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Biomedical subjects

T Myojo

Publications and source records attributed to T Myojo.

3 recordsLinked to original sources

Cell toxicity, hemolytic action and clastogenic activity of asbestos and its substitutes.

The cell toxicity, hemolytic and clastogenic activity were examined in various kinds of asbestos and some asbestos substitutes with reference to the their mineralogical and physicochemical characteristics. There were thirty-five fibrous and non-fibrous samples including UICC chrysotile, size-selected samples of UICC chrysotile, chrysotile altered by heating and grinding, Yamabe (Japan) chrysotile with long and short fibers, Coalinga (U.S. A.) chrysotile with short fibers, UICC crocidolite, amosite, and 19 non-asbestos samples such as, glass fibers, calcium silicates, sepiolites and some clay minerals. The cell toxicity and the hemolytic and clastogenic activity of asbestos were the strongest for chrysotile among all of the asbestos samples tested, and their strengths varied with fiber length and with the conditions of grinding and heating. These cellular effects of Yamabe chrysotile with long fibers and size-selected UICC chrysotile with long fibers were stronger than those of chrysotile of the same origin but with short fibers. These effects were weaker in chrysotile altered by heating and grinding. Among the asbestos substitutes, the cell toxicity, hemolytic and clastogenic activities of thin glass fibers were more marked than those of thick glass fibers. The four types of sepiolite were strongly hemolytic, but their cell toxicity and clastogenicity varied according to their grade of crystallinity and/or fiber size. These effects of calcium silicates and some clay minerals were generally low but varied with mineral species. In general, the cell toxicity, hemolytic and clastogenic activities of the asbestos substitutes tested here were mild compared with those of asbestos.

Animals

Breathing pattern simulation using slit/cam valve.

A breathing simulator was developed to reproduce the human breathing pattern. The simulator incorporated a newly designed slit/cam valve without piston/cylinder or bellows. This breathing simulator was able to separate airflow into expiration and inspiration without check valves. The separation of flow facilitated easy and precise measurements of the aerosol or gas concentrations in performance tests of respirator filters, exhalation valves, and whole respirators under cyclic flow conditions. The programmed motions of the single cam of the slit/cam valve produced all the patterns of sedentary, 208, 415, and 622 kg.m/min work rates presented in other research because the stepping motor driving the cam was controlled by microcomputer and the breathing patterns were stored in the computer memory. The breathing patterns generated by this simulator were smooth curves and reproduced the original curves very precisely. The breathing simulator is very small and can be utilized for testing protective equipment.

Equipment Design