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Dr. Todd Ponsky

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Posterior Tracheopexy For Severe Tracheomalacia

Video Published 2018-09-14 Updated 2026-08-01

Timestops (3)

Topic Overview

A discussion of a surgical technique for severe tracheomalacia characterized by posterior membranous intrusion. The paper reviewed describes posterior tracheopexy in 98 patients (88% with esophageal atresia ± TEF), using pledgeted sutures to attach the posterior tracheal wall to the anterior longitudinal ligament of the spine. Clinical symptoms and bronchoscopic findings improved post-operatively, though exercise tolerance did not reach statistical significance. The authors emphasize that tracheomalacia requires systematic bronchoscopic evaluation to distinguish posterior collapse from anterior compression, as approximately 20% of patients required both posterior tracheopexy and aortopexy.

Key Takeaways

  • Posterior tracheopexy uses pledgeted sutures to attach posterior tracheal wall to anterior longitudinal spinal ligament. (0:54)
  • 88% of posterior tracheopexy patients had esophageal atresia ±TEF; clinical symptoms and bronchoscopy improved postoperatively. (1:05)
  • Systematic bronchoscopy distinguishes posterior collapse from anterior compression; ~20% need both tracheopexy and aortopexy. (1:41)
  • Tracheomalacia is heterogeneous: posterior collapse differs from anterior aortic compression, requiring tailored surgical approach. (0:44)

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

  • Todd Ponsky — host
  • Ian Glenn — guest

Chapters

  • 0:00Introduction — Host Todd Ponsky introduces the segment and guest Ian Glenn, a research fellow completing his last day at Akron Children's Hospital.
  • 0:15Study Overview and Patient Population — Glenn describes a paper on posterior tracheopexy for severe tracheomalacia with posterior membranous intrusion, covering 98 patients evaluated by bronchoscopy. The technique involves pledgeted sutures attaching the posterior tracheal wall to the anterior longitudinal ligament of the spine.
  • 1:05Results and Clinical Implications — Study results showed improvement in clinical symptoms (cough, barking cough, noisy breathing, infections) and bronchoscopic findings. Exercise tolerance showed a trend but not statistical significance. Approximately 20% of patients required both posterior tracheopexy and aortopexy.
  • 1:54Discussion and Closing — The discussants note the novelty of the posterior tracheopexy technique and express interest in learning more about the surgical approach, including the need for visual documentation.

Key claims

  • 0:28The paper examined 98 patients who had severe tracheomalacia with posterior membranous intrusion — Ian Glenn
  • 0:35All patients underwent bronchoscopy showing the trachea tended to collapse inward from the posterior aspect — Ian Glenn
  • 0:44Anterior compression is from the aortic arch, while posterior compression is from collapse — Ian Glenn
  • 0:54Posterior tracheopexy uses pledgeted sutures to sew the posterior wall of the trachea to the anterior longitudinal ligament of the spine — Ian Glenn
  • 1:0588% of the 98 patients had esophageal atresia with or without TEF — Ian Glenn
  • 1:05Patients were followed anywhere from 1 week to 36 months — Ian Glenn
  • 1:15Clinical symptoms improved across the board, including cough, barking cough, noisy breathing, and infections — Ian Glenn
  • 1:25Patients improved on bronchoscopic evaluation — Ian Glenn
  • 1:30Exercise tolerance did not improve statistically but showed a trend towards improvement — Ian Glenn
  • 1:35Tracheomalacia is not one homogeneous disease — Ian Glenn
  • 1:41Systematic bronchoscopic evaluation is important for tracheomalacia — Ian Glenn
  • 1:45Some patients benefit from posterior tracheopexy, some from aortopexy or anterior approach, and some need both — Ian Glenn
  • 1:54Approximately 20% of patients in the study required both posterior tracheopexy and aortopexy — Ian Glenn

Open questions

  • Whether the paper includes images or detailed visual documentation of the posterior tracheopexy technique
  • The specific technical details of how to perform posterior tracheopexy
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.
Written for:

Posterior Tracheopexy: A Surgical Approach for Intrinsic Tracheal Collapse

The episode's main topic retold as a plain-language walkthrough — what it is, why it matters, and what the speakers concluded. Written by Kai from the episode transcript and reviewed before publishing.

For the care team · Explainer · AI-written, human-reviewed

Why This Exists

Tracheomalacia in children — particularly those born with esophageal atresia — has traditionally been understood as a problem of external compression 0:28. The aortic arch presses on the anterior tracheal wall, the airway narrows, and the child struggles to breathe 0:28. Aortopexy, which lifts the aorta off the trachea, became the standard fix 0:28. But a subset of patients continued to have symptoms after aortopexy, or never had anterior compression to begin with 0:44. Their tracheas collapsed from the inside out, the posterior membranous wall buckling inward during exhalation 0:35. Posterior tracheopexy emerged to address this distinct anatomic problem 0:44.

