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1.
Aging Cell ; 22(9): e13925, 2023 09.
Article in English | MEDLINE | ID: mdl-37476844

ABSTRACT

Neurons decline in their functionality over time, and age-related neuronal alterations are associated with phenotypes of neurodegenerative diseases. In nonneural tissues, an infolded nuclear shape has been proposed as a hallmark of aged cells and neurons with infolded nuclei have also been reported to be associated with neuronal activity. Here, we performed time-lapse imaging in the visual cortex of Nex-Cre;SUN1-GFP mice. Nuclear infolding was observed within 10 min of stimulation in young nuclei, while the aged nuclei were already infolded pre-stimulation and showed reduced dynamics of the morphology. In young nuclei, the depletion of the stimuli restored the nucleus to a spherical shape and reduced the dynamic behavior, suggesting that nuclear infolding is a reversible process. We also found the aged nucleus to be stiffer than the young one, further relating to the age-associated loss of nuclear shape dynamics. We reveal temporal changes in the nuclear shape upon external stimulation and observe that these morphological dynamics decrease with age.


Subject(s)
Neurons , Visual Cortex , Mice , Animals , Visual Cortex/physiology
2.
Development ; 150(6)2023 03 15.
Article in English | MEDLINE | ID: mdl-36861793

ABSTRACT

Many organs of Drosophila show stereotypical left-right (LR) asymmetry; however, the underlying mechanisms remain elusive. Here, we have identified an evolutionarily conserved ubiquitin-binding protein, AWP1/Doctor No (Drn), as a factor required for LR asymmetry in the embryonic anterior gut. We found that drn is essential in the circular visceral muscle cells of the midgut for JAK/STAT signaling, which contributes to the first known cue for anterior gut lateralization via LR asymmetric nuclear rearrangement. Embryos homozygous for drn and lacking its maternal contribution showed phenotypes similar to those with depleted JAK/STAT signaling, suggesting that Drn is a general component of JAK/STAT signaling. Absence of Drn resulted in specific accumulation of Domeless (Dome), the receptor for ligands in the JAK/STAT signaling pathway, in intracellular compartments, including ubiquitylated cargos. Dome colocalized with Drn in wild-type Drosophila. These results suggest that Drn is required for the endocytic trafficking of Dome, which is a crucial step for activation of JAK/STAT signaling and the subsequent degradation of Dome. The roles of AWP1/Drn in activating JAK/STAT signaling and in LR asymmetric development may be conserved in various organisms.


Subject(s)
Drosophila Proteins , Drosophila , Animals , Drosophila/metabolism , Drosophila melanogaster/metabolism , Drosophila Proteins/metabolism , Signal Transduction/physiology , Endocytosis/genetics , Janus Kinases/genetics , Janus Kinases/metabolism , STAT Transcription Factors/genetics , STAT Transcription Factors/metabolism
4.
Front Cell Dev Biol ; 8: 150, 2020.
Article in English | MEDLINE | ID: mdl-32226788

ABSTRACT

Neuronal migration is a critical step during the formation of functional neural circuits in the brain. Newborn neurons need to move across long distances from the germinal zone to their individual sites of function; during their migration, they must often squeeze their large, stiff nuclei, against strong mechanical stresses, through narrow spaces in developing brain tissue. Recent studies have clarified how actomyosin and microtubule motors generate mechanical forces in specific subcellular compartments and synergistically drive nuclear translocation in neurons. On the other hand, the mechanical properties of the surrounding tissues also contribute to their function as an adhesive support for cytoskeletal force transmission, while they also serve as a physical barrier to nuclear translocation. In this review, we discuss recent studies on nuclear migration in developing neurons, from both cell and mechanobiological viewpoints.

