Hypertrophic cardiomyopathy

Wall thickness, obstruction at rest and on provocation, the mitral apparatus, and the SCD risk inputs.

Numbers to remember

Questions echo must answer

Hypertrophic cardiomyopathy is defined by LV wall thickness ≥15 mm in any segment (≥13 mm in a first-degree relative, or with a positive genotype) that is not explained by abnormal loading conditions [13,14]. About two-thirds of patients have LV outflow tract obstruction at rest or with provocation [129], and a resting gradient ≥30 mmHg roughly doubles the risk of HCM-related death and markedly increases progression to NYHA III–IV [128]. Echo therefore has five jobs:

  1. PhenotypeWhere is the hypertrophy and how thick is the thickest segment? This includes asymmetric septal, apical, mid-ventricular and concentric patterns.
  2. ObstructionIs there a gradient at rest, and what is it with Valsalva, standing and exercise? At what level is it: LVOT or mid-cavity?
  3. MechanismLook for SAM, leaflet elongation, anomalous papillary muscles, and the direction of the MR jet.
  4. RiskRecord maximal wall thickness, LA diameter, maximal gradient, LVEF and apical aneurysm. These are the inputs to SCD risk [13,127].
  5. DifferentialRule out phenocopies: hypertension, athlete's heart, amyloidosis, Fabry disease and AS.
Key pointA normal resting gradient does not mean non-obstructive HCM. Guidelines require provocation, meaning Valsalva, standing and ideally exercise echo, before that label is applied [13,126].

Acquisition protocol

  1. PLAXMeasure IVSd and PWd at end-diastole, perpendicular to the long axis, excluding RV trabeculations and the moderator band. Look for SAM and chordal SAM. Measure the LA AP diameter, which is an HCM Risk-SCD input [127].
  2. PSAX sweepMeasure the thickest segment at basal, mid and apical levels. In the 2D short axis the maximal thickness is often anterior septal or anterolateral and is missed in PLAX [126].
  3. M-modeRecord SAM timing and duration (septal contact) and mid-systolic aortic valve closure.
  4. A4C / A2C / A3CAssess apical hypertrophy (spade shape), mid-cavity obstruction, apical aneurysm and thrombus. Use contrast if the apex is not clearly seen [126].
  5. A5C / A3C colourFind the site of flow acceleration: LVOT or mid-cavity. Then take CW with the late-peaking "dagger" envelope, and PW mapping from apex to LVOT if the level is uncertain.
  6. ProvocationRepeat CW during the Valsalva strain phase, then after standing. In symptomatic patients with a resting and Valsalva gradient <50 mmHg, perform exercise echocardiography [13,28].
  7. MitralMeasure anterior leaflet length. Look for papillary muscle insertion directly into the anterior leaflet. Record MR jet direction and severity (a posterior jet is typical of SAM). Look for primary leaflet disease.
  8. DiastolicRecord mitral inflow, septal and lateral e′, E/e′, LAVI, TR velocity and LA strain [2,32].
  9. FunctionRecord LVEF (biplane), GLS and RV wall thickness.

Diagnosis & severity

ItemThresholdMeaning
Maximal LV wall thickness≥15 mm (≥13 mm in relatives)Diagnostic of HCM when not explained by loading [13,14]
Maximal wall thickness≥30 mmMajor SCD risk marker [13]
LVOT peak gradient (rest or provoked)≥30 mmHgObstructive physiology [13]
LVOT peak gradient≥50 mmHgHaemodynamically important; septal reduction if symptomatic despite drugs [13,14]
LVEF<50%End-stage HCM; major SCD risk marker [13]
Apical aneurysmAny thin-walled dyskinetic segmentSCD and thromboembolic risk marker [13,181]
LA diameter (PLAX)Continuous inputHCM Risk-SCD model [127]

SCD risk: the echocardiographic inputs

The ESC HCM Risk-SCD model uses age, maximal wall thickness, LA diameter, maximal LVOT gradient (rest or Valsalva), family history of SCD, NSVT and unexplained syncope. An ICD should be considered at a 5-year risk ≥6% and may be considered at 4–6% [14,127]. The 2024 AHA/ACC guideline adds LVEF <50%, apical aneurysm and extensive LGE (≥15% of LV mass) as major markers [13].

Practical tipEnter the maximal gradient from either rest or Valsalva. Exercise gradients were not used to derive the model [127].

Thresholds that change management

Pitfalls & mimics

PitfallMR contamination of the LVOT signal. The MR jet starts at mitral closure (with isovolumic contraction), peaks early and is higher (often >6 m/s). The LVOT envelope starts after aortic opening and peaks late. Sweep the CW cursor slowly between the two, and calculate the gradient only from the dagger-shaped envelope.