IP Library › Granted Patent US 12,390,370
Granted Patent B2
US 12,390,370 · App. 17/773,570 · Granted Aug 19, 2025

Tympanostomy tube

Inventors: John Vaughan (Blarney, IE); Olive O'Driscoll (Kinsale, IE); Carol Grimes (Skerries, IE)
A61F11/202A61F2/958A61F2002/0081A61F2210/0014A61F2220/0008A61F2230/0019A61F2230/0069A61F2250/0026A61F2250/0029A61F2250/0039
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Quick Facts
Patent No.
US 12,390,370
App. No.
17/773,570
Granted
Aug 19, 2025
Kind
B2
Abstract

A fluidic bridging tube ( 1 ), for bridging membranes in the human or animal body allowing the passage of fluid, has a proximal flange ( 2 ), an inter lumen connector ( 3 ) with a lumen ( 5 ) and a distal flange ( 4 ). The tube comprises a metal skeleton or scaffold structure ( 51 ) and a surrounding polymer which is softer than the scaffold structure. The scaffold structure ( 51 ) has a tubular mesh providing structural strength to the inter lumen connector. The tubular mesh has members ( 61 ) defining substantial rectangular mesh apertures, and distal crowns ( 64 ). At its proximal end the scaffold structure comprises spines ( 68 ) extending from a proximal tubular mesh rim ( 63 ). The spines provide structural strength to the proximal flange ( 2 ). In the preferred embodiment the tube is a tympanostomy tube. A method of manufacturing the tube comprises providing the scaffold structure and over-moulding the outer material to form the shape of the proximal flange, the inter lumen connector with a lumen, and the distal flange.

Claims (17)

1. A fluidic bridging tube for use in a human or animal, the tube comprising a proximal flange, a distal flange, and an inter lumen connector with a lumen extending unobstructed from a proximal end of the proximal flange through a distal end of the distal flange, wherein the tube comprises a scaffold structure and an outer material fully surrounding the scaffold structure which is softer than the scaffold structure, wherein the distal flange does not include any part of the scaffold structure, and wherein the scaffold comprises a plurality of spines extending with a radial component at a proximal end of the scaffold structure into the proximal flange and configured to provide structural support to the proximal flange.

2. The fluidic bridging tube of claim 1 , wherein the tube is a tympanostomy tube.

3. The fluidic bridging tube of claim 1 , wherein the scaffold structure comprises a tubular mesh extending through at least some of the inter lumen connector.

4. The fluidic bridging tube of claim 3 , wherein the tubular mesh comprises a member defining substantially curved rectangular mesh apertures.

5. The fluidic bridging tube of claim 4 , wherein the substantially curved rectangular mesh apertures have substantially equal sides.

6. The fluidic bridging tube of claim 3 wherein the tubular mesh comprises, at its distal end, at least one distally facing crown comprising a vertex at its distal end the vertex extending farther in a distal, longitudinal direction than other portions of the distal end of the tubular mesh.

7. The fluidic bridging tube of claim 3 , wherein the tubular mesh comprises a rim without apertures at its proximal end.

8. The fluidic bridging tube of claim 1 , wherein the plurality of spines are disposed radially such that they are substantially equally separated.

9. The fluidic bridging tube of claim 1 , wherein the scaffold structure is constructed from a material selected from Stainless Steel, Nitinol, titanium, or a polymer.

10. The fluidic bridging tube of claim 1 , wherein the outer material comprises a medical grade flexible material.

11. The fluidic bridging tube of claim 10 , wherein the medical grade material comprises a silicon rubber compound.

12. The fluidic bridging tube of claim 1 , wherein the outer material is over-moulded on the scaffold structure.

13. The fluidic bridging tube of claim 1 , wherein the scaffold structure is inflatable radially from within.

14. The fluidic bridging tube of claim 13 , wherein the scaffold structure is inflatable radially from within by a balloon, and the outer material is configured to expand with expansion of the scaffold structure.

15. The fluidic bridging tube of claim 1 , wherein the scaffold structure comprises a shape memory material configured to expand from a retaining component, and the outer material is configured to expand with expansion of the scaffold structure.

16. The fluidic bridging tube of claim 1 , wherein the proximal flange has more rigidity than the distal flange.

17. The fluidic bridging tube of claim 1 , wherein the scaffold structure is rigid.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 30, 2025
From: AVENTAMED DAC
To: KARL STORZ SE & CO. KG
Reel/Frame 072423/0558 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2022
From: VAUGHAN, JOHN; O'DRISCOLL, OLIVE; GRIMES, CAROL
To: AVENTAMED DESIGNATED ACTIVITY COMPANY
Reel/Frame 059780/0852 →
Priority Claims (1)
EP 19206774 · Nov 1, 2019 · regional
Continuity (1)
Related Publication 20220370253A1 · Nov 24, 2022
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