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In situ static compression of physiological magnitude was applied to the feline patellofemoral cartilage 16 weeks post-ACL-T and cartilage and chondrocyte deformation were evaluated by histomorphometry.
We demonstrate that a physiological magnitude of movement in vitro promotes the most normal progression of joint morphogenesis, and that either under-stimulation or over-stimulation has detrimental effects.
The purposes of this study were to quantify patellofemoral histology in the feline knee 67 months post-anterior cruciate ligament transection (ACL-T) and to apply an in situ static load of physiological magnitude to the articular cartilage and evaluate the resulting cartilage and chondrocyte deformation.
In the experiments reported here, a single 30-s period of dynamic loading engendering strains of physiological magnitude was sufficient to initiate a cascade of events culminating days later in measurable increase in bone formation.
More specifically, a number of studies have shown that the application of controlled loading regimens at physiological magnitude prevents the harmful effects of IL-1β by blocking the release of NO, PGE2 and matrix metalloproteinases, and restoring extracellular matrix production [ 10- 18, 38, 39, 45, 46].
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Low physiological magnitudes of biomechanical forces prevent phophorylation of TAK1 (TGF-β activating kinase), which in turn inhibits phosphorylation of IKK, resulting in attenuating further downstream NF-κB signaling cascade.
Previous studies from this laboratory have explored the relationships between physiological response magnitudes, behavioural performance measures, current arousal level, and activation (defined as task-related change in arousal) during a continuous performance task.
However, hyper-physiological high magnitude compression alone induced NF-κB nuclear translocation (Fig. 4Bv).
Adult populations were related, in magnitude and physiological time (day-degrees), to the subsequent nymphs, not to the preceding ones.
Our results also show that osteoblasts and osteocytes experience hydraulic pressures that differ by three orders of magnitude under physiological compressive strains.
The correlation of whisking strength to tactile sensitivity is based on a rule in physiological reflex that the magnitude of reaction is proportional to the sensitivity of sensory system under a given stimulation.
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