5.
Cancer Discov ; 10(6): 836-853, 2020 06.
Article in English | MEDLINE | ID: mdl-32249213

ABSTRACT

STAG2 encodes a cohesin component and is frequently mutated in myeloid neoplasms, showing highly significant comutation patterns with other drivers, including RUNX1. However, the molecular basis of cohesin-mutated leukemogenesis remains poorly understood. Here we show a critical role of an interplay between STAG2 and RUNX1 in the regulation of enhancer-promoter looping and transcription in hematopoiesis. Combined loss of STAG2 and RUNX1, which colocalize at enhancer-rich, CTCF-deficient sites, synergistically attenuates enhancer-promoter loops, particularly at sites enriched for RNA polymerase II and Mediator, and deregulates gene expression, leading to myeloid-skewed expansion of hematopoietic stem/progenitor cells (HSPC) and myelodysplastic syndromes (MDS) in mice. Attenuated enhancer-promoter loops in STAG2/RUNX1-deficient cells are associated with downregulation of genes with high basal transcriptional pausing, which are important for regulation of HSPCs. Downregulation of high-pausing genes is also confirmed in STAG2-cohesin-mutated primary leukemia samples. Our results highlight a unique STAG2-RUNX1 interplay in gene regulation and provide insights into cohesin-mutated leukemogenesis. SIGNIFICANCE: We demonstrate a critical role of an interplay between STAG2 and a master transcription factor of hematopoiesis, RUNX1, in MDS development, and further reveal their contribution to regulation of high-order chromatin structures, particularly enhancer-promoter looping, and the link between transcriptional pausing and selective gene dysregulation caused by cohesin deficiency.This article is highlighted in the In This Issue feature, p. 747.


Subject(s)
Cell Cycle Proteins/deficiency , Chromatin/genetics , Chromosomal Proteins, Non-Histone/deficiency , Core Binding Factor Alpha 2 Subunit/deficiency , Myelodysplastic Syndromes/etiology , Animals , Gene Expression Regulation , Humans , Mice , Mice, Knockout , Cohesins
6.
Nat Mater ; 19(2): 239-250, 2020 02.
Article in English | MEDLINE | ID: mdl-31659296

ABSTRACT

A common feature of cancer cells is the alteration of kinases and biochemical signalling pathways enabling transformed growth on soft matrices, whereas cytoskeletal protein alterations are thought to be a secondary issue. However, we report here that cancer cells from different tissues can be toggled between transformed and rigidity-dependent growth states by the absence or presence of mechanosensory modules, respectively. In various cancer lines from different tissues, cells had over tenfold fewer rigidity-sensing contractions compared with normal cells from the same tissues. Restoring normal levels of cytoskeletal proteins, including tropomyosins, restored rigidity sensing and rigidity-dependent growth. Further depletion of other rigidity sensor proteins, including myosin IIA, restored transformed growth and blocked sensing. In addition, restoration of rigidity sensing to cancer cells inhibited tumour formation and changed expression patterns. Thus, the depletion of rigidity-sensing modules through alterations in cytoskeletal protein levels enables cancer cell growth on soft surfaces, which is an enabling factor for cancer progression.


Subject(s)
Cell Transformation, Neoplastic , Mechanical Phenomena , Biomechanical Phenomena , Cell Line, Tumor , Cell Proliferation , Cytoskeletal Proteins/metabolism , Fibroblasts/cytology , Fibroblasts/pathology , Humans , Tropomyosin/metabolism
7.
Elife ; 72018 06 12.
Article in English | MEDLINE | ID: mdl-29891026

ABSTRACT

Polarized epithelial morphogenesis is an essential process in animal development. While this process is mostly attributed to directional cell intercalation, it can also be induced by other mechanisms. Using live-imaging analysis and a three-dimensional vertex model, we identified 'cell sliding,' a novel mechanism driving epithelial morphogenesis, in which cells directionally change their position relative to their subjacent (posterior) neighbors by sliding in one direction. In Drosophila embryonic hindgut, an initial left-right (LR) asymmetry of the cell shape (cell chirality in three dimensions), which occurs intrinsically before tissue deformation, is converted through LR asymmetric cell sliding into a directional axial twisting of the epithelial tube. In a Drosophila inversion mutant showing inverted cell chirality and hindgut rotation, cell sliding occurs in the opposite direction to that in wild-type. Unlike directional cell intercalation, cell sliding does not require junctional remodeling. Cell sliding may also be involved in other cases of LR-polarized epithelial morphogenesis.


