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1.
Cell ; 180(3): 427-439.e12, 2020 02 06.
Article in English | MEDLINE | ID: mdl-32004461

ABSTRACT

Cell polarity is fundamental for tissue morphogenesis in multicellular organisms. Plants and animals evolved multicellularity independently, and it is unknown whether their polarity systems are derived from a single-celled ancestor. Planar polarity in animals is conferred by Wnt signaling, an ancient signaling pathway transduced by Dishevelled, which assembles signalosomes by dynamic head-to-tail DIX domain polymerization. In contrast, polarity-determining pathways in plants are elusive. We recently discovered Arabidopsis SOSEKI proteins, which exhibit polar localization throughout development. Here, we identify SOSEKI as ancient polar proteins across land plants. Concentration-dependent polymerization via a bona fide DIX domain allows these to recruit ANGUSTIFOLIA to polar sites, similar to the polymerization-dependent recruitment of signaling effectors by Dishevelled. Cross-kingdom domain swaps reveal functional equivalence of animal and plant DIX domains. We trace DIX domains to unicellular eukaryotes and thus show that DIX-dependent polymerization is an ancient mechanism conserved between kingdoms and central to polarity proteins.


Subject(s)
Arabidopsis/chemistry , Arabidopsis/cytology , Cell Polarity/physiology , Plant Cells/physiology , Polymerization , Protein Domains , Animals , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis Proteins/chemistry , Arabidopsis Proteins/metabolism , Axin Protein/chemistry , Axin Protein/metabolism , Bryopsida/chemistry , Bryopsida/cytology , Bryopsida/genetics , Bryopsida/growth & development , COS Cells , Chlorocebus aethiops , Dishevelled Proteins/metabolism , HEK293 Cells , Humans , Marchantia/chemistry , Marchantia/cytology , Marchantia/genetics , Marchantia/growth & development , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Plants, Genetically Modified , Repressor Proteins/metabolism , Wnt Signaling Pathway
2.
Nat Rev Mol Cell Biol ; 23(8): 559-577, 2022 08.
Article in English | MEDLINE | ID: mdl-35440694

ABSTRACT

Epithelial cells are the most common cell type in all animals, forming the sheets and tubes that compose most organs and tissues. Apical-basal polarity is essential for epithelial cell form and function, as it determines the localization of the adhesion molecules that hold the cells together laterally and the occluding junctions that act as barriers to paracellular diffusion. Polarity must also target the secretion of specific cargoes to the apical, lateral or basal membranes and organize the cytoskeleton and internal architecture of the cell. Apical-basal polarity in many cells is established by conserved polarity factors that define the apical (Crumbs, Stardust/PALS1, aPKC, PAR-6 and CDC42), junctional (PAR-3) and lateral (Scribble, DLG, LGL, Yurt and RhoGAP19D) domains, although recent evidence indicates that not all epithelia polarize by the same mechanism. Research has begun to reveal the dynamic interactions between polarity factors and how they contribute to polarity establishment and maintenance. Elucidating these mechanisms is essential to better understand the roles of apical-basal polarity in morphogenesis and how defects in polarity contribute to diseases such as cancer.


Subject(s)
Cell Polarity , Drosophila Proteins , Animals , Cell Polarity/physiology , Drosophila Proteins/metabolism , Epithelial Cells , Epithelium/metabolism , Morphogenesis
3.
Cell ; 177(6): 1463-1479.e18, 2019 05 30.
Article in English | MEDLINE | ID: mdl-31080065

ABSTRACT

Segregation of maternal determinants within the oocyte constitutes the first step in embryo patterning. In zebrafish oocytes, extensive ooplasmic streaming leads to the segregation of ooplasm from yolk granules along the animal-vegetal axis of the oocyte. Here, we show that this process does not rely on cortical actin reorganization, as previously thought, but instead on a cell-cycle-dependent bulk actin polymerization wave traveling from the animal to the vegetal pole of the oocyte. This wave functions in segregation by both pulling ooplasm animally and pushing yolk granules vegetally. Using biophysical experimentation and theory, we show that ooplasm pulling is mediated by bulk actin network flows exerting friction forces on the ooplasm, while yolk granule pushing is achieved by a mechanism closely resembling actin comet formation on yolk granules. Our study defines a novel role of cell-cycle-controlled bulk actin polymerization waves in oocyte polarization via ooplasmic segregation.


