Razmodics LLC

United States of America

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IPC Class
A61F 2/82 - Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents 4
A61F 2/915 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes with bands having a meander structure, adjacent bands being connected to each other 4
A61L 31/04 - Macromolecular materials 4
A61L 31/06 - Macromolecular materials obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds 4
A61F 2/07 - Stent-grafts 3
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Status
Pending 4
Registered / In Force 11
Found results for  patents

1.

COMPOSITE STENT HAVING MULTI-AXIAL FLEXIBILITY AND METHOD OF MANUFACTURE THEREOF

      
Application Number 18438159
Status Pending
Filing Date 2024-02-09
First Publication Date 2025-01-23
Owner Razmodics LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Saunders, Richard J.

Abstract

A bioabsorbable composite stent structure, comprising bioabsorbable polymeric ring structures which retain a molecular weight and mechanical strength of a starting substrate and one or more interconnecting struts which extend between and couple adjacent ring structures. The ring structures can have a formed first diameter and being radially compressible to a smaller second diameter and re-expandable to the first diameter. The ring structures can comprise a base polymeric layer. The interconnecting struts can be formed from a polymer blend or co-polymer of poly-L-lactide (PLLA) and an elastomeric polymer. The interconnecting struts each can have a width that is less than a circumference of one of the ring structures. The adjacent ring structures can be axially and rotationally movable relative to one another via the interconnecting struts. The interconnecting struts can also be bioabsorbable.

IPC Classes  ?

  • A61L 31/14 - Materials characterised by their function or physical properties
  • A61F 2/07 - Stent-grafts
  • A61F 2/24 - Heart valves
  • A61F 2/30 - Joints
  • A61F 2/82 - Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
  • A61L 31/04 - Macromolecular materials
  • A61L 31/06 - Macromolecular materials obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds
  • A61L 31/16 - Biologically active materials, e.g. therapeutic substances
  • B29C 41/00 - Shaping by coating a mould, core or other substrate, i.e. by depositing material and stripping-off the shaped articleApparatus therefor
  • B29C 41/14 - Dipping a core
  • B29C 49/00 - Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mouldApparatus therefor
  • B29K 105/00 - Condition, form or state of moulded material
  • B29L 31/00 - Other particular articles

2.

IMPLANTABLE SCAFFOLDS HAVING BIODEGRADABLE COMPONENTS AND METHODS OF MANUFACTURING AND USE THEREOF

      
Document Number 03260105
Status Pending
Filing Date 2023-05-26
Open to Public Date 2023-12-28
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Fallahi, Afsoon

Abstract

Various endovascular scaffolds and methods of making and using the endovascular scaffolds are disclosed. In one variation, an endovascular scaffold is disclosed comprising a plurality of undulating rings and a plurality of interconnecting struts connecting the plurality of undulating rings to one another. The plurality of undulating rings can be radially compressible into a delivery configuration and expandable from the delivery configuration to an expanded configuration when deployed. At least some of the interconnecting struts can biodegrade after the endovascular scaffold is deployed within the peripheral vessel.

IPC Classes  ?

3.

IMPLANTABLE SCAFFOLDS HAVING BIODEGRADABLE COMPONENTS AND METHODS OF MANUFACTURING AND USE THEREOF

      
Application Number US2023067547
Publication Number 2023/250246
Status In Force
Filing Date 2023-05-26
Publication Date 2023-12-28
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Fallahi, Afsoon

Abstract

Various endovascular scaffolds and methods of making and using the endovascular scaffolds are disclosed. In one variation, an endovascular scaffold is disclosed comprising a plurality of undulating rings and a plurality of interconnecting struts connecting the plurality of undulating rings to one another. The plurality of undulating rings can be radially compressible into a delivery configuration and expandable from the delivery configuration to an expanded configuration when deployed. At least some of the interconnecting struts can biodegrade after the endovascular scaffold is deployed within the peripheral vessel.