Subject(s)
Body Patterning/physiology , Drosophila melanogaster/cytology , Epithelial Cells/cytology , Gastrointestinal Tract/cytology , Animals , Animals, Genetically Modified , Biomarkers/metabolism , Biomechanical Phenomena , Cell Culture Techniques , Cell Movement , Cell Polarity , Cell Shape , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/growth & development , Drosophila melanogaster/metabolism , Embryo, Nonmammalian , Epithelial Cells/metabolism , Gastrointestinal Tract/metabolism , Gene Expression , Myosin Type I/genetics , Myosin Type I/metabolism , Time-Lapse Imaging
8.
Cell Rep ; 21(10): 2714-2723, 2017 Dec 05.
Article in English | MEDLINE | ID: mdl-29212020

ABSTRACT

α-Actinins, a family of critical cytoskeletal actin-binding proteins that usually exist as anti-parallel dimers, play crucial roles in organizing the framework of the cytoskeleton through crosslinking the actin filaments, as well as in focal adhesion maturation. However, the molecular mechanisms underlying its functions are unclear. Here, by mechanical manipulation of single human α-actinin 1 using magnetic tweezers, we determined the mechanical stability and kinetics of the functional domains in α-actinin 1. Moreover, we identified the force-dependence of vinculin binding to α-actinin 1, with the demonstration that force is required to expose the high-affinity binding site for vinculin binding. Further, a role of the α-actinin 1 as molecular shock absorber for the cytoskeleton network is revealed. Our results provide a comprehensive analysis of the force-dependent stability and interactions of α-actinin 1, which sheds important light on the molecular mechanisms underlying its mechanotransmission and mechanosensing functions.


Subject(s)
Actinin/metabolism , Actinin/chemistry , Cytoskeleton/metabolism , Humans , Kinetics , Magnetite Nanoparticles/chemistry , Mechanotransduction, Cellular/genetics , Mechanotransduction, Cellular/physiology , Vinculin/chemistry
9.
Proc Natl Acad Sci U S A ; 113(44): E6813-E6822, 2016 11 01.
Article in English | MEDLINE | ID: mdl-27742790

ABSTRACT

Substrate rigidity affects many physiological processes through mechanochemical signals from focal adhesion (FA) complexes that subsequently modulate gene expression. We find that shuttling of the LIM domain (domain discovered in the proteins, Lin11, Isl-1, and Mec-3) protein four-and-a-half LIM domains 2 (FHL2) between FAs and the nucleus depends on matrix mechanics. In particular, on soft surfaces or after the loss of force, FHL2 moves from FAs into the nucleus and concentrates at RNA polymerase (Pol) II sites, where it acts as a transcriptional cofactor, causing an increase in p21 gene expression that will inhibit growth on soft surfaces. At the molecular level, shuttling requires a specific tyrosine in FHL2, as well as phosphorylation by active FA kinase (FAK). Thus, we suggest that FHL2 phosphorylation by FAK is a critical, mechanically dependent step in signaling from soft matrices to the nucleus to inhibit cell proliferation by increasing p21 expression.


Subject(s)
Cell Movement/physiology , Cell Nucleus/metabolism , Cyclin-Dependent Kinase Inhibitor p21/metabolism , Cytoskeletal Proteins/physiology , LIM-Homeodomain Proteins/metabolism , Mechanotransduction, Cellular/physiology , Muscle Proteins/metabolism , Transcription Factors/metabolism , Animals , Cell Adhesion/physiology , Cell Line , Cell Proliferation/drug effects , Cyclin-Dependent Kinase Inhibitor p21/genetics , Focal Adhesion Protein-Tyrosine Kinases/metabolism , Focal Adhesions/metabolism , Gene Expression Regulation , Humans , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , LIM Domain Proteins/genetics , LIM Domain Proteins/metabolism , LIM-Homeodomain Proteins/genetics , Mice , Muscle Proteins/genetics , Myosin Type II/metabolism , Phosphorylation , Point Mutation , RNA Polymerase II , Signal Transduction , Transcription Factors/genetics , Tyrosine
10.
Nano Lett ; 16(7): 4062-8, 2016 07 13.
Article in English | MEDLINE | ID: mdl-27210030

