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Completed

NCT Number: NCT07572422

Use of Various Types of Introducers in Conventional Radial Access

The purpose of this intervention study is to compare different types of radial introducers used in traditional radial access in terms of the incidence of complications.

The main questions it aims to answer are:

1. Does a smaller outer diameter of the introducer reduce the risk of complications associated with radial access? 2. Does the presence of an outer hydrophilic coating on the introducer reduce the risk of complications associated with radial access? 3. Does the use of an introducer with a smaller outer diameter and an outer hydrophilic coating reduce the risk of complications associated with radial access? The researchers will compare the number of complications associated with radial access when using conventional diameter, uncoated radial introducers, conventional diameter introducers with an outer hydrophilic coating, or reduced outer diameter introducers with an outer hydrophilic coating.

During the scheduled revascularization procedure, the participants will undergo radial artery catheterization using one of the types of introducers. Complications from the radiation access will be recorded by doctors within 72 hours after the intervention.

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Key information

Age range

18 year and older

Sex eligibility

All sexes

Study type

Interventional

Phase

Not applicable

Primary location

E.I. Korolev Kostroma Regional Clinical Hospital, Kostroma, Kostroma Oblast, Russia

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About this study

Objective: to compare different types of radial introducers used in conventional radial access by the frequency of complications.

Scientific hypotheses:

  • The risk of acute radial artery occlusion depends on the outer diameter of the introducer.
  • The risk of acute radial artery occlusion depends on the presence of an outer hydrophilic coating on the introducer.
  • The risk of persistent radial artery spasm depends on the presence of an outer hydrophilic coating on the introducer.
  • The risk of persistent radial artery spasm depends on the outer diameter of the introducer.

Patients were enrolled by endovascular specialists with experience of at least 250 radial-access procedures per year.

Inclusion criteria

clear pulsation of the right radial artery, indications for percutaneous coronary intervention.

Exclusion criteria

previous unsuccessful radial artery catheterization; concomitant pathology limiting patient survival; disorders of the blood coagulation system (hemophilia, thrombocytopathy, etc.); previous coronary artery bypass grafting; occlusion of the right radial artery.

The required sample size was calculated using the method of M. Bland for a high-precision study. The required significance level (α) was 0.001 and the statistical power was 95%. The expected rate of radial artery occlusion in the Rad, Rad polymer, and Rad slender groups was assumed to be 12%, 8%, and 8%, respectively. Under these conditions, the calculated sample size was 2723 patients. The planned loss during the study was 20%. Thus, the minimum sample size was 3268 patients.

The study had an experimental design and complied with the CONSORT protocol. A simple randomization method using a random-number generator was chosen. The type of randomization was permuted block randomization. The total block size was 3000, and the allocation ratio between the groups was 1:1:0.7.

Puncture of the right radial artery was performed after local anesthesia with a 2% lidocaine solution. The radial artery was punctured at the typical site using the puncture needle included in the introducer set, with only the anterior wall being punctured. The type of introducer was selected by randomization using a random-number method, and depending on this assignment the patient was allocated to one of the groups.

All patients underwent percutaneous coronary angioplasty with coronary artery stenting via the right radial artery. The radial artery catheterization technique did not differ between groups. The type of introducer was selected by randomization using a random-number method, and depending on this assignment the patient was allocated to one of the groups. In the Rad group , introducers without a hydrophilic coating were used; in the Rad polymer group , introducers with a hydrophilic coating were used; and in the Rad slender group , thin-walled introducers with a hydrophilic coating were used. The access site was examined within 3 hours after the intervention and then, in the absence of complaints, again at bandage removal. After bandage removal, patients underwent ultrasound examination to confirm radial artery patency. Complications from the radiation access will be recorded by doctors within 72 hours after the intervention.

Who can participate

Healthy volunteers accepted: No

Only the study team can determine whether someone qualifies for participation.

