Literature DB >> 35692089

A giant foramen of Vesalius: case report.

Charles Peper1, Joe Iwanaga2,3,4, Aaron S Dumont2, R Shane Tubbs2,3,5,6,7,8,9.   

Abstract

Anatomical variations identified at the skull base can result in challenges to the clinician. For example, the anatomy of the foramen ovale and its neighboring structures is critical knowledge for the surgeon who performs transcutaneous approaches to the foramen ovale for treating patients with trigeminal neuralgia. One nearby structure that can compound invasive procedures and potentially result in complications is the foramen of Vesalius. Although usually small, we report a giant foramen of Vesalius found in an adult female skull. The anatomy and clinical aspects of such a finding are discussed and related to other reports in the literature.

Entities:  

Keywords:  Anatomical variations; Anatomy; Cadaver; Foramen of Vesalius

Year:  2022        PMID: 35692089      PMCID: PMC9519767          DOI: 10.5115/acb.22.017

Source DB:  PubMed          Journal:  Anat Cell Biol        ISSN: 2093-3665


Introduction

The foramen of Vesalius (sphenoidal emissary foramen) is a variable and small bony passage located between the foramen ovale and foramen rotundum in the greater wing of the sphenoid bone [1-4]. It lies anteromedial to the foramen ovale and inferolateral to the foramen rotundum unilaterally or bilaterally. Andreas Vesalius was presumably the first anatomist to describe this structure foramen which gives transmits emissary veins from the pterygoid venous plexus to the cavernous sinus. This venous connection represents an important extra to intracranial anastomosis connecting the venous systems of the face and brain. Reviews of studies of dry specimens show between 5% and 80% of skulls contain at least one foramen of Vesalius [1, 2]. Endochondral ossification of the skull base takes place through a series of “primary” ossification centers which arise in a general caudal to rostral pattern beginning with ossification centers in the occipital bone and at lastly developing ossification centers in the alisphenoid giving rise to the greater wing of the sphenoid bone. These centers of ossification arise between 12 and 17 weeks of development [5]. The positions of pre-existing vessels are progressively fixed by the ossification of the skull base, and reciprocally, the foramina of the skull base are positioned in accordance with their contained vessels. Emissary sphenoidal veins occupy this role relative to when present, the foramen of Vesalius [1, 2]. Some have also considered that when present, the foramen of Vesalius transmits the venous component normally found traveling through the foramen ovale [6]. Here, we describe, to our knowledge, the largest foramen of Vesalius reported in the English literature and describe the potential clinical consequences of such a finding.

Case Report

During the routine evaluation of an adult female skull housed in the osteological collection of our medical school, a large foramen of Vesalius was identified (Fig. 1). The specimen was approximately 50-year-old at the time of death and was derived from a collection of roughly 100 human skulls from primarily a North American background. This roughly circular shaped foramen of Vesalius was 4.34 mm in diameter and was located 7.5 mm posteromedial to the foramen rotundum and 1.49 mm anteromedial to the foramen of ovale. This foramen was 2.6 mm anterior to the foramen lacerum. The contralateral foramen of Vesalius measured 0.92 mm in diameter. No other gross anatomical variations were noted at the skull base in this specimen. All measurements were made using microcalipers (Mitutoyo, Kawasaki, Japan).
Fig. 1

Skull base of the case presented herein. Note the enlarged foramen of Vesalius (arrow) and its relationship to surrounding skull base foramina such as the foramen ovale (FO), foramen lacerum (FL), foramen spinosum (FS), and foramen magnum (FM) seen here posterolaterally.

Discussion

Morphometric studies of foramen of Vesalus have documented mean widths of 0.67–2.22 mm when measured across their maximum dimension [1]. The specimen presented here had a diameter (4.34 mm) that was approximately twice the maximally reported mean diameter found in the literature. Most studies do not show a significant difference in size between left and right foramina Vesalli. A large foramen of Vesalius, such as the variant described in this study, has the potential to disorient a clinician passing a needle through the nearby foramen ovale into the middle cranial fossa as the foramina are seen in the operating room using fluoroscopy [6, 7]. Therefore, the quality of visualization of the skull base foramina is generally moderate at best. Such procedures are used for rhizotomy of the trigeminal nerve, temporal lobe electrode placement, balloon deployment to treat trigeminal neuralgia i.e., compression of the trigeminal ganglion, or cavernous sinus tumor biopsy [8-11]. In attempt to avoid surrounding foraminal during transcutaneous needle approaches to the foramen ovale, Tubbs et al. [9], described a “safe zone” of the foramen ovale extending 6 mm around the circumference and excluding the entire territory around the foramen spinosum posterolaterally. If intraoperative imaging fails to resolve a small bony bridge separating a large and nearby foramen of Vesalius and the foramen ovale, a clinician will be at greater risk of passing their needle too medially, potentially injurying the cavernous sinus or at least, the emissary vein traveling through the foramen of Vesalius. This would be compounded by an enlarged foramen of Vesalius as reported here. The distance between the foramen ovale and the enlarged foramen of Vesalius in our specimen was only 1.49 mm. Although there will be a protective effect from cartilage filling the foramen lacerum, the ICA is also at risk of damage if the needle passes more than 6 mm medial to the foramen ovale [9, 11]. Our case helps illustrate the wide variation in morphology of an inconsistent foramen found near significant clinical anatomy of the skull base. Clinicians and surgeons should be mindful of variations such as the enlarged foramen of Vesalius reported here when attempting transcutaneous puncture of the foramen ovale.
  10 in total

