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Furthermore, we speculate that on a bacterial scale gradients along the short axis might be regulated by parameters such as cell width, reaction- and diffusion rates: "It is also unknown whether a similar gradient along the short axis of the cell is used in living cells, and which factors might contribute on the bacterial scale to regulate gradients along the short axis.
It is also unknown whether a similar gradient along the short axis of the cell is used in living cells, and which factors might contribute on the bacterial scale to regulate gradients along the short axis.
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Overall, the availability of precomputed bacterial genome-scale predictions would be highly beneficial.
For example, bacterial genome-scale models have been used to design strains that overproduce lycopene [ 23], lactate [ 24], succinate [ 25], 1,3-propanediol [ 26], hydrogen [ 20], L-valine [ 27] and L-threonine [ 28].
Moreover, other advantages with nano-sized tracking systems is that they can be used in aquatic ecosystems (i.e. in water) and that the same method can be applied to both consumer, e.g. zooplankton (mm-scale) and their algal, or even bacterial food (µm scale).
In the case of characterization of bacteria on growth media using light scattering the length scales of interest can be classified as micro-scale (single bacterium), macro-scale (bacterial colonies of more than 1012 bacterium that have passed through the exponential growth phase and reached mm size), and the intermediate or meso-scale of several tens of hundreds of bacteria.
Their abundance is equally impressive on a personal scale: Bacterial cells living in and on your body outnumber your own cells by a factor of 10.
We successfully sequenced low-nanogram scale bacterial and mammalian DNA samples on the 454 FLX and Solexa DNA sequencing platforms.
Gray panels are phase-contrast images of bacterial cells (white scale bar corresponds to 1 μm) and black panels show mCherry_PGRP-SA binding.
Gray panels show phase-contrast images of bacterial cells (white scale bar represents 1 μm) and black panels show mCherry_PGRP-SA binding.
Gray panels are phase-contrast images of bacterial cells (white scale bar represents 1 µm) and black panels show the mCherry_PGRP-SA binding to bacteria.
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