Inclusion criteria

  • clear pulsation of the right radial artery
  • indications for percutaneous coronary intervention

Exclusion criteria

  • previous unsuccessful radial artery catheterization
  • concomitant pathology limiting patient survival
  • disorders of the blood coagulation system (hemophilia, thrombocytopathy, etc.)
  • previous coronary artery bypass grafting
  • occlusion of the right radial artery

Treatment and study plan

catheterization of the radial artery using an classic introducer

Procedure

The right radial artery was punctured under local anesthesia with a 2% lidocaine solution. The radial artery was punctured at a typical location using a puncture needle included in the catheterization kit, puncturing only the anterior wall.

An introducer with a standard outer diameter and no external hydrophilic coating was inserted.

5,000 IU of heparin in saline solution was injected into the catheterized artery. All injected solutions, including radiocontrast agents, had a temperature of 36.5-36.7 °C. Hemostasis was achieved by applying a pressure bandage.

The access site was examined 3 hours after the intervention, and then, if there were no complaints, it was examined again when the bandage was removed. After the bandage was removed, patients underwent an ultrasound examination to confirm the patency of the radial artery.

Complications were recorded within 3 days after the intervention.

catheterization of the radial artery using an introducer with a standard outer diameter and an outer hydrophilic coating

Procedure

Description: The right radial artery was punctured under local anesthesia with a 2% lidocaine solution. The radial artery was punctured at a typical location using a puncture needle included in the catheterization kit, puncturing only the anterior wall.

An introducer with a standard outer diameter and an outer hydrophilic coating was using.

5,000 IU of heparin in saline solution was injected into the catheterized artery. All injected solutions, including radiocontrast agents, had a temperature of 36.5-36.7 °C. Hemostasis was achieved by applying a pressure bandage. The access site was examined 3 hours after the intervention, and then, if there were no complaints, it was examined again when the bandage was removed. After the bandage was removed, patients underwent an ultrasound examination to confirm the patency of the radial artery. Complications were recorded within 3 days after the intervention.

catheterization of the radial artery using an introducer with a reduced outer diameter and an outer hydrophilic coating

Procedure

Description: The right radial artery was punctured under local anesthesia with a 2% lidocaine solution. The radial artery was punctured at a typical location using a puncture needle included in the catheterization kit, puncturing only the anterior wall.

An introducer with a reduced outer diameter and an outer hydrophilic coating was using.

5,000 IU of heparin in saline solution was injected into the catheterized artery. All injected solutions, including radiocontrast agents, had a temperature of 36.5-36.7 °C. Hemostasis was achieved by applying a pressure bandage. The access site was examined 3 hours after the intervention, and then, if there were no complaints, it was examined again when the bandage was removed. After the bandage was removed, patients underwent an ultrasound examination to confirm the patency of the radial artery. Complications were recorded within 3 days after the intervention.

Primary outcomes

  1. Acute radial artery occlusion after catheterization

    Time frame: Within 72 hours after radial artery catheterization

    Acute radial artery occlusion was confirmed by ultrasound examination

  2. Radial artery perforation

    Time frame: Perioperative/Periprocedural

    Angiography-confirmed perforation of the radial artery

  3. Radial artery false aneurysm

    Time frame: Within 72 hours after radial artery catheterization

    A false aneurysm of the radial artery was confirmed by ultrasound examination

  4. Hematoma by classification EASY Grade II

    Time frame: Within 72 hours after radial artery catheterization

    Hematoma by classification EASY Grade II was confirmed by ultrasound examination

  5. Persistent radial artery spasm

    Time frame: Perioperative/Periprocedural

    Persistent radial artery spasm confirmed by angiography

Sponsors and collaborators

Lead sponsor

Pirogov Russian National Research Medical University

Other

Collaborators

  • I.M. Sechenov First Moscow State Medical University

Registry information

Acronym: TIRE

Important dates

Study start
2019
Primary completion
2025
Study completion
2025
First posted
May 7, 2026
Registry last updated
May 13, 2026

OpenTrials presents study information sourced from ClinicalTrials.gov. The official registry record should be consulted for the latest information.

View the official ClinicalTrials.gov record (opens in a new tab)

This listing is for discovery and informational purposes only. It is not medical advice, does not guarantee that a study is recruiting, and does not determine eligibility. Contact the study team and a qualified healthcare professional when considering participation.

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