Subject(s)
Actins/metabolism , Cell Cycle/physiology , Oocytes/metabolism , Actins/physiology , Animals , Cell Polarity/physiology , Cytoplasm/metabolism , Egg Yolk/physiology , Polymerization , Zebrafish/embryology , Zebrafish/metabolism , Zebrafish Proteins/metabolism , Zygote
5.
Nat Rev Mol Cell Biol ; 18(6): 375-388, 2017 06.
Article in English | MEDLINE | ID: mdl-28293032

ABSTRACT

Planar cell polarity (PCP) is an essential feature of animal tissues, whereby distinct polarity is established within the plane of a cell sheet. Tissue-wide establishment of PCP is driven by multiple global cues, including gradients of gene expression, gradients of secreted WNT ligands and anisotropic tissue strain. These cues guide the dynamic, subcellular enrichment of PCP proteins, which can self-assemble into mutually exclusive complexes at opposite sides of a cell. Endocytosis, endosomal trafficking and degradation dynamics of PCP components further regulate planar tissue patterning. This polarization propagates throughout the whole tissue, providing a polarity axis that governs collective morphogenetic events such as the orientation of subcellular structures and cell rearrangements. Reflecting the necessity of polarized cellular behaviours for proper development and function of diverse organs, defects in PCP have been implicated in human pathologies, most notably in severe birth defects.


Subject(s)
Cell Polarity/physiology , Animals , Cell Polarity/genetics , Humans , Morphogenesis/genetics , Morphogenesis/physiology , Protein Transport/genetics , Protein Transport/physiology , Signal Transduction/genetics , Signal Transduction/physiology
6.
Annu Rev Cell Dev Biol ; 31: 575-91, 2015.
Article in English | MEDLINE | ID: mdl-26359775

ABSTRACT

One of the major challenges in biology is to explain how complex tissues and organs arise from the collective action of individual polarized cells. The best-studied model of this process is the cross talk between individual epithelial cells during their polarization to form the multicellular epithelial lumen during tissue morphogenesis. Multiple mechanisms of apical lumen formation have been proposed. Some epithelial lumens form from preexisting polarized epithelial structures. However, de novo lumen formation from nonpolarized cells has recently emerged as an important driver of epithelial tissue morphogenesis, especially during the formation of small epithelial tubule networks. In this review, we discuss the latest findings regarding the mechanisms and regulation of de novo lumen formation in vitro and in vivo.


Subject(s)
Cell Polarity/physiology , Epithelial Cells/physiology , Morphogenesis/physiology , Protein Transport/physiology , Animals , Humans
7.
Annu Rev Cell Dev Biol ; 31: 647-67, 2015.
Article in English | MEDLINE | ID: mdl-26566119

ABSTRACT

Myelinated axons are divided into polarized subdomains including axon initial segments and nodes of Ranvier. These domains initiate and propagate action potentials and regulate the trafficking and localization of somatodendritic and axonal proteins. Formation of axon initial segments and nodes of Ranvier depends on intrinsic (neuronal) and extrinsic (glial) interactions. Several levels of redundancy in both mechanisms and molecules also exist to ensure efficient node formation. Furthermore, the establishment of polarized domains at and near nodes of Ranvier reflects the intrinsic polarity of the myelinating glia responsible for node assembly. Here, we discuss the various polarized domains of myelinated axons, how they are established by both intrinsic and extrinsic interactions, and the polarity of myelinating glia.


Subject(s)
Axons/physiology , Cell Polarity/physiology , Action Potentials/physiology , Animals , Humans , Myelin Sheath/physiology , Neuroglia/physiology , Neurons/physiology
8.
Annu Rev Cell Dev Biol ; 31: 623-46, 2015.
Article in English | MEDLINE | ID: mdl-26566118

ABSTRACT

The establishment of planar cell polarity (PCP) in epithelial and mesenchymal cells is a critical, evolutionarily conserved process during development and organogenesis. Analyses in Drosophila and several vertebrate model organisms have contributed a wealth of information on the regulation of PCP. A key conserved pathway regulating PCP, the so-called core Wnt-Frizzled PCP (Fz/PCP) signaling pathway, was initially identified through genetic studies of Drosophila. PCP studies in vertebrates, most notably mouse and zebrafish, have identified novel factors in PCP signaling and have also defined cellular features requiring PCP signaling input. These studies have shifted focus to the role of Van Gogh (Vang)/Vangl genes in this molecular system. This review focuses on new insights into the core Fz/Vangl/PCP pathway and recent advances in Drosophila and vertebrate PCP studies. We attempt to integrate these within the existing core Fz/Vangl/PCP signaling framework.


