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Biomedical subjects

Sonja Hermann

Publications and source records attributed to Sonja Hermann.

3 recordsLinked to original sources

Exploring sitting posture and discomfort using nonlinear analysis methods.

-The possibilities for describing sitting postural control using nonlinear methods was investigated during long-term driving. A total of 85 min of motorway driving intervals (n=12) were used for analysis. The results show that contrary to conventional analysis techniques, nonlinear measures were able to identify a threshold behavior describing the change in discomfort. Visual recurrence plots showed a clear change in the underlying dynamics after 1 hr of driving. The result was confirmed by the statistically significant differences in the stability and complexity of the COP time series, as explored using recurrence quantification analysis and spatio-temporal entropy. The findings of the experiment are consistent with the literature, and present a novel way to uncover transitions of discomfort stages in sitting behavioral research.

Adult↗

Driver monitoring--new challenges for smart sensor-based systems.

Decreased vigilance and fatigue are major factors accounting for driver error. Moreover, it is one of the most common causes of traffic accidents. The development and integration of non invasive systems to detect driver fatigue in real time is a challenging task for the near future. Smart systems promise new approaches to sensor development, signal processing and interpretation to asses the evolution of the physiological state of the driver. At the same time, however, driver monitoring should be realistic in terms of automotive constraints, price and robustness. Can smart materials meet those requirements? Issues involved in driver monitoring will be discussed and an overview of the demands placed on smart materials by the automotive environment will be given.

Accidents, Traffic↗

Modulation of scar tissue formation using different dermal regeneration templates in the treatment of experimental full-thickness wounds.

The recovery of skin function is the goal of each burn surgeon. Split-skin graft treatment of full-thickness skin defects leads to scar formation, which is often vulnerable and instable. Therefore, the aim of this study was to analyze wound healing and scar tissue formation in acute full-thickness wounds treated with clinically available biopolymer dermal regeneration templates. Full-thickness wounds (3 x 3 cm) on both flanks of Gottingen mini pigs (n= 3) were treated with split-thickness skin graft alone or in combination with a 1-ethyl-3-(3-dimethylaminopropyl)-carbodiimide (EDC) cross-linked-collagen scaffold, Integra, or a polyethyleneglycol terephthalate-polybutylene terephthalate (PEGT/PBT) scaffold. The wounds (n= 12 per group) were examined weekly for six weeks to evaluate graft take, contraction (planimetry), and cosmetic appearance. Histologic samples taken after one and six weeks were used to assess scaffold angiogenesis, biocompatibility, and scar tissue quality. In all wounds, one week postwounding graft take was between 93 and 100 percent. The control wound, treated with split-skin graft, showed little granulation tissue formation, whereas the EDC-collagen treated wounds showed two to three times more granulation tissue formation. The collagen scaffold was completely degraded within one week. The Integra and PEGT/PBT scaffolds showed angiogenesis only through two-thirds of the scaffold, which resulted in loss of integrity of the epidermis. Only basal cells survived, proliferated, and regenerated a fully differentiated epidermis within three weeks. Granulation thickness was comparable to collagen scaffold-treated wounds. After six weeks, control wounds showed a wound contraction of 27.2 +/- 6.1 percent, Integra-treated wounds 34.6 +/- 6.4 percent, collagen scaffold-treated wounds 38.1 +/- 5.0 percent, and PEGT/PBT scaffold-treated wounds 54.5 +/- 3.9 percent. The latter wounds had significantly more contraction than wounds of other treatment groups. Microscopically, the control and collagen scaffold-treated wounds showed an immature scar tissue that was two times thicker in the EDC-collagen treated wounds. The Integra-treated wounds showed nondegraded collagen scaffold fibers with partly de novo dermal tissue formation and partly areas with giant cells and other inflammatory cells. The PEGT/PBT scaffold was almost completely degraded. Scaffold particles were phagocytosized and degraded intracellularly by clusters of macrophages. The scar tissue was in the early phase of ECM remodeling. In conclusion, this study showed that the rate of dermal tissue formation and scarring is influenced by the rate of scaffold angiogenesis, degradation, and host response induced by the scaffold materials.

Animals↗