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1.
用辣根过氧化物酶标记的ConA、WGA和RCA Ⅰ为探针,研究了小鼠发育期间角膜内糖残基的分布和变化。Man残基主要分布在角膜基质和内皮;SA残基主要存在于角膜上皮;Gal残基在角膜上皮和基质中都有分布。Man残基在出生前后的小鼠角膜基质中朝内皮方向呈现递增的梯度。SA和Gal残基随角膜发育最后在成体角膜上皮的外表而密集。胎龄13天是小鼠角膜成纤维细胞合成复合糖的起始时间。  相似文献   

2.
小鼠角膜发育期间胎球蛋白受体的定位   总被引:1,自引:0,他引:1  
徐云远  葛瑞昌 《动物学报》1993,39(3):322-325
用辣根过氧化物酶标记的胎球蛋白(Fet-HRP)为探针小鼠角膜发育期间胎球蛋白受体(RF)在光镜水平的定位和变化。结果表明:角膜上皮于胎龄11天出现RF,主要分布在细胞表面;角膜基质自胎龄13天出现RF,15天时最多,出生后减少;角膜内皮在胚胎期未发现RF。文中讨论了RF与角膜基质组建间的关系。  相似文献   

3.
The oligosaccharide chains of cell surface and extracellular matrix glycoconjugates are essential for the biological properties of these molecules. We have, therefore, investigated carbohydrate residues in the rat cornea using biotinylated lectin--gold probes. Fixed corneas were removed and embedded in Lowicryl HM20 or LR White. Ultrathin sections were incubated in one of the lectins: Triticum vulgare (WGA), Canavalia ensiformis (Con A), Griffonia simplicifolia (GS-1), Limax flavus (LFA) and Allomyrina dichotoma (Allo A), followed by streptavidin--gold, or the sections were incubated in cationic colloidal gold. Semi-quantification of gold labelling was determined for corneal endothelium, Descemet's membrane, stroma and epithelium from electron micrographs. WGA and Con A binding sites were expressed either moderately or strongly through out the cornea, suggesting a preponderance of alpha-mannose and N-acetylglucosamine residues. A particular concentration of these sugars was found in Descemet's membrane. In contrast, GS-1 (specific for alpha-galactose) and Allo A (specific for beta-galactose) labelled all regions weakly. Sialic acid residues, as defined by LFA labelling and the expression of neuraminidase-sensitive cationic colloidal gold binding sites, were sparsely distributed throughout the stroma, Descemet's membrane and endothelium. In contrast, sialoglycoconjugates were found in significant concentrations in the epithelium. Electron microscopy proved useful in providing new information on the cellular and subcellular localization of these lectin binding sites. © Chapman & Hall  相似文献   

4.
5.
An intact globe method was developed to determine the characteristics of the cornea of the bullfrog, Rana catesbeiana. With this method the anterior chamber could be perfused and the transcorneal potential difference (PD) and electrical resistance determined. It was found for the endothelium plus stroma (epithelium scraped) that the PD was essentially zero and the electrical resistance was only a small fraction of that of the intact cornea. Elevation of K+ or decrease in Cl- concentration in the anterior chamber produced in intact corneas a large and rapid change in PD while with the epithelium scraped (stroma and endothelium intact) these elevations produced a negligible change in PD. It is concluded that ions can rapidly move across the endothelium and stroma of the cornea.  相似文献   

6.
The involvement of nerves in the development of the avian cornea is poorly understood, primarily because the demonstration of corneal nerves has proved to be elusive. In the present study, the development of corneal innervation is demonstrated by the application of a modified Bodian staining technique (J. Lewis, 1978, Zoon, 6, 175–179). On the 6th day of embryonic development, numerous large fascicles of axons are observed arriving at the ventrotemporal aspect of the cornea, within the periocular mesenchyme. These fascicles subdivide into two distinct groups which migrate both ventrally and, more extensively, dorsally around the cornea. Progressive migration of nerve fascicles around the cornea occurs through the 7th and 8th days of development, and by the 10th day the cornea is ensheathed within a ring of nerves. Concomitant with ring formation, nerves are observed leaving the main nerve fascicles and migrating toward the cornea. Numerous nerve processes, which enter through the mid-stroma, are observed migrating toward the center of the 12th-day cornea. Innervation of the epithelium is detected on the 12th day, beginning at the periphery and increasing dramatically with development. Innervation of the epithelium is almost complete on the 16th day and penetration of nerves into the central stroma occurs on the 18th day of development. On the 16th day, the basal epithelial cells begin to demonstrate silver-staining properties. The levels of this staining increase with development, and in the hatchling the squamous cells demonstrate a characteristic silver-staining pattern. Innervation of the corneal endothelium is not observed. These results indicate that the avian cornea and its epithelium become innervated over the same developmental period in which the major transition from corneal opacity to transparency is achieved.  相似文献   