IPC Classes  ?

4.

IMPLANTABLE SCAFFOLDS HAVING BIODEGRADABLE COMPONENTS AND METHODS OF MANUFACTURING AND USE THEREOF

      
Application Number 18324477
Status Pending
Filing Date 2023-05-26
First Publication Date 2023-12-28
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Fallahi, Afsoon

Abstract

Various endovascular scaffolds and methods of making and using the endovascular scaffolds are disclosed. In one variation, an endovascular scaffold is disclosed comprising a plurality of undulating rings and a plurality of interconnecting struts connecting the plurality of undulating rings to one another. The plurality of undulating rings can be radially compressible into a delivery configuration and expandable from the delivery configuration to an expanded configuration when deployed. At least some of the interconnecting struts can biodegrade after the endovascular scaffold is deployed within the peripheral vessel.

IPC Classes  ?

  • A61F 2/86 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure
  • A61F 2/958 - Inflatable balloons for placing stents or stent-grafts

5.

POST DEPLOYMENT RADIAL FORCE RECOVERY OF BIODEGRADABLE SCAFFOLDS

      
Application Number 18172602
Status Pending
Filing Date 2023-02-22
First Publication Date 2023-06-22
Owner Razmodics LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.

Abstract

Post deployment radial force recovery of biodegradable scaffolds are described where a high molecular weight polymer may be formed into a high molecular weight scaffold by solution casting into a tubular substrate such that the scaffold retains its mechanical properties through processing. The tubular substrate is laser cut and subsequently crimped onto a catheter for deployment into a body lumen. The polymeric scaffold may retain its mechanical properties and result in increased radial strength post-deployment in a saline environment, e.g., within a body lumen. This scaffold enhancement may be attributable at least in part to entanglement of high molecular weight polymer chains as one factor that effects radial force recovery and also to the design or geometry of the scaffold as another factor that effects radial force recovery after deployment.

IPC Classes  ?

  • A61F 2/945 - Stents retaining their form, i.e. not being deformable, after placement in the predetermined place hardenable, e.g. stents formed in situ
  • A61F 2/915 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes with bands having a meander structure, adjacent bands being connected to each other

6.

Composite stent having multi-axial flexibility and method of manufacture thereof

      
Application Number 17150194
Grant Number 11931484
Status In Force
Filing Date 2021-01-15
First Publication Date 2021-05-06
Grant Date 2024-03-19
Owner Razmodics LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Saunders, Richard J.

Abstract

A bioabsorbable composite stent structure, comprising bioabsorbable polymeric ring structures which retain a molecular weight and mechanical strength of a starting substrate and one or more interconnecting struts which extend between and couple adjacent ring structures. The ring structures can have a formed first diameter and being radially compressible to a smaller second diameter and re-expandable to the first diameter. The ring structures can comprise a base polymeric layer. The interconnecting struts can be formed from a polymer blend or co-polymer of poly-L-lactide (PLLA) and an elastomeric polymer. The interconnecting struts each can have a width that is less than a circumference of one of the ring structures. The adjacent ring structures can be axially and rotationally movable relative to one another via the interconnecting struts. The interconnecting struts can also be bioabsorbable.

IPC Classes  ?

  • B05D 1/18 - Processes for applying liquids or other fluent materials performed by dipping
  • A61F 2/07 - Stent-grafts
  • A61F 2/82 - Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
  • A61L 31/04 - Macromolecular materials
  • A61L 31/06 - Macromolecular materials obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds
  • A61L 31/14 - Materials characterised by their function or physical properties
  • A61L 31/16 - Biologically active materials, e.g. therapeutic substances
  • B29C 41/00 - Shaping by coating a mould, core or other substrate, i.e. by depositing material and stripping-off the shaped articleApparatus therefor
  • B29C 41/14 - Dipping a core
  • A61F 2/24 - Heart valves
  • A61F 2/30 - Joints
  • B29C 49/00 - Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mouldApparatus therefor
  • B29K 105/00 - Condition, form or state of moulded material
  • B29L 31/00 - Other particular articles

7.

