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M Leptin

Publications and source records attributed to M Leptin.

36 records · Page 2Linked to original sources

Autonomy and non-autonomy in Drosophila mesoderm determination and morphogenesis.

The mesoderm in Drosophila invaginates by a series of characteristic cell shape changes. Mosaics of wild-type cells in an environment of mutant cells incapable of making mesodermal invaginations show that this morphogenetic behaviour does not require interactions between large numbers of cells but that small patches of cells can invaginate independent of their neighbours' behaviour. While the initiation of cell shape change is locally autonomous, the shapes the cells assume are partly determined by the individual cell's environment. Cytoplasmic transplantation experiments show that areas of cells expressing mesodermal genes ectopically at any position in the egg form an invagination. We propose that ventral furrow formation is the consequence of all prospective mesodermal cells independently following their developmental program. Gene expression at the border of the mesoderm is induced by the apposition of mesodermal and non-mesodermal cells.

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Interacting functions of snail, twist and huckebein during the early development of germ layers in Drosophila.

Two zygotic genes, snail (sna) and twist (twi), are required for mesoderm development, which begins with the formation of the ventral furrow. Both twi and sna are expressed ventrally in the blastoderm, encode transcription factors and promote the invagination of the ventral furrow by activating or repressing appropriate target genes. However, sna and twi alone do not define the position of the ventral furrow, since they are also expressed in ventral cells that do not invaginate. We show that huckebein (hkb) sets the anterior and the posterior borders of the ventral furrow, but acts by different modes of regulation. In the posterior part of the blastoderm, hkb represses the expression of sna in the endodermal primordium (which we suggest to be adjacent to the mesodermal primordium). In the anterior part, hkb antagonizes the activation of target genes by twi and sna. Here, bicoid permits the co-expression of hkb, sna and twi, which are all required for the development of the anterior digestive tract. We suggest that mesodermal fate is determined where sna and twi but not hkb are expressed. Anteriorly hkb together with sna determines endodermal fate, and hkb together with sna and twi are required for foregut development.

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A role for the mesoderm in endodermal migration and morphogenesis in Drosophila.

The endodermal midgut arises from two primordia, the anterior midgut (AMG) primordium and the posterior midgut (PMG) primordium, which are separated by almost the entire length of the Drosophila embryo. To form the midgut, these two parts have to extend towards each other and to fuse laterally on both sides of the yolk. Shortly before and during that movement, AMG and PMG are arranged as mesenchymal cell masses, but later the midgut cells form an epithelium. We show that these two aspects of midgut development, migration of AMG and PMG and transition to an epithelium, depend on the mesoderm. The extension of the midgut primordia is achieved by cell migration along the visceral mesoderm which forms a continuous layer of cells within the germ band. In mutant embryos lacking the entire mesoderm or failing to differentiate the visceral mesoderm, AMG and PMG are formed but do not migrate properly. In addition, they fail to form an epithelium and instead either remain as compact cell masses anterior and posterior to the yolk (in twist and snail mutant embryos) or only occasionally wrap around the yolk before embryogenesis is completed (in tinman-deficient embryos). We conclude that the visceral mesoderm serves as a substratum for the migrating endodermal cells and that the contact between visceral mesoderm and endoderm is required for the latter to become an epithelium.

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Mechanisms of early Drosophila mesoderm formation.

Several morphogenetic processes occur simultaneously during Drosophila gastrulation, including ventral furrow invagination to form the mesoderm, anterior and posterior midgut invagination to create the endoderm, and germ band extension. Mutations changing the behaviour of different parts of the embryo can be used to test the roles of different cell populations in gastrulation. Posterior midgut morphogenesis and germ band extension are partly independent, and neither depends on mesoderm formation, nor mesoderm formation on them. The invagination of the ventral furrow is caused by forces from within the prospective mesoderm (i.e. the invaginating cells) without any necessary contribution from other parts of the embryo. The events that lead to the cell shape changes mediating ventral furrow formation require the transcription of zygotic genes under the control of twist and snail. Such genes can be isolated by molecular and genetic screens.