ABSTRACT

The dimeric focal adhesion protein talin contains up to 22 cryptic vinculin binding sites that are exposed by unfolding. Using a novel method to monitor the in situ dynamics of the talin dimer stretch, we find that in contrast to several prevalent talin dimer models the integrin-binding talin N-termini are separated by 162 ± 44 nm on average whereas as expected the C-terminal dimerization domains colocalize and are mobile. Using vinculin tagged by DHFR-TMP Atto655 label, we found that optimal vinculin and vinculin head binding occurred when talin was stretched to 180 nm, while the controls did not bind to talin. Surprisingly, multiple vinculins bound within a single second in narrowly localized regions of the talin rod during stretching. We suggest that talin stretches as an antiparallel dimer and that activates vinculin binding in a cooperative manner, consistent with the stabilization of folded talin by other binding proteins.

11.
Genetics ; 199(4): 1183-99, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25659376

ABSTRACT

The class I myosin genes are conserved in diverse organisms, and their gene products are involved in actin dynamics, endocytosis, and signal transduction. Drosophila melanogaster has three class I myosin genes, Myosin 31DF (Myo31DF), Myosin 61F (Myo61F), and Myosin 95E (Myo95E). Myo31DF, Myo61F, and Myo95E belong to the Myosin ID, Myosin IC, and Myosin IB families, respectively. Previous loss-of-function analyses of Myo31DF and Myo61F revealed important roles in left-right (LR) asymmetric development and enterocyte maintenance, respectively. However, it was difficult to elucidate their roles in vivo, because of potential redundant activities. Here we generated class I myosin double and triple mutants to address this issue. We found that the triple mutant was viable and fertile, indicating that all three class I myosins were dispensable for survival. A loss-of-function analysis revealed further that Myo31DF and Myo61F, but not Myo95E, had redundant functions in promoting the dextral LR asymmetric development of the male genitalia. Myo61F overexpression is known to antagonize the dextral activity of Myo31DF in various Drosophila organs. Thus, the LR-reversing activity of overexpressed Myo61F may not reflect its physiological function. The endogenous activity of Myo61F in promoting dextral LR asymmetric development was observed in the male genitalia, but not the embryonic gut, another LR asymmetric organ. Thus, Myo61F and Myo31DF, but not Myo95E, play tissue-specific, redundant roles in LR asymmetric development. Our studies also revealed differential colocalization of the class I myosins with filamentous (F)-actin in the brush border of intestinal enterocytes.


Subject(s)
Body Patterning/genetics , Drosophila Proteins/genetics , Drosophila melanogaster/genetics , Gene Expression Regulation, Developmental , Myosin Type I/genetics , Animals , Drosophila Proteins/metabolism , Drosophila melanogaster/embryology , Drosophila melanogaster/metabolism , Genitalia, Male/embryology , Genitalia, Male/metabolism , Intestinal Mucosa/metabolism , Intestines/embryology , Male , Mutation , Myosin Type I/metabolism , Organ Specificity
12.
Mech Dev ; 133: 146-62, 2014 Aug.
Article in English | MEDLINE | ID: mdl-24800645

