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Biomedical subjects

D W Hamilton

Publications and source records attributed to D W Hamilton.

At least 91 records · Page 5Linked to original sources

Organ culture of rat caput epididymal tubules in a perifusion chamber.

We have been able to culture caput epididymal tubules from rats by modifying an organ culture system (Orgebin-Crist et al, 1980) which was used to culture rabbit corpus epididymal tubule segments. The morphology of the epithelium was consistently good throughout seven days in culture, although sloughed epithelium was commonly seen during the first 24 hours. Evidence of this sloughing was much less frequent thereafter. Throughout seven days of culture, autoradiography of SDS-PAGE of luminal fluid obtained from tubules cultured in medium containing 14C-L-leucine showed incorporation into bands identical to those stained by Coomassie Blue. Rat epididymal alpha-lactalbumin was consistently localized on the luminal surface of the epithelium and the middle piece of the spermatozoa. Spermatozoa appeared to have normal morphology throughout the first three days in culture; thereafter, decapitated spermatozoa were frequently seen. Caput spermatozoa only quiver in place prior to culture, but after three days in culture, 53% of the spermatozoa from distal caput tubules are progressively motile upon dilution in a balanced salt solution. Since the transit time for spermatozoa in the caput epididymidis of the rat is approximately three days, it should be possible with this culture system to study maturational events involving interactions between spermatozoa and the epididymal epithelium.

Animals↗

Expression of crisp-1 mRNA splice variants in the rat epididymis, and comparative analysis of the rat and mouse crisp-1 gene regulatory regions.

The rat Crisp-1 gene encodes Protein DE (acidic epididymal glycoprotein; AEG), a glycoprotein secreted by the epididymal epithelium that associates with maturing sperm and has been implicated in the process of sperm-egg fusion. Previous characterization of the Crisp-1 messenger RNA in the rat epididymis has demonstrated the presence of 3 splice variants (Klemme et at, 1999). This study was undertaken to determine if expression of the Crisp-1 splice variants in the rat epididymis is region-specific and correlates with the region-specific pattern of synthesis of the D and E forms of the Crisp-1 protein. Expression of each of the splice variants was shown by RNase protection assays to be under the control of androgens, but they are not differentially regulated either within the epididymal segments or along the length of the organ. The reported structure of the mouse Crisp-1 gene does not include an exon that is equivalent to the rat exon 1, suggesting that the rat splice variants cannot exist in the mouse and may be specific to the rat. Furthermore, the mouse transcription start site is situated in a different region of the gene than in the rat. In this study, a comparison of the mouse and rat genes in the region flanking the mouse exon 1 and the rat exon 2 (within the rat intron 1) shows greater than 80% sequence identity, including the conservation of several putative androgen receptor binding sites. In addition, the rat gene is shown to have a corrupted TATA box in intron 1 that corresponds to the TATA box located in the mouse gene. These observations explain the preferential transcription for the mouse gene in this region, while the predominant start site for the rat gene is 5' of the upstream exon 1. Although an exon corresponding to the rat exon 1 has not been found in the mouse gene, reverse transcription-polymerase chain reaction experiments using mouse epididymal RNA suggest that such an exon exists in the mouse gene and is transcribed at low frequency.

Alternative Splicing↗

Use of neonatal tolerization and chemical immunosuppression for the production of monoclonal antibodies to maturation-specific sperm surface molecules.

Mammalian sperm acquire functional maturity as they move from the caput to the cauda epididymidis. Changes occur in the protein/glycoprotein composition of the sperm plasma membrane during this time, and may be essential to the maturation process. The production of monoclonal antibody (Mab) probes to the maturation-specific molecules has been difficult since new proteins comprise a minor portion of total membrane proteins. This report describes a protocol for enhancing the production of Mabs to maturation specific molecules. By injecting neonatal mice with caput epididymal sperm plasma membranes, in combination with chemical immunosuppression at adulthood, the mice were made tolerant to the antigens expressed on the caput sperm membranes. Subsequent immunization with cauda epididymal sperm plasma membranes allowed the production of Mabs to the maturation-specific moieties without the necessity for extensive antigen purification procedures. The majority of the resulting Mabs recognize cauda, not caput, epididymal sperm plasma membranes as determined by enzyme-linked immunosorbent assay (ELISA), immunocytochemistry on unfixed cells, and Western blot analyses, even though the protein profile from caput epididymal sperm plasma membranes is very similar to that from cauda membranes. The five Mabs described also recognize cauda fluid antigens, suggesting that the maturational changes on the sperm plasma membranes arise from interactions with the epididymal fluid. Use of the tolerization/immunosuppression protocol has provided Mab tools to assist in the study of sperm maturation during epididymal transit.

Animals↗