Mitral E-wave deceleration time
DT · Same pulsed Doppler trace as E and A; slope of the E-wave descent extrapolated to the baseline
Normal range & thresholds
Normal 160–240 ms (lengthens with age; >240 ms with a low E/A is the impaired-relaxation pattern). DT <160 ms with E/A ≥2 defines restrictive filling; DT <130 ms in dilated cardiomyopathy carries a particularly adverse prognosis.[2]
In mitral stenosis the same slope yields the pressure half-time (PHT = 0.29 × DT) and hence valve area (MVA ≈ 759 / DT).[43]
In mitral stenosis the same slope yields the pressure half-time (PHT = 0.29 × DT) and hence valve area (MVA ≈ 759 / DT).[43]
Pathophysiology
Deceleration time is a measure of how quickly the atrioventricular pressure gradient is abolished after mitral opening, and that speed is set by operating chamber stiffness. A stiff ventricle equilibrates with the atrium almost instantly — a short, steep E wave. A compliant ventricle absorbs the inflow with little pressure rise, so the gradient decays slowly — a long deceleration. In mitral stenosis the same logic is inverted: a narrow orifice sustains the gradient, so deceleration is prolonged in proportion to the obstruction.[2,43]
Raised by
- Impaired relaxation — ageing, LVH, hypertension, ischaemia (grade 1 pattern: low E/A, long DT)
- Mitral stenosis — the prolongation is the basis of the pressure half-time method
- Hypovolaemia; bradycardia
- Constrictive pericarditis paradoxically shows a short DT, not a long one — see below
Lowered by
- Restrictive filling — advanced HFrEF, restrictive and infiltrative cardiomyopathy (amyloid), acute severe mitral or aortic regurgitation
- Constrictive pericarditis — abrupt cessation of filling by the rigid pericardium
- Markedly elevated LA pressure of any cause; tachycardia
- Significant aortic regurgitation with premature mitral closure
- After acute volume loading
Technique & pitfalls
- Draw the tangent along the steepest part of the E-wave downslope and extrapolate it to the zero baseline — do not measure to the point where the tracing meets the baseline, which is systematically longer.
- Sweep speed 100 mm/s; sample volume at the leaflet tips.
- Average 3 beats; in AF choose cycles with similar preceding RR intervals and average 5–10.
- If a mid-diastolic L wave is present (marked impairment of relaxation with high filling pressures), define the E downslope before the L wave — and report the L wave, which is itself a marker of elevated LAP.
- In mitral stenosis, measure the mid-diastolic slope, not the initial steep segment, and never after a long post-extrasystolic pause.
Pseudo-change & artefact
- Extrapolation error — different observers routinely differ by 20–30 ms, which is enough to cross a grading boundary.
- E–A fusion at high heart rates truncates the downslope and shortens DT artefactually.
- Diuresis lengthens DT; fluid loading shortens it — without any change in the myocardium.
- In mitral stenosis, the pressure half-time is invalidated by significant aortic regurgitation, by an atrial septal defect, by tachycardia, and immediately after balloon valvuloplasty (see card 37).[5]
- Post-extrasystolic beats and irregular rhythm.
Treatment thresholds
- Mitral stenosis: DT is the source of the pressure half-time, and PHT ≥150 ms (MVA ≤1.5 cm²) defines severe mitral stenosis — the anatomical criterion for intervention (cards 34 and 37).[5,6,7]
- Restrictive filling (DT <160 ms) is a class of prognostic marker rather than a treatment threshold: it triggers intensification of decongestion, mandates a search for amyloid and constriction, and supports earlier referral for advanced heart failure therapies.[2,30]
- Atrial fibrillation algorithm: DT ≤160 ms is one of the four primary markers of elevated left atrial pressure.[2]
- Constriction versus restriction: a short DT is common to both — the discriminators are respiratory variation, septal bounce and the annular velocities, not the DT itself.[57]
Next step
- Next: place the DT in the algorithm alongside E/A, e′, E/e′ and TR velocity — never grade on it alone.
- Then: if restrictive, assess for amyloid (wall thickness, ECG voltage, apical sparing) and for constriction (respirophasic septal shift, annulus reversus, hepatic vein expiratory reversal).[30,57]
- Then: CMR with T1/ECV mapping, bone scintigraphy and free light chains, or invasive simultaneous left- and right-sided pressures if constriction versus restriction is still unresolved.
- If mitral stenosis: planimetry of the valve area and a Wilkins score before deciding between balloon valvuloplasty and surgery.[45]
Drugs
- Diuretics lengthen DT (restrictive → pseudonormal) — the fastest and largest effect of any intervention.
- Beta-blockers and rate-limiting calcium blockers lengthen diastole and improve the trace, particularly in mitral stenosis and HCM.
- GDMT lengthens DT over months as filling pressures fall.
- Vasodilators and nitrates shorten E and lengthen DT acutely by reducing preload.
- No drug alters DT in mitral stenosis except through heart rate; the obstruction is mechanical.
Reversibility
Follows the load with the same speed as the E wave: days for the decongestion-dependent component, months for the structural component, and not at all for mechanical mitral obstruction. Persistence of a short DT after full decongestion in a dilated ventricle is one of the more reliable echocardiographic markers of irreversible disease.[2]