Post deployment radial force recovery of biodegradable scaffolds

      
Application Number 15339335
Grant Number 11628077
Status In Force
Filing Date 2016-10-31
First Publication Date 2018-05-03
Grant Date 2023-04-18
Owner Razmodics LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.

Abstract

Post deployment radial force recovery of biodegradable scaffolds are described where a high molecular weight polymer may be formed into a high molecular weight scaffold by solution casting into a tubular substrate such that the scaffold retains its mechanical properties through processing. The tubular substrate is laser cut and subsequently crimped onto a catheter for deployment into a body lumen. The polymeric scaffold may retain its mechanical properties and result in increased radial strength post-deployment in a saline environment, e.g., within a body lumen. This scaffold enhancement may be attributable at least in part to entanglement of high molecular weight polymer chains as one factor that effects radial force recovery and also to the design or geometry of the scaffold as another factor that effects radial force recovery after deployment.

IPC Classes  ?

  • A61F 2/945 - Stents retaining their form, i.e. not being deformable, after placement in the predetermined place hardenable, e.g. stents formed in situ
  • A61F 2/915 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes with bands having a meander structure, adjacent bands being connected to each other

8.

Composite stent having multi-axial flexibility and method of manufacture thereof

      
Application Number 15624235
Grant Number 10898620
Status In Force
Filing Date 2017-06-15
First Publication Date 2017-10-05
Grant Date 2021-01-26
Owner Razmodics LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Saunders, Richard J.

Abstract

A bioabsorbable composite stent structure, comprising bioabsorbable polymeric ring structures which retain a molecular weight and mechanical strength of a starting substrate and one or more interconnecting struts which extend between and couple adjacent ring structures. The ring structures can have a formed first diameter and being radially compressible to a smaller second diameter and re-expandable to the first diameter. The ring structures can comprise a base polymeric layer. The interconnecting struts can be formed from a polymer blend or co-polymer of poly-L-lactide (PLLA) and an elastomeric polymer. The interconnecting struts each can have a width that is less than a circumference of one of the ring structures. The adjacent ring structures can be axially and rotationally movable relative to one another via the interconnecting struts. The interconnecting struts can also be bioabsorbable.

IPC Classes  ?

  • A61L 31/14 - Materials characterised by their function or physical properties
  • A61L 31/04 - Macromolecular materials
  • A61F 2/82 - Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
  • A61F 2/07 - Stent-grafts
  • B29C 41/14 - Dipping a core
  • A61L 31/16 - Biologically active materials, e.g. therapeutic substances
  • A61L 31/06 - Macromolecular materials obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds
  • B29C 41/00 - Shaping by coating a mould, core or other substrate, i.e. by depositing material and stripping-off the shaped articleApparatus therefor
  • A61F 2/30 - Joints
  • B29C 49/00 - Blow-moulding, i.e. blowing a preform or parison to a desired shape within a mouldApparatus therefor
  • A61F 2/24 - Heart valves
  • B29L 31/00 - Other particular articles
  • B29K 105/00 - Condition, form or state of moulded material

9.

Bioresorbable scaffold for treatment of bifurcation lesion

      
Application Number 14334562
Grant Number 09592141
Status In Force
Filing Date 2014-07-17
First Publication Date 2015-02-19
Grant Date 2017-03-14
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.

Abstract

Bioresorbable scaffolds for treatment of bifurcation lesion are described herein. Generally, an expandable scaffold may be fabricated from a high molecular weight isotropic PLLA material, wherein the scaffold incorporates one or more strain relief features which are configured to allow side branch treatment.

IPC Classes  ?

