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C Matsui

Publications and source records attributed to C Matsui.

At least 37 records · Page 2Linked to original sources

Non-ketotic hyperglycinemia: an aim of the second generation of studies on pathogenesis.

Non-ketotic hyperglycinemia is caused by a molecular lesion involved in the glycine cleavage system and shows striking features representing the impaired central nervous system. For the study on molecular genetics of non-ketotic hyperglycinemia, we have isolated several cDNA clones, each encoding human glycine decarboxylase of H-protein, two of the four component enzymes of the glycine cleavage system. Although one of eight patients with this disease resulting from a lesion of glycine decarboxylase had the glycine decarboxylase gene deleted at a 5' region, they showed no common aberration detectable by glycine decarboxylase cDNA. Using the H-protein cDNA, we have demonstrated the rearranged structures, identified by one of the undetectable 5.0 and 5.5 kb SacI fragments, in the genomes of patients in whom there was an impaired expression of H-protein or glycine decarboxylase. The aberration of the 5.5 kb SacI fragment was associated with a defect of the 5.2 kb EcoRI fragment. Multiple genomic lesions are suggested for non-ketotic hyperglycinemia, and their implications in pathogenesis are discussed.

Amino Acid Metabolism, Inborn Errors↗

Gene transfer into intact plant cells by electroinjection through cell walls and membranes.

Tobacco mosaic virus (TMV) RNA was introduced directly into mesophyll cells of Nicotiana tabacum var. Samsun using electric-field pulses (electroinjection). The injected gene was successfully expressed in the recipient cells as judged by the assay for the virus coat protein using immunofluorescence and by the virus infectivity assay of the homogenate of the electroinjected cells for local lesions on tobacco leaves. As much as 50% of the cells that survived 24 days after electroinjection showed immunofluorescent specks.

Capsid↗

An ultrastructural study of the interaction of liposomes with plant protoplasts.

A one-step procedure using a mixture of glutaraldehyde and osmium tetroxide was devised to fix in situ large unilamellar liposomes of phosphatidylserine for transmission electron microscopy (TEM), since the conventional fixation method was found to be inadequate in this respect. The new fixation procedure enabled us to visualize the sequence of events in the interaction of liposomes with protoplasts from Vinca rosea suspension cultures in the presence of polyethylene glycol. Liposomes were thus found adhering to the surface of protoplasts, in association with invaginating plasmalemma, and within intracellular vesicles. These observations showed that liposomes enter plant protoplasts via endocytosis. Ultrastructural profiles indicating fusion of liposomes with protoplasts were not observed.

Cell Membrane↗