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Future endeavors can develop injectable biomaterial assisted cell therapy for minimally invasive treatment, and minimize cell damage during the entire procedure (e.g. gelation, injection, and retention), hence fully realize the synergistic effects of biomaterials for cell delivery, protection, and induction.
Some changes in SPLITT channel design are suggested to minimize cell damage.
The effects of Tanfloc addition, stirring, and floc storage time were considered to minimize cell damage and the release of MC-LR and proteins.
Given the success of these therapies to treat spinal cord injury, cartilage lesions, and cardiac disease, the development of new and improved cryprotectants that minimize cell damage during freeze-thawing and improve cell viability post-cryopreservation are urgently required.
Split-flow fractionation (SPLITT) is a family of techniques that separates in absence of labelling and uses very low flow rates and force fields, and is therefore expected to minimize cell damage.
In a previous study, we used mathematical predictions of cell membrane transport to guide the design of a procedure that varies the extracellular solution composition with time to provide the necessary concentration driving force for rapid glycerol removal while keeping the cell volume within osmotic tolerance limits to minimize cell damage.
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The results indicated that the EEDP-EEUP system was most suitable for the growth of shear-sensitive aerobic microorganisms, ensuring adequate mass transfer and minimizing cell damage.
These enzyme systems, through their conjugation reactions, play important roles in the metabolic inactivation of pharmacologically active substances, thus minimizing cell damage [ 85].
The goal of this study was to investigate the possibility of miniaturization of implantable recording electrodes to submicrometer dimensions while also minimizing cell damage.
Since a short incubation time was desirable to minimize cell death and damage to short-lived macromolecules, this minimal incubation time is considered an important advantage.
This is attributed to the activity of antioxidative enzymes to reduce H2O2 levels and therefore minimize the cell damage to membranes (Zhang et al. [2007b]).
More suggestions(15)
reduced cell damage
minimising cell damage
minimize cell cell
minimize cell adaptation
minimize cell maintenance
minimize cell sample
minimize cell stress
minimize cell viability
minimize cell leakage
minimize cell apoptosis
minimize cell toxicity
minimize formation damage
minimize cell culture
minimize cell heterogeneity
minimize cell growth
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