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Tarigan, B.

Publications and source records attributed to Tarigan, B..

2 recordsLinked to original sources

Evidence of maternal resilience in two mouse strains in the context of permanent mouse breeding strategies

Breeding female mice represent an essential but often overlooked workforce sustaining biomedical research. Despite their central role, the physiological and behavioral consequences of repeated reproductive cycles have been poorly characterized, in part because breeding animals fall outside the primary focus of laboratory animal welfare efforts, and in part because meaningful welfare readouts for laboratory rodents remain an active area of research. Here we report findings from an exploratory phenotypic study designed to capture a composite picture of maternal health in female mice of two commonly used inbred strains, BALB/cByJ and C57BL/6J, exposed to one, two, or four consecutive cycles of pregnancy and lactation, with age-matched virgin females as controls. Assessments were conducted during the final lactation period and in the five weeks following weaning, spanning behavioral, metabolic, and physiological readouts selected for their known sensitivity to reproductive or environmental challenge. Repeated reproduction altered maternal physiology, most clearly in bone microstructure, which showed progressive and dose-dependent changes across parity levels, and more subtly in body mass, energy balance, and glucose homeostasis. Behavioral readouts of maternal motivation, by contrast, remained largely stable across reproductive load. Strain differences were pervasive, underscoring that reproductive adaptation is not uniform across standard laboratory models and cautioning against generalizing from a single strain. Together, the data suggest that mouse dams demonstrate considerable resilience under intensive breeding conditions, while also highlighting that breeding shapes the maternal body in ways that accumulate across reproductive cycles and deserve greater scientific attention.

physiology↗

Human Skin Model from 15 GHz to 110 GHz

In the recently revised guidelines for electromagnetic safety, basic restrictions expressed in terms of the absorbed power density (APD) at frequencies higher than 6 GHz were introduced. Testing for APD compliance of wireless devices requires experimental and numerical body models or phantoms that conservatively reproduce the absorption characteristics of human skin. Previous studies of APD indicate that frequency-dependent impedance-matching effects are caused by the low-permittivity stratum corneum (SC) layer. The objective of this study is to complement previous work (Christ et al., 2020) and to develop dispersive dielectric models to represent reflection and absorption of electromagnetic fields at the surface of the skin across a frequency range up to 110 GHz. The reflection coefficient of the skin of human volunteers was measured at frequencies of 15 to 43 GHz with open waveguide probes, complementing previous data from 45 to 110 GHz (Christ et al., 2020). The volunteers represented both sexes and different age groups and occupations; measurements were made at various regions of the body. The statistical analysis of the results show that the reflection coefficient follows a normal distribution in regions where the SC is relatively thin, which permits development of a conservative skin model that covers the 95th percentile of the tested population. As expected, in regions where the SC is thicker, e.g., the palms, the reflection coefficient is not normally distributed, because the thickness of the SC depends on the mechanical stress and friction to which the hands are exposed during routine daily activities. There was no evidence of relevant differences due to sex, but there is evidence for a slight age-dependent difference. The measured data - via fitting to the numerical model - allow the derivation of two-layer dielectric dispersive models that represent absorption and reflection at the surface of the skin with known uncertainty. The proposed models can be used to conservatively demonstrate compliance with the APD limits of wireless devices operating at frequencies of up to 110 GHz in any of the 5G and 6G bands defined. HighlightsO_LIbroadband evaluation of the skin reflection coefficient with open waveguide probes; C_LIO_LIcorroboration of increased absorption of millimeter wave radiation in body regions with increased stratum corneum thickness; C_LIO_LIdispersive dielectric models representing reflection and absorption at the skin surface with known population coverage. C_LI

bioengineering↗