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Increasing the proportion of dewatered aquaculture effluent to 10%% container volume provided optimal physical and chemical properties for tomato plant growth, but different tomato growth responses occurred when grown with specific combinations of substrate and water source.
The objective of this experiment was to evaluate tomato plant growth in response to different combinations of substrate and water sources and determine if dewatered aquaculture effluent could partially replace a commercial substrate while providing adequate nutrients for plant growth.
In addition, the design aspects of such systems often call for multi-material combinations of substrate and coatings for catering to various requirements such as electrical conductivity and wear resistance, which in turn enhance the susceptibility of these systems to galvanic corrosion.
Radioactive and fluorescence-monitored cleavage assays were carried out in a single-turnover condition with several combinations of substrate constructs and MgZ variants that had been used to characterize the structure of MgZ (see Figure S9 for results).
This suggests that creating a microenvironment that mimics in vivo conditions is feasible when appropriate combinations of substrate stiffness and extracellular matrices are used.
Alternatively, different combinations of substrate primers, to cope with possible enzyme preference for the substrate primer sequence, and reverse primers representing different telomere variants (supplementary table S2, Supplementary Material online) were used.
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Immediately after isolation, primary cells were incubated for 60 min with glucose (1mM), glutamate (1mM), [15N]ammonium chloride (5, 10, 20, or 40 mM), and 1 of 4 combinations of substrates (1 mM each) that could support urea synthesis [control, N-carbamoylglutamate (NCG); NCG + ornithine (ONCG); and ONCG + aspartate (AONCG)].
It also seems that the experimental yields decrease for combinations of substrates with lower theoretical yields.
Repeated syntheses and repeated measurement of wetting angle values Θ were conducted for those combinations of substrates (i.e. for those samples).
Briefly, each expansion step considers a rule in the system, finding all combinations of substrates in the relevant region that match the rule.
The combinations of substrates were governed by the Envision Alkaline Phosphatase (AP) polymer that was only available in anti-mouse form.
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