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Biomedical subjects

Y J Seto

Publications and source records attributed to Y J Seto.

8 recordsLinked to original sources

Direct power-frequency electric field effects on mammalian endocrine tissue.

A number of studies have investigated the in vivo biological effects of power-frequency electric fields (EF). Direct effects of EF on mammalian tissues, however, have rarely been reported. We now report that a 60-Hz EF can directly enhance the steroidogenic response of superfused rat adrenocortical tissue. The EF did not influence basal steroidogenic activity, however, the corticosterone response to 10 mU of ACTH was almost doubled by an unperturbed 1000 kV/m EF during the initial 2 hr of exposure and was enhanced fourfold by 5.5 to 7 hr of exposure with a 10 kV/m EF. Other EF intensities (e.g., 5 and 100 kV/m) were without effect at these times. Turning the 1000 kV/m EF on and off at 30-min intervals did not influence the initial enhanced steroidogenic response but did cause an additional two- to threefold elevation in the response following 5.5-7 hr of exposure. It is not clear what EF exposure parameters or mechanisms were primarily responsible for these bioeffects, but it appears that direct exposure of mammalian endocrine tissue to a 60-Hz EF is capable of significantly influencing important cellular processes.

Adrenal Cortex

Chronic 60-Hz electric field exposure-induced subtle bioeffects on hematology.

The effects of 120 days of high-intensity (80-kV/m) 60-Hz electric field exposure on hematologic constituents were investigated using a three-generation design including 135 field-exposed and 135 sham-exposed male Sprague-Dawley rats. Statistical tests performed included the multivariate analysis of variance, the univariate analysis of variance, and tests of simple effects. Total white cell count, lymphocyte count, and eosinophil count were significantly lower in field-exposed subjects; however, none of the red cell parameters differed significantly. The observed hematologic variations related to the exposure of a high-intensity electric field are consistent with those observed in animals responding to a mild stressor.

Analysis of Variance

60-Hz electric field alters the steroidogenic response of rat adrenal tissue, in vitro.

Exposure to a 60-Hz electric field at 10 kV/m but not at 5 kV/m, 100 kV/m or 1000 kV/m caused a highly significant, threefold elevation in the steroidogenic response of rat adrenal cortical tissue after the administration of 10 mU of adrenocorticotrophic hormone (ACTH) under in vitro, superfusion conditions. A 60-Hz electric field can directly influence the function of mammalian tissue in the absence of central-nervous-system mediation.

Adrenal Cortex

Pathological and physical investigations into CO2 laser - tissue interactions with specific emphasis on cervical intraepithelial neoplasm.

Laser tissue interactions were studied to relate the physical biothermal changes observed in treatment of cervical intraepithelial neoplasias. Confirmational changes in epithelium impacted with energies of 25 joules/cm2 were related to experimental and theoretical models. Analysis of cytology, histology, and SEM were compared to a mathematical model and experimental tissue model. The apparent distribution of vaporization and heating in cervical tissue was observed to be an oblate hemispheroid. This geometrical configuration was noted in power densities from 125 W/cm2 to 800 W/cm2. Comparison of the experimental and theoretical models confirmed this geometric heat distribution. Theoretical conclusions concerning destructive modality effectiveness and tissue healing can be deduced from this triple analytical model.

Carbon Dioxide

Electromagnetic induced kinetic effects on charged substrates in localized enzyme systems.

An analytical expression for the rate efficiency factor of planar localized enzyme systems is derived. The derivation takes into account the isothermal kinetic effect under the externally imposed perturbation of combined electrostatic and high frequency time-varying fields. The contribution of each individual field to the enzyme reaction is examined through the basic mechanism in which charged substrates interact with the specific perturbing field. The interaction mechanisms for the electrostatic and for the time-varying fields are found to be different. This difference regulates the different manners in which enzymatic reaction rates are altered. Enzymatic reactions under electrostatic perturbation can be retarded or enhanced depending on the field polarization. At sufficiently high field intensities the reaction rate may approach zero or approach a maximum value equal to the turnover number of the enzyme. Time-varying field perturbations, on the other hand, always enhance the enzymatic reactions if bunching effects are negligible. At sufficiently high field intensities, the reaction may approach a value equal to that of the free enzyme system. Several typical numerical examples on pure eletrostatic field perturbations, pure time-varying field perturbations, and combined field perturbations are also presented.

Electromagnetic Phenomena