256 X 256, FOV = 20 cm X 20 cm, slice thickness = 2 cm, flip angle = 40, and temporal frame rate = 3 images/sec. Note that the background signal is very high because no projection dephaser was used. (c,d) Similar time frames to those shown in (a) and (b) except that the projection dephaser was enabled. Turning the projection dephaser on gives better background suppression. FIG. 5 WO 99/60920 PCT/US99/11672
  6. 6
    6/7 (a) (b) (a,b) Two time frames from a time series of 27 coronal images of a 6 French catheter filled with Gd-DTPA moving in the common carotid of a canine. Scan parameters:TR = 4.6 msec, TE = 1.3 msec, acquisition matrix = 160 X 256, reconstruction matrix = 256 X 256, FOV = 20 cm X 20 cm. slice thickness = 2 cm, flip angle = 40”, and temporal frame rate = 3 images/sec. Enabling the projection dephaser (a,b) suppresses the background signal and makes the catheter more visible. (c,d) The same time frames as shown in (a) and (b) superimposed onto a previously acquired roadmap image. FIG. 6 WO 99/60920 PCT/US99/11672
  7. 7
    7/7 (C) (d) (a) A temporal snapshot of a 6 French catheter filled with Gd-DTPA in the canine aorta with the projection dephaser enabled, (b) The same time frame as in (a) after masking by an image at an earlier time frame. Scan parameters:TR = 4.6 msec, TE = 1.3 msec, acquisition matrix = 160 X 256, reconstruction matrix = 256 X 256, FOV = 20 cm X 20 cm, slice thickness = 2 cm, flip angle = 40', and temporal frame rate = 3 images/sec. The catheter images in (a) and (b) are shown superimposed onto a previously acquired roadmap image in (c) and (d), respectively, after zero-filling the catheter image by a factor of 2 in both readout and phase encoding directions. FIG. 7