Subject(s)
Cell Polarity/physiology , Frizzled Receptors/metabolism , Signal Transduction/physiology , Wnt Signaling Pathway/physiology , Animals , Drosophila/metabolism , Drosophila/physiology , Drosophila Proteins/metabolism , Drosophila Proteins/physiology , Humans
9.
Annu Rev Cell Dev Biol ; 30: 317-36, 2014.
Article in English | MEDLINE | ID: mdl-25062359

ABSTRACT

Localized ion fluxes at the plasma membrane provide electrochemical gradients at the cell surface that contribute to cell polarization, migration, and division. Ion transporters, local pH gradients, membrane potential, and organization are emerging as important factors in cell polarization mechanisms. The power of electrochemical effects is illustrated by the ability of exogenous electric fields to redirect polarization in cells ranging from bacteria, fungi, and amoebas to keratocytes and neurons. Electric fields normally surround cells and tissues and thus have been proposed to guide cell polarity in development, cancer, and wound healing. Recent studies on electric field responses in model systems and development of new biosensors provide new avenues to dissect molecular mechanisms. Here, we review recent advances that bring molecular understanding of how electrochemistry contributes to cell polarity in various contexts.


Subject(s)
Cell Polarity/physiology , Animals , Anions/metabolism , Cations/metabolism , Cell Division , Cell Movement , Cell Shape , Dictyostelium/cytology , Electrochemistry , Electromagnetic Fields , Fishes , Fungi/cytology , Hydrogen-Ion Concentration , Intracellular Fluid/chemistry , Ion Transport/physiology , Membrane Potentials/physiology , Regeneration , Static Electricity , Wound Healing
10.
EMBO J ; 42(24): e113856, 2023 Dec 11.
Article in English | MEDLINE | ID: mdl-37953688

ABSTRACT

Apical-basal polarity is maintained by distinct protein complexes that reside in membrane junctions, and polarity loss in monolayered epithelial cells can lead to formation of multilayers, cell extrusion, and/or malignant overgrowth. Yet, how polarity loss cooperates with intrinsic signals to control directional invasion toward neighboring epithelial cells remains elusive. Using the Drosophila ovarian follicular epithelium as a model, we found that posterior follicle cells with loss of lethal giant larvae (lgl) or Discs large (Dlg) accumulate apically toward germline cells, whereas cells with loss of Bazooka (Baz) or atypical protein kinase C (aPKC) expand toward the basal side of wildtype neighbors. Further studies revealed that these distinct multilayering patterns in the follicular epithelium were determined by epidermal growth factor receptor (EGFR) signaling and its downstream target Pointed, a zinc-finger transcription factor. Additionally, we identified Rho kinase as a Pointed target that regulates formation of distinct multilayering patterns. These findings provide insight into how cell polarity genes and receptor tyrosine kinase signaling interact to govern epithelial cell organization and directional growth that contribute to epithelial tumor formation.


Subject(s)
Cell Polarity , Drosophila Proteins , ErbB Receptors , Animals , Cell Polarity/physiology , Drosophila melanogaster , Drosophila Proteins/metabolism , Epithelial Cells/metabolism , Epithelium/metabolism , ErbB Receptors/genetics , ErbB Receptors/metabolism
11.
Development ; 151(20)2024 Oct 15.
Article in English | MEDLINE | ID: mdl-39041335