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twist and snail as positive and negative regulators during Drosophila mesoderm development.

twist and snail are members of the helix-loop-helix and zinc-finger protein families, respectively, and determine the development of the mesoderm in Drosophila. This paper analyzes their role in mesoderm development by examining how they affect the expression of downstream genes. twist and snail act by regulating gene expression in the mesoderm and in neighboring regions, and have distinct roles in this process. snail prevents expression in the mesoderm of genes that are destined to be active only in more lateral or dorsal regions. twist is required for the activation of downstream mesodermal genes. twist is also required for the full expression of snail and for the maintenance of its own expression. Only the absence of both twist and snail results in the complete loss of all mesodermal characteristics.

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Drosophila gastrulation: analysis of cell shape changes in living embryos by three-dimensional fluorescence microscopy.

The first event of Drosophila gastrulation is the formation of the ventral furrow. This process, which leads to the invagination of the mesoderm, is a classical example of epithelial folding. To understand better the cellular changes and dynamics of furrow formation, we examined living Drosophila embryos using three-dimensional time-lapse microscopy. By injecting fluorescent markers that visualize cell outlines and nuclei, we monitored changes in cell shapes and nuclear positions. We find that the ventral furrow invaginates in two phases. During the first 'preparatory' phase, many prospective furrow cells in apparently random positions gradually begin to change shape, but the curvature of the epithelium hardly changes. In the second phase, when a critical number of cells have begun to change shape, the furrow suddenly invaginates. Our results suggest that furrow formation does not result from an ordered wave of cell shape changes, contrary to a model for epithelial invagination in which a wave of apical contractions causes invagination. Instead, it appears that cells change their shape independently, in a stochastic manner, and the sum of these individual changes alters the curvature of the whole epithelium.

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Cell shape changes during gastrulation in Drosophila.

The first morphogenetic movement during Drosophila development is the invagination of the mesoderm, an event that folds a one-layered epithelium into a multilayered structure. In this paper, we describe the shape changes and behaviour of the cells participating in this process and show how mutations that change cell fate affect this behaviour. We divide the formation of the mesodermal germ layer into two phases. During the first phase, the ventral epithelium folds into a tube by a series of concerted cell shape changes (ventral furrow formation). Based on the behaviour of cells in this phase, we conclude that the prospective mesoderm is not a homogeneous cell population, but consists of two subpopulations. Each subpopulation goes through a distinctive sequence of specific cell shape changes which together mediate the invagination of the ventral furrow. In the second phase, the invaginated tube of mesoderm loses its epithelial character, the mesoderm cells disperse, divide and then spread out along the ectoderm to form a single cell layer. To test how ventral furrow formation depends on cell fates in the mesoderm and in neighbouring cells we alter these fates genetically using maternal and zygotic mutations. These experiments show that some of the aspects of cell behaviour specific for ventral furrow cells are part of an autonomous differentiation programme. The force driving the invagination is generated within the region of the ventral furrow, with the lateral and dorsal cell populations contributing little or none of the force. Two known zygotic genes that are required for the formation of the mesoderm, twist and snail, are expressed in ventral furrow cells, and the correct execution of cell shape changes in the mesoderm depends on both. Finally, we show that the region where the ventral furrow forms is determined by the expression of mesoderm-specific genes, and not by mechanical or other epigenetic properties of the egg.

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The function of PS integrins during Drosophila embryogenesis.

