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Use of the HPRT gene and the HAT selection technique in DNA-mediated transformation of mammalian cells: first steps toward developing hybridoma techniques and gene therapy.

In 1956, I decided to apply my experience in microbial genetics to developing analogous systems for human cell lines, including the selection of mutants with either a loss or gain of a biochemical function. For instance, mutants resistant to azahypoxanthine showed a loss of the HPRT enzyme (hypoxanthine phosphoribosyl transferase), whereas gain of the same enzyme was accomplished by blocking de novo purine biosynthesis with aminopterin, while supplying hypoxanthine and thymine (HAT selection). Using HAT selection, we: (i) genetically transformed HPRT- mutant cells to HPRT+ wild type by using DNA extracted from HPRT+ cells, and (ii) selected HPRT+ hybrid cells by fusing HPRT- D98/AH2 cells with skin cells. These approaches, which we dubbed in 1962 as a 'first step toward gene therapy', contributed to the later development of (i) cell fusion techniques, (ii) the development of monoclonal antibodies, (iii) routine transformation of mammalian cells with cloned genes, and (iv) methods for creating transgenic organisms.

Animals

Amplification and expression of foreign genes in cells producing polyoma virus large T-antigen.

Polyoma virus (Py) large T-Antigen (LT) can promote the amplification of viral genomes integrated in the chromosomal DNA of rat fibroblasts, and this phenomenon requires the interaction of the LT protein with the viral origin of DNA replication. To compare the rate and the modality of selectable amplification events promoted by the Py LT with cellular-driven events, we constructed a double expression vector containing a murine dihydrofolate reductase (dhfr) cDNA and the bacterial chloramphenicol acetyl transferase (cat) gene controlled by the viral regulatory region. The plasmid was introduced into a rat cell line constitutively producing a temperature sensitive LT (cl 2), and clones were selected in low concentration of methotrexate (MTX). Three cl 2 transformants and one control cell line lacking LT were propagated at temperatures permissive (33 degrees C) and non permissive (39 degrees C) for LT function and, subsequently, challenged in one step with high MTX dosage at 39 degrees C. While the control line produced the same number of colonies irrespective of the temperature of propagation, the three LT positive lines yielded between 2 and greater than 100 times more colonies following propagation at permissive temperature, indicating that the presence of Py LT considerably increased the rate of amplification of integrated sequences linked to the viral origin of replication. In all cases the amplification event involved the exogenous and not the endogenous dhfr gene, and overexpression of the cat gene occurred as a result of co-amplification with the selectable dhfr sequences. Analysis of the structure of the amplified domain in the various resistant derivatives revealed that, in the presence of the viral protein, amplification occurred within the boundaries of the primary plasmid insert. In the absence of a functional LT protein, amplification both internal or involving adjacent host DNA were observed.

Animals

Phosphorylation and dephosphorylation of soluble proteins in human eosinophils.

The effect of phorbol 12-myristate 13-acetate (PMA), calcium ionophore (A23187), opsonized zymosan (OZ), and N-formylmethionyl-leucyl-phenylalanine (f-Met-Leu-Phe) on protein phosphorylation was examined in purified eosinophils (eos) isolated from human peripheral blood. Eos were prelabeled with [32P]orthophosphate, stimulated with several activating agents for varying periods of time. The soluble proteins were then analyzed by one-dimensional sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) and autoradiography. In resting eos, there was phosphorylation of endogenous soluble proteins with molecular weights of 12, 16, 21, 40, and 66 kilodaltons (kDa). PMA, a potent activator of oxidative metabolism, induced phosphorylation of 19-, 40-, and 67-kDa proteins. A23187, a strong degranulating stimulus, caused phosphorylation of 40-, 53-, and 67-kDa proteins. OZ, a relatively weak stimulus for eos function, caused phosphorylation of 30-34-, 59-, 67-, and 93-kDa proteins. In addition, all the above stimuli caused a time-dependent dephosphorylation of 21-kDa protein. In contrast, f-Met-Leu-Phe caused neither phosphorylation of new proteins nor dephosphorylation of preexisting eos proteins. These findings demonstrate that selected stimuli affect phosphorylation of soluble eos protein. These results also suggest that phosphorylation of specific proteins in eos is an intermediary step in external stimulus-induced cell activation, which may involve many different cell functions.