ABSTRACT

The multicellular haploid stage of land plants develops from a single haploid cell produced by meiosis - the spore. Starting from a non-polar state, these spores develop polarity, divide asymmetrically and establish the first axis of symmetry. Here, we show that the nucleus migrates from the cell centroid to the basal pole during polarisation of the Marchantia polymorpha spore cell. A microtubule organising centre on the leading edge of the nucleus initiates a microtubule array between the nuclear surface and the cortex at the basal pole. Simultaneously, cortical microtubules disappear from the apical hemisphere but persist in the basal hemisphere. This is accompanied by the formation a dense network of fine actin filaments between the nucleus and the basal pole cortex. Experimental depolymerisation of either microtubules or actin filaments disrupts cellular asymmetry. These data demonstrate that the cytoskeleton reorganises during spore polarisation and controls the directed migration of the nucleus to the basal pole. The presence of the nucleus at the basal pole provides the cellular asymmetry for the asymmetric cell division that establishes the apical-basal axis of the plant.


Subject(s)
Actin Cytoskeleton , Cell Nucleus , Cell Polarity , Marchantia , Microtubules , Spores , Microtubules/metabolism , Cell Nucleus/metabolism , Actin Cytoskeleton/metabolism , Marchantia/metabolism , Marchantia/genetics , Marchantia/cytology , Cell Polarity/physiology
12.
Development ; 151(10)2024 May 15.
Article in English | MEDLINE | ID: mdl-38639390

ABSTRACT

The planar orientation of cell division (OCD) is important for epithelial morphogenesis and homeostasis. Here, we ask how mechanics and antero-posterior (AP) patterning combine to influence the first divisions after gastrulation in the Drosophila embryonic epithelium. We analyse hundreds of cell divisions and show that stress anisotropy, notably from compressive forces, can reorient division directly in metaphase. Stress anisotropy influences the OCD by imposing metaphase cell elongation, despite mitotic rounding, and overrides interphase cell elongation. In strongly elongated cells, the mitotic spindle adapts its length to, and hence its orientation is constrained by, the cell long axis. Alongside mechanical cues, we find a tissue-wide bias of the mitotic spindle orientation towards AP-patterned planar polarised Myosin-II. This spindle bias is lost in an AP-patterning mutant. Thus, a patterning-induced mitotic spindle orientation bias overrides mechanical cues in mildly elongated cells, whereas in strongly elongated cells the spindle is constrained close to the high stress axis.


Subject(s)
Cell Division , Cell Polarity , Drosophila melanogaster , Epithelial Cells , Metaphase , Spindle Apparatus , Stress, Mechanical , Animals , Metaphase/physiology , Epithelial Cells/cytology , Epithelial Cells/metabolism , Spindle Apparatus/metabolism , Drosophila melanogaster/embryology , Drosophila melanogaster/cytology , Cell Polarity/physiology , Body Patterning , Myosin Type II/metabolism , Embryo, Nonmammalian/cytology , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Gastrulation/physiology
13.
Proc Natl Acad Sci U S A ; 121(26): e2400804121, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38900800

ABSTRACT

Chirality plays a crucial role in biology, as it is highly conserved and fundamentally important in the developmental process. To better understand the relationship between the chirality of individual cells and that of tissues and organisms, we develop a generalized mechanics model of chiral polarized particles to investigate the swirling dynamics of cell populations on substrates. Our analysis reveals that cells with the same chirality can form distinct chiral patterns on ring-shaped or rectangular substrates. Interestingly, our studies indicate that an excessively strong or weak individual cellular chirality hinders the formation of such chiral patterns. Our studies also indicate that there exists the influence distance of substrate boundaries in chiral patterns. Smaller influence distances are observed when cell-cell interactions are weaker. Conversely, when cell-cell interactions are too strong, multiple cells tend to be stacked together, preventing the formation of chiral patterns on substrates in our analysis. Additionally, we demonstrate that the interaction between cells and substrate boundaries effectively controls the chiral distribution of cellular orientations on ring-shaped substrates. This research highlights the significance of coordinating boundary features, individual cellular chirality, and cell-cell interactions in governing the chiral movement of cell populations and provides valuable mechanics insights into comprehending the intricate connection between the chirality of single cells and that of tissues and organisms.


