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Biomedical subjects

S L Helfand

Publications and source records attributed to S L Helfand.

At least 19 recordsLinked to original sources

The expression of a reporter protein, beta-galactosidase, is preserved during maturation and aging in some cells of the adult Drosophila melanogaster.

The effects of maturation and aging on cell stability and maintenance of protein expression have been examined in adult Drosophila melanogaster. Counting the number of cells present in the antenna of the adult fly revealed little loss in cell number with aging. Enhancer map-marked genes expressing beta-galactosidase (beta-gal) in the antenna and an Rh1 opsin reporter gene construct expressing beta-gal in the R1-6 photoreceptor cells of the compound eye revealed no alteration in spatial distribution or amount of beta-gal with aging. A heat shock-inducible promoter coupled to the expression of beta-gal, hsp70-lacZ, revealed that the rate and amount of induction of beta-gal after heat shock is preserved during aging but the rate of decay of beta-gal may be slightly delayed in older animals. These studies suggest that the ability to express a reporter protein, beta-galactosidase, is preserved in at least a subset of cells in the aging fly.

Animals

Changes in gene expression during post-eclosional development in the olfactory system of Drosophila melanogaster.

We have found that the expression of some genes in Drosophila melanogaster changes during the life of the adult fly. These changes can be illustrated by the use of enhancer trap lines which mark the expression of particular genes in the adult fly. Although the fly is considered able to perform most necessary adult functions within the first 72 h after eclosion from the pupal case, we find changes in expression over the first 10 days of life in the antennae of several of the genes we have examined. Some genes change by increasing from an initially low level of expression of the marked gene, while other lines, which we have termed 'late-onset' genes, show no expression of the marked gene until 4-5 days following eclosion. In contrast, some genes decrease their expression during the first 10 days of life. The changes in gene expression seen over the first 10 days of the fly's adult life provides molecular evidence of the many maturational changes occurring during the early life of the adult fly.

Animals

Temporal patterns of gene expression in the antenna of the adult Drosophila melanogaster.

The time course of gene expression in the adult fruit fly has been partially characterized by using enhancer trap and reporter gene constructs that mark 49 different genes. The relative intensity of the reporter protein in individual cells of the antennae was measured as a function of adult age. Most genes showed a graduated expression, and the intensity of expression had a reproducible and characteristic time course. Different genes displayed different temporal patterns of expression and more often than not the pattern of expression was complex. We found a number of genes having patterns that scaled with life span. In these cases the intensity of gene expression was found to be invariant with respect to biological time, when expressed as a fraction of the life span of the line. The scaling was observed even when life span was varied as much as threefold. Such scaling serves to (1) further demonstrate that deterministic mechanisms such as gene regulation act to generate the temporal patterns of expression seen during adult life, (2) indicate that control of these regulatory mechanisms is linked to life span, and (3) suggest mechanisms by which this control is accomplished. We have concluded that gene expression in the adult fly is often regulated in a fashion that allows for graduated expression over time, and that the regulation itself is changing throughout adult life according to some prescribed program or algorithm.

Animals

Regulation of gene expression is linked to life span in adult Drosophila.

Examination of gene expression and aging in adult Drosophila reveals that the expression of some genes is regulated by age-dependent mechanisms. Genetic mutations, Hyperkinetic and Shaker, which are known to shorten life span through an acceleration of the aging process, were used to study the expression of an enhancer trap marked gene. The temporal pattern of expression for such a marked gene shows scaling with respect to life span; it is altered in direct proportion to the life expectancy of the adult animal. This demonstrates that expression of this gene is controlled through mechanisms coupled to physiologic as opposed to chronologic age. Results provide direct evidence for linkage between the regulation of gene expression and life span and establish a model system for the genetic analysis of aging.

Aging

The large upstream control region of the Drosophila homeotic gene Ultrabithorax.

