OPTOMETRY · SEMESTER 2 Ocular Embryology Ocular Anatomy and Physiology START READING NOTES Contents of This Topic Ocular Embryology CONTENTS CHAPTER 6: CHAPTER 12: THE EYEGLOBE NEURO-OPHTHTALMIC_ ANATOMY CHAPTER 1. DEVELOPMENTAL DISORDERS. OPTIC PITS Ciliary Body PUPILLARY MEMBRANE. ANTERIOR CHAMBER. VITREOUS OPTIC NERVE DEVELOPMENT OF OCULAR ADNEXA. NASOLACRIMAL SYSTEM Hyaloid Arterial System BLOOD VESSEL PERMEABILITY AND BARRIERS Ocular Embryology THE EYE BASIC ANATOMY AND PHYSIOLOGY MOSHI PREFACE This book is written to provide the Assistant Medical Officer- Ophthalmology , the Optometrist and the Ophthalmic nurse, with basic knowledge of anatomy and physiology of the eye. The practical application of anatomic facts to ophthalmology, has been emphasised throughout the book. Clinical problems requiring anatomic knowledge for their solution, are presented at the end of each chapter. Weare greatly indebted to the members of the Advisory Board, Allied Health Sciences School KCMC, for their moral and financial support. Ophthalmologists Moshi CONTENTS CHAPTER 1: CHAPTER 2: CHAPTER 3: CHAPTER 4: CHAPTER 5: CHAPTER 6: CHAPTER 7: CHAPTER 8: CHAPTER 9: CHAPTER 10: CHAPTER 11: CHAPTER 12: OCULAR EMBRYOLOGY THE ORBITAL CAVITY THE EYELIDS THE LACRIMAL_ APPARATUS THE EXTRAOQCULAR MUSCLES THE EYEGLOBE THE CORNEA AND THE SCLERA THE ANTERIOR CHAMBER THE UVEAL TRACT THE CRYSTALLINE LENS THE RETINA AND THE VITREOUS NEURO-OPHTHTALMIC_ ANATOMY AND PHYSIOLOGY 14 22 27 37 40 46 52 61 67 83 CHAPTER 1. OCULAR EMBRYOLOGY 1. INTRODUCTION. Developmentally and functionally the eye is an extention of the central nervous system. The human eye development commences in the 4" week of gestational age and the tissues that will constitute the human eye, are derived from: e surface ectoderm; e neural ectoderm; e neural crest; mesodermal mesenchyme. Embryologic Derivation of Ocular Structures Surface ectoderm gives rise to: + Lens + Corneal epithelium + Conjunctival epithelium and lacrimal glands + Epithelium of eyelids and cilia, meibomian glands, and glands of Zeis and Moll + Epithelium lining nasolacrimal system Neural ectoderm gives rise to: + Retinal pigment epithelium + Neural retina + Optic nerve fibers + Neuroglia + Epithelium of ciliary body + Epithelium of iris, including iris sphincter and dilator muscles Neural crest gives rise to: + Corneal stroma (which gives rise to Bowman’s layer) + Corneal endothelium (which gives rise to Descemet’s membrane) + Most (or all) of sclera + Trabecular structures + Uveal pigment cells + Uveal connective tissue + Vascular pericytes During the embryonic development of the eye, the final differentiation and sangerent of clare conta by numerous inductive and suppressive These interactions are mediated by specific elements; recently, three elements have been identified , as making very important contributions to the series of sequential events: e growth factors; ¢ homeobox (homeotic) genes; One particular gene that appears to be important in the development of ocular structures is the Pax-6 gene. As it influence the development of lens, cornea and conjuctiva e neural crest cells. 2. CHRONOLOGY OF OCULAR DEVELOPMENT AND COMMON DEVELOPMENTAL DISORDERS. As stated above, the eye embryologically develops parallel with the central nervous system. During the third week of embryonic development, the three primary germ layers— ectoderm, mesoderm, and endoderm— have formed the embryonic plate.4 (Of these three, only ectoderm and mesoderm will take part in the developing ocular structures.) A thickening in the ectoderm, visible on the dorsal surface of the embryo, forms the neural plate, which will give rise to the central nervous system, including ocular structures. In humans, the central nervous system differentiates from ectoderm. First, the neural plate develops (neural ectoderm), then the neural groove and the neural folds . Later the walls of the groove fuse, forming the neural tube. The developing central nervous system is now recognised as the neural tube. The ectoderm now lining the tube is neural ectoderm and that surrounding the tube is surface ectoderm, which differ both in anatomic location and in differentiation potentials By day 22 (embryological age) and embryo size 2-3 mm, the optic sulci develop on the neural folds; later the sulci become pits, then optic vesicles. At the same tim: , which contribute extensively to the development of the eye. These neural crest cells come to lie between the neural tube and the surface ectoderm Mery of the neural crest cells migrate away from the neural tube,and form Congenital and developmental anomalies that involve cells derived from the neural crest have been mer ssaent under the term Formed by the deepening of the optic pits, the optic vesicles are continuous with the neural tube, by optic stalks ( future optic nerve).The cavity of the hollow optic vesicle communicates with that of the forebrain.Later the optic vesicle invaginates to form the optic cup with its two layers. Optic cup Optic stalk Surface ectoderm Lens vesicle Choroid fissure Mesectoderm (Neural crest) Hyaloid artery Fig. 1.1. Diagrammatic representation of the : optic cup, lens vesicle, optic stalk and embryonic ( choroids) fissure. At about sper of seit n one te ize 4. it Gradually the lens placode invaginates and the lens vesicle is formed ( by day 29). im th 33, the lens vesicle Soar from T_T OPTIC PITS The optic pits form as indentations on both sides of the neural tube in the forebrain region even before the tube is completely closed. On approximately day 25, after the neural tube has closed, the optic pits form lateral sac- shaped extensions, the optic vesicles. Neural crest cells and mesoderm collectively make up the mesenchyme, from which the connective tissue of the globe and orbit develop. Mesodermal cells and neural crest cells appear similar cytologically. If the origin is uncertain, mesenchyme is cited as the germ layer. As the optic vesicle evaginates, the tissue joining the vesicle to the neural tube constricts, forming the optic GD ait with wes offic stalk. The cavity of the optic stalk, as well as that of the optic vesicle, is continuous with the space that will become the third ventricle. While the wall of the optic vesicle is in contact with surface ectoderm, it thickens and flattens to form the