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1.
J Cell Biol ; 221(3)2022 02 09.
Article in English | MEDLINE | ID: mdl-35139142

ABSTRACT

The coordinated interplay of cytoskeletal networks critically determines tissue biomechanics and structural integrity. Here, we show that plectin, a major intermediate filament-based cytolinker protein, orchestrates cortical cytoskeletal networks in epithelial sheets to support intercellular junctions. By combining CRISPR/Cas9-based gene editing and pharmacological inhibition, we demonstrate that in an F-actin-dependent context, plectin is essential for the formation of the circumferential keratin rim, organization of radial keratin spokes, and desmosomal patterning. In the absence of plectin-mediated cytoskeletal cross-linking, the aberrant keratin-desmosome (DSM)-network feeds back to the actin cytoskeleton, which results in elevated actomyosin contractility. Also, by complementing a predictive mechanical model with Förster resonance energy transfer-based tension sensors, we provide evidence that in the absence of cytoskeletal cross-linking, major intercellular junctions (adherens junctions and DSMs) are under intrinsically generated tensile stress. Defective cytoarchitecture and tensional disequilibrium result in reduced intercellular cohesion, associated with general destabilization of plectin-deficient sheets upon mechanical stress.


Subject(s)
Cytoskeleton/metabolism , Epithelial Cells/metabolism , Plectin/metabolism , Actins/metabolism , Animals , Biomechanical Phenomena , Cytoskeleton/ultrastructure , Desmosomes/metabolism , Desmosomes/ultrastructure , Dogs , Epithelial Cells/ultrastructure , Gene Knockout Techniques , Humans , Keratins/metabolism , MCF-7 Cells , Madin Darby Canine Kidney Cells , Mice , Protein Isoforms/metabolism , Tensile Strength
2.
Cell Mol Life Sci ; 76(11): 2199-2216, 2019 Jun.
Article in English | MEDLINE | ID: mdl-30762072

ABSTRACT

The organization of the nuclear periphery is crucial for many nuclear functions. Nuclear lamins form dense network at the nuclear periphery and play a substantial role in chromatin organization, transcription regulation and in organization of nuclear pore complexes (NPCs). Here, we show that TPR, the protein located preferentially within the nuclear baskets of NPCs, associates with lamin B1. The depletion of TPR affects the organization of lamin B1 but not lamin A/C within the nuclear lamina as shown by stimulated emission depletion microscopy. Finally, reduction of TPR affects the distribution of NPCs within the nuclear envelope and the effect can be reversed by simultaneous knock-down of lamin A/C or the overexpression of lamin B1. Our work suggests a novel role for the TPR at the nuclear periphery: the TPR contributes to the organization of the nuclear lamina and in cooperation with lamins guards the interphase assembly of nuclear pore complexes.


Subject(s)
Lamin Type A/genetics , Lamin Type B/genetics , Nuclear Envelope/metabolism , Nuclear Lamina/metabolism , Nuclear Pore Complex Proteins/genetics , Proto-Oncogene Proteins/genetics , Gene Expression Regulation , HeLa Cells , Humans , Lamin Type A/antagonists & inhibitors , Lamin Type A/metabolism , Lamin Type B/metabolism , Molecular Imaging , Nuclear Envelope/ultrastructure , Nuclear Lamina/ultrastructure , Nuclear Pore Complex Proteins/antagonists & inhibitors , Nuclear Pore Complex Proteins/metabolism , Proto-Oncogene Proteins/antagonists & inhibitors , Proto-Oncogene Proteins/metabolism , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism , Signal Transduction
3.
J Cell Sci ; 130(12): 2066-2077, 2017 Jun 15.
Article in English | MEDLINE | ID: mdl-28476938

ABSTRACT

The nuclear periphery (NP) plays a substantial role in chromatin organization. Heterochromatin at the NP is interspersed with active chromatin surrounding nuclear pore complexes (NPCs); however, details of the peripheral chromatin organization are missing. To discern the distribution of epigenetic marks at the NP of HeLa nuclei, we used structured illumination microscopy combined with a new MATLAB software tool for automatic NP and NPC detection, measurements of fluorescent intensity and statistical analysis of measured data. Our results show that marks for both active and non-active chromatin associate differentially with NPCs. The incidence of heterochromatin marks, such as H3K27me2 and H3K9me2, was significantly lower around NPCs. In contrast, the presence of marks of active chromatin such as H3K4me2 was only decreased very slightly around the NPCs or not at all (H3K9Ac). Interestingly, the histone demethylases LSD1 (also known as KDM1A) and KDM2A were enriched within the NPCs, suggesting that there was a chromatin-modifying mechanism at the NPCs. Inhibition of transcription resulted in a larger drop in the distribution of H1, H3K9me2 and H3K23me2, which implies that transcription has a role in the organization of heterochromatin at the NP.


