Examination of the Topographical Anatomy and Fetal Development of the Tendinous Annulus of Zinn for a Common Origin of the Extraocular Recti

Investigative Ophthalmology and Visual Science - Tập 60 Số 14 - Trang 4564
Tetsu Naito1, Kwang Ho Cho2, Masahito Yamamoto1, Hidetomo Hirouchi1, Gen Murakami1,3, Shogo Hayashi4, Shinichi Abe1
1Department of Anatomy, Tokyo Dental College, Tokyo, Japan
2Department of Neurology, Wonkwang University School of Medicine and Hospital, Institute of Wonkwang Medical Science, Iksan-si, Jeollabuk-do, Republic of Korea
3Division of Internal Medicine, Jikou-kai Clinic of Home Visits, Sapporo, Japan
4Department of Anatomy, School of Medicine, International University of Health and Welfare, Narita, Japan

Tóm tắt

Từ khóa


Tài liệu tham khảo

Morris H. Morris' Human Anatomy. Vol. 11. Philadelphia, PA: Blakiston; 1953: 1248.

Koornneef L. The development of the connective tissue in the human orbit. Acta Morphol Neerl Scand. 1976; 14: 263–290.

Koornneef L. New insights in the human orbital connective tissue. Arch Ophthalmol. 1977; 95: 1269–1273.

Sevel D. The origins and insertions of the extraocular muscles: development, histologic features, and clinical significance. Trans Am Ophthalmol Soc. 1986; 84: 488.

Kahkeshani K, Ward PJ. Connection between the spinal dura mater and suboccipital musculature: evidence for the myodural bridge and a route for its dissection—a review. Clin Anat. 2012; 25: 415–422.

Tawfik HA, Dutton JJ. Embryologic and fetal development of the human orbit. Ophthalmic Plast Reconstr Surg. 2018; 34: 405–421.

Naito M, Suzuki R, Abe H, Rodriguez-Vazquez JF, Murakami G, Aizawa S. Fetal development of the human obturator internus muscle with special reference to the tendon and pulley. Anat Rec (Hoboken). 2015; 298: 1282–1293.

Katori Y, Hyun Kim J, Rodríguez-Vázquez JF, Kawase T, Murakami G, Hwan Cho B. Early fetal development of the intermediate tendon of the human digastricus and omohyoideus muscles: a critical difference in histogenesis. Clin Anat. 2011; 24: 843–852.

Joo W, Yoshioka F, Funaki T, Rhoton AL Jr. Microsurgical anatomy of the abducens nerve. Clin Anat. 2012; 25: 1030–1042.

Grassi P, Strianese D, Mariniello G, Bonavolontà G. Delayed recovery of visual acuity after sphenoorbital meningioma surgical removal: case report and review of the literature. Is visual acuity recovery possible after an initial decline? J Neurol Surg A Cent Eur Neurosurg. 2015; 76: 328–331.

Ulutas M, Boyaci S, Akakin A, Kiliç T, Aksoy K. Surgical anatomy of the cavernous sinus, superior orbital fissure, and orbital apex via a lateral orbitotomy approach: a cadaveric anatomical study. Acta Neurochir (Wien). 2016; 158: 2135–2148.

Alzhrani GA, Gozal YM, Sherrod BA, Couldwell WT. A modified lateral orbitotomy approach to the superior orbital fissure: a video case report and review of anatomy. Oper Neurosurg (Hagerstown). 2019; 16: 685–691.

Ikawa F, Uozumi T, Kiya K, Arita K, Kurisu K, Harada K. Cavernous sinus meningioma presenting as orbital apex syndrome. Diagnostic methods of dynamic MRI, spoiled GRASS (SPGR) image. Neurosurg Rev. 1995; 18: 277–280.

Imaizumi A, Ishida K, Ishikawa Y, Nakayoshi I. Successful treatment of the traumatic orbital apex syndrome due to direct bone compression. Craniomaxillofac Trauma Reconstr. 2014; 7: 318–322.

Jin H, Gong S, Han K, et al. Clinical management of traumatic superior orbital fissure and orbital apex syndromes. Clin Neurol Neurosurg. 2018; 165: 50–54.