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R Lander

Publications and source records attributed to R Lander.

7 recordsLinked to original sources

Impact of engineering flow conditions on plasmid DNA yield and purity in chemical cell lysis operations.

Chemical lysis of bacterial cells using an alkaline solution containing a detergent may provide an efficient scalable means for selectively removing covalently closed circular plasmid DNA from high-molecular-weight contaminating cellular components including chromosomal DNA. In this article we assess the chemical lysis of E. coli cells by SDS in a NaOH solution and determine the impact of pH environment and shear on the supercoiled plasmid and chromosomal DNA obtained. Experiments using a range of plasmids from 6 kb to 113 kb determined that in an unfavorable alkaline environment, where the NaOH concentration during lysis is greater than 0.15 +/- 0.03 M (pH 12.9 +/- 0.2), irreversible denaturation of the supercoiled plasmid DNA occurs. The extent of denaturation is shown to increase with time of exposure and NaOH concentration. Experiments using stirred vessels show that, depending on NaOH concentration, moderate to high mixing rates are necessary to maximize plasmid yield. While NaOH concentration does not significantly affect chromosomal DNA contamination, a high NaOH concentration is necessary to ensure complete conversion of chromosomal DNA to single-stranded form. In a mechanically agitated lysis reactor the correct mixing strategy must balance the need for sufficient mixing to eliminate potential regions of high NaOH concentrations and the need to avoid excessive breakage of the shear sensitive chromosomal DNA. The effect of shear on chromosomal DNA is examined over a wide range of shear rates (10(1)-10(5) s(-1)) demonstrating that, while increasing shear leads to fragmentation of chromosomal DNA to smaller sizes, it does not lead to significantly increased chromosomal DNA contamination except at very high shear rates (about 10(4)-10(5) s(-1)). The consequences of these effects on the choice of lysis reactor and scale-up are discussed.

Biomedical Engineering↗

Massive cerebral calcifications associated with increased renal phosphate reabsorption.

Extensive bilateral cerebral cortical calcifications were demonstrated in a young patient with a history of convulsions since the age of 4 years. Initial metabolic workup showed normal serum calcium levels, hyperphosphatemia, normal renal function, low urinary calcium excretion, and normal serum immunoreactive parathyroid hormone levels. The intravenous infusion of edetate disodium (disodium EDTA) showed a normal phosphaturic and cyclic adenosine monophosphate response, ruling out the diagnosis of pseudohypoparathyroidism. The infusion of acetazolamide produced a blunted phosphaturia with almost no change in the renal phosphorus threshold, suggesting a tubular defect that allows enhanced proximal tubular reabsorption of phosphorus. Although the exact mechanisms responsible for the localized calcifications remain obscure, we suggest that an enhanced proximal tubular reabsorption of phosphorus could be involved in the pathophysiologic basis of this abnormality.

Absorption↗

Gaulin homogenization: a mechanistic study.

Free radical-based oxidation has been detected in the normal operating regime of the Gaulin homogenizer, demonstrating that cavitation occurs in this important industrial bioprocessing equipment. Free radical generation is suppressed by imposition of back pressure, proving that such cavitation occurs in the impingement section. The calculated value of the cavitation number is consistent with submerged jet cavitation, wherein a high-speed jet exiting from the valve gap accelerates fluid in the impingement region, creating the vacuum conditions for cavitation. Using polysaccharides as a model shear-sensitive compound, their breakage pattern in the homogenizer was characterized by molecular size and polydispersity and compared to those of fluid shear flows in capillary tubes and cavitating flow from a sonic horn. The results indicate that breakage occurs primarily by fluid shear, although a contribution by cavitation is also apparent when back pressure is applied. Because biological molecules can readily react with free radicals and the alterations caused thereby are subtle in nature, a thorough evaluation of the impact of free radicals in upstream homogenization is warranted.

Biopharmaceutics↗