Key result
CTA measurements of the RVOT accurately predict implanted valve size in TPVR.
Why the study?
TPVR provides an alternative to surgery for RVOT dysfunction, but the predictive value of CTA measurements of the RVOT for transcatheter valve sizing needed evaluation.
Does Computed Tomography Angiography (CTA) measurement of the RVOT accurately predict implanted valve size in patients undergoing transcatheter pulmonary valve replacement?
Observational (n=18)
Does Computed Tomography Angiography (CTA) measurement of the RVOT accurately predict implanted valve size in patients undergoing transcatheter pulmonary valve replacement?
Effect estimate: κ = 0.697 (Darea) and κ = 0.540 (Dcirc)
p-value: p=<0.01
CT-derived area and circumference measurements of the RVOT can accurately predict prosthetic valve sizing for TPVR, particularly in patients without RVOT conduits.
CTA may aid RVOT sizing for TPVR; leaves open need for validation before clinical adoption.
To evaluate the predictive value of Computed Tomography Angiography (CTA) measurements of the RVOT for transcatheter valve sizing. Transcatheter pulmonary valve replacement (TPVR) provides an alternative to surgery in patients with right ventricular outflow tract (RVOT) dysfunction. We studied 18 patients who underwent catheterization for potential TPVR to determine whether CT imaging can be used to accurately predict implant size. Cases were grouped by RVOT characteristics: native or transannular patch (n = 8), conduit (n = 5) or bioprosthetic valve (n = 5). TPVR was undertaken in 14/18 cases, after balloon-sizing was used to confirm suitability and select implant size. Retrospective CT measurements of the RVOT (circumference-derived (Dcirc) and area-derived (Darea) diameters) were obtained at the level of the annulus, bioprosthesis or conduit. Using manufacturer sizing guidance, a valve size was generated and a predicted valve category assigned: (1) <18 mm, (2) 18–20 mm, (3) 22–23 mm, (4) 26–29 mm and (5) >29 mm. Predicted and implanted valves were compared for inter-rater agreement using Cohen’s kappa coefficient. The median age of patients was 37 years old (IQR: 30–49); 55% were male. Diagnoses included: Tetralogy of Fallot (12/18), d-Transposition repair (3/18), congenital pulmonary stenosis (2/18) and carcinoid heart disease (1/18). Measurements of Darea (κ = 0.697, p < 0.01) and Dcirc (κ = 0.540, p < 0.01) were good predictors of implanted valve size. When patients with RVOT conduits were excluded, the predictive accuracy improved for Darea (κ = 0.882, p < 0.01) and Dcirc (κ = 0.882, p < 0.01). CT measurement of the RVOT, using Darea or Dcirc, can predict prosthetic valve sizing in TPVR. These measurements are less predictive in patients with conduits, compared to those with a native RVOT or pulmonic bioprosthesis. We studied 18 patients who underwent catheterization for TPVR to determine whether CT imaging could be used to accurately predict implant size. Retrospective RVOT measurements were used to generate a predicted valve size, which was compared with implanted valve size for inter-rater agreement. Measurements of Darea (κ = 0.697, p < 0.01) and Dcirc (κ = 0.540, p < 0.01) were good predictors of implanted valve size. When cases with RVOT conduits were excluded, the predictive accuracy improved for Darea (κ = 0.882, p < 0.01) and Dcirc (κ = 0.882, p < 0.01). CT measurement of the RVOT can accurately predict prosthetic valve sizing in TPVR. These measurements are less predictive in patients with conduits.
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Curran et al. (2020) conducted an observational in Right ventricular outflow tract (RVOT) dysfunction (n=18). Computed Tomography Angiography (CTA) measurements of the RVOT vs. Implanted valve size (balloon-sizing) was evaluated on Inter-rater agreement between predicted valve size and implanted valve size (κ = 0.697 (Darea) and κ = 0.540 (Dcirc), p=<0.01). Computed Tomography Angiography measurements of the RVOT using area-derived (κ=0.697) and circumference-derived (κ=0.540) diameters accurately predicted implanted valve size in TPVR (p<0.01).
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