Review 1.  Common surgical pitfalls in the skull.

Authors:  Semih Keskil; Rabet Gözil; Engin Calgüner
Journal:  Surg Neurol       Date:  2003-03

2.  Regional vascular relationships to the foramen ovale: an anatomical study with application to approaches to the external skull base with an emphasis on transcutaneous procedures for the treatment of trigeminal neuralgia.

Authors:  R Shane Tubbs; Joshua Dixon; Marios Loukas; Aaron A Cohen-Gadol
Journal:  J Neurosurg       Date:  2010-09       Impact factor: 5.115

3.  Review of complications due to foramen ovale puncture.

Authors:  Metin Kaplan; Fatih Serhat Erol; Mehmet Faik Ozveren; Cahide Topsakal; Bulent Sam; Ibrahim Tekdemir
Journal:  J Clin Neurosci       Date:  2006-12-13       Impact factor: 1.961

4.  A morphologic and morphometric study of foramen vesalius in dry adult human skulls of gujarat region.

Authors:  Binita B Raval; Praveen R Singh; Jaba Rajguru
Journal:  J Clin Diagn Res       Date:  2015-02-01

Review 5.  Percutaneous Biopsy of Lesions in the Cavernous Sinus: A Systematic Review.

Authors:  Marcos Dellaretti; Júlio César de Almeida; Warley Carvalho da Silva Martins; Marcello Penholate Faria
Journal:  World Neurosurg       Date:  2017-08-24       Impact factor: 2.104

6.  Anatomic Study of Extracranial Needle Trajectory Using Hartel Technique for Percutaneous Treatment of Trigeminal Neuralgia.

Authors:  Joe Iwanaga; Filippo Badaloni; Tyler Laws; Rod J Oskouian; R Shane Tubbs
Journal:  World Neurosurg       Date:  2017-11-22       Impact factor: 2.104

7.  MR, CT, and plain film imaging of the developing skull base in fetal specimens.

Authors:  W R Nemzek; H A Brodie; S T Hecht; B W Chong; C J Babcook; J A Seibert
Journal:  AJNR Am J Neuroradiol       Date:  2000-10       Impact factor: 3.825

8.  Anatomical relationship between the foramen ovale and the lateral plate of the pterygoid process: application to percutaneous treatments of trigeminal neuralgia.

Authors:  Joe Iwanaga; Apurba Patra; Kumar Satish Ravi; Aaron S Dumont; R Shane Tubbs
Journal:  Neurosurg Rev       Date:  2022-01-15       Impact factor: 3.042

9.  Acknowledging the use of human cadaveric tissues in research papers: Recommendations from anatomical journal editors.

Authors:  Joe Iwanaga; Vishram Singh; Aiji Ohtsuka; Youngil Hwang; Hee-Jin Kim; Janusz Moryś; Kumar Satish Ravi; Domenico Ribatti; Paul A Trainor; José Ramón Sañudo; Nihal Apaydin; Gülgün Şengül; Kurt H Albertine; Jerzy A Walocha; Marios Loukas; Fabrice Duparc; Friedrich Paulsen; Mariano Del Sol; Philip Adds; Ahmed Hegazy; R Shane Tubbs
Journal:  Clin Anat       Date:  2020-09-09       Impact factor: 2.414

10.  Occurrence of the foramen of Vesalius and its morphometry relevant to clinical consideration.

Authors:  Vipavadee Chaisuksunt; Lanaprai Kwathai; Kritsana Namonta; Thanaporn Rungruang; Wandee Apinhasmit; Supin Chompoopong
Journal:  ScientificWorldJournal       Date:  2012-05-02
  10 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.