7.
花背蟾蜍蝌蚪变态期角膜发育的研究   总被引:5,自引:0,他引:5  
王子仁  仝允栩 《动物学报》1989,35(4):370-375
作者用光镜和电镜研究了花背蟾蜍蝌蚪变态期角膜的发育。在后肢发育晚期,内、外角膜在中央部位首先愈台,在完全变态期角膜完全愈合,此时角膜上皮细胞增殖,上皮基质变为Bowman’s膜,内、外角膜之间的成纤维细胞和由它分泌的胶原纤维形成角膜基质,内角膜细胞形成单层的角膜内皮,它与角膜基质间的Descemet’s膜最晚形成。  相似文献   

8.
The present study traces corneal morphogenesis in a reptile, the lizard Calotes versicolor, from the lens placode stage (stage 24) until hatching (stage 42), and in the adult. The corneal epithelium separates from the lens placode as a double layer of peridermal and basal cells and remains bilayered throughout development and in the adult. Between stages 32– and 33+, the corneal epithelium is apposed to the lens, and limbic mesodermal cells migrate between the basement membrane of the epithelium and the lens capsule to form a monolayered corneal endothelium. Soon thereafter a matrix of amorphous ground substance and fine collagen fibrils, the presumptive stroma, is seen between the epithelium and the endothelium. Just before stage 34 a new set of limbic mesodermal cells, the keratocytes, migrate into the presumptive stroma. Migrating limbic mesodermal cells, both endothelial cells and keratocytes, use the basement membrane of the epithelium as substratum. Keratocytes may form up to six cell layers at stage 37, but in the adult stroma they form only one or two cell layers. The keratocytes sysnthesize collagen, which aggregates as fibrils and fibers organized in lamellae. The lamellae become condensed as dense collagen layers subepithelially or become compactly organized into a feltwork structure in the rest of the stroma. The basement membrane of the endothelium is always thin. Thickness of the entire cornea increases up to stage 38 and decreases thereafter until stage 41. In the adult the cornea is again nearly as thick as at stage 38.  相似文献   

9.
The anterior segment of the vertebrate eye is constructed by proper spatial development of cells derived from the surface ectoderm, which become corneal epithelium and lens, neuroectoderm (posterior iris and ciliary body) and cranial neural crest (corneal stroma, corneal endothelium and anterior iris). Although coordinated interactions between these different cell types are presumed to be essential for proper spatial positioning and differentiation, the requisite intercellular signals remain undefined. We have generated transgenic mice that express either transforming growth factor (alpha) (TGF(alpha)) or epidermal growth factor (EGF) in the ocular lens using the mouse (alpha)A-crystallin promoter. Expression of either growth factor alters the normal developmental fate of the innermost corneal mesenchymal cells so that these cells often fail to differentiate into corneal endothelial cells. Both sets of transgenic mice subsequently manifest multiple anterior segment defects, including attachment of the iris and lens to the cornea, a reduction in the thickness of the corneal epithelium, corneal opacity, and modest disorganization in the corneal stroma. Our data suggest that formation of a corneal endothelium during early ocular morphogenesis is required to prevent attachment of the lens and iris to the corneal stroma, therefore permitting the normal formation of the anterior segment.  相似文献   

10.
During the development of the anterior segment of the eye, neural crest mesenchyme cells migrate between the lens and the corneal epithelium. These cells contribute to the structures lining the anterior chamber: the corneal endothelium and stroma, iris stroma, and trabecular meshwork. In the present study, removal of the lens or replacement of the lens with a cellulose bead led to the formation a disorganized aggregate of mesenchymal cells beneath the corneal epithelium. No recognizable corneal endothelium, corneal stroma, iris stroma, or anterior chamber was found in these eyes. When the lens was replaced immediately after removal, a disorganized mass of mesenchymal cells again formed beneath the corneal epithelium. However, 2 days after surgery, the corneal endothelium and the anterior chamber formed adjacent to the lens. When the lens was removed and replaced such that only a portion of its anterior epithelial cells faced the cornea, mesenchyme cells adjacent to the lens epithelium differentiated into corneal endothelium. Mesenchyme cells adjacent to lens fibers did not form an endothelial layer. The cell adhesion molecule, N-cadherin, is expressed by corneal endothelial cells. When the lens was removed the mesenchyme cells that accumulated beneath the corneal epithelium did not express N-cadherin. Replacement of the lens immediately after removal led to the formation of an endothelial layer that expressed N-cadherin. Implantation of lens epithelia from older embryos showed that the lens epithelium maintained the ability to support the expression of N-cadherin and the formation of the corneal endothelium until E15. This ability was lost by E18. These studies provide evidence that N-cadherin expression and the formation of the corneal endothelium are regulated by signals from the lens. N-cadherin may be important for the mesenchymal-to-epithelial transformation that accompanies the formation of the corneal endothelium.  相似文献   

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