Subject(s)
Cell Communication , Models, Biological , Cell Communication/physiology , Cell Movement/physiology , Cell Polarity/physiology
14.
Proc Natl Acad Sci U S A ; 121(22): e2318248121, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38787878

ABSTRACT

For eukaryotic cells to heal wounds, respond to immune signals, or metastasize, they must migrate, often by adhering to extracellular matrix (ECM). Cells may also deposit ECM components, leaving behind a footprint that influences their crawling. Recent experiments showed that some epithelial cell lines on micropatterned adhesive stripes move persistently in regions they have previously crawled over, where footprints have been formed, but barely advance into unexplored regions, creating an oscillatory migration of increasing amplitude. Here, we explore through mathematical modeling how footprint deposition and cell responses to footprint combine to allow cells to develop oscillation and other complex migratory motions. We simulate cell crawling with a phase field model coupled to a biochemical model of cell polarity, assuming local contact with the deposited footprint activates Rac1, a protein that establishes the cell's front. Depending on footprint deposition rate and response to the footprint, cells on micropatterned lines can display many types of motility, including confined, oscillatory, and persistent motion. On two-dimensional (2D) substrates, we predict a transition between cells undergoing circular motion and cells developing an exploratory phenotype. Small quantitative changes in a cell's interaction with its footprint can completely alter exploration, allowing cells to tightly regulate their motion, leading to different motility phenotypes (confined vs. exploratory) in different cells when deposition or sensing is variable from cell to cell. Consistent with our computational predictions, we find in earlier experimental data evidence of cells undergoing both circular and exploratory motion.


Subject(s)
Cell Movement , Extracellular Matrix , Cell Movement/physiology , Extracellular Matrix/metabolism , Extracellular Matrix/physiology , rac1 GTP-Binding Protein/metabolism , Humans , Cell Polarity/physiology , Models, Biological , Animals , Cell Adhesion/physiology , Epithelial Cells/metabolism , Epithelial Cells/cytology , Epithelial Cells/physiology
15.
Proc Natl Acad Sci U S A ; 121(29): e2400569121, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-38985771

ABSTRACT

Defects in planar cell polarity (PCP) have been implicated in diverse human pathologies. Vangl2 is one of the core PCP components crucial for PCP signaling. Dysregulation of Vangl2 has been associated with severe neural tube defects and cancers. However, how Vangl2 protein is regulated at the posttranslational level has not been well understood. Using chemical reporters of fatty acylation and biochemical validation, here we present that Vangl2 subcellular localization is regulated by a reversible S-stearoylation cycle. The dynamic process is mainly regulated by acyltransferase ZDHHC9 and deacylase acyl-protein thioesterase 1 (APT1). The stearoylation-deficient mutant of Vangl2 shows decreased plasma membrane localization, resulting in disruption of PCP establishment during cell migration. Genetically or pharmacologically inhibiting ZDHHC9 phenocopies the effects of the stearoylation loss of Vangl2. In addition, loss of Vangl2 stearoylation enhances the activation of oncogenic Yes-associated protein 1 (YAP), serine-threonine kinase AKT, and extracellular signal-regulated protein kinase (ERK) signaling and promotes breast cancer cell growth and HRas G12V mutant (HRasV12)-induced oncogenic transformation. Our results reveal a regulation mechanism of Vangl2, and provide mechanistic insight into how fatty acid metabolism and protein fatty acylation regulate PCP signaling and tumorigenesis by core PCP protein lipidation.


Subject(s)
Cell Membrane , Cell Polarity , Membrane Proteins , Humans , Membrane Proteins/metabolism , Membrane Proteins/genetics , Cell Polarity/physiology , Cell Membrane/metabolism , Cell Movement , Thiolester Hydrolases/metabolism , Thiolester Hydrolases/genetics , Acyltransferases/metabolism , Acyltransferases/genetics , Animals , Signal Transduction , Protein Processing, Post-Translational , Intracellular Signaling Peptides and Proteins
16.
Proc Natl Acad Sci U S A ; 121(35): e2405217121, 2024 Aug 27.
Article in English | MEDLINE | ID: mdl-39172791

