Vaginal vesicostomy for empyema of the defunctionalized bladder.
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Biomedical subjects
Publications and source records attributed to T D Allen.
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At mitosis the nuclear envelope (NE) is disassembled to allow chromosome separation. In telophase it is reassembled as the chromosomes decondense. Cell-free extracts of Xenopus eggs have been used extensively to study assembly of the NE and the nuclear pore complexes (NPCs), providing several models for the steps involved. The NE is a surface structure which in cell-free extracts is easily exposed. It is appropriate, therefore, to use a surface imaging technique to study NE dynamics. Field emission in-lens scanning electron microscopy (FEISEM) provides the opportunity to image surfaces, directly, and to visualise details of structures such as the NPC. Here we show the feasibility and value of FEISEM to study the steps of NE formation. Nuclei have been assembled in vitro and fixed at different time points during assembly, followed by conductive staining, platinum coating, and visualisation by FEISEM. Changes on the nuclear surface with time are shown. Details of the surface of chromatin and the cytoplasmic face of NPC structure are demonstrated without the need to isolate the structures from the nucleus.
Collagenous matrix in amnion accounts for most of the dry weight of the tissue and provides its mechanical strength and resistance to rupture. Cell and organ culture techniques have been utilized to study the influence of vitamin C upon the synthesis and deposition of extracellular matrix by cells of normal amnion at term. The cultures have been examined using light and electron microscopy and metabolic labelling. These studies show that both epithelial cells and fibroblasts of the deeper stromal layer are active in the production of fibrillar matrix at this time. Matrix deposition by epithelial cells in culture increases several-fold when the vitamin C concentration in the supernatant medium is increased from zero to 50 micrograms/ml, and, at the latter concentration, a continuous anastomosing fibrillar collagenous meshwork appears beneath the cells. This study thus provides new evidence that an adequate dietary supply of vitamin C is probably needed to maintain the strength of the chorioamnion.
We used Xenopus egg extracts to examine the effects of TPEN, a chelator with strong affinities for Zn2+, Fe2+, and Mn2+, on nuclear assembly in vitro. At concentrations above 1 mM, TPEN blocked the assembly of the nuclear lamina and produced nuclei that were profoundly sensitive to stress-induced balloon-like 'shedding' of nuclear membranes away from chromatin-associated membranes. TPEN-arrested nuclei were also defective for DNA replication, which could be explained as secondary to the lack of a lamina. Imaging of TPEN-arrested nuclei by field emission in-lens scanning electron microscopy (FEISEM) revealed clustered, structurally-perturbed nuclear pore complexes. TPEN-arrested nuclei were defective in the accumulation of fluorescent karyophilic proteins. All detectable effects caused by TPEN were downstream of the effects of BAPTA, a Ca2+/Zn2+ chelator that blocks pore complex assembly at two distinct early stages. Surprisingly, TPEN-arrested nuclei, but not control nuclei, remained active for replication in apoptotic extracts, as assayed by [32P]-dCTP incorporation into high molecular weight DNA, suggesting that TPEN blocks a metal-binding protein(s) required for nuclear destruction during programmed cell death.