Blood Proteins

Functional recognition of bacterial mitogens by B lymphoma cells: reactivity of WEHI 279.1 to lipopolysaccharide and selection of nonreactive variants.

To analyze functional mitogen recognition by reactive B lymphocytes, we studied the effects of bacterial lipopolysaccharide (LPS) on the growth of the WEHI 279.1 B lymphoma line (W279). We found that LPS inhibits, in a dose-dependent manner, the growth of W279 cells in culture and that it reduces the frequency of cells growing as clones under limiting dilution conditions. Furthermore, we show that differential reactivity of "wild-type" cells to increasing LPS concentrations reflects the heterogeneity in the lymphoma cell population and the frequencies of "resistant" variants to each mitogenic concentration. This allowed us to derive variant tumor cell lines and clones, no longer LPS sensitive, either from mass cultures or, in a single-step selection, under limiting dilution conditions in the presence of low and high concentrations of LPS. Although mitogen reactivity is progressively lost upon prolonged culture, resistance to LPS was found to be a stable trait in selected variants, suggesting that it results from loss of functional mitogen recognition by the reactive cells. The specificity of mitogen reactivity or resistance was shown by the fact that some of the variant clones are still reactive to T helper cell-derived factors and others are not. Thus reactivity to LPS and to T cell factors can be separated, suggesting that the cell lines described here provide new tools for the biochemical analysis of B cell activation.

Animals

The yeast WBP1 is essential for oligosaccharyl transferase activity in vivo and in vitro.

Asparagine-linked N-glycosylation is a highly conserved and functionally important modification of proteins in eukaryotic cells. The central step in this process is a cotranslational transfer of lipid-linked core oligosaccharides to selected Asn-X-Ser/Thr-sequences of nascent polypeptide chains, catalysed by the enzyme N-oligosaccharyl transferase. In this report we show that the essential yeast protein WBP1 (te Heesen et al., 1991) is required for N-oligosaccharyl transferase in vivo and in vitro. Depletion of WBP1 correlates with a defect in transferring core oligosaccharides to carboxypeptidase Y and proteinase A in vivo. In addition, in vitro N-glycosylation of the acceptor peptide Tyr-Asn-Leu-Thr-Ser-Val using microsomal membranes from WBP1 depleted cells is reduced as compared with membranes from wild-type cells. We propose that WBP1 is an essential component of the oligosaccharyl transferase in yeast.

Alleles

Endothelial cell function in hemostasis and thrombosis.

Endothelial cells play a pivotal role in hemostasis and thrombosis. They produce a myriad of factors either associated with the membrane or released into the blood stream and the subendothelial matrix which are involved in various steps of hemostasis. The endothelial cell function is modulated by a diversified group of biologically active molecules, notably thrombin, vasoactive amines and cytokines. Mechanism and selectivity of the effects of these molecules differ and the difference may have important physiological implications. Most of the information is gathered through experiments performed in cultured endothelial cells. Availability of the cultured cells has greatly facilitated the understanding of endothelial cell biology. In vivo models, however, are still needed to understand how the endothelial cell function is modulated. Furthermore, as the cultured endothelial cells exhibit nor only species differences but also vascular origin difference in behavior and function, these factors should be carefully considered when designing experiments involving the use of cultured endothelial cells.

Animals

From adenylate cyclase to guanylate cyclase. Mutational analysis of a change in substrate specificity.

Adenylate and guanylate cyclases, having different but related substrates, are a paradigm for the study of substrate discrimination. A prokaryotic adenylate cyclase gene, phylogenetically related to eukaryotic counterparts, was screened for mutants remodelling the enzyme's specificity. In a first step, a mutant was selected displaying a significant level of guanylate cyclase activity. This was due to a point mutation destroying most of the adenylate cyclase activity. A second selection step restored most of the original activity. This resulted from an additional mutation in the same region, thus permitting the first identification of a functional domain in adenylate and guanylate cyclases.

