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2.
J Vis Exp ; (194)2023 04 28.
Article in English | MEDLINE | ID: mdl-37184263

ABSTRACT

The workhorse of developmental biology is the confocal microscope, which allows researchers to determine the three-dimensional localization of tagged molecules within complex biological samples. While traditional confocal microscopes allow one to resolve two adjacent fluorescent point sources located a few hundred nanometers apart, observing the finer details of subcellular biology requires the ability to resolve signals in the order of tens of nanometers. Numerous hardware-based methods for super-resolution microscopy have been developed to allow researchers to sidestep such resolution limits, although these methods require specialized microscopes that are not available to all researchers. An alternative method for increasing resolving power is to isotropically enlarge the sample itself through a process known as expansion microscopy (ExM), which was first described by the Boyden group in 2015. ExM is not a type of microscopy per se but is rather a method for swelling a sample while preserving the relative spatial organization of its constituent molecules. The expanded sample can then be observed at an effectively increased resolution using a traditional confocal microscope. Here, we describe a protocol for implementing ExM in whole-mount Drosophila embryos, which is used to examine the localization of Par-3, myosin II, and mitochondria within the surface epithelial cells. This protocol yields an approximately four-fold increase in sample size, allowing for the detection of subcellular details that are not visible with conventional confocal microscopy. As proof of principle, an anti-GFP antibody is used to distinguish distinct pools of myosin-GFP between adjacent cell cortices, and fluorescently labeled streptavidin is used to detect endogenous biotinylated molecules to reveal the fine details of the mitochondrial network architecture. This protocol utilizes common antibodies and reagents for fluorescence labeling, and it should be compatible with many existing immunofluorescence protocols.


Subject(s)
Antibodies , Drosophila , Animals , Microscopy, Fluorescence/methods , Microscopy, Confocal/methods , Mitochondria , Indicators and Reagents
3.
Symmetry (Basel) ; 15(8)2023 Aug.
Article in English | MEDLINE | ID: mdl-38650964

ABSTRACT

Planar polarity is a commonly observed phenomenon in which proteins display a consistent asymmetry in their subcellular localization or activity across the plane of a tissue. During animal development, planar polarity is a fundamental mechanism for coordinating the behaviors of groups of cells to achieve anisotropic tissue remodeling, growth, and organization. Therefore, a primary focus of developmental biology research has been to understand the molecular mechanisms underlying planar polarity in a variety of systems to identify conserved principles of tissue organization. In the early Drosophila embryo, the germband neuroectoderm epithelium rapidly doubles in length along the anterior-posterior axis through a process known as convergent extension (CE); it also becomes subdivided into tandem tissue compartments through the formation of compartment boundaries (CBs). Both processes are dependent on the planar polarity of proteins involved in cellular tension and adhesion. The enrichment of actomyosin-based tension and adherens junction-based adhesion at specific cell-cell contacts is required for coordinated cell intercalation, which drives CE, and the creation of highly stable cell-cell contacts at CBs. Recent studies have revealed a system for rapid cellular polarization triggered by the expression of leucine-rich-repeat (LRR) cell-surface proteins in striped patterns. In particular, the non-uniform expression of Toll-2, Toll-6, Toll-8, and Tartan generates local cellular asymmetries that allow cells to distinguish between cell-cell contacts oriented parallel or perpendicular to the anterior-posterior axis. In this review, we discuss (1) the biomechanical underpinnings of CE and CB formation, (2) how the initial symmetry-breaking events of anterior-posterior patterning culminate in planar polarity, and (3) recent advances in understanding the molecular mechanisms downstream of LRR receptors that lead to planar polarized tension and junctional adhesion.

4.
Curr Top Dev Biol ; 136: 167-193, 2020.
Article in English | MEDLINE | ID: mdl-31959287

ABSTRACT

Convergent extension is a conserved mechanism for elongating tissues. In the Drosophila embryo, convergent extension is driven by planar polarized cell intercalation and is a paradigm for understanding the cellular, molecular, and biophysical mechanisms that establish tissue structure. Studies of convergent extension in Drosophila have provided key insights into the force-generating molecules that promote convergent extension in epithelial tissues, as well as the global systems of spatial information that systematically organize these cell behaviors. A general framework has emerged in which asymmetrically localized proteins involved in cytoskeletal tension and cell adhesion direct oriented cell movements, and spatial signals provided by the Toll, Tartan, and Teneurin receptor families break planar symmetry to establish and coordinate planar cell polarity throughout the tissue. In this chapter, we describe the cellular, molecular, and biophysical mechanisms that regulate cell intercalation in the Drosophila embryo, and discuss how research in this system has revealed conserved biological principles that control the organization of multicellular tissues and animal body plans.


Subject(s)
Cell Communication , Cytoskeleton/physiology , Drosophila Proteins/metabolism , Drosophila melanogaster/physiology , Embryo, Nonmammalian/physiology , Epithelial Cells/physiology , Morphogenesis , Animals , Cell Adhesion , Cell Movement , Cell Polarity , Drosophila Proteins/genetics , Drosophila melanogaster/embryology , Embryo, Nonmammalian/cytology , Epithelial Cells/cytology , Gene Expression Regulation, Developmental , Signal Transduction
5.
Dev Cell ; 51(2): 208-221.e6, 2019 10 21.
Article in English | MEDLINE | ID: mdl-31495696

ABSTRACT

Epithelial cells dynamically self-organize in response to extracellular spatial cues relayed by cell-surface receptors. During convergent extension in Drosophila, Toll-related receptors direct planar polarized cell rearrangements that elongate the head-to-tail axis. However, many cells establish polarity in the absence of Toll receptor activity, indicating the presence of additional spatial cues. Here we demonstrate that the leucine-rich-repeat receptor Tartan and the teneurin Ten-m provide critical polarity signals at epithelial compartment boundaries. The Tartan and Ten-m extracellular domains interact in vitro, and Tartan promotes Ten-m localization to compartment boundaries in vivo. We show that Tartan and Ten-m are necessary for the planar polarity and organization of compartment boundary cells. Moreover, ectopic stripes of Tartan and Ten-m are sufficient to induce myosin accumulation at stripe boundaries. These results demonstrate that the Tartan/Ten-m and Toll receptor systems together create a high-resolution network of spatial cues that guides cell behavior during convergent extension.