Subject(s)
Cell Nucleus/metabolism , Chromatin/chemistry , Microscopy/methods , Chromatin/metabolism , Epigenesis, Genetic , HeLa Cells , Heterochromatin/chemistry , Histone Demethylases/metabolism , Histones/chemistry , Humans , Microscopy, Fluorescence , Nuclear Envelope/metabolism , Nuclear Pore/metabolism , Software
4.
Protoplasma ; 254(3): 1207-1218, 2017 May.
Article in English | MEDLINE | ID: mdl-28101692

ABSTRACT

Stress fibers are actin bundles encompassing actin filaments, actin-crosslinking, and actin-associated proteins that represent the major contractile system in the cell. Different types of stress fibers assemble in adherent cells, and they are central to diverse cellular processes including establishment of the cell shape, morphogenesis, cell polarization, and migration. Stress fibers display specific cellular organization and localization, with ventral fibers present at the basal side, and dorsal fibers and transverse actin arcs rising at the cell front from the ventral to the dorsal side and toward the nucleus. Perinuclear actin cap fibers are a specific subtype of stress fibers that rise from the leading edge above the nucleus and terminate at the cell rear forming a dome-like structure. Perinuclear actin cap fibers are fixed at three points: both ends are anchored in focal adhesions, while the central part is physically attached to the nucleus and nuclear lamina through the linker of nucleoskeleton and cytoskeleton (LINC) complex. Here, we discuss recent work that provides new insights into the mechanism of assembly and the function of these actin stress fibers that directly link extracellular matrix and focal adhesions with the nuclear envelope.


Subject(s)
Actin Capping Proteins/metabolism , Cell Movement/physiology , Cell Shape/physiology , Mechanotransduction, Cellular/physiology , Stress Fibers/physiology , Cell Nucleus/metabolism , Cell Polarity/physiology , Focal Adhesions/physiology , Humans , Nuclear Envelope/metabolism
5.
FEBS J ; 283(20): 3676-3693, 2016 10.
Article in English | MEDLINE | ID: mdl-27538255

ABSTRACT

In polarized motile cells, stress fibers display specific three-dimensional organization. Ventral stress fibers, attached to focal adhesions at both ends, are restricted to the basal side of the cell and nonprotruding cell sides. Dorsal fibers, transverse actin arcs, and perinuclear actin fibers emanate from protruding cell front toward the nucleus and toward apical side of the cell. Perinuclear cap fibers further extend above the nucleus, associate with nuclear envelope through LINC (linker of nucleoskeleton and cytoskeleton) complex and terminate in focal adhesions at cell rear. How are perinuclear actin fibers formed is poorly understood. We show that the formation of perinuclear actin fibers requires dorsal stress fibers that polymerize from focal adhesions at leading edge, and transverse actin arcs that are interconnected with dorsal fibers in spots rich in α-actinin-1. During cell polarization, the interconnected dorsal fibers and transverse arcs move from leading edge toward dorsal side of the cell. As they move, transverse arcs associate with one end of stress fibers present at nonprotruding cell sides, move them above the nucleus thus forming perinuclear actin fibers. Furthermore, the formation of perinuclear actin fibers induces temporal rotational movement of the nucleus resulting in nuclear reorientation to the direction of migration. These results suggest that the network of dorsal fibers, transverse arcs, and perinuclear fibers transfers mechanical signal between the focal adhesions and nuclear envelope that regulates the nuclear reorientation in polarizing cells.


Subject(s)
Actins/physiology , Cell Nucleus/physiology , Stress Fibers/physiology , Actinin/physiology , Animals , Cell Line , Cell Movement/physiology , Cell Polarity/physiology , Fibroblasts/physiology , Focal Adhesions/physiology , Humans , Mechanotransduction, Cellular/physiology , Movement/physiology , Rats
6.
Biochim Biophys Acta ; 1863(9): 2189-200, 2016 09.
Article in English | MEDLINE | ID: mdl-27212270

ABSTRACT

The spreading of adhering cells is a morphogenetic process during which cells break spherical or radial symmetry and adopt migratory polarity with spatially segregated protruding cell front and non-protruding cell rear. The organization and regulation of these symmetry-breaking events, which are both complex and stochastic, are not fully understood. Here we show that in radially spreading cells, symmetry breaking commences with the development of discrete non-protruding regions characterized by large but sparse focal adhesions and long peripheral actin bundles. Establishment of this non-protruding static region specifies the distally oriented protruding cell front and thus determines the polarity axis and the direction of cell migration. The development of non-protruding regions requires ERK2 and the ERK pathway scaffold protein RACK1. RACK1 promotes adhesion-mediated activation of ERK2 that in turn inhibits p190A-RhoGAP signaling by reducing the peripheral localization of p190A-RhoGAP. We propose that sustained ERK signaling at the prospective cell rear induces p190A-RhoGAP depletion from the cell periphery resulting in peripheral actin bundles and cell rear formation. Since cell adhesion activates both ERK and p190A-RhoGAP signaling this constitutes a spatially confined incoherent feed-forward signaling circuit.


