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1.
FASEB J ; 33(1): 1098-1109, 2019 01.
Article in English | MEDLINE | ID: mdl-30102568

ABSTRACT

Alterations in gut microbiota are known to affect intestinal inflammation and obesity. Antibiotic treatment can affect weight gain by elimination of histone deacetylase (HDAC) inhibitor-producing microbes, which are anti-inflammatory by augmenting regulatory T (Treg) cells. We asked whether mice that lack HDAC6 and have potent suppressive Treg cells are protected from microbiota-induced accelerated weight gain. We crossed wild-type and HDAC6-deficient mice and subjected the offspring to perinatal penicillin, inducing weight gain via microbiota disturbance. We observed that male HDAC6-deficient mice were not protected and developed profoundly accelerated weight gain. The antibiotic-exposed HDAC6-deficient mice showed a mixed immune phenotype with increased CD4+ and CD8+ T-cell activation yet maintained the enhanced Treg cell-suppressive function phenotype characteristic of HDAC6-deficient mice. 16S rRNA sequencing of mouse fecal samples reveals that their microbiota diverged with time, with HDAC6 deletion altering microbiome composition. On a high-fat diet, HDAC6-deficient mice were depleted in representatives of the S24-7 family and Lactobacillus but enriched with Bacteroides and Parabacteroides; these changes are associated with obesity. Our findings further our understanding of the influence of HDACs on microbiome composition and are important for the development of HDAC6 inhibitors in the treatment of human diseases.-Lieber, A. D., Beier, U. H., Xiao, H., Wilkins, B. J., Jiao, J., Li, X. S., Schugar, R. C., Strauch, C. M., Wang, Z., Brown, J. M., Hazen, S. L., Bokulich, N. A., Ruggles, K. V., Akimova, T., Hancock, W. W., Blaser, M. J. Loss of HDAC6 alters gut microbiota and worsens obesity.


Subject(s)
Gastrointestinal Microbiome , Histone Deacetylase 6/physiology , Obesity/genetics , Obesity/microbiology , Animals , Bacteroides/isolation & purification , Diet, High-Fat , Fatty Liver/genetics , Feces , Germ-Free Life , Histone Deacetylase 6/genetics , Hyperlipidemias/genetics , Lactobacillus/isolation & purification , Male , Mesentery/pathology , Mice , Mice, Inbred C57BL , Mice, Knockout , Obesity/immunology , Spleen/pathology , T-Lymphocytes, Regulatory/immunology , Up-Regulation , Weight Gain
2.
Cell ; 171(1): 188-200.e16, 2017 Sep 21.
Article in English | MEDLINE | ID: mdl-28867286

ABSTRACT

Actin filaments polymerizing against membranes power endocytosis, vesicular traffic, and cell motility. In vitro reconstitution studies suggest that the structure and the dynamics of actin networks respond to mechanical forces. We demonstrate that lamellipodial actin of migrating cells responds to mechanical load when membrane tension is modulated. In a steady state, migrating cell filaments assume the canonical dendritic geometry, defined by Arp2/3-generated 70° branch points. Increased tension triggers a dense network with a broadened range of angles, whereas decreased tension causes a shift to a sparse configuration dominated by filaments growing perpendicularly to the plasma membrane. We show that these responses emerge from the geometry of branched actin: when load per filament decreases, elongation speed increases and perpendicular filaments gradually outcompete others because they polymerize the shortest distance to the membrane, where they are protected from capping. This network-intrinsic geometrical adaptation mechanism tunes protrusive force in response to mechanical load.


Subject(s)
Actin Cytoskeleton/chemistry , Actin Cytoskeleton/ultrastructure , Keratinocytes/ultrastructure , Pseudopodia/chemistry , Pseudopodia/ultrastructure , Animals , Cell Membrane/chemistry , Keratinocytes/chemistry , Microscopy, Electron , Zebrafish
3.
Biophys J ; 108(7): 1599-1603, 2015 Apr 07.
Article in English | MEDLINE | ID: mdl-25863051

