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Biomedical subjects

N Yamanaka

Publications and source records attributed to N Yamanaka.

At least 19 recordsLinked to original sources

Elevation of serum lipid peroxide level associated with doxorubicin toxicity and its amelioration by [dl]-alpha-tocopheryl acetate or coenzyme Q10 in mouse (doxorubicin, toxicity, lipid peroxide, tocopherol, coenzyme Q10).

Elevations of serum lipid peroxide levels were demonstrated in mice after an equitoxic dose of doxorubicin. When BDF1 mice were injected with doxorubicin (20 mg/kg body weight, IP), lipid peroxide levels in sera were elevated 1 day after the injection and the levels declined on subsequent days. 5-Fluorouracil (400 mg/kg body weight, IP) never changed the peroxide levels in serum. Furthermore, it was found that the co-administration of [dl]-alpha-tocopheryl acetate or coenzyme Q10 IM strongly inhibited the doxorubicin-induced elevation of lipid peroxides in serum. The effectiveness of [dl]-alpha-tocopheryl acetate or coenzyme Q10 in reducing the lethality of doxorubicin in mice was also confirmed. These results indicate that the measurement of serum 2-thiobarbituric acid-reacting substances provided a useful measurement of lipid peroxide levels, which may be involved in some way with doxorubicin toxicity, and that the administration of antioxidants provide protection against some of the side effects of doxorubicin.

Animals

Detection of human B cells and chronic myelocytic leukemic cells by rosette formation with sheep erythrocytes and fresh human sera.

A new method of detecting the C3b receptor is reported. A particular merit of this method is that anti-RBC rabbit antiserum is not required. Rosettes were formed with human B lymphocytes, B lymphoblasts and granulocytes, using sheep erythrocytes (SRBC) sensitized with fresh human serum (FHS). T lymphocytes and T lymphoblasts did not form rosettes. The percentage of cells forming rosettes with this method approximated the percentage of rosettes formed with EACm. However, FHS coated SRBC did not react with most cells of B cell type chronic lymphocytic leukemia (CLL), whereas EACm rosette formations showed a definite reaction. On the other hand, 34--58% of cells of chronic myelocytic leukemia (CML) bound with the indicator red cells. SRBC sensitized with fresh rabbit or guinea pig serum formed rosettes with PBL, tonsil cells, B lymphoblasts and granulocytes. Complement and IgM antibody were required for this reaction, as in EAC rosette formation.

Absorption

Increase of superoxide dismutase activity in various human leukemia cells.

(1) Superoxide dismutase activity in polymorphonuclear cells from human blood is considerably lower than that in lymphocytes. Macrophages from ascites show the middle level between the other two cells. (2) In myelocytic, monocytic, and lymphocytic leukemia cells, the enzyme activities are increased compared to those in the corresponding normal cells. (3) Gel electrophoresis patterns of all normal cells reveal bands corresponding to the cytosol and mitochondrial bands reported in previous studies. However, the mitochondrial Mn-containing superoxide dismutase activities are diminished or absent in leukemia cells. CN-insensitive superoxide dismutase activity in leukemia cells is not detected under the conditions.

Humans

A study of surface markers in acute lymphocytic leukemia by using anti-T and anti-B lymphocyte sera.

Cell surface markers of 21 cases of acute lymphocytic leukemia (ALL) were studied with various surface markers, especially by using anti-human B lymphocyte serum (ABS), anti-human thymocyte serum (ATS-T) and anti-human peripheral T lymphocyte serum (ALS-T) which were rendered specific for human B lymphocytes, human thymocytes and human peripheral T lymphocytes. The proportion of cell types in ALL was null cell leukemia 38%, B cell leukemia 38% and T cell leukemia 24%, respectively. T-ALL cells were reactive to ATS-T but not to ALS-T, a fact which suggests their thymic origin. It should be noted that these anti-lymphocyte sera detected T or B marker antigens, even when other markers showed negative. Twelve patients with ALL were also investigated from their clinical pictures. Patients with B cell leukemia had severe signs of anemia and a higher grade of hepato-splenomegalies than other types in ALL. Patients with T cell leukemia were in older age levels and had a poorer prognosis.

Adolescent

Experimental results with the combination of bleomycin plus mitomycin C.

This investigation has established the following: 1. Bleomycin, in combination with mitomycin C or other quinone-containing anticancer agents, stimulated the damage to KB cells in culture. 2. In AH66 tumor-bearing rats, the simultaneous treatments of bleomycin plus mitomycin C extend the lifespan. 3. The bleomycin-induced DNA chain breakage was enhanced by the NADPH-dependent microsomal electron transport system. The enhancement was also observed at the level of isolated nuclei and cells. Vitamin K2 and mitomycin C increased breakage at the cellular level by bleomycin and NADPH. 4. Bleomycin-Cu2+ had tendency to increase the lipid peroxidation reaction by the microsomes. However, the reaction was effectively inhibited by antioxidants. 5. Bleomycin induced aldehyde formation from DNA breakage. The formation was effectively inhibited by scavenging reactions with hydralazine hydrochloride or isoniazid. The possibility of suppressing the side effect of bleomycin was discussed in relation to TBA reactive compounds.

Antibiotics, Antineoplastic

Enhancement of DNA chain breakage by bleomycin A2 in the presence of microsomes and reduced nicotinamide adenine dinucleotide phosphate.

Chain breakage in DNA induced by bleomycin A2 (BLM) was enhanced more than 150-fold by the reduced nicotinamide adenine dinucleotide phosphate-dependent electron transport system of rat liver microsomes. However, the enhancement effect on DNA was partially reduced by the preincubation of BLM with the microsomal systems. BLM-Cu2+ was found to stimulate considerably microsomal reduced nicotinamide adenine dinucleotide phosphate-dependent oxygen consumption and malondialdehyde formation, whereas BLM inhibited both of the effects. These findings suggest that the pharmacological action of BLM is strongly affected by a membrane system, such as microsomes, that produces free radicals.

Animals

Identification of human peripheral T cell antigens.

A new type of differentiation antigens on human T cells was demonstrated by using a heterologous anti-human T cell serum (ATS). This type of antigen, referred to as human peripheral T cell antigen (HPTA), was found on peripheral T cells and medullary thymocytes, but not on cortical thymocytes and B cells. The percentage of ATS-reactive lymphocytes in human peripheral lymphoid organs was correlated with that of cells rosetting with sheep erythrocytes, but contrasted with the number of B cells defined by the presence of a complement (C) receptor or by rabbit anti-human B cell serum (ABS). ATS also reacted with T cells purified by nylon fiber column filtration but ABS did not. Chronic lymphocytic leukemia cells rosetted with either sheep erythrocytes or erythrocyte-antibody-complement complexes were lysed by ATS and ABS, respectively. Mitogenic responses of blood lymphocytes to phytohemagglutinin (PHA) and concanavalin-A (Con A) were abrogated by treating them with ATS and C, whereas ABS suppressed only their response to Con A. Although numerous thymus cells rosetted with SRBC, only 14% were reactive with ATS. Quantitative absorption studies demonstrated that HPTA content of the thymus cells was much lower than that of lymph node cells. Anatomical localization of ATS-reactive lymphocytes in human lymphoid organs studied by immunofluorescence indicated that they were present in the thymus-dependent paracortical areas of lymph node and in the medullary region of thymus. ABS, on the other hand, did not stain thymocytes but reacted selectively with the cells located in the lymphoid follicles of lymph node. These data, together with that from cell suspension studies, confirmed that HPTA were shared between medullary thymocytes and peripheral T cells.

Antigens