The Drosophila position-specific (PS) antigens are homologous to the vertebrate fibronectin receptor family, or integrins. A Drosophila gene required for embryonic morphogenesis, l(1)myospheroid, codes for a product homologous to the beta subunit of the vertebrate integrins. l(1)myospheroid mutants die during embryogenesis. We show here that they lack the beta subunit of the PS antigens. In the absence of the beta subunit in mutant embryos, the PS alpha subunits are not expressed on the cell surface. We conclude that the l(1)myospheroid phenotype represents the lack-of-function phenotype for these Drosophila integrins. In wild-type embryos, PS antigens are found at the interface between mesoderm and ectoderm, and later mainly at the attachment sites of muscles to the epidermis and gut. Together these results indicate that during embryogenesis, Drosophila integrins are used to attach mesoderm to ectoderm, and are required for the proper assembly of the extracellular matrix and for muscle attachment.

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The function of PS integrins in Drosophila wing morphogenesis.

Integrins are found on many cell types during the development of most organisms. In Drosophila their functions can be analysed genetically. An analysis of lethal mutations in a PS integrin gene showed that the integrins were required for muscle attachment and for certain cell sheet migrations during embryogenesis. In this paper we use viable mutations in integrin component genes to look at integrin function in the later stages of development of one adult structure, the wing. We show that two known viable mutations, one which has its primary effect on the fly's escape response, the other on wing morphogenesis, are mutations in the beta and PS2alpha subunits, respectively, of the PS integrins. The mutation non-jumper (mys(mj42)) in the beta subunit leads to wasting of the thoracic jump muscles. Flies in which the dosage of this allele is reduced (and no wildtype copy is present) show defects also in wing morphogenesis. The two surfaces of the wing fail to connect properly, resulting in 'blistering' of the wing and the formation of extra crossveins. The mutation in the gene for the PS2alpha integrin subunit, inflated, also leads to a failure in wing surface apposition and consequent wing blistering. When the two mutations are combined, the mutant phenotype is greatly enhanced. Thus, one of the roles of the PS integrins in late Drosophila development is to ensure the correct apposition and patterning of the wing epithelia.

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Drosophila position-specific antigens resemble the vertebrate fibronectin-receptor family.

The Drosophila position-specific (PS) antigens are a family of cell surface glycoprotein complexes thought to be involved in morphogenesis. Their overall structures and biochemical properties are similar to those of a group of vertebrate receptors, including those for fibronectin, fibrinogen and vitronectin, and also the leukocyte antigens Mac-1, LFA-1 and p150,95 and the VLA family of cell surface antigens. The N-terminal sequences of the alpha subunits of some of these molecules are homologous to the N-terminus of a PS antigen component. The Drosophila PS antigens thus appear to be homologous to these vertebrate receptors.

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Cell cycle control of activated, synchronized murine B lymphocytes--roles of macrophages and complement C3.

Three restriction points control the cell cycle of activated murine B lymphocytes in a synergistic way. The first is controlled by the occupancy of surface immunoglobulin either by antigen- or by immunoglobulin-specific antibodies. The second is controlled by the complement C3d receptor CR2 which can be occupied by cross-linked C3b or C3d to stimulate the entry into S phase, or by soluble C3d or a C3 alpha-chain peptide, binding to the CR2 receptor, which inhibit the entry into S phase. Macrophages produce so-called alpha factors which also control the B-cell cycle at the same point. Thus, it is suspected that macrophages produce components of the early pathway of complement activation which finally lead to cross-linking of CR2 receptors on B cells. The third restriction point is controlled by unknown receptors that recognize so-called beta factors produced by helper T lymphocytes.

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Monoclonal antibodies specific for murine IgM. II. Activation of B lymphocytes by monoclonal antibodies specific for the four constant domains of IgM.

Seventeen monoclonal antibodies specific for IgM and one kappa light chain-specific antibody were used to test the effect of immunoglobulin (Ig)-specific antibodies on B cell activation. In soluble form, either alone or together with T cell-derived growth and maturation factors, none of the antibodies stimulated resting B cells to divide or secrete Ig. The soluble antibodies inhibited lipopolysaccharide-induced B cell activation. The inhibitory effect of the antibodies was independent of their Fc part. When immobilized, the same antibodies could activate B cells to proliferate and together with T cell-derived maturation factors to mature to plasma cells. Occupation by immobilized antibody of determinants on any of the four constant region domains and on the light chain of surface Ig can lead to the stimulation of B cells.

