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AntiCoagulation Versus AcetylSalicylic Acid After Transcatheter Aortic Valve Implantation

AntiCoagulation Versus AcetylSalicylic Acid After Transcatheter Aortic Valve Implantation

Status
Completed
Phases
Phase 3
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT05035277
Acronym
ACASA-TAVI
Enrollment
360
Registered
2021-09-05
Start date
2021-12-04
Completion date
2026-06-05
Last updated
2026-06-09

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Aortic Stenosis

Keywords

Transcatheter Aortic Valve Implantation, Transcatheter Aortic Valve Replacement, Antithrombotic therapy, Anticoagulation therapy, Antiplatelet therapy

Brief summary

ACASA-TAVI is a pragmatic randomized controlled trial assessing the value of anticoagulation therapy versus the standard antiplatelet therapy after transcatheter aortic valve implantation in patients with aortic stenosis. The trial will assess the efficacy of direct oral anticoagulation (DOAC) therapy compared to the standard single antiplatelet therapy to prevent degeneration of the valve and its safety in co-primary endpoints with blinded endpoint adjudication. The effect of DOAC therapy on hard clinical outcomes will be assessed during long-term follow-up.

Detailed description

Aortic stenosis is a highly prevalent valvular disease and an important cause of morbidity and mortality in the elderly population. Transcatheter aortic valve implantation (TAVI) is an effective intervention in patients with severe aortic stenosis and low surgical risk. The procedure is highly effective, safe, and widely implemented. Current recommendations support transcatheter treatment of younger patients, including patients from 65 years of age with low surgical risk. This practice increases the importance of long-term valve maintenance. Observational data have suggested that early signs of valve degeneration (i.e. hypo-attenuated leaflet thickening/thrombosis/reduced leaflet motion) are associated with an increased risk of embolic events. This is an increasing problem with emerging indications in younger populations. Because both ischemic and bleeding complications after TAVI can be life-threatening, it is important to establish the optimal anti-thrombotic treatment regime. Use of oral anticoagulation after implantation for bioprosthetic valves have been associated with resolved valve degeneration and possible favourable clinical effects. The current practice guidelines recommend that oral anticoagulation may be considered for 3 months after open surgical bioprosthetic valve implantation. Patients with an independent indication for oral anticoagulation (i.e. atrial fibrillation or venous thromboembolism) are recommended to continue this treatment lifelong, but there is no recommendation for oral anticoagulation following TAVI in patients without other indications. In patients without indication for oral anticoagulation, the use of double anti-platelet therapy for 3-6 months following TAVI is recommended. However, single anti-platelet therapy with acetylsalicylic acid (ASA) without clopidogrel has been reported to improve bleeding outcomes and a composite of bleeding and ischemic outcomes. The effect of on oral anticoagulation-based treatment strategy compared to the standard single anti-platelet treatment strategy for valve maintenance after TAVI is unknown. Increased anti-thrombotic treatment intensity may come at the cost of increased bleeding risk. Dual anti-platelet therapy and combination therapy with anticoagulation and anti-platelet therapy have both been associated with unfavourable outcomes. Combined anti-platelet and anti-coagulation treatment has been shown to reduce valve degeneration at the cost of increased bleeding. Conversely, single anti-platelet therapy and anti-coagulation with a direct oral anti-coagulant (DOAC) have been associated with similar bleeding risk. Bleeding rates in patients treated with anti-coagulation after TAVI have been reported to be slightly higher than in patients treated with ASA after TAVI, but patients with conventional indications for anti-coagulation have higher baseline bleeding risk than those without such indications. Therefore, the risk of bleeding in patients treated with DOAC or ASA following TAVI may be similar, but no randomized trials have been performed. ACASA-TAVI will include 360 patients \> 65 years and \< 80 years of age who have undergone successful TAVI and have no conventional indication for DOAC in a prospective randomized open-label blinded-endpoint (PROBE) study. The intervention arm will be 12 month therapy with an anti-Xa type DOAC (without antiplatelet therapy) and the active control arm will be standard dose ASA. After 12 months, the intervention group will be switched to ASA maintenance. All patients will undergo clinical assessment, cardiac CT and echocardiography at 12 months with blinded endpoint adjudication by an independent committee. Outcome measures will comply with the Valve Academic Research Consortium 3 (VARC-3) consensus, and are described in detail in the protocol. The co-primary endpoints at 12 months, hypo-attenuated leaflet thickening (HALT) and safety composite, must both be met for the trial to declare success. The effect of the DOAC therapy on long-term major adverse cardiovascular events (MACE) will be assessed after 5 years and 10 years.

