Radiation Sterilized Composite Urinogenital Stent

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Solution Overview

Problem

Existing urinogenital stents lack effective modulation of residence time in conduits, insertion methods that preserve stent integrity, and suitable sterilization processes, particularly for absorbable and disintegratable designs.

Innovation Solution

A fiber-reinforced, composite stent with a radiopaque central coil and a knitted mesh impregnated with a hydrophilic polymer matrix, sterilized with high-energy radiation to control absorption and strength retention for 1-10 weeks, and incorporating bioactive agents for infection reduction.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Reliability

If ethylene oxide sterilization is used for absorbable stent devices, then sterility is achieved, but the absorption rate and mechanical properties of the stent are compromised

Engineering Contradiction:
ImprovesterilityVSAvoidabsorption rate and mechanical properties
Core Design Contradiction:
ReliabilityVSStability of the object's composition

Solution Approach 1:

The patent changes the sterilization parameter from ethylene oxide to radiation sterilization (gamma rays or electron beam) at controlled doses of 25-40 kGy. This parameter change achieves sterility while preserving the stent's absorption rate and mechanical properties, as radiation sterilization does not chemically degrade the absorbable polymer materials like ethylene oxide does.

Inventive Principle:
Principle #35Parameter changes

Solution Approach 2:

The patent replaces the chemical sterilization mechanism (ethylene oxide gas penetration and alkylation) with a physical sterilization mechanism (radiation sterilization through ionizing radiation). This substitution eliminates the harmful chemical interactions between ethylene oxide and the absorbable polymer, thereby maintaining the stent's intended degradation profile and mechanical strength.

Inventive Principle:
Principle #28Mechanics substitution (Replace mechanical system)

2Ease of operation

If the stent is designed to be absorbable/disintegratable for temporary support, then patient comfort is improved, but the residence time control and structural integrity are compromised

Engineering Contradiction:
Improvepatient comfortVSAvoidresidence time control
Core Design Contradiction:
Ease of operationVSDuration of action of stationary object

Solution Approach 1:

The patent employs composite materials consisting of absorbable polymers (such as polyglycolic acid, polylactic acid, or their copolymers) combined with radiopaque fillers (like barium sulfate or titanium dioxide) and reinforcing fibers. This composite structure allows the stent to maintain sufficient mechanical integrity and controlled residence time (typically 4-12 weeks) while remaining biocompatible and absorbable, thus ensuring patient comfort without sacrificing structural control.

Inventive Principle:
Principle #40Composite materials

Solution Approach 2:

The patent applies different material properties to different parts of the stent structure. The radial support zones contain higher concentrations of radiopaque fillers and reinforcing fibers to maintain structural integrity during the residence period, while the longitudinal sections have optimized polymer composition for controlled degradation. This local differentiation enables precise control of residence time while maintaining patient comfort throughout the stent's functional period.

Inventive Principle:
Principle #3Local quality

3Reliability

If radiation sterilization at high dose (25-40 kGy) is applied, then sterility is ensured and absorption rate is modulated, but the mechanical strength of the stent is reduced

Engineering Contradiction:
Improvesterility and absorption modulationVSAvoidmechanical strength
Core Design Contradiction:
ReliabilityVSStrength

Solution Approach 1:

The patent incorporates radiopaque fillers (barium sulfate, titanium dioxide) and reinforcing fibers into the absorbable polymer matrix to create a composite structure that can withstand radiation sterilization at 25-40 kGy. The composite formulation maintains mechanical strength by distributing stress throughout the structure, preventing excessive degradation even at high radiation doses that ensure sterility and modulate absorption rates.

Inventive Principle:
Principle #40Composite materials

Solution Approach 2:

The patent optimizes the radiation dose parameter within the range of 25-40 kGy, balancing three critical outcomes: achieving complete sterility, modulating the absorption rate to match the clinical residence time requirement, and maintaining sufficient mechanical strength. This parameter optimization is achieved through careful selection of polymer composition, filler content, and fiber reinforcement levels that collectively resist radiation-induced degradation while achieving the desired sterilization and absorption modulation.

Inventive Principle:
Principle #35Parameter changes

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

The stent maintains optimal patency in urinogenital conduits for predetermined periods with improved insertion and sterilization methods, ensuring patient comfort and reduced infection risk.

Implementation Method 1

radiation sterilized with 25 to 40 kGy of high-energy radiation to modulate its residence time

Methodology Applied
Scientific EffectRadiation sterilization: Radiation

Implementation Method 2

radiochemically sterilized or radiation sterilized using the proper dose to modulate its residence time

Methodology Applied
Scientific EffectRadiochemical sterilization: Radiation

Implementation Method 3

the matrix component comprises an absorbable, high molecular weight, low-crystallinity, segmented polyaxial copolyester... and hydrophilic polymeric additive

Methodology Applied
Scientific EffectHydrophilicity: Hydrophile

Data Source

PatentEP3266423B1Radiation sterilized fiber- reinforced, composite urinogenital stents
Publication Date: 2021.10.13 POLY MED INC

AI summary

A radiation sterilized, multi-component, absorbable/disintegratable urinogenital stent, such as an endoureteral stent comprising a load-bearing, radiopaque central coil, said coil comprising an absorbable polyester/inorganic radiopaque hybrid composition, said coil being shrouded with a knitted mesh comprising an absorbable multifilament yarn, to provide a knitted core, said knitted core being impregnated with a polymer matrix comprising an absorbable, segmented, polyaxial copolyester and a polyethylene glycol additive, and said stent being sterilized treated with high-energy radiation at a dose between 25 and 40 kGy.