The Core Problem

In posterior tracheomalacia, the cartilaginous rings of the trachea remain structurally intact, but the posterior membranous wall — the soft tissue between the cartilage ends — lacks the rigidity to stay open under normal respiratory pressures 0:35. During forced exhalation, coughing, or crying, the membrane collapses forward into the airway lumen 0:35. This is not compression from an external structure; it is intrinsic weakness of the tracheal wall itself 0:35 0:44.

The clinical picture overlaps with anterior compression — chronic cough, barking cough, noisy breathing, recurrent respiratory infections — but bronchoscopy reveals the distinction 1:15. The collapse originates posteriorly, not from the aortic arch pressing anteriorly 0:44. In the study under discussion, a substantial majority of the patients had a history of esophageal atresia with or without tracheoesophageal fistula, a population known to have abnormal tracheal cartilage and membranous wall structure 1:05.

How the Approach Works

Posterior tracheopexy is a stabilization procedure, not a resection or reconstruction 0:54. The surgeon accesses the posterior tracheal wall — typically through a right thoracotomy — and places pledgeted sutures through the membranous wall, anchoring it to the anterior longitudinal ligament of the spine 0:54. The pledgets distribute tension and prevent the sutures from tearing through the soft tissue 0:54. The effect is mechanical: the posterior wall is held open against the vertebral column, preventing inward collapse during exhalation 0:54.

The procedure requires systematic bronchoscopic evaluation beforehand 1:41. Not all tracheomalacia looks the same 1:35. Some patients have pure anterior compression and need only aortopexy 1:45. Some have pure posterior collapse and need only posterior tracheopexy 1:45. Some have both, and a portion of patients in this series required both procedures 1:54. The bronchoscopy must be dynamic — performed with the patient breathing spontaneously or with controlled ventilation that mimics physiologic pressures — to see where the collapse actually occurs 1:45.

The outcomes in this series showed improvement across multiple clinical parameters: cough, barking cough, noisy breathing, and respiratory infections all decreased 1:05 1:15. Bronchoscopic findings improved, meaning the airway remained more patent under direct visualization 1:25. Exercise tolerance trended toward improvement but did not reach statistical significance 1:30.

Where Practice Remains Uncertain

The central insight of this work is that tracheomalacia is not a single disease 1:35. It is a syndrome with multiple anatomic subtypes, each requiring a different intervention 1:35. This is conceptually straightforward but operationally difficult 1:41. Bronchoscopy is operator-dependent 1:41. The distinction between anterior and posterior collapse can be subtle, particularly in patients with mixed pathology 1:45. There is no widely accepted grading system for severity or standardized criteria for when surgical intervention is warranted over conservative management 1:41.

The technique itself is not yet widely disseminated 0:54. Posterior tracheopexy is performed at a small number of centers with expertise in complex airway surgery 0:54. The learning curve is steep, the anatomy is unforgiving, and the consequences of technical error — injury to the esophagus, recurrent laryngeal nerve, or great vessels — are significant 0:54. The discussants noted the absence of detailed visual documentation in the published literature, which limits the ability of other surgeons to adopt the technique 0:54.

When to Involve This Team

Refer a child with suspected tracheomalacia to a pediatric airway surgery center when symptoms persist despite medical management or when the clinical picture suggests structural airway disease rather than reactive airway disease alone 1:41. Red flags include a barking, seal-like cough that does not respond to bronchodilators, recurrent croup-like episodes without viral prodrome, difficulty weaning from positive-pressure ventilation, or recurrent pneumonias in the same lung segment 1:15.

The key step is bronchoscopy, ideally performed by a surgeon or pulmonologist with expertise in dynamic airway evaluation 1:41. If posterior membranous intrusion is identified, posterior tracheopexy is the definitive treatment 0:54. If anterior compression is present, aortopexy may suffice 1:45. If both are present, both procedures may be required 1:45 1:54. The decision is made case by case, based on anatomy, not on symptom severity alone 1:41 1:45.

Takeaways from this story

  • Posterior tracheomalacia is intrinsic wall collapse, not external compression—bronchoscopy distinguishes it from aortic arch pathology.
  • Posterior tracheopexy anchors the membranous tracheal wall to the spine with pledgeted sutures, preventing inward collapse during exhalation.
  • Some patients need both posterior tracheopexy and aortopexy—systematic bronchoscopy is essential to identify mixed pathology.
  • Clinical symptoms (cough, infections, noisy breathing) and bronchoscopic findings improved after posterior tracheopexy in this series.

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