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How Does the Blood Go Round in Single Ventricles and Fontans? New Horizons in...

Video Published 2019-01-11 Updated 2022-08-22

Timestops (8)

Topic Overview

Dr. Andrew Reddington discusses Fontan circulation physiology, emphasizing that 40-50% of cardiac output is driven by respiratory effort rather than the cardiac cycle. He presents evidence that systemic right ventricle morphology is not a short-term risk factor post-Fontan but may become significant after 20-30 years. The primary pathophysiology is diastolic dysfunction: early diastole is impaired by incoordinate ventricular relaxation, while late diastolic compliance progressively worsens with rising left atrial pressure. Pulmonary vascular resistance remains a critical determinant, with only half of adolescent Fontan patients showing vasodilator responsiveness to nitric oxide.

Key Takeaways

  • Respiratory effort drives 40-50% of Fontan cardiac output; mean airway pressure is critical to circuit flow. (2:43)
  • Only half of adolescent Fontan patients respond to nitric oxide; PDE5 inhibitors unlikely to add benefit. (4:52)
  • Fontan pathophysiology is diastolic: incoordinate relaxation impairs early filling; compliance worsens with rising LA pressure. (9:29)
  • Systemic RV morphology shows no short-term risk post-Fontan but may emerge as a factor after 20-30 years. (7:45)
  • Fontan ventricles are hypercontractile; the problem is diastolic dysfunction, not systolic failure. (8:22)

Inside this episode

Kai, the Library's AI content creator, listened to this episode and mapped who's speaking, the chapters, key claims, and cases. Every item links to the exact moment in the recording.

AI-enriched

Who's speaking

  • Grushin — host
  • Andrew Reddington — guest
  • Speaker 3 — host
  • Speaker 4 — guest
  • Speaker 5 — guest

Chapters

  • 0:00Respiratory-Driven Fontan Flow — Introduction and historical context of understanding Fontan physiology. Presentation of 1990 study showing respiratory effort drives 40-50% of cardiac output in Fontan circulation, with minimal cardiac cycle contribution.
  • 3:14Pulmonary Vascular Resistance and Vasodilator Response — Discussion of mean airway pressure effects on Fontan flow, Valsalva impact, and pulmonary vascular resistance. Presentation of nitric oxide study showing only 50% of adolescent Fontan patients demonstrate vasodilator responsiveness.
  • 6:10Right Ventricle as Non-Risk Factor — Evidence from multiple centers (CHOP, Boston, Melbourne) that systemic right ventricle morphology is not a short-term risk factor post-Fontan. Discussion of hypercontractile ventricular function in Fontan patients.
  • 9:29Diastolic Dysfunction Pathophysiology — Detailed presentation of diastolic impairment: early diastolic dysfunction from incoordinate relaxation, late diastolic compliance reduction, and pseudonormalization with rising left atrial pressure. Discussion of protein-losing enteropathy correlation.
  • 13:37Progressive Ventricular Compliance Deterioration — Eight-year follow-up data showing progressive diastolic stiffness, shortened IVRT, and faster E-wave deceleration. Pressure-volume analysis demonstrating abnormal diastolic compliance despite potentially normal end-diastolic pressure.
  • 16:29Panel Discussion — Questions addressing Valsalva effects, long-term right ventricle outcomes, and pathophysiology of diastolic dysfunction. Discussion of potential therapeutic targets including arterial impedance management and fibrosis.

