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1.
Braz. j. med. biol. res ; 46(9): 752-757, 19/set. 2013. graf
Article in English | LILACS | ID: lil-686571

ABSTRACT

One of the challenges of the postgenomic era is characterizing the function and regulation of specific genes. For various reasons, the early chick embryo can easily be adopted as an in vivo assay of gene function and regulation. The embryos are robust, accessible, easily manipulated, and maintained in the laboratory. Genomic resources centered on vertebrate organisms increase daily. As a consequence of optimization of gene transfer protocols by electroporation, the chick embryo will probably become increasingly popular for reverse genetic analysis. The challenge of establishing chick embryonic electroporation might seem insurmountable to those who are unfamiliar with experimental embryological methods. To minimize the cost, time, and effort required to establish a chick electroporation assay method, we describe and illustrate in great detail the procedures involved in building a low-cost electroporation setup and the basic steps of electroporation.


Subject(s)
Animals , Chick Embryo , Electroporation/economics , Electroporation/instrumentation , Electroporation/methods , Gene Expression Regulation/genetics , Gene Transfer Techniques/instrumentation , Electrodes , Equipment Design , Green Fluorescent Proteins
2.
Braz. j. med. biol. res ; 40(11): 1455-1464, Nov. 2007. ilus, tab
Article in English | LILACS | ID: lil-464306

ABSTRACT

The retina is a highly differentiated tissue with a complex layered structure that has been extensively characterized. However, most of the previous studies focused on the histology of the central retina while little is known about the cellular composition, organization and function of the marginal retina. Recent research has identified a subpopulation of multipotential progenitor cells in the marginal regions of the retina, closest to the ciliary body ("ciliary marginal zone"). These cells are capable of differentiation in response to an appropriate stimulus. Thus, it is possible that the structure and composition of the marginal retina are distinct from those of the central retina to accommodate the potential addition of newly formed neurons. To characterize the cellular profile of the chick marginal retina, we labeled it immunohistochemically for markers whose staining pattern is well established in the central retina: calbindin, calretinin, protein kinase C, and choline acetyltransferase. Calbindin was present at very low levels in the marginal retina putative photoreceptor layer. Calretinin-positive horizontal cells were also sparse close to the ciliary marginal zone. The bipolar cells in the marginal outer plexiform layer were positive for anti-protein kinase C antibodies, but the density of labeling was also decreased in relation to the central retina. In contrast, the marginal starburst cholinergic amacrine cell pattern was very similar to the central retina. From these data we conclude that the structure of the marginal retina is significantly different from that of the central retina. In particular, the expression of late retina markers in the marginal retina decreased in comparison to the central retina.


Subject(s)
Animals , Ciliary Body/cytology , Eye Proteins/analysis , Retina/chemistry , Retinal Ganglion Cells/cytology , Animals, Newborn , Biomarkers/analysis , Cell Proliferation , Chickens , Choline O-Acetyltransferase/analysis , Immunohistochemistry , Protein Kinase C/analysis , Retina/cytology , Retina/enzymology , /analysis
3.
Braz. j. med. biol. res ; 40(10): 1333-1338, Oct. 2007. ilus
Article in English | LILACS | ID: lil-461359

ABSTRACT

The dorsoventral axis of the eye is determined prior to optic cup invagination. A variety of signaling pathways have been implicated in the maintenance of the optic dorsoventral axis, including, but not limited to, bone morphogenetic protein 4, Sonic Hedgehog and retinoic acid. Here, we investigated the possible contribution of Wnt ligands to the establishment or maintenance of the optic axis by analyzing their expression pattern during early chick optic development. We performed in situ hybridization of Wnt-1, Wnt-3a, Wnt-4, and Wnt-5a during the optic vesicle, early optic cup and established optic cup stages and focused our analysis on the optic region. Our data showed that Wnt-5a, but none of the others, is expressed in the dorsal region of the eye starting from the Hamburger and Hamilton stage 14 (HH14). These results are supported by cryosections of the labeled optic region, which further reveal that Wnt-5a is expressed only in the dorsal retinal pigmented epithelium. Thus, we propose that Wnt-5a is a marker for dorsal retinal pigmented epithelium in chick embryos from HH14 to HH19.


Subject(s)
Animals , Chick Embryo , Female , Body Patterning , Eye/embryology , Wnt Proteins/metabolism , Eye/metabolism , In Situ Hybridization , Ligands , Signal Transduction
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