ABSTRACT

Intercellular signaling mediated by evolutionarily conserved planar cell polarity (PCP) proteins aligns cell polarity along the tissue plane and drives polarized cell behaviors during tissue morphogenesis. Accumulating evidence indicates that the vertebrate PCP pathway is regulated by noncanonical, ß-catenin-independent Wnt signaling; however, the signaling components and mechanisms are incompletely understood. In the mouse hearing organ, both PCP and noncanonical Wnt (ncWnt) signaling are required in the developing auditory sensory epithelium to control cochlear duct elongation and planar polarity of resident sensory hair cells (HCs), including the shape and orientation of the stereociliary hair bundle essential for sound detection. We have recently discovered a Wnt/G-protein/PI3K pathway that coordinates HC planar polarity and intercellular PCP signaling. Here, we identify Wnt7b as a ncWnt ligand acting in concert with Wnt5a to promote tissue elongation in diverse developmental processes. In the cochlea, Wnt5a and Wnt7b are redundantly required for cochlear duct coiling and elongation, HC planar polarity, and asymmetric localization of core PCP proteins Fzd6 and Dvl2. Mechanistically, Wnt5a/Wnt7b-mediated ncWnt signaling promotes membrane recruitment of Daple, a nonreceptor guanine nucleotide exchange factor for Gαi, and activates PI3K/AKT and ERK signaling, which promote asymmetric Fzd6 localization. Thus, ncWnt and PCP signaling pathways have distinct mutant phenotypes and signaling components, suggesting that they act as separate, parallel pathways with nonoverlapping functions in cochlear morphogenesis. NcWnt signaling drives tissue elongation and reinforces intercellular PCP signaling by regulating the trafficking of PCP-specific Frizzled receptors.


Subject(s)
Cell Polarity , Wnt Proteins , Wnt Signaling Pathway , Wnt-5a Protein , Animals , Cell Polarity/physiology , Wnt Proteins/metabolism , Wnt Proteins/genetics , Wnt-5a Protein/metabolism , Wnt-5a Protein/genetics , Mice , Wnt Signaling Pathway/physiology , Cochlea/metabolism , Cochlea/cytology , Cochlea/growth & development , Hair Cells, Auditory/metabolism , Frizzled Receptors/metabolism , Frizzled Receptors/genetics , Proto-Oncogene Proteins/metabolism , Proto-Oncogene Proteins/genetics , Morphogenesis
17.
J Cell Sci ; 137(5)2024 03 01.
Article in English | MEDLINE | ID: mdl-38465513

ABSTRACT

Drosophila neural stem cells, or neuroblasts, rapidly proliferate during embryonic and larval development to populate the central nervous system. Neuroblasts divide asymmetrically to create cellular diversity, with each division producing one sibling cell that retains the neuroblast fate and another that differentiates into glia or neurons. This asymmetric outcome is mediated by the transient polarization of numerous factors to the cell cortex during mitosis. The powerful genetics and outstanding imaging tractability of the neuroblast make it an excellent model system for studying the mechanisms of cell polarity. This Cell Science at a Glance article and the accompanying poster explore the phases of the neuroblast polarity cycle and the regulatory circuits that control them. We discuss the key features of the cycle - the targeted recruitment of proteins to specific regions of the plasma membrane and multiple phases of highly dynamic actomyosin-dependent cortical flows that pattern both protein distribution and membrane structure.


Subject(s)
Drosophila Proteins , Neural Stem Cells , Animals , Drosophila/metabolism , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Neural Stem Cells/metabolism , Neurons/metabolism , Mitosis , Cell Cycle Proteins/metabolism , Cell Polarity/physiology
18.
J Cell Sci ; 137(5)2024 03 01.
Article in English | MEDLINE | ID: mdl-37818620

ABSTRACT

The membrane potential (MP) controls cell homeostasis by directing molecule transport and gene expression. How the MP is set upon epithelial differentiation is unknown. Given that tissue architecture also controls homeostasis, we investigated the relationship between basoapical polarity and resting MP in three-dimensional culture of the HMT-3522 breast cancer progression. A microelectrode technique to measure MP and input resistance reveals that the MP is raised by gap junction intercellular communication (GJIC), which directs tight-junction mediated apical polarity, and is decreased by the Na+/K+/2Cl- (NKCC, encoded by SLC12A1 and SLC12A2) co-transporter, active in multicellular structures displaying basal polarity. In the tumor counterpart, the MP is reduced. Cancer cells display diminished GJIC and do not respond to furosemide, implying loss of NKCC activity. Induced differentiation of cancer cells into basally polarized multicellular structures restores widespread GJIC and NKCC responses, but these structures display the lowest MP. The absence of apical polarity, necessary for cancer onset, in the non-neoplastic epithelium is also associated with the lowest MP under active Cl- transport. We propose that the loss of apical polarity in the breast epithelium destabilizes cellular homeostasis in part by lowering the MP.


