Related Experiment Video
Updated: Feb 7, 2026

Author Spotlight: Hickman Catheter Use for Long-Term Vascular Access in a Preclinical Swine Model
Published on: March 31, 2023
Usefulness of catheter-directed thrombolysis using alteplase in peripheral vascular occlusion
1Department of Radiology, Vascular and Interventional Section, Baylor University Medical Center, Dallas, Texas 75246, USA.
Insights
This study on alteplase for peripheral thrombosis found low-dose infusions effective for arterial occlusion with fewer complications. Mid-dose infusions improved lysis for venous thrombosis without raising complication risks.
Area of Science:
- Vascular Surgery
- Interventional Radiology
- Pharmacology
Background:
- Peripheral arterial and venous thrombosis pose significant clinical challenges.
- Catheter-directed thrombolysis with alteplase is a treatment option.
- Optimal dosing regimens require further evaluation.
Purpose of the Study:
- To evaluate the safety and efficacy of alteplase in catheter-directed treatment.
- To determine the optimal dosing regimen for peripheral arterial occlusion (PAO) and venous thrombosis.
- To analyze complication rates associated with different alteplase dosages.
Main Methods:
- Retrospective review of 49 patient encounters treated with alteplase between January and November 1999.
- Classification of patients into low-dose (0.5-1.0 mg/hr), mid-dose (1.0-1.5 mg/hr), and high-dose (>1.5 mg/hr) groups.
- Analysis of indication, dosage, infusion duration, anticoagulation, lysis degree, and complications.
Main Results:
- For PAO, success rates were similar across dose groups, but the low-dose group had fewer complications.
- For venous thrombosis, no significant difference in overall success or complication rates between dose groups.
- Mid and high-dose groups showed more partial lysis for venous thrombosis, but with increased serious complication risk.
- Complete thrombolysis rates were 71% for PAO and 55% for venous thrombosis.
- Major and minor complication rates were 7% and 19%, respectively.
Conclusions:
- Low-dose alteplase infusion offers equivalent success with reduced complications for PAO.
- Mid-dose alteplase infusion can enhance thrombolysis for venous thrombosis without increasing complications.
- Alteplase dosing should be tailored to the specific type of peripheral thrombosis.
Abstract:
This study evaluated the safety and efficacy of alteplase in catheter-directed treatment for peripheral arterial and venous thrombosis and considered the optimal dosing regimen. Forty-four patients (49 encounters) underwent transcatheter therapy using alteplase between January and November 1999. The most common indications for thrombolysis were peripheral arterial occlusion (PAO) and venous thrombosis (38 patients, 43 encounters). Each encounter was reviewed for indication, dosage of alteplase, duration of infusion, concomitant use of anticoagulation, degree of lysis, and complications. Patients were divided into low-dose (0.5 to 1.0 mg/hr), mid-dose (1.0 to 1.5 mg/hr), and high-dose (>1.5 mg/hr) groups. For PAO, there was no significant difference in the success rate between the 3 dose groups. A lower complication rate was achieved in the low-dose group. For venous thrombosis, there was no difference in the overall success or complication rates for each of the 3 groups. Partial lysis was achieved more readily in the mid and high-dose groups, but the risk of serious complications was greater. Overall, the complete thrombolysis rate was 71% for PAO and 55% for venous thrombosis. Major and minor complication rates were 7% and 19%, respectively. An equivalent success rate with a lower complication rate can be achieved using a low-dose constant catheter-directed infusion of alteplase for cases of PAO. Cases of venous thrombosis had a lower overall success rate compared with PAO. A mid-dose infusion of alteplase can achieve greater complete and partial thrombolysis rates without increasing the complication rate. Major and minor complication rates were similar to the rates given in the published literature.
Related Concept Videos
Seedless Vascular Plants
Directing Effect of Substituents: meta-Directing Groups
Vascular Spasm
Overview of the Vascular System
Vascular Resistance
The primary determinants of vascular resistance are vessel diameter, blood viscosity, and vessel length. Among these, vessel diameter plays the most significant role due to the fourth power relationship described by...
Directing Effect of Substituents: ortho–para-Directing Groups