ABSTRACT

Many animals show left-right (LR) asymmetric morphology. The mechanisms of LR asymmetric development are evolutionarily divergent, and they remain elusive in invertebrates. Various organs in Drosophila melanogaster show stereotypic LR asymmetry, including the embryonic gut. The Drosophila embryonic hindgut twists 90° left-handedly, thereby generating directional LR asymmetry. We recently revealed that the hindgut epithelial cell is chiral in shape and other properties; this is termed planar cell chirality (PCC). We previously showed by computer modeling that PCC is sufficient to induce the hindgut rotation. In addition, both the PCC and the direction of hindgut twisting are reversed in Myosin31DF (Myo31DF) mutants. Myo31DF encodes Drosophila MyosinID, an actin-based motor protein, whose molecular functions in LR asymmetric development are largely unknown. Here, to understand how PCC directs the asymmetric cell-shape, we analyzed PCC in genetic mosaics composed of cells homozygous for mutant Myo31DF, some of which also overexpressed wild-type Myo31DF. Wild-type cell-shape chirality only formed in the Myo31DF-overexpressing cells, suggesting that cell-shape chirality was established in each cell and reflects intrinsic PCC. A computer model recapitulating the development of this genetic mosaic suggested that mechanical interactions between cells are required for the cell-shape behavior seen in vivo. Our mosaic analysis also suggested that during hindgut rotation in vivo, wild-type Myo31DF suppresses the elongation of cell boundaries, supporting the idea that cell-shape chirality is an intrinsic property determined in each cell. However, the amount and distribution of F-actin and Myosin II, which are known to help generate the contraction force on cell boundaries, did not show differences between Myo31DF mutant cells and wild-type cells, suggesting that the static amount and distribution of these proteins are not involved in the suppression of cell-boundary elongation. Taken together, our results suggest that cell-shape chirality is intrinsically formed in each cell, and that mechanical force from intercellular interactions contributes to its formation and/or maintenance.


Subject(s)
Body Patterning/physiology , Cell Polarity/physiology , Drosophila Proteins/physiology , Drosophila melanogaster/cytology , Drosophila melanogaster/embryology , Myosin Type I/physiology , Animals , Animals, Genetically Modified , Body Patterning/genetics , Cell Polarity/genetics , Cell Shape/genetics , Cell Shape/physiology , Computer Simulation , Digestive System/cytology , Digestive System/embryology , Drosophila Proteins/genetics , Drosophila melanogaster/genetics , Genes, Insect , Mechanotransduction, Cellular/genetics , Models, Biological , Mosaicism , Mutation , Myosin Type I/genetics
13.
Mech Dev ; 130(2-3): 169-80, 2013 Feb.
Article in English | MEDLINE | ID: mdl-23041176

ABSTRACT

Animals often show left-right (LR) asymmetry in their body structures. In some vertebrates, the mechanisms underlying LR symmetry breaking and the subsequent signals responsible for LR asymmetric development are well understood. However, in invertebrates, the molecular bases of these processes are largely unknown. Therefore, we have been studying the genetic pathway of LR asymmetric development in Drosophila. The embryonic gut is the first organ that shows directional LR asymmetry during Drosophila development. We performed a genetic screen to identify mutations affecting LR asymmetric development of the embryonic gut. From this screen, we isolated pebble (pbl), which encodes a homolog of a mammalian RhoGEF, Ect2. The laterality of the hindgut was randomized in embryos homozygous for a null mutant of pbl. Pbl is a multi-functional protein required for cytokinesis and the epithelial-to-mesenchymal transition in Drosophila. Consistent with Pbl's role in cytokinesis, we found reduced numbers of cells in the hindgut epithelium in pbl homozygous embryos. The specific expression of pbl in the hindgut epithelium, but not in other tissues, rescued the LR defects and reduced cell number in embryonic pbl homozygotes. Embryos homozygous for string (stg), a mutant that reduces cell number through a different mechanism, also showed LR defects of the hindgut. However, the reduction in cell number in the pbl mutants was not accompanied by defects in the specification of hindgut epithelial tissues or their integrity. Based on these results, we speculate that the reduction in cell number may be one reason for the LR asymmetry defect of the pbl hindgut, although we cannot exclude contributions from other functions of Pbl, including regulation of the actin cytoskeleton through its RhoGEF activity.