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Activation and cell cycle control of murine B lymphocytes.

The cell cycle of activated murine B lymphocytes (B cells) is controlled by the occupancy of surface membrane-bound immunoglobulin (Ig) and by two types of growth factors, called alpha and beta factors. These growth factors are produced in an endocrine fashion by the interaction of helper T lymphocytes (T cells) with antigen-presenting macrophages (A cells). Antigen is taken up, processed and presented on the surface of A cells in the context of class II major histocompatibility complex (MHC) glycoproteins. Helper T cells recognize this association of antigen and class II MHC molecules. A cells produce alpha factors and T cells produce beta factors. The molecular nature of these factors and of the corresponding receptors on B cells has yet to be elucidated, although it can be shown that the complement component C3d replaces alpha factor action. Resting, G0 phase B cells are refractory to the action of alpha and beta factors. They have to be excited, i.e. rendered susceptible to the action of these factors. This can be achieved by the interaction with helper T cells that recognize antigen, bound by surface membrane Ig, in the context of class II MHC glycoproteins on the surface of resting G0 B cells. Excitation can also occur in a polyclonal fashion by cross-linking of surface Ig with immobilized, Ig-specific antibodies, or by the interaction with polyclonal activators of B cells, such as lipopolysaccharides. Entry into the cell cycle is asynchronous. Activated, cycling B cells can be synchronized by size separation, using velocity sedimentation. Synchronized B cells will retain their synchrony for several divisions, when they are stimulated by immobilized Ig-specific antibodies, alpha and beta factors. They divide every 20 h at 37 degrees C. Omission of either of the three stimuli arrests B cells, though at different points in the cell cycle. Three restriction points are found: the first occurs immediately after mitosis and is controlled by the binding of immobilized Ig-specific antibodies to surface membrane-bound Ig.(ABSTRACT TRUNCATED AT 250 WORDS)

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Monoclonal antibodies specific for murine IgM I. Characterization of antigenic determinants on the four constant domains of the mu heavy chain.

Seventeen monoclonal rat antibodies with specificities for mouse mu heavy chain recognize seven distinguishable determinants that are located on the four constant region domains. All determinants are present on secreted, intracellular and membrane bound IgM, and all but two are expressed on isolated mu heavy chain. One antibody, specific for a site in the first constant region domain, recognizes a determinant that is present on IgM of AKR, C3H/HeJ, C57BL/6J, SJL, DBA/2, BALB/c, NZB and CBA/J mouse strains, but not on IgM of A.TH, A/J and A.CA strains of mice.

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A monoclonal antibody with specificity for murine mu heavy chain which inhibits the formation of antigen-specific direct IgM plaques.

A panel of monoclonal rat antibodies binding to mouse mu heavy chain were tested for their ability to inhibit the formation of antigen-specific plaques in the hemolytic plaque assay. Nine antibodies inhibited SRC-specific direct IgM plaques at high concentrations (greater than 20 micrograms/ml). In contrast to all others, however, one antibody inhibited these plaques at much lower concentrations (down to 0.4 microgram/ml) when added to the assay. This antibody also inhibited plaques formed by cells secreting antibodies against trinitrophenyl or phosphorylcholine determinants. IgG plaques with any of the above specificities were not inhibited. IgM secretion was unaffected by the monoclonal anti-mu antibody. Its inhibitory effect on plaque formation rather appears to be a consequence of its ability to inhibit complement dependent, IgM mediated lysis of erythrocytes. This monoclonal anti-IgM antibody therefore provides a convenient reagent to distinguish specific direct IgM plaques from indirect IgG plaques.

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