Atomic force microscopy-based mechanobiology
暂无分享,去创建一个
Michael Krieg | Yves F. Dufrêne | David Alsteens | Daniel J. Müller | Hermann E. Gaub | Gijs J. L. Wuite | Wouter H. Roos | Gotthold Fläschner | W. Roos | C. Gerber | H. Gaub | D. Müller | D. Alsteens | Y. Dufrêne | M. Krieg | G. Wuite | Benjamin M. Gaub | Christoph Gerber | G. Fläschner | Gotthold Fläschner
[1] W. Roos,et al. Self-assembly and characterization of small and monodisperse dye nanospheres in a protein , 2019 .
[2] W. Roos,et al. Multilamellar nanovesicles show distinct mechanical properties depending on their degree of lamellarity. , 2018, Nanoscale.
[3] Roberto Mayor,et al. Tissue stiffening coordinates morphogenesis by triggering collective cell migration in vivo , 2018, Nature.
[4] Kellie N. Beicker,et al. Vertical Light Sheet Enhanced Side-View Imaging for AFM Cell Mechanics Studies , 2018, Scientific Reports.
[5] Victoria G. Pook,et al. Frequency doubling by active in vivo motility of mechanosensory neurons in the mosquito ear , 2018, Royal Society Open Science.
[6] J. Kashef,et al. Cadherin-11 promotes neural crest cell spreading by reducing intracellular tension-Mapping adhesion and mechanics in neural crest explants by atomic force microscopy. , 2018, Seminars in cell & developmental biology.
[7] A. Hyman,et al. Genome-scale single-cell mechanical phenotyping reveals disease-related genes involved in mitotic rounding , 2017, Nature Communications.
[8] C. Gerber,et al. Inertial picobalance reveals fast mass fluctuations in mammalian cells , 2017, Nature.
[9] Jean-Luc Pellequer,et al. Standardized Nanomechanical Atomic Force Microscopy Procedure (SNAP) for Measuring Soft and Biological Samples , 2017, Scientific Reports.
[10] D. Fletcher,et al. Organ sculpting by patterned extracellular matrix stiffness , 2017, eLife.
[11] Xavier Trepat,et al. Quantifying forces in cell biology , 2017, Nature Cell Biology.
[12] Jung Uk Lee,et al. Erratum: A Mechanogenetic Toolkit for Interrogating Cell Signaling in Space and Time (Cell (2016) 165(6) (1507–1518)(S0092867416304901)(10.1016/j.cell.2016.04.045)) , 2017 .
[13] Zoltán Spiró,et al. Multiscale force sensing in development , 2017, Nature Cell Biology.
[14] Arvind Raman,et al. Measuring nanoscale viscoelastic parameters of cells directly from AFM force-displacement curves , 2017, Scientific Reports.
[15] Clemens F. Kaminski,et al. Correlative STED and Atomic Force Microscopy on Live Astrocytes Reveals Plasticity of Cytoskeletal Structure and Membrane Physical Properties during Polarized Migration , 2017, Front. Cell. Neurosci..
[16] D. Vavylonis,et al. Nanoscale Movements of Cellulose Microfibrils in Primary Cell Walls , 2017, Nature Plants.
[17] C. Gerber,et al. Imaging modes of atomic force microscopy for application in molecular and cell biology. , 2017, Nature nanotechnology.
[18] F. Rico,et al. High-frequency microrheology reveals cytoskeleton dynamics in living cells , 2017, Nature Physics.
[19] David Alsteens,et al. Atomic force microscopy-based characterization and design of biointerfaces , 2017 .
[20] Beth L. Pruitt,et al. Pneumatic stimulation of C. elegans mechanoreceptor neurons in a microfluidic trap. , 2017, Lab on a chip.
[21] W. Roos,et al. Competition between Bending and Internal Pressure Governs the Mechanics of Fluid Nanovesicles , 2017, ACS nano.
[22] Kristian Franze,et al. The soft mechanical signature of glial scars in the central nervous system , 2017, Nature Communications.
[23] Daniel J Müller,et al. Mechanical Stimulation of Piezo1 Receptors Depends on Extracellular Matrix Proteins and Directionality of Force. , 2017, Nano letters.
[24] R. Metzler,et al. Manipulation and Motion of Organelles and Single Molecules in Living Cells. , 2017, Chemical reviews.
[25] Botond Roska,et al. Nanomechanical mapping of first binding steps of a virus to animal cells. , 2017, Nature nanotechnology.
[26] Yihao Zhang,et al. Modeling of the axon membrane skeleton structure and implications for its mechanical properties , 2017, PLoS Comput. Biol..
[27] E. Peterman,et al. Nonlinear Loading-Rate-Dependent Force Response of Individual Vimentin Intermediate Filaments to Applied Strain. , 2017, Physical review letters.
[28] D. Cremers,et al. Genetic defects in β-spectrin and tau sensitize C. elegans axons to movement-induced damage via torque-tension coupling , 2017, eLife.
[29] Carsten Grashoff,et al. Investigating piconewton forces in cells by FRET-based molecular force microscopy. , 2017, Journal of structural biology.
[30] W. Roos,et al. Controlled tip wear on high roughness surfaces yields gradual broadening and rounding of cantilever tips , 2016, Scientific Reports.
[31] Carsten Grashoff,et al. The Piconewton Force Awakens: Quantifying Mechanics in Cells. , 2016, Trends in cell biology.
[32] W. T. Cruz,et al. Analytical model of atomic-force-microscopy force curves in viscoelastic materials exhibiting power law relaxation , 2016, 1610.07180.
[33] R. Kant,et al. Decrease in pH destabilizes individual vault nanocages by weakening the inter-protein lateral interaction , 2016, Scientific Reports.
[34] Jochen Guck,et al. Mechanosensing is critical for axon growth in the developing brain , 2016, Nature Neuroscience.
[35] A. Hyman,et al. Rheology of the Active Cell Cortex in Mitosis. , 2016, Biophysical journal.
[36] W. Roos,et al. Assembly and Mechanical Properties of the Cargo-Free and Cargo-Loaded Bacterial Nanocompartment Encapsulin. , 2016, Biomacromolecules.
[37] Clare M Waterman,et al. Actomyosin Cortical Mechanical Properties in Nonadherent Cells Determined by Atomic Force Microscopy , 2016, Biophysical journal.
[38] Kaden M. Southard,et al. A Mechanogenetic Toolkit for Interrogating Cell Signaling in Space and Time , 2016, Cell.
[39] W. Roos,et al. Atomic force microscopy observation and characterization of single virions and virus-like particles by nano-indentation. , 2016, Current opinion in virology.
[40] D. Baker,et al. Protein Nanocontainers from Nonviral Origin: Testing the Mechanics of Artificial and Natural Protein Cages by AFM. , 2016, The journal of physical chemistry. B.
[41] William J Polacheck,et al. Measuring cell-generated forces: a guide to the available tools , 2016, Nature Methods.
[42] Robert Ros,et al. Correlating confocal microscopy and atomic force indentation reveals metastatic cancer cells stiffen during invasion into collagen I matrices , 2016, Scientific Reports.
[43] Tai-De Li,et al. Force Feedback Controls Motor Activity and Mechanical Properties of Self-Assembling Branched Actin Networks , 2016, Cell.
[44] Y. Dufrêne,et al. Zinc-dependent mechanical properties of Staphylococcus aureus biofilm-forming surface protein SasG