Subject(s)
Cell Polarity/physiology , Drosophila Proteins/metabolism , Epithelial Cells/cytology , Morphogenesis/physiology , Animals , Carrier Proteins/metabolism , Drosophila/metabolism , Drosophila melanogaster/metabolism , Embryo, Nonmammalian/cytology , Receptors, Cell Surface/metabolism
7.
Nature ; 515(7528): 523-7, 2014 Nov 27.
Article in English | MEDLINE | ID: mdl-25363762

ABSTRACT

Elongation of the head-to-tail body axis by convergent extension is a conserved developmental process throughout metazoans. In Drosophila, patterns of transcription factor expression provide spatial cues that induce systematically oriented cell movements and promote tissue elongation. However, the mechanisms by which patterned transcriptional inputs control cell polarity and behaviour have long been elusive. We demonstrate that three Toll family receptors, Toll-2, Toll-6 and Toll-8, are expressed in overlapping transverse stripes along the anterior-posterior axis and act in combination to direct planar polarity and polarized cell rearrangements during convergent extension. Simultaneous disruption of all three receptors strongly reduces actomyosin-driven junctional remodelling and axis elongation, and an ectopic stripe of Toll receptor expression is sufficient to induce planar polarized actomyosin contractility. These results demonstrate that tissue-level patterns of Toll receptor expression provide spatial signals that link positional information from the anterior-posterior patterning system to the essential cell behaviours that drive convergent extension.


Subject(s)
Body Patterning/genetics , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/embryology , Toll-Like Receptors/genetics , Toll-Like Receptors/metabolism , Animals , Cell Polarity/genetics , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Drosophila melanogaster/cytology , Drosophila melanogaster/genetics , Embryo, Nonmammalian , Gene Expression Regulation, Developmental , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Myosin Type II/metabolism , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Protein Transport , Transcription Factors/genetics , Transcription Factors/metabolism
8.
Evol Dev ; 12(2): 131-43, 2010.
Article in English | MEDLINE | ID: mdl-20433454

ABSTRACT

We tested whether Artemia abd-A could repress limbs in Drosophila embryos, and found that although abd-A transcripts were produced, ABD-A protein was not. Similarly, developing Artemia epidermal cells showed expression of abd-A transcripts without accumulation of ABD-A protein. This finding in Artemia reveals a new variation in Hox gene function that is associated with morphological evolution. In this case, a HOX protein expression pattern is completely absent during early development, although the HOX protein is expressed at later stages in the central nervous system in a "homeotic-like" pattern. The combination of an absence of ABD-A protein expression in the Artemia limb primordia and the weak repressive function of Artemia UBX protein on the limb-promoting gene Dll are likely to be two reasons why homonomous limbs develop throughout the entire Artemia trunk.


Subject(s)
Artemia/genetics , Drosophila melanogaster/embryology , Embryo, Nonmammalian/metabolism , Extremities/growth & development , Gene Expression Regulation, Developmental , Homeodomain Proteins/physiology , Animals , Artemia/growth & development , Artemia/metabolism , Casein Kinase II/genetics , Casein Kinase II/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Female , Gene Silencing , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , In Situ Hybridization , Insect Proteins/genetics , Insect Proteins/metabolism , Male , Phosphorylation , Transcription Factors/genetics , Transcription Factors/metabolism
9.
Genetics ; 181(1): 53-63, 2009 Jan.
Article in English | MEDLINE | ID: mdl-18984572

ABSTRACT

We used P-element transposase-mediated "male recombination" between two P elements in trans to create genetic deletions that removed a number of loci, including the gene encoding the neuropeptide crustacean cardioactive peptide (CCAP). Two classes of recombinant chromosomes were produced. Approximately one-quarter were viable when homozygous or hemizygous, whereas the remaining lines caused homozygous and hemizygous lethality. Preliminary analyses using PCR and CCAP immunohistochemistry suggested that, whereas the DNA of the viable lines was largely intact, most lethal lines contained chromosomal deletions that were roughly bounded by the insertion sites of the two P elements used. Southern blot analyses of select lethal lines showed that the DNA flanking the deletion was indeed grossly intact whereas the intervening DNA could not be detected. Sequencing across the deletion in three of these lethal lines identified a single line bearing intact genomic DNA on either side of the deletion separated by 30 bp of P-element DNA. The method described here suggests a simple procedure for creating deletions with defined end points. Importantly, it can use preexisting P-element insertion strains and does not rely on the use of transposable elements that are engineered to cause specific DNA rearrangements.


Subject(s)
DNA Transposable Elements/genetics , Drosophila melanogaster/genetics , Gene Deletion , Genetic Engineering/methods , Mutagenesis , Animals , Blotting, Southern , Chromosomes/genetics , Homozygote , Larva/cytology , Male , Neuropeptides/genetics , Recombination, Genetic/genetics , Sequence Analysis, DNA
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