ABSTRACT

Membrane tension is becoming recognized as an important mechanical regulator of motile cell behavior. Although membrane-tension measurements have been performed in various cell types, the tension distribution along the plasma membrane of motile cells has been largely unexplored. Here, we present an experimental study of the distribution of tension in the plasma membrane of rapidly moving fish epithelial keratocytes. We find that during steady movement the apparent membrane tension is ∼30% higher at the leading edge than at the trailing edge. Similar tension differences between the front and the rear of the cell are found in keratocyte fragments that lack a cell body. This front-to-rear tension variation likely reflects a tension gradient developed in the plasma membrane along the direction of movement due to viscous friction between the membrane and the cytoskeleton-attached protein anchors embedded in the membrane matrix. Theoretical modeling allows us to estimate the area density of these membrane anchors. Overall, our results indicate that even though membrane tension equilibrates rapidly and mechanically couples local boundary dynamics over cellular scales, steady-state variations in tension can exist in the plasma membranes of moving cells.


Subject(s)
Cell Membrane/metabolism , Cell Movement , Stress, Mechanical , Animals , Cell Membrane/ultrastructure , Cells, Cultured , Cichlids , Cytoskeleton/metabolism , Glycosylphosphatidylinositols/metabolism , Keratinocytes/metabolism , Keratinocytes/physiology , Membrane Proteins/metabolism , Models, Biological
4.
Biophys J ; 106(1): 84-92, 2014 Jan 07.
Article in English | MEDLINE | ID: mdl-24411240

ABSTRACT

Lateral tension in cell plasma membranes plays an essential role in regulation of a number of membrane-related intracellular processes and cell motion. Understanding the physical factors generating the lateral tension and quantitative determination of the tension distribution along the cell membrane is an emerging topic of cell biophysics. Although experimental data are accumulating on membrane tension values in several cell types, the tension distribution along the membranes of moving cells remains largely unexplored. Here we suggest and analyze a theoretical model predicting the tension distribution along the membrane of a cell crawling on a flat substrate. We consider the tension to be generated by the force of actin network polymerization against the membrane at the cell leading edge. The three major factors determining the tension distribution are the membrane interaction with anchors connecting the actin network to the lipid bilayer, the membrane interaction with cell adhesions, and the force developing at the rear boundary due to the detachment of the remaining cell adhesion from the substrate in the course of cell crawling. Our model recovers the experimentally measured values of the tension in fish keratocytes and their dependence on the number of adhesions. The model predicts, quantitatively, the tension distribution between the leading and rear membrane edges as a function of the area fractions of the anchors and the adhesions.


Subject(s)
Cell Membrane/physiology , Cell Movement , Models, Biological , Actin Cytoskeleton/metabolism , Animals , Cell Adhesion , Cell Membrane/metabolism
5.
Curr Biol ; 23(15): 1409-17, 2013 Aug 05.
Article in English | MEDLINE | ID: mdl-23831292

ABSTRACT

BACKGROUND: Membrane tension plays an essential role in cell motility. The load imposed by the tensed membrane restrains actin polymerization, promotes rear retraction, and influences membrane transport. Moreover, membrane tension is crucial for large-scale coordination of cell boundary dynamics. Despite its importance, little is known about how membrane tension is set and regulated in cells. The prevailing hypothesis is that membrane tension is largely controlled by membrane-cytoskeleton adhesion and/or changes in membrane area. RESULTS: In this work, we measure the apparent membrane tension in rapidly moving fish epithelial keratocytes under normal and perturbed conditions with a tether-pulling assay. We find that enlargement of the cell surface area by fusion with giant unilamellar vesicles (GUVs) has only minor effects on membrane tension and on cell movement. However, modulation of the cytoskeletal forces has a substantial influence on tension: reduction of the actin-pushing forces along the cell's leading edge leads to a significant decrease in membrane tension, whereas increase of the strength of adhesion and/or decrease of myosin-induced contraction leads to higher tension. CONCLUSIONS: We find that the membrane tension in rapidly moving keratocytes is primarily determined by a mechanical force balance between the cell membrane and cytoskeletal forces. Our results highlight the role of membrane tension as a global mechanical regulator of cell behavior.


Subject(s)
Cell Membrane/physiology , Cytoskeleton/physiology , Actins/metabolism , Animals , Cell Adhesion , Cell Movement , Cells, Cultured , Cichlids , Cytochalasin D/pharmacology , Keratinocytes/cytology , Keratinocytes/drug effects
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