Adachi-Williams type CG plus type H aortic arch anomaly and implications for development of cervicothoracic

Masaharu Yoshihara1, Yoshitoku Watabe2, Momo Morikawa2

  • 1Ibaraki Prefectural University of Health Sciences, Ibaraki, Japan. yoshihara.masahar.ly@alumni.tsukuba.ac.jp.

Folia Morphologica
|October 10, 2024
PubMed

Insights

This study reports a rare Adachi-Williams type CG plus H aortic arch anomaly. Findings suggest proximal and distal vasculature develop independently, adapting to anomalies in a fine-tuned manner.

Area of Science:

  • Anatomy
  • Embryology
  • Vascular Biology

Background:

  • The relationship between subclavian artery development and its proximal segments is unclear, influenced by hemodynamic stress during great vessel formation.
  • Anomalies in aortic arch branches, like the vertebral artery, can impact subclavian artery development.
  • Limited reports of complex proximal and distal branching morphologies hinder understanding.

Purpose of the Study:

  • To report a rare Adachi-Williams type CG plus H aortic arch anomaly.
  • To discuss the developmental implications for cervicothoracic circulation.
  • To investigate the potential independence of proximal and distal vasculature development.

Main Methods:

  • Case report of an aberrant right subclavian artery arising distally from the aorta with a retroesophageal course.
  • Identification of Adachi-Williams type H (carotid trunk) and type CG (left vertebral artery origin).
  • Examination of branching arteries from the aberrant right subclavian artery and associated nerves.

Main Results:

  • An aberrant right subclavian artery originated distal to the left subclavian artery, with a retroesophageal course.
  • The right and left common carotid arteries arose from a common carotid trunk (Adachi-Williams type H).
  • The left vertebral artery arose directly from the aortic arch (Adachi-Williams type CG).
  • Distal branching morphology of the aberrant right subclavian artery was normal.
  • The right vagus nerve innervated laryngeal muscles directly, bypassing recurrent nerve formation.

Conclusions:

  • Aberrant right subclavian artery may influence hemodynamic stress in proximal and distal anterior limb regions.
  • Normal distal branching suggests independent development of proximal and distal vasculature.
  • The rare concomitance of Adachi-Williams types CG and H suggests a fine-tuned, adaptive development of distal arteries in response to proximal anomalies.
Abstract

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