  • A61F 2/90 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure
  • A61F 2/915 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes with bands having a meander structure, adjacent bands being connected to each other
  • A61F 2/954 - Instruments specially adapted for placement or removal of stents or stent-grafts for placing stents or stent-grafts in a bifurcation
  • A61F 2/856 - Single tubular stent with side portal passage
  • A61L 31/06 - Macromolecular materials obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds
  • A61L 31/04 - Macromolecular materials
  • A61F 2/958 - Inflatable balloons for placing stents or stent-grafts

10.

Sterilization methods and apparatus

      
Application Number 13934705
Grant Number 08858611
Status In Force
Filing Date 2013-07-03
First Publication Date 2013-11-07
Grant Date 2014-10-14
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.
  • El-Nounou, Fozan O.

Abstract

Sterilization methods for implantable prostheses are described where a polymeric stent may be sterilized, e.g., via ETO sterilization, at a temperature below a glass transition temperature of the stent. A separate delivery catheter may be sterilized separately and the stent and delivery catheter may then be combined in an aseptic or semi-aseptic environment and sterilized as an assembled system such that the requirements for sterilizing the system are relatively lower. Additionally and/or alternatively, valve and filter assemblies may be used with an optional mandrel assembly for maintaining sterility of the internal components of a catheter system.

IPC Classes  ?

11.

Sterilization methods and apparatus

      
Application Number 13671211
Grant Number 08574493
Status In Force
Filing Date 2012-11-07
First Publication Date 2013-05-30
Grant Date 2013-11-05
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.
  • El-Nounou, Fozan O.

Abstract

Sterilization methods for implantable prostheses are described, where a polymeric stent may be sterilized, e.g., via ETO sterilization, at a temperature below a glass transition temperature of the stent. A separate delivery catheter may be sterilized separately and the stent and delivery catheter may then be combined in an aseptic, or semi-aseptic environment and sterilized as an assembled system such that the requirements for sterilizing the system are relatively lower. Additionally and/or alternatively, valve and filter assemblies may be used with an optional mandrel assembly for maintaining sterility of the internal components of a catheter system.

IPC Classes  ?

  • A61L 2/08 - Radiation
  • A61L 2/16 - Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lensesAccessories therefor using chemical substances

12.

Stent fabrication via tubular casting processes

      
Application Number 13476858
Grant Number 09908143
Status In Force
Filing Date 2012-05-21
First Publication Date 2012-09-13
Grant Date 2018-03-06
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Chia, Alfred N. K.
  • Wang, Liwei
  • Lee, Chang Y.

Abstract

Tubular casting processes, such as dip-coating, may be used to form substrates from polymeric solutions which may be used to fabricate implantable devices such as stents. The polymeric substrates may have multiple layers which retain the inherent properties of their starting materials and which are sufficiently ductile to prevent brittle fracture. Parameters such as the number of times the mandrel is immersed, the duration of time of each immersion within the solution, as well as the delay time between each immersion or the drying or curing time between dips and withdrawal rates of the mandrel from the solution may each be controlled to result in the desired mechanical characteristics. Additional post-processing may also be utilized to further increase strength of the substrate or to alter its shape.

IPC Classes  ?

  • A61F 2/82 - Devices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents
  • B05D 1/18 - Processes for applying liquids or other fluent materials performed by dipping
  • A61F 2/91 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes
  • A61F 2/915 - Stents in a form characterised by wire-like elementsStents in a form characterised by a net-like or mesh-like structure characterised by a net-like or mesh-like structure made from perforated sheets or tubes, e.g. perforated by laser cuts or etched holes with bands having a meander structure, adjacent bands being connected to each other

13.

Sterilization methods and apparatus

      
Application Number 12649044
Grant Number 08309023
Status In Force
Filing Date 2009-12-29
First Publication Date 2010-07-22
Grant Date 2012-11-13
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Lee, Chang Y.
  • El-Nounou, Fozan O.