Interventions

DRUGAcetylsalicylic acid

Acetylsalicylic acid 75 mg once daily is the current standard-of-care in TAVI patients without other indications for anticoagulation therapy.

DRUGApixaban

Standard dose apixaban will be one of the options for the patients in the experimental arm.

DRUGRivaroxaban

Standard dose rivaroxaban will be one of the options for the patients in the experimental arm.

DRUGEdoxaban

Standard dose edoxaban will be one of the options for the patients in the experimental arm.

Sponsors

Oslo University Hospital
Lead SponsorOTHER
University of Oslo
CollaboratorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
PREVENTION
Masking
SINGLE (Outcomes Assessor)

Masking description

Separate endpoint adjudication committee blinded to randomized allocation of patients to treatment groups

Intervention model description

Parallel group prospective randomized open blinded endpoint (PROBE) trial

Eligibility

Sex/Gender
ALL
Age
65 Years to 80 Years
Healthy volunteers
No

Inclusion criteria

* Successful trans-catheter aortic valve implantation in patients aged \>65 and \<80 years old at the time of the procedure.

Exclusion criteria

* Strict indication for anticoagulation or anti-platelet drugs * Strict contraindication for anticoagulation or anti-platelet drugs * Overt cognitive failure * Failure to obtain written informed consent * Concomitant use of inducers or inhibitors of CYP3A4 or P-glycoprotein

Design outcomes

Primary

MeasureTime frameDescription
Hypo-attenuated leaflet thickening12 monthsFirst co-primary endpoint. The presence of hypo-attenuated leaflet thickening on dedicated cardiac CT after 12 months will be registered by a blinded expert reader. Intention-to-treat, superiority.
Safety composite - Incidence of Treatment Emergent Adverse Clinical Outcome12 monthsSecond co-primary outcome. Composite of VARC-3 bleeding events, thromboembolic events (myocardial infarction or stroke) and all-cause mortality. Per-protocol, non-inferiority.
Major adverse cardiovascular events (MACE)5 yearsPrimary outcome during long-term follow-up. The rate of the composite of Cardiac death, Aortic valve re-intervention, Stroke, Myocardial infarction, Heart failure hospitalization and Major, life-threatening, or disabling bleeding.

Secondary

MeasureTime frameDescription
Clinical efficacy12 monthsFirst hierarchical secondary outcome. Composite of of Freedom from all-cause mortality, Freedom from all stroke, Freedom from hospitalization for procedure- or valve-related causes, Freedom from KCCQ overall summary score \<45 or decline from baseline of \>10 points. Intention-to-treat, superiority.
Safety composite, superiority12 monthsSecond hierarchical secondary outcome. Composite of VARC-3 bleeding events, thromboembolic events (myocardial infarction or stroke) and all-cause mortality. Same endpoint as second co-primary outcome, but intention-to-treat, superiority.
Thromboembolic events12 monthsThird hierarchical secondary outcome. Composite of myocardial infarction or stroke of any cause. Intention-to-treat population.
Bleeding events12 monthsFourth hierarchical secondary outcome. Bleeding events according to VARC-3 definitions. Intention-to-treat population.
All-cause mortality12 monthsFifth hierarchical secondary outcome. Intention-to-treat population.
The number of adverse events12 monthsFirst secondary safety endpoint. Safety population.
The number of serious adverse events12 monthsSecond secondary safety endpoint. Safety population.
Life-threatening or disabling bleeding12 monthsThird secondary safety endpoint. Safety population. VARC-3 definition.
Major bleeding12 monthsFourth secondary safety endpoint. Safety population. VARC-3 definition.
Minor bleeding12 monthsFifth secondary safety endpoint. Safety population. VARC-3 definition.

Countries

Norway

Contacts

PRINCIPAL_INVESTIGATORØyvind H Lie, MD, PhD

Oslo University Hospital

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Aug 31, 2026