Factors determining the magnitude of the pre-ejection leftward septal motion in left bundle branch block
Espen W Remme1,2,3,4, Steven Niederer5, Ola Gjesdal6,3
1Institute for Surgical Research, Oslo University Hospital, 0372 Oslo, Norway espen.remme@medisin.uio.no.
Insights
Left bundle branch block (LBBB) alters septal motion, impacting cardiac resynchronization therapy (CRT) response. Reduced pressure rise during LBBB affects septal motion magnitude, influenced by factors like contractility and heart structure.
Area of Science:
- Cardiology
- Biomedical Engineering
- Physiology
Background:
- Abnormal leftward septal motion before ejection is common in left bundle branch block (LBBB).
- This motion is a potential predictor of response to cardiac resynchronization therapy (CRT).
Purpose of the Study:
- To investigate the factors influencing the magnitude of abnormal leftward septal motion in LBBB.
- To understand the mechanisms behind this pre-ejection septal motion.
Main Methods:
- Canine model with induced LBBB to measure ventricular pressures and volumes.
- Biventricular finite-element simulation model of LBBB to analyze septal motion dynamics.
- Experimental and simulation approaches were combined.
Main Results:
- LBBB induction led to a slower rise in left ventricular-right ventricular pressure gradient (PLV-RV) during leftward septal motion.
- Simulation confirmed that reduced PLV-RV rise was a key determinant of septal motion magnitude.
- Factors decreasing motion included shorter activation delay, reduced contractility (global or RV), septal infarction, and RV volume overload.
Conclusions:
- Lowered afterload against pre-ejection septal contraction, indicated by slowed PLV-RV rise, is the primary cause of leftward septal motion in LBBB.
- Clinical assessment of CRT response using this motion must consider conditions like septal infarct, impaired contractility, or RV volume overload.
Aims:
An abnormal large leftward septal motion prior to ejection is frequently observed in left bundle branch block (LBBB) patients. This motion has been proposed as a predictor of response to cardiac resynchronization therapy (CRT). Our goal was to investigate factors that influence its magnitude.
Methods And Results:
Left (LVP) and right ventricular (RVP) pressures and left ventricular (LV) volume were measured in eight canines. After induction of LBBB, LVP and, hence, the transmural septal pressure (PLV-RV = LVP-RVP) increased more slowly (P < 0.01) during the phase when septum moved leftwards. A biventricular finite-element LBBB simulation model confirmed that the magnitude of septal leftward motion depended on reduced rise of PLV-RV. The model showed that leftward septal motion was decreased with shorter activation delay, reduced global or right ventricular (RV) contractility, septal infarction, or when the septum was already displaced into the LV at end diastole by RV volume overload. Both experiments and simulations showed that pre-ejection septal hypercontraction occurs, in part, because the septum performs more of the work pushing blood towards the mitral valve leaflets to close them as the normal lateral wall contribution to this push is lost.
Conclusions:
Left bundle branch block lowers afterload against pre-ejection septal contraction, expressed as slowed rise of PLV-RV, which is a main cause and determinant of the magnitude of leftward septal motion. The motion may be small or absent due to septal infarct, impaired global or RV contractility or RV volume overload, which should be kept in mind if this motion is to be used in evaluation of CRT response.
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