Subject(s)
Drosophila Proteins/genetics , Drosophila melanogaster/embryology , Gastrointestinal Tract/embryology , Guanine Nucleotide Exchange Factors/genetics , Alleles , Animals , Body Patterning/genetics , Cell Count , Cell Polarity , Cytokinesis , Drosophila Proteins/metabolism , Drosophila melanogaster/cytology , Drosophila melanogaster/genetics , Epithelial Cells/physiology , Epithelium/embryology , Epithelium/metabolism , Gastrointestinal Tract/cytology , Gene Deletion , Gene Expression , Guanine Nucleotide Exchange Factors/metabolism , Homozygote , Organ Specificity , Point Mutation , RNA Splice Sites , Sequence Analysis, DNA
14.
Dev Dyn ; 241(5): 965-74, 2012 May.
Article in English | MEDLINE | ID: mdl-22437963

ABSTRACT

BACKGROUND: Mosaic analysis is used to assess gene function and cell autonomy in a subset of cells in an organism, and has been extensively applied in Drosophila studies. However, it is difficult to generate mosaic cells in Drosophila embryonic tissues using existing methods. Therefore, we developed a new method for generating genetic mosaic embryos using a modified Cre/loxP system. In this report, we also characterized the capabilities and limitations of this novel method. RESULTS: We first constructed a novel cassette combining loxP with the Actin 5C enhancer and Gal4 cDNA, and generated a transgenic fly carrying this construct (Aloxg-Gal4). In Aloxg-Gal4, the activation of Gal4 expression is suppressed by the gypsy insulator. Once the gypsy insulator is removed, however, Gal4 is expressed when site-specific recombination between loxP sites is induced by Cre recombinase. This system allowed the mosaic expression of Gal4 in Drosophila embryonic tissues (epidermis, amnioserosa, tracheal system, malpighian tubules, foregut, hindgut, midgut, and neuron), leading to the Gal4-dependent activation of arbitrary genes under the control of the upstream activation sequence (UAS). CONCLUSIONS: This practical method can be used to generate mosaic cells in Drosophila embryonic tissues and can be applied to any gene without specialized equipment.


Subject(s)
Drosophila/genetics , Gene Expression Regulation, Developmental , Integrases/genetics , Mosaicism , Animals , Animals, Genetically Modified , Drosophila/embryology , Gene Expression , Genes, Reporter
15.
Development ; 139(3): 558-67, 2012 Feb.
Article in English | MEDLINE | ID: mdl-22190636

ABSTRACT

The Notch (N) signaling machinery is evolutionarily conserved and regulates a broad spectrum of cell-specification events, through local cell-cell communication. pecanex (pcx) encodes a multi-pass transmembrane protein of unknown function, widely found from Drosophila to humans. The zygotic and maternal loss of pcx in Drosophila causes a neurogenic phenotype (hyperplasia of the embryonic nervous system), suggesting that pcx might be involved in N signaling. Here, we established that Pcx is a component of the N-signaling pathway. Pcx was required upstream of the membrane-tethered and the nuclear forms of activated N, probably in N signal-receiving cells, suggesting that pcx is required prior to or during the activation of N. pcx overexpression revealed that Pcx resides in the endoplasmic reticulum (ER). Disruption of pcx function resulted in enlargement of the ER that was not attributable to the reduced N signaling activity. In addition, hyper-induction of the unfolded protein response (UPR) by the expression of activated Xbp1 or dominant-negative Heat shock protein cognate 3 suppressed the neurogenic phenotype and ER enlargement caused by the absence of pcx. A similar suppression of these phenotypes was induced by overexpression of O-fucosyltransferase 1, an N-specific chaperone. Taking these results together, we speculate that the reduction in N signaling in embryos lacking pcx function might be attributable to defective ER functions, which are compensated for by upregulation of the UPR and possibly by enhancement of N folding. Our results indicate that the ER plays a previously unrecognized role in N signaling and that this ER function depends on pcx activity.