Subject(s)
Mammary Glands, Human , Humans , Membrane Potentials , Epithelium/metabolism , Breast , Cell Communication/physiology , Cell Polarity/physiology , Epithelial Cells , Solute Carrier Family 12, Member 2/metabolism
19.
J Cell Sci ; 137(5)2024 03 01.
Article in English | MEDLINE | ID: mdl-38323986

ABSTRACT

Migratory cells - either individually or in cohesive groups - are critical for spatiotemporally regulated processes such as embryonic development and wound healing. Their dysregulation is the underlying cause of formidable health problems such as congenital abnormalities and metastatic cancers. Border cell behavior during Drosophila oogenesis provides an effective model to study temporally regulated, collective cell migration in vivo. Developmental timing in flies is primarily controlled by the steroid hormone ecdysone, which acts through a well-conserved, nuclear hormone receptor complex. Ecdysone signaling determines the timing of border cell migration, but the molecular mechanisms governing this remain obscure. We found that border cell clusters expressing a dominant-negative form of ecdysone receptor extended ineffective protrusions. Additionally, these clusters had aberrant spatial distributions of E-cadherin (E-cad), apical domain markers and activated myosin that did not overlap. Remediating their expression or activity individually in clusters mutant for ecdysone signaling did not restore proper migration. We propose that ecdysone signaling synchronizes the functional distribution of E-cadherin, atypical protein kinase C (aPKC), Discs large (Dlg1) and activated myosin post-transcriptionally to coordinate adhesion, polarity and contractility and temporally control collective cell migration.


Subject(s)
Drosophila Proteins , Animals , Drosophila Proteins/metabolism , Ecdysone/metabolism , Drosophila/metabolism , Cadherins/genetics , Cadherins/metabolism , Cell Movement/physiology , Myosins/metabolism , Drosophila melanogaster/metabolism , Cell Polarity/physiology , Cell Adhesion
20.
J Cell Sci ; 137(5)2024 03 01.
Article in English | MEDLINE | ID: mdl-37888135

ABSTRACT

Polarised epithelial cell divisions represent a fundamental mechanism for tissue maintenance and morphogenesis. Morphological and mechanical changes in the plasma membrane influence the organisation and crosstalk of microtubules and actin at the cell cortex, thereby regulating the mitotic spindle machinery and chromosome segregation. Yet, the precise mechanisms linking plasma membrane remodelling to cell polarity and cortical cytoskeleton dynamics to ensure accurate execution of mitosis in mammalian epithelial cells remain poorly understood. Here, we manipulated the density of mammary epithelial cells in culture, which led to several mitotic defects. Perturbation of cell-cell adhesion formation impairs the dynamics of the plasma membrane, affecting the shape and size of mitotic cells and resulting in defects in mitotic progression and the generation of daughter cells with aberrant architecture. In these conditions, F- actin-astral microtubule crosstalk is impaired, leading to mitotic spindle misassembly and misorientation, which in turn contributes to chromosome mis-segregation. Mechanistically, we identify S100 Ca2+-binding protein A11 (S100A11) as a key membrane-associated regulator that forms a complex with E-cadherin (CDH1) and the leucine-glycine-asparagine repeat protein LGN (also known as GPSM2) to coordinate plasma membrane remodelling with E-cadherin-mediated cell adhesion and LGN-dependent mitotic spindle machinery. Thus, plasma membrane-mediated maintenance of mammalian epithelial cell identity is crucial for correct execution of polarised cell divisions, genome maintenance and safeguarding tissue integrity.


Subject(s)
Actins , Cell Polarity , Animals , Cell Adhesion , Actins/metabolism , Cell Polarity/physiology , Mitosis , Microtubules/metabolism , Spindle Apparatus/metabolism , Cell Membrane/metabolism , Cadherins/genetics , Cadherins/metabolism , Mammals/metabolism
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