Key claims

  • 2:4340-50% of cardiac output at baseline in Fontan patients is driven directly by the work of breathing — Andrew Reddington
  • 3:14Mean airway pressure makes the blood go round; negative pressure during normal ventilation draws blood into the Fontan circuit — Andrew Reddington
  • 3:28Valsalva maneuver at 20 cm H2O cuts off all spontaneous respiratory flow, leaving only tiny ventricular systole-driven flow — Andrew Reddington
  • 4:01Low pulmonary vascular resistance is a prerequisite for good Fontan outcome — Andrew Reddington
  • 4:52Nitric oxide caused approximately 1 indexed wood unit fall in pulmonary vascular resistance in Fontan patients — Andrew Reddington
  • 5:33Only half of adolescent Fontan patients showed benefit from nitric oxide — Andrew Reddington
  • 5:51If only half of patients benefit from nitric oxide, they are unlikely to further benefit from PDE5 inhibitors — Andrew Reddington
  • 6:54CHOP data showed no difference in 10-year outcomes between hypoplastic left heart syndrome and systemic left ventricle Fontan patients — Andrew Reddington
  • 7:22Boston data showed patients with systemic left ventricle or single right ventricle do better than all other diagnoses — Andrew Reddington
  • 7:45Melbourne data showed right ventricular dominance is a risk factor at birth, but after surviving the first couple years post-Fontan, survival curves are identical regardless of ventricular morphology — Andrew Reddington
  • 8:22Systemic ventricles in Fontan circulation are hypercontractile to match increased afterload — Andrew Reddington
  • 8:37Force-frequency relationships in systemic right and left ventricles in univentricular circulation outperformed normal ventricles — Andrew Reddington
  • 9:03End-systolic elastance in Fontan patients is orders of magnitude higher than normals and greater than systemic right ventricle in Mustard patients — Andrew Reddington
  • 9:29The problem in Fontan circulation is in diastole, not systole — Andrew Reddington
  • 10:06Early diastole (E wave) is affected post-Fontan, not late diastole (A wave), with virtual abolishment of early rapid filling — Andrew Reddington
  • 10:43Time constant of relaxation and isovolumic relaxation time are prolonged post-Fontan, indicating impaired ventricular relaxation — Andrew Reddington
  • 10:56Incoordinate wall motion during isovolumic relaxation causes early diastolic dysfunction, with some ventricular segments 180 degrees out of phase — Andrew Reddington
  • 12:23Longer isovolumic relaxation time correlates with longer hospital stay immediately post-Fontan — Andrew Reddington
  • 13:03Pseudonormalized E/A ratio in late post-operative Fontan patients indicates rising left atrial pressure with persistent incoordinate relaxation — Andrew Reddington
  • 13:36Left ventricular end-diastolic pressure rises by approximately 2 mmHg per decade after age 30 in normal individuals — Andrew Reddington
  • 14:18Eight-year follow-up showed Fontan patients maintained incoordinate relaxation but developed shortened IVRT (suggesting rising left atrial pressure) and faster E-wave deceleration (suggesting falling compliance) — Andrew Reddington
  • 15:06Diastolic compliance of Fontan ventricles (predominantly left) is highly abnormal compared to systemic right ventricles in Mustard patients — Andrew Reddington
  • 15:33Fontan patients can have normal left ventricular end-diastolic pressure despite profoundly abnormal ventricular compliance because reduced preload causes the ventricle to become smaller and pressure to fall — Andrew Reddington
  • 20:04PHN data on 500 Fontan patients showed systemic right ventricles have far more patients with increased E/E' ratio (indicating greater stiffness) compared to systemic left ventricles at 10-12 years post-Fontan — Andrew Reddington
  • 21:58End-diastolic pressure rise in normals is more rapid with hypertension, diabetes, other risk factors, and ventricular volume load — Andrew Reddington
  • 22:33Fontan patients frequently have volume load and raised arterial impedance/systemic vascular resistance — Andrew Reddington
  • 23:01Recent European conductance catheter work shows tight relationship between arterial elastance and ventricular end-diastolic pressure — Andrew Reddington
  • 23:18There is no evidence-based role for ACE inhibition in Fontan patients in the short term — Andrew Reddington
  • 23:38Management of left ventricular end-diastolic pressure, fibrosis, and vascular biology (not just systemic vasodilation) have potential as long-term therapeutic targets — Andrew Reddington
  • 23:58Understanding impact of long-term therapies will require 10-20 years of follow-up — Andrew Reddington
  • 19:32Mayo Clinic series with longer follow-up shows right ventricular morphology appears to be a risk factor late (beyond 20-30 years) — Speaker 4
  • 24:38Abnormalities in diastolic relaxation will likely become clinically manifest at 20-30 years, and we lack the long-term RV/LV data to know the answer — Speaker 5

Points of disagreement

  • 18:58Long-term significance of right ventricular morphology in Fontan patients
    • Andrew Reddington: Short-term data (10-15 years) shows no difference in outcomes between RV and LV morphology post-Fontan
    • Speaker 4: Mayo Clinic data with longer follow-up suggests RV morphology becomes a risk factor late
    • Speaker 5: Diastolic abnormalities will manifest clinically at 20-30 years; we lack sufficient long-term data to definitively answer whether RV morphology matters

Open questions

  • When does right ventricular morphology become a significant risk factor in Fontan patients—at what time point beyond 10-15 years?
  • What are the optimal therapeutic targets for managing progressive diastolic dysfunction in Fontan patients?
  • Should arterial vasodilators or agents targeting fibrosis be used long-term in Fontan patients, and how would we design trials with 10-20 year endpoints?
  • What percentage of Fontan patients would benefit from pulmonary vasodilators if only 50% respond to nitric oxide?
  • How can we identify which Fontan patients will develop clinically significant diastolic dysfunction at 20-30 years?
This episode was analyzed and enriched by Kai, the Library's AI content creator. Every item links to the moment it comes from — click a timestamp to listen in context.

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