Subject(s)
Drosophila Proteins/metabolism , Drosophila melanogaster/metabolism , Membrane Proteins/metabolism , Receptors, Notch/metabolism , Unfolded Protein Response , Animals , DNA-Binding Proteins/metabolism , Drosophila Proteins/biosynthesis , Endoplasmic Reticulum/metabolism , Female , Fucosyltransferases/biosynthesis , HSC70 Heat-Shock Proteins/metabolism , Male , Neurogenesis , Signal Transduction
16.
Mech Dev ; 128(11-12): 625-39, 2012.
Article in English | MEDLINE | ID: mdl-22198363

ABSTRACT

Many animals develop left-right (LR) asymmetry in their internal organs. The mechanisms of LR asymmetric development are evolutionarily divergent, and are poorly understood in invertebrates. Therefore, we studied the genetic pathway of LR asymmetric development in Drosophila. Drosophila has several organs that show directional and stereotypic LR asymmetry, including the embryonic gut, which is the first organ to develop LR asymmetry during Drosophila development. In this study, we found that genes encoding components of the Wnt-signaling pathway are required for LR asymmetric development of the anterior part of the embryonic midgut (AMG). frizzled 2 (fz2) and Wnt4, which encode a receptor and ligand of Wnt signaling, respectively, were required for the LR asymmetric development of the AMG. arrow (arr), an ortholog of the mammalian gene encoding low-density lipoprotein receptor-related protein 5/6, which is a co-receptor of the Wnt-signaling pathway, was also essential for LR asymmetric development of the AMG. These results are the first demonstration that Wnt signaling contributes to LR asymmetric development in invertebrates, as it does in vertebrates. The AMG consists of visceral muscle and an epithelial tube. Our genetic analyses revealed that Wnt signaling in the visceral muscle but not the epithelium of the midgut is required for the AMG to develop its normal laterality. Furthermore, fz2 and Wnt4 were expressed in the visceral muscles of the midgut. Consistent with these results, we observed that the LR asymmetric rearrangement of the visceral muscle cells, the first visible asymmetry of the developing AMG, did not occur in embryos lacking Wnt4 expression. Our results also suggest that canonical Wnt/ß-catenin signaling, but not non-canonical Wnt signaling, is responsible for the LR asymmetric development of the AMG. Canonical Wnt/ß-catenin signaling is reported to have important roles in LR asymmetric development in zebrafish. Thus, the contribution of canonical Wnt/ß-catenin signaling to LR asymmetric development may be an evolutionarily conserved feature between vertebrates and invertebrates.


Subject(s)
Digestive System/embryology , Drosophila melanogaster/embryology , Muscle, Smooth/embryology , Wnt Signaling Pathway , Animals , DNA Mutational Analysis , Digestive System/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Frizzled Receptors/genetics , Frizzled Receptors/metabolism , Gene Expression Regulation, Developmental , Glycoproteins/genetics , Glycoproteins/metabolism , Muscle, Smooth/cytology , Muscle, Smooth/metabolism , Mutation , Myocytes, Smooth Muscle/metabolism , Organ Specificity , Organogenesis , Wnt Proteins/genetics , Wnt Proteins/metabolism
17.
Science ; 333(6040): 339-41, 2011 Jul 15.
Article in English | MEDLINE | ID: mdl-21764746

ABSTRACT

Some organs in animals display left-right (LR) asymmetry. To better understand LR asymmetric morphogenesis in Drosophila, we studied LR directional rotation of the hindgut epithelial tube. Hindgut epithelial cells adopt a LR asymmetric (chiral) cell shape within their plane, and we refer to this cell behavior as planar cell-shape chirality (PCC). Drosophila E-cadherin (DE-Cad) is distributed to cell boundaries with LR asymmetry, which is responsible for the PCC formation. Myosin ID switches the LR polarity found in PCC and in DE-Cad distribution, which coincides with the direction of rotation. An in silico simulation showed that PCC is sufficient to induce the directional rotation of this tissue. Thus, the intrinsic chirality of epithelial cells in vivo is an underlying mechanism for LR asymmetric tissue morphogenesis.