Abstract

Sterilization methods for implantable prostheses are described where a polymeric stent may be sterilized, e.g., via ETO sterilization, at a temperature below a glass transition temperature of the stent. A separate delivery catheter may be sterilized separately and the stent and delivery catheter may then be combined in an aseptic or semi-aseptic environment and sterilized as an assembled system such that the requirements for sterilizing the system are relatively lower. Additionally and/or alternatively, valve and filter assemblies may be used with an optional mandrel assembly for maintaining sterility of the internal components of a catheter system.

IPC Classes  ?

  • A61L 2/08 - Radiation
  • A61L 2/16 - Methods or apparatus for disinfecting or sterilising materials or objects other than foodstuffs or contact lensesAccessories therefor using chemical substances

14.

Stent fabrication via tubular casting processes

      
Application Number 12488453
Grant Number 08206636
Status In Force
Filing Date 2009-06-19
First Publication Date 2010-01-07
Grant Date 2012-06-26
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Chia, Alfred N. K.
  • Wang, Liwei
  • Lee, Chang Y.

Abstract

Tubular casting processes, such as dip-coating, may be used to form substrates from polymeric solutions which may be used to fabricate implantable devices such as stents. The polymeric substrates may have multiple layers which retain the inherent properties of their starting materials and which are sufficiently ductile to prevent brittle fracture. Parameters such as the number of times the mandrel is immersed, the duration of time of each immersion within the solution, as well as the delay time between each immersion or the drying or curing time between dips and withdrawal rates of the mandrel from the solution may each be controlled to result in the desired mechanical characteristics. Additional post-processing may also be utilized to further increase strength of the substrate or to alter its shape.

IPC Classes  ?

  • B28B 5/02 - Producing shaped articles from the material in moulds or on moulding surfaces, carried or formed by, in or on conveyors irrespective of the manner of shaping on conveyors of the endless-belt or chain type
  • B29C 43/22 - Compression moulding, i.e. applying external pressure to flow the moulding materialApparatus therefor of articles of indefinite length
  • B29D 22/00 - Producing hollow articles
  • A61K 49/04 - X-ray contrast preparations
  • A61K 31/727 - HeparinHeparan
  • A61F 2/00 - Filters implantable into blood vesselsProstheses, i.e. artificial substitutes or replacements for parts of the bodyAppliances for connecting them with the bodyDevices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents

15.

Stent fabrication via tubular casting processes

      
Application Number 12143659
Grant Number 08206635
Status In Force
Filing Date 2008-06-20
First Publication Date 2009-12-24
Grant Date 2012-06-26
Owner RAZMODICS LLC (USA)
Inventor
  • Ramzipoor, Kamal
  • Chia, Alfred N. K.
  • Wang, Liwei

Abstract

Tubular casting processes, such as dip-coating, may be used to form substrates from polymeric solutions which may be used to fabricate implantable devices such as stents. The polymeric substrates may have multiple layers which retain the inherent properties of their starting materials and which are sufficiently ductile to prevent brittle fracture. Parameters such as the number of times the mandrel is immersed, the duration of time of each immersion within the solution, as well as the delay time between each immersion or the drying or curing time between dips and withdrawal rates of the mandrel from the solution may each be controlled to result in the desired mechanical characteristics. Additional post-processing may also be utilized to further increase strength of the substrate or to alter its shape.

IPC Classes  ?

  • B28B 5/02 - Producing shaped articles from the material in moulds or on moulding surfaces, carried or formed by, in or on conveyors irrespective of the manner of shaping on conveyors of the endless-belt or chain type
  • B29C 43/22 - Compression moulding, i.e. applying external pressure to flow the moulding materialApparatus therefor of articles of indefinite length
  • B29D 22/00 - Producing hollow articles
  • A61K 49/04 - X-ray contrast preparations
  • A61K 31/727 - HeparinHeparan
  • A61F 2/00 - Filters implantable into blood vesselsProstheses, i.e. artificial substitutes or replacements for parts of the bodyAppliances for connecting them with the bodyDevices providing patency to, or preventing collapsing of, tubular structures of the body, e.g. stents