Ultrabithorax (Ubx) is a Drosophila homeotic gene that determines the segmental identities of parts of the thorax and abdomen. Appropriate Ubx transcription requires a long upstream control region (UCR) that is defined genetically by the bithoraxoid (bxd) and postbithorax (pbx) subfunction mutations. We have directly analyzed UCR functions by the examination of beta-galactosidase expression in flies containing Ubx-lacZ fusion genes. 35 kb of UCR DNA confers upon beta-galactosidase an expression pattern that closely parallels normal Ubx expression throughout development. In contrast, 22 kb of UCR DNA confers fewer features of normal Ubx expression, and with 5 kb of UCR DNA the expression pattern has no resemblance to Ubx expression except in the visceral mesoderm. We have also shown that bxd chromosome breakpoint mutants form a comparable 5' deletion series in which the severity of the effect on Ubx expression correlates with the amount of upstream DNA remaining in the mutant. In Ubx-lacZ fusions containing 22 kb of UCR DNA, and in comparable bxd mutants, there is a persistent pair-rule pattern of metameric expression in early development, demonstrating that there are distinct mechanisms with different sequence requirements for the initial activation of Ubx in different metameres. The correction of this pair-rule pattern later in embryogenesis shows that there are also distinct mechanisms for the activation of Ubx at different times during development.

Animals

A simple chemosensory response in Drosophila and the isolation of acj mutants in which it is affected.

Although the Drosophila visual system has been described extensively, little is known about its olfactory system. A major reason for this discrepancy has been the lack of simple, reliable means of measuring response to airborne chemicals. This paper describes a jump response elicited by exposing Drosophila to chemical vapors. This behavior provides the basis for a single-fly chemosensory assay. The behavior exhibits dose dependence and chemical specificity: it is stimulated by exposure to ethyl acetate, benzaldehyde, and propionic acid but not ethanol. Animals can respond repeatedly at short intervals to ethyl acetate and propionic acid. The response relies on the third antennal segments. To illustrate the use of this behavior in genetic analysis of chemosensory response, nine acj mutants defective in response are isolated (acj = abnormal chemosensory jump), and their responses to two chemicals are characterized. All of the acj mutants are normal in giant fiber system physiology, and two exhibit defects in visual system physiology.

Animals

Isolation and characterization of an olfactory mutant in Drosophila with a chemically specific defect.

A Drosophila mutant was isolated and shown to exhibit defective response to the chemical odorant benzaldehyde in two distinctly different behavioral assays. The defect exhibited chemical specificity: response to three other chemicals was normal. The mutant also showed abnormalities in pigmentation and fertility. Genetic mapping and complementation analysis provide evidence that the olfactory, pigmentation, and fertility defects arise as a result of a lesion at the pentagon locus. The specificity of the olfactory defect suggests the possibility that the mutation may define a molecule required in reception, transduction, or processing of a specific subset of chemical information in the olfactory system.

Alleles

Genetic analysis of olfactory behavior in Drosophila: a new screen yields the ota mutants.

A simple means of measuring Drosophila olfactory response is described, and the behavior which it measures is characterized. The assay was used to screen for X-linked mutants defective in olfactory function. Six ota mutants were isolated and characterized (ota = olfactory trap abnormal). Four of the mutants were found to be abnormal in another chemosensory behavior as well. Two of the mutant phenotypes extend to include another sensory system: they are defective in visual system physiology. All were normal, however, in a test of giant fiber system physiology. Two of the mutations are dominant, and the recessive mutations define two complementation groups. Mutations representing each complementation group, as well as one of the dominant mutations, were mapped. For the mutants with defective visual system physiology, the visual defects were shown to cosegregate with olfactory phenotypes.

Analysis of Variance

Cell recognition during neuronal development.

Insect embryos, with their relatively simple nervous systems, provide a model system with which to study the cellular and molecular mechanisms underlying cell recognition during neuronal development. Such an approach can take advantage of the accessible cells of the grasshopper embryo and the accessible genes of Drosophila. The growth cones of identified neurons express selective affinities for specific axonal surfaces; such specificities give rise to the stereotyped patterns of selective fasciculation common to both species. These and other results suggest that early in development cell lineage and cell interactions lead to the differential expression of cell recognition molecules on the surfaces of small subsets of embryonic neurons whose axons selectively fasciculate with one another. Monoclonal antibodies reveal surface molecules in the Drosophila embryo whose expression correlates with this prediction. It should now be possible to isolate the genes encoding these potential cell recognition molecules and to test their function through the use of molecular genetic approaches in Drosophila.

Animals

The Chediak-Higashi gene in humans. III. Studies on the mechanisms of NK impairment.