Subject(s)
Cadherins/metabolism , Cell Shape , Drosophila Proteins/metabolism , Drosophila/embryology , Epithelial Cells/cytology , Myosin Type I/metabolism , Adherens Junctions , Animals , Body Patterning , Cell Polarity , Computer Simulation , Drosophila/cytology , Drosophila/genetics , Drosophila Proteins/genetics , Intestines/cytology , Intestines/embryology , Models, Biological , Morphogenesis , Myosin Type I/genetics , Rotation
18.
Dev Biol ; 344(2): 693-706, 2010 Aug 15.
Article in English | MEDLINE | ID: mdl-20553709

ABSTRACT

Many animals exhibit stereotypical left-right (LR) asymmetry in their internal organs. The mechanisms of LR axis formation required for the subsequent LR asymmetric development are well understood, especially in some vertebrates. However, the molecular mechanisms underlying LR asymmetric morphogenesis, particularly how mechanical force is integrated into the LR asymmetric morphogenesis of organs, are poorly understood. Here, we identified zipper (zip), encoding a Drosophila non-muscle myosin II (myosin II) heavy chain, as a gene required for LR asymmetric development of the embryonic anterior midgut (AMG). Myosin II is known to directly generate mechanical force in various types of cells during morphogenesis and cell migration. We found that myosin II was involved in two events in the LR asymmetric development of the AMG. First, it introduced an LR bias to the directional position of circular visceral muscle (CVMU) cells, which externally cover the midgut epithelium. Second, it was required for the LR-biased rotation of the AMG. Our results suggest that myosin II in CVMU cells plays a crucial role in generating the force leading to LR asymmetric morphogenesis. Taken together with previous studies in vertebrates, the involvement of myosin II in LR asymmetric morphogenesis might be conserved evolutionarily.


Subject(s)
Drosophila/embryology , Animals , Digestive System/embryology , Digestive System/metabolism , Drosophila/genetics , Drosophila/growth & development , Embryo, Nonmammalian , Morphogenesis/genetics , Muscles/metabolism , Myosin Type II/genetics , Vertebrates/genetics , Vertebrates/metabolism
19.
Dev Dyn ; 237(12): 3528-37, 2008 Dec.
Article in English | MEDLINE | ID: mdl-18521948

ABSTRACT

In Drosophila, Myosin31DF (Myo31DF), encoding a Myosin ID protein, has crucial roles in left-right (LR) asymmetric development. Loss of Myo31DF function leads to laterality inversion for many organs, including the embryonic gut. Here, we found that Myo31DF was required before LR asymmetric morphogenesis in the hindgut, suggesting it functions in LR patterning instead of directly in hindgut morphological changes. Myosin61F (Myo61F) encodes another Myosin I, and Myo31DF or Myo61F overexpression reverses the laterality of different organs. Myo31DF and Myo61F have domains conserved in Myosin proteins, particularly in the proteins' head regions. We studied the roles of these domains in LR patterning using overexpression analysis. The Actin-binding and ATP-binding domains were essential for both proteins, but the IQ domains, binding sites for Myosin light chains, were required only by Myo31DF. Our results also suggest that the organ specificities of the Myo31DF and Myo61F activities depended on their head regions.


Subject(s)
Body Patterning , Drosophila Proteins/metabolism , Drosophila melanogaster/embryology , Drosophila melanogaster/metabolism , Head/embryology , Myosin Type I/metabolism , Animals , Drosophila Proteins/classification , Drosophila Proteins/genetics , Drosophila melanogaster/genetics , Embryo, Nonmammalian/embryology , Embryo, Nonmammalian/metabolism , Gene Expression Regulation, Developmental , Mesoderm/embryology , Mesoderm/metabolism , Myosin Type I/classification , Myosin Type I/genetics , Organ Specificity
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