Subject(s)
Fibroblasts/cytology , Fibroblasts/metabolism , Focal Adhesion Protein-Tyrosine Kinases/metabolism , GTP-Binding Proteins/metabolism , MAP Kinase Signaling System , Mitogen-Activated Protein Kinase 1/metabolism , Repressor Proteins/metabolism , Actins/metabolism , Animals , Cell Adhesion , Cell Movement , Cell Shape , Fibroblasts/enzymology , GTP-Binding Proteins/deficiency , Gene Knockdown Techniques , Gene Silencing , Models, Biological , Phenotype , Rats , Receptors for Activated C Kinase
7.
Cell Adh Migr ; 8(1): 42-8, 2014.
Article in English | MEDLINE | ID: mdl-24589621

ABSTRACT

Nucleus movement, positioning, and orientation is precisely specified and actively regulated within cells, and it plays a critical role in many cellular and developmental processes. Mutation of proteins that regulate the nucleus anchoring and movement lead to diverse pathologies, laminopathies in particular, suggesting that the nucleus correct positioning and movement is essential for proper cellular function. In motile cells that polarize toward the direction of migration, the nucleus undergoes controlled rotation promoting the alignment of the nucleus with the axis of migration. Such spatial organization of the cell appears to be optimal for the cell migration. Nuclear reorientation requires the cytoskeleton to be anchored to the nuclear envelope, which exerts pulling or pushing torque on the nucleus. Here we discuss the possible molecular mechanisms regulating the nuclear rotation and reorientation and the significance of this type of nuclear movement for cell migration.

8.
J Mol Biol ; 425(11): 2039-2055, 2013 Jun 12.
Article in English | MEDLINE | ID: mdl-23524135

ABSTRACT

The establishment of cell polarity is an essential step in the process of cell migration. This process requires precise spatiotemporal coordination of signaling pathways that in most cells create the typical asymmetrical profile of a polarized cell with nucleus located at the cell rear and the microtubule organizing center (MTOC) positioned between the nucleus and the leading edge. During cell polarization, nucleus rearward positioning promotes correct microtubule organizing center localization and thus the establishment of front-rear polarity and directional migration. We found that cell polarization and directional migration require also the reorientation of the nucleus. Nuclear reorientation is manifested as temporally restricted nuclear rotation that aligns the nuclear axis with the axis of cell migration. We also found that nuclear reorientation requires physical connection between the nucleus and cytoskeleton mediated by the LINC (linker of nucleoskeleton and cytoskeleton) complex. Nuclear reorientation is controlled by coordinated activity of lysophosphatidic acid (LPA)-mediated activation of GTPase Rho and the activation of integrin, FAK (focal adhesion kinase), Src, and p190RhoGAP signaling pathway. Integrin signaling is spatially induced at the leading edge as FAK and p190RhoGAP are predominantly activated or localized at this location. We suggest that integrin activation within lamellipodia defines cell front, and subsequent FAK, Src, and p190RhoGAP signaling represents the polarity signal that induces reorientation of the nucleus and thus promotes the establishment of front-rear polarity.


Subject(s)
Cell Movement , Cell Nucleus/metabolism , Cell Polarity , Fibroblasts/physiology , Animals , Cell Line , Cytoskeletal Proteins/metabolism , Fibroblasts/cytology , Rats , Signal Transduction
9.
Histochem Cell Biol ; 131(3): 425-34, 2009 Mar.
Article in English | MEDLINE | ID: mdl-19039601

ABSTRACT

Nuclear actin plays an important role in such processes as chromatin remodeling, transcriptional regulation, RNA processing, and nuclear export. Recent research has demonstrated that actin in the nucleus probably exists in dynamic equilibrium between monomeric and polymeric forms, and some of the actin-binding proteins, known to regulate actin dynamics in cytoplasm, have been also shown to be present in the nucleus. In this paper, we present ultrastructural data on distribution of actin and various actin-binding proteins (alpha-actinin, filamin, p190RhoGAP, paxillin, spectrin, and tropomyosin) in nuclei of HeLa cells and resting human lymphocytes. Probing extracts of HeLa cells for the presence of actin-binding proteins also confirmed their presence in nuclei. We report for the first time the presence of tropomyosin and p190RhoGAP in the cell nucleus, and the spatial colocalization of actin with spectrin, paxillin, and alpha-actinin in the nucleolus.


Subject(s)
Actins/analysis , Cell Nucleus/chemistry , Microfilament Proteins/analysis , Nuclear Proteins/analysis , Actinin , Cell Nucleus/ultrastructure , GTPase-Activating Proteins , HeLa Cells , Humans , Lymphocytes/chemistry , Lymphocytes/ultrastructure , Paxillin , Spectrin , Tropomyosin
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