Lymphocytes from six Chediak-Higashi (CH) patients were markedly depressed in their ability to lyse tumour cell targets in both 51Cr release and single cell cytotoxicity assays. The frequency of lymphocytes bearing the OKM1 marker and the frequency of T3+, T4+, T8+, Ia+, Mo1+, Mo2+ and B1+ cells was normal among sheep erythrocyte rosetting (E+) and non-rosetting (E-) peripheral blood leucocytes analysed by flow cytofluorography. Cells expressing the NK shared markers, OKM1, mac-1, FcR, and the characteristic large granular lymphocyte (LGL) morphology of NK cells were also present in normal numbers in the highly enriched NK fraction separated on Percoll density gradients. This fraction did not contain detectable numbers of cells expressing the Mo2 marker of human monocytes. Therefore most of the cells stained by monoclonal OKM1 and mac-1 in this fraction are likely NK cells, rather than monocytes, and we conclude that the size of the NK pool in CH patients is probably normal. The capacity of CH lymphocytes to recognize and bind to tumour cells was also normal as was the subsequent burst of oxygen intermediates produced by the NK cells in a chemiluminenscence assay. We have shown elsewhere that O2- generation is directly involved in activating subsequent steps in the NK cytolytic pathway. These results suggest that NK cells in CH patients are present in normal frequency but are blocked at some post-recognition, post-activation step in the cytolytic pathway subsequent to the burst of oxygen intermediates but preceding the lethal hit.

Adolescent

Oxygen intermediates are triggered early in the cytolytic pathway of human NK cells.

The mechanism of tumour cell destruction by natural killer (NK) cells or other lymphocytes is not understood. NK cells appear to represent a primitive anti-tumour surveillance system more analogous to macrophages than lymphocytes. Free oxygen radicals (O-2, OH) and H2O2 are thought to be involved in cell destruction by macrophages and therefore we looked for similar cytocidal intermediates of oxygen in NK cells. These highly reactive molecular species can easily be detected in the presence of luminol by the emission of light. We show here that highly enriched human NK cells respond to NK-sensitive but not NK-insensitive tumour cells with a rapid burst of oxygen metabolites as detected both by chemiluminescence and cytochrome c reduction. Agents which can prevent chemiluminescence and cytochrome c reduction, such as superoxide dismutase (SOD), reduced NK-mediated cytolysis and agents which increased chemiluminescence, such as interferon, also increased NK-mediated cytolysis. These results suggest that the production of oxygen species may be the earliest event to occur in the NK cell following tumour cell contact, and these products are involved in NK-mediated cytolysis.

Animals

Chemiluminescence response of human natural killer cells. I. The relationship between target cell binding, chemiluminescence, and cytolysis.

The binding of tumor cells or fetal fibroblasts to human natural killer (NK) cells led to a rapid chemiluminescence response within seconds of target-effector interaction. The degree of chemiluminescence was dependent on the concentration of NK-enriched lymphocytes or target cells, and plasma membrane vesicles from K562 also induced a chemiluminescence response. Mild glutaraldehyde treatment of effector cells abrogated their ability to generate chemiluminescence, whereas K562 target cells treated in the same way were almost fully able to induce a chemiluminescence response to NK-enriched lymphocytes. These results show a directionality of response with NK as the responders and tumor cells as the stimulators. A survey of eight different tumor cell lines and fetal fibroblast lines revealed a striking correlation (r greater than 0.93, P less than 0.001) between the ability of a given line to bind to NK-enriched lymphocytes, induce chemiluminescence, and to be lysed. Three differentiated sublines of K562 grown in butyrate and cloned induced little chemiluminescence compared with the K562 parent, and they were selectively resistant to NK-mediated binding and cytolysis. In addition, treatment of K562 cells with higher concentrations of glutaraldehyde for longer periods led to varying degrees of target antigen preservation, as measured in cold target competition assays and in conjugate formation. The degree of NK target antigen preservation correlated directly with the ability of the cells to induce chemiluminescence (r greater than 0.95). The degree of NK activation was also important because interferon-pretreated effectors generated more chemiluminescence upon stimulation with K562 or MeWo targets. Monocytes or granulocytes did not contribute to the chemiluminescence induced by NK-sensitive targets. Some NK-resistant tumor cell lines were sensitive to monocyte-mediated cytolysis and also induced chemiluminescence in monocytes but not NK cells. These results show that the target structures recognized by the NK cell may play a role in NK activation because the degree of chemiluminescence was directly proportional to the ability of a given target cell line to bind to the NK cell and to be lysed.

Animals