Adenylyl Cyclases

Cyclic AMP-dependent protein kinase promotes glucocorticoid receptor function.

Murine lymphoma cell lines such as WEHI-7 exhibit a cytolytic response to both cAMP and glucocorticoids. We have exploited this behavior to ask if cyclic AMP-dependent protein kinase plays a role in regulating glucocorticoid receptor function. We have found that cAMP-resistant cell lines containing a defective cAMP-dependent protein kinase activity give rise to spontaneous steroid-resistant variants at a high frequency (approximately 10(-7)) relative to wild type cells (less than 10(-10)). Unlike previous results with wild type cells, nearly complete loss of glucocorticoid receptor function was observed in a single selection using unmutagenized cAMPr derivatives of WEHI-7. Thus, the initial selection of the cAMPr phenotype serves as a permissive step toward the acquisition of glucocorticoid resistance in WEHI-7. In addition, cAMP was found to increase the levels of steroid binding in these cell lines, and the dose response was dependent upon the phenotype of the cyclic AMP-dependent protein kinase. The results demonstrate an important role for cAMP in regulating glucocorticoid receptor activity and strongly suggest that this novel two-step selection scheme leads to the isolation of new forms of glucocorticoid resistance.

Animals

The analysis of normal stepping movements as a possible basis for locomotor assessment of the lower limbs.

Sagittal plane rotations of the thigh and shank when leading or trailing during forward or backward and during upward or downward stepping manoeuvres (one step, starting and finishing with erect stance) were recorded by polarized light goniometry in the form of thigh-knee angle diagrams. Angles and limb projections corresponding to key features of the diagrams were measured for 21 normal subjects and at three step heights. Correlations of the measurements with the height of step relative to stature were examined and predicted norms presented for a step equal to 10% of stature. The eight possible movements on a given step consist of four conjugate pairs; the members of a pair have reversed time-sequences and gravity assists one while opposing the other. The similarities of the conjugate manoeuvres were analysed statistically. A test of locomotor function is suggested on the premise that disturbances of function would be revealed by within-subject comparisons of conjugate manoeuvres. The suitability of 10% step tests for clinical use and the problems of selecting data of manageable proportions are discussed.

Adolescent

Numerical deconvolution using system identification methods.

A deconvolution method is presented for use in pharmacokinetic applications involving continuous models and small samples of discrete observations. The method is based on the continuous-time counterpart of discrete-time least squares system identification, well established in control engineering. The same technique, requiring only the solution of a linear regression problem, is used both in system identification and input identification steps. The deconvolution requires no a priori information, since the proposed procedure performs system identification (including optimal selection of model order), selects the form of the input function and calculates its parametric representation and its values at specified time points.

Models, Biological

Hydrogen ion buffering during complete brain ischemia.

As a first step to quantify [H+] changes in brain during ischemia we used H+-selective microelectrodes and enzyme fluorometric techniques to describe the relationship between interstitial [H+] ([H+]o) and peak tissue lactate after cardiac arrest. We found a step function relationship between [H+]o and tissue lactate rather than the linear titration expected in a homogeneous protein solution. Within a blood glucose range from 3-7 mM, brain lactate rose from 8-13 mmol/kg along with a rise in [H+]o of 99 +/- 6 nM(0.44 +/- 0.02 pH). At higher blood glucose levels (17-80 mM), brain lactate accumulated to levels of 16-31 mmol/kg; concurrently [H+]o rose by 608 +/- 16 nM (1.07 +/- 0.02 pH). The unchanging level of [H+]o between 8-13 and 16-31 mmol/kg lactate implies that [H+]o is at a steady-state, but not equilibrium with respect to [H+] in other brain compartments. We propose that ion-transport characteristics of astroglia account for the observed relationship of [H+]o to tissue lactate during complete ischemia and suggest that brain infarction develops after plasma membranes in brain cells can no longer transport ions to regulate [H+].

Animals

Molecular mechanisms of drug-induced hearing loss.

Although the ototoxic actions of a variety of drugs have long been documented, the biochemical mechanisms underlying such toxicity largely remain to be established. For example, recent advances have provided us with information about the actions of salicylates (aspirin) and diuretics (furosemide) but we are not yet able to specify the mechanisms by which these drugs damage the cochlea. On the other hand, the considerable amount of biochemical and pharmacological data on the effects of aminoglycosides (streptomycin, neomycin, gentamicin and related compounds) has enabled us to formulate a rational hypothesis of their mechanism of action. We have previously presented evidence for an involvement of polyphosphoinositides in the ototoxic actions of aminoglycosides. Recent electrophysiological and pharmacokinetic studies have shown in addition that aminoglycosides occupy at least two distinct compartments in the course of their actions. Further studies of drug uptake in vitro and of drug toxicity in cochlear perfusions suggested the involvement of an active (energy-requiring) aminoglycoside transport system. These and other data are compatible with the following multi-step model of aminoglycoside toxicity: The initial step in the reaction sequence is an electrostatic interaction of aminoglycosides with the plasma membrane. The resulting displacement of calcium accounts for acute effects but the action is reversible and antagonized by divalent cations. An energy-dependent uptake process is required for the expression of toxicity. It can be prevented by select metabolic blockers. A crucial step in subsequent intracellular drug actions is the binding of aminoglycosides to phosphatidylinositol bisphosphate inhibiting its hydrolysis and preventing its physiological function.(ABSTRACT TRUNCATED AT 250 WORDS)

Aminoglycosides

Blood neutrophil function in primary myelodysplastic syndromes.

Ten different tests of blood neutrophil function were studied in 20 patients with primary myelodysplastic syndromes (PMDS). The patients were selected according to the new diagnostic criteria for PMDS of the FAB-cooperation group. Impairments of granulocyte functions were found in all patients. Moreover, several steps in the mobilization of granulocytes at the site of injury seemed to be affected: decreased adhesion (P less than 0.05), deficient chemotaxis (P less than 0.05), decreased enzyme content (P less than 0.001), 'slower' chemiluminescence (P less than 0.005), decreased phagocytosis (P less than 0.05) and impaired microbicidal capacity (P less than 0.025). No significant correlation between disease category and severity of granulocyte dysfunction was discerned, though an increasing number of blasts was associated with more severe granulocytic disability. Results in seven patients with abnormal karyotypes were not significantly different from 13 others with normal karyotypes. Our results indicate that defects in blood neutrophil function are a common feature in PMDS and might account for the increased frequency of infection in these patients.

Adolescent

Genetic epidemiology of ethanol metabolic enzymes: a role for selection.

Human ethanol consumption has a profound impact on nutritional status, causing major alterations in intermediary metabolism and critical deficiencies of vitamins and trace elements. The major enzyme systems responsible for the principal steps in ethanol metabolism have been characterized and the genes cloned, and significant functional polymorphisms have been identified. An inactive allele of the mitochondrial ALDH is associated with flushing and reduced alcohol intake. This allele may also confer greater sensitivity to some of ethanol's toxic effects. In populations not possessing this variant, twin and adoptive studies have revealed that heritability for alcoholism is greater than 50%. The occurrence of three functional polymorphisms in the ethanol metabolic pathway, including two mutations which are conserved across populations, suggests a role for selection in their maintenance. The two general categories of selective forces to maintain these polymorphisms are food toxins and infectious diseases. Of the infectious agents, amoebi and other anaerobic and microaerophilic organisms of the gut are the most logical candidates.

Alcoholism

The U3 small nucleolar ribonucleoprotein functions in the first step of preribosomal RNA processing.

The first cleavage in mammalian pre-rRNA maturation occurs near the 5' end within the 5' external transcribed spacer. Using mouse cell extracts, we show that this processing is abolished by micrococcal nuclease pretreatment. Autoantibodies that recognize the U3, U8, and U13 snRNPs (anti-fibrillarin) deplete processing activity from the extract and selectively immunoprecipitate both rRNA substrates and processing products from the reaction. Specific involvement of the U3 snRNP is demonstrated by native gel electrophoresis of the processing reaction followed by Northern blotting and by oligonucleotide-directed RNAase H abolition of processing activity. Our identification of U3 function is discussed with respect to the molecular basis of pre-rRNA recognition by the U3 snRNP, possible roles of U3 and other nucleolar snRNPs in rRNA processing, and the morphological organization of the nucleolus and the ribosomal transcription complex.

Animals

Use of colloidal gold cytochemistry in the study of the basic cell biology of cancer.

We are currently investigating the morphologic aspects of two areas of the basic cell biology of cancer: tumor-specific surface antigens as targets for immunotoxins, and the phenomenon of multidrug resistance in chemotherapy of human tumors. Colloidal gold cytochemistry has provided a useful method for the electron-microscopic cytochemical detection of materials endocytosed by cells in culture. This technique has been used to study the internalization pathway of ligands bound to the surface of cancer cells, particularly antibodies for use as immunologic targeting reagents for the construction of immunotoxins. These colloidal gold conjugates with monoclonal antibodies have demonstrated the internalization of these immunologic reagents through coated pits and receptosomes, which is a necessary step in the delivery of immunotoxins into the cell where they can mediate their cell-killing functions. Morphologic methods have been employed for the screening and selection of monoclonal antibodies reactive with the surface of human ovarian cancer cells for use as immunotoxins and have demonstrated the in vivo activity of immunotoxins made with these antibodies and Pseudomonas exotoxin in a nude mouse model system. In other studies, we have employed such reagents for the immunocytochemical detection of the surface expression of P170, the cell-surface efflux pump protein responsible for the phenotype of multidrug resistance in tumor cells, and to investigate the distribution of this protein by using immunocytochemistry in normal human tissues. These results have suggested a role for P170 in normal cell membrane transport of metabolites in various organ systems.

Clathrin

Large scale purification of factor X by hydrophobic chromatography.

Factor X is a critical enzyme in the blood coagulation cascade, however, in recent years the coagulation zymogen factor X has received additional interest as a selective proteinase to allow production of functional eukaryotic proteins in a prokaryotic expression system. Traditional factor X purification schemes suffer from low yields, low capacity, lengthy dialysis steps, and contamination by the autoproteolytic activated enzyme factor Xa. By incorporating a reversible inhibitor of factor X activation, we were able to recover 67% of the factor X present without any detectable activated enzyme. Six liters of plasma could be processed onto a 50 mL phenylalanine-Sepharose hydrophobic chromatography column without saturating the matrix. The final product is devoid of detectable proteolytic activity. At time of use, the zymogen is specifically activated with a Sepharose-bound activating enzyme isolated from Russell's Viper Venom, resulting in factor Xa free of other detectable proteinases.

Chromatography

1H NMR spectroscopic imaging of the monkey brain using binomial water suppression in a stimulated-echo sequence.

A new proton, two-dimensional pulse sequence for 1H NMR spectroscopic imaging (chemical shift imaging) was tested in phantoms and in the monkey brain. The pulse sequence consisted of one binomial chemically selective pulse and two spatially selective pulses in the stimulated-echo sequence. The point-spread function (which is influenced by k-space filtering and the number of phase-encoded steps) of a 1 mm source phantom was measured using a 16 x 16 spatial matrix and was found to have a FWHM of 10 mm (100 mm field of view) with very little rippling outside the main lobe. The binomial excitation profile was measured in order to correct the NMR intensity for the variable flip angles. Spectroscopic images were measured in the monkey brain with a 15 mm slice thickness and a 16 x 16 spatial matrix. Proton spectra derived from the brain contained sharp resonances of choline, creatine and N-acetyl aspartate with minimal lipid contamination. Proton spectra derived from the subcutaneous fat and adipose tissue behind the eyes contained large lipid resonances.

Animals