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Once optimized, this process became independent of the concentration of serum anti-MCV and RF.
The present study optimized this process by selecting suitable basal media, microcarrier concentration and feeding regime to achieve higher cell yields and more efficient medium utilization.
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However, few tools are optimized for this process.
An optimized configuration of this process is developed based on the proposed partial optimization and global economical optimization.
The parameters including: pH = 8.5, amount of adsorbent (1.5 g), contact time (6 h) and temperature (25 °C) were considered as optimized conditions for this process.
Under optimized reaction conditions, this process tolerates a variety of α,β-unsaturated ketimines.
This process optimized values for the parameters in three steps: First, parameters { mA, sdA } were analytically computed from the means and standard deviations of two sets of control probes: a) on probes covering NC_004041 (p42d) which was absent from every tested strain, giving values { mA a, sdA a } or b) on constructor-designed random probes, giving values { mA b, sdA b }.
This optimized process is crucial to fabrication of PS/Ag CSSNs and their applications.
Compared to the previous integrated passive device processes, this optimized fabrication process is developed to further reduce the fabrication time and total fabrication cost and to greatly increase the RF performances.
This process was optimized using response surface methodology (RS M based on a five-level, two variable central composite rotatable design (CCRD).
This process was optimized and it was repeatable.
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