Literature DB >> 28545472

Echocardiography accurately predicts pulmonary hypertension in patients with advanced lung disease.

Silvia Cottini1, Christian Benden2, Lars C Huber2,3, Mattia Arrigo4.   

Abstract

Entities:  

Keywords:  Advanced lung disease; Echocardiography; Pulmonary hypertension; Right heart catheterization; Transplantation

Mesh:

Year:  2017        PMID: 28545472      PMCID: PMC5445310          DOI: 10.1186/s13054-017-1697-y

Source DB:  PubMed          Journal:  Crit Care        ISSN: 1364-8535            Impact factor:   9.097


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Pulmonary hypertension (PH) may be observed in many different conditions, including advanced heart or lung disease [1]. PH is defined as elevation of the mean pulmonary arterial pressure (mPAP) ≥25 mmHg, measured by right heart catheterization (RHC). Since procedure-related risks and costs are not negligible, RHC is not routinely performed in patients with advanced lung disease during initial assessment and follow-up. Echocardiography is commonly used as screening tool for the presence of PH, but might be of limited diagnostic value, in particular in patients with lung disease [2]. Empirical formulas were proposed to calculate the mPAP starting from systolic pulmonary arterial pressure (sPAP) as assessed by echocardiography [3, 4]. It has been suggested that both the Chemla formula (mPAP = sPAP × 0.61 + 2 mmHg) and the Syyed formula (mPAP = sPAP × 0.65 + 0.55 mmHg) might accurately estimate the mPAP [5]. The aim of our study was to assess the accuracy of these echocardiography-based formulas to estimate the invasively measured mPAP in a cohort of patients with advanced lung disease. Estimation of sPAP by echocardiography was performed according to current recommendation by adding to the right ventricular/right atrial pressure gradient (based on Doppler-measured tricuspid regurgitation velocity) the estimated right atrial pressure (based on inferior vena cava diameter and collapsibility). A total of 96 consecutive patients undergoing lung transplant evaluation between 03/2000 and 10/2015 were included. Data from RHC and echocardiography performed the same day were available for the whole cohort. Spearman’s rank-order correlation was run to assess the relationship between RHC-measured mPAP and calculated mPAP. There was a strong positive correlation between both RHC-mPAP and Chemla-mPAP (rs = 0.909, p < 0.001; Fig. 1a) and between RHC-mPAP and Syyed-mPAP (rs = 0.904, p < 0.001; Fig. 1b).
Fig. 1

Correlation between RHC-measured mPAP and echocardiographic-estimated mPAP using the Chemla formula (a) and the Syyed formula (b). Values expressed as mmHg

Correlation between RHC-measured mPAP and echocardiographic-estimated mPAP using the Chemla formula (a) and the Syyed formula (b). Values expressed as mmHg Inspection of both diagrams suggests that the correlation between echocardiographic data and invasive pulmonary hemodynamics is of particular strength in patients with moderate elevation of pulmonary pressure. Whether echocardiography-based formulas are of similar accuracy to estimate pulmonary pressure of PH in patients with severe PH remains unclear. However, this might be of minor relevance since, as shown in our cohort, only a minority of patients with advanced lung disease present with a mPAP >50 mmHg. In these patients, further invasive assessment of pulmonary hemodynamics may be indicated. For all other patients our data emphasize that echocardiography is an accurate tool to estimate pulmonary pressure in patients with advanced lung disease.
  5 in total

1.  An alternative echocardiographic method to estimate mean pulmonary artery pressure: diagnostic and clinical implications.

Authors:  Javier F Aduen; Ramon Castello; Marcelo M Lozano; George N Hepler; Cesar A Keller; Francisco Alvarez; Robert E Safford; Julia E Crook; Michael G Heckman; Charles D Burger
Journal:  J Am Soc Echocardiogr       Date:  2009-06-07       Impact factor: 5.251

Review 2.  Diagnostic accuracy of echocardiography for pulmonary hypertension: a systematic review and meta-analysis.

Authors:  Surinder Janda; Neal Shahidi; Kenneth Gin; John Swiston
Journal:  Heart       Date:  2011-02-25       Impact factor: 5.994

3.  Passive pulmonary hypertension: more than hydrostatics.

Authors:  Mattia Arrigo; Lars C Huber
Journal:  Chest       Date:  2014-02       Impact factor: 9.410

4.  The relationship between the components of pulmonary artery pressure remains constant under all conditions in both health and disease.

Authors:  Raheel Syyed; John T Reeves; David Welsh; David Raeside; Martin K Johnson; Andrew J Peacock
Journal:  Chest       Date:  2007-11-07       Impact factor: 9.410

5.  Evaluation of various empirical formulas for estimating mean pulmonary artery pressure by using systolic pulmonary artery pressure in adults.

Authors:  Denis Chemla; Vincent Castelain; Steeve Provencher; Marc Humbert; Gérald Simonneau; Philippe Hervé
Journal:  Chest       Date:  2008-10-10       Impact factor: 9.410

  5 in total
  1 in total

Review 1.  Doppler trans-thoracic echocardiography for detection of pulmonary hypertension in adults.

Authors:  Yasushi Tsujimoto; Junji Kumasawa; Sayaka Shimizu; Yoshio Nakano; Yuki Kataoka; Hiraku Tsujimoto; Michihiko Kono; Shinji Okabayashi; Haruki Imura; Takahiro Mizuta
Journal:  Cochrane Database Syst Rev       Date:  2022-05-09
  1 in total

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