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Also, retinal microglia in this system display an extensively ramified morphology, a regularly-spaced and non-overlapping distribution [17], [18], as well as marked dynamic behavior [3], [4] that are similar to those documented in vivo [19], [20].
The key questions here are: (1) which of the above mentioned properties hold when discreteness and stochasticity are taken into account, (2) do these properties only hold at the single-cell level, or extend to multi-cell schemes implying a kind of biological ergodicity, and lastly (3) does this system display fold-change detection properties?
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In culture with mesenchymal stem cells and macrophages, this system displayed good cytocompatibility and significantly promoted cell proliferation.
However, this system displays significant electrocatalytic activity in base, an effect that has been attributed to a phenomenon known as pre-monolayer oxidation.
Voltammetry experiments revealed that this system displays a rich redox chemistry under N2, as [Re(BB2)(can3Cl] can be reduced by up to four electrons at modest potentials.
On heating, at high pressure, this system displays a rotator phase, in which the chains retain an all-trans conformation, and rotate as semi-rigid units.
As-cast, this system displayed extremely high yield strengths and elastic admissible strains, up to 1.4 GPa and potentially 1.48%, respectively.
These measurements indicate that this system displays the same wetting behavior and goes through the same sequence of wetting transitions under increasing pressures as those encountered for pure n-alkanes (e.g., n-pentane or n-hexane) under increasing temperatures.
Since this system displays fundamental characteristics of human telencephalon cortical development, it is a promising approach to study the pathogenesis of neurodevelopmental disorders.
Upon addition of pheromone, this system displays a more graded profile for MAPK output.
This system displays selective and differential degradations (Figure 5B) similar to the Plm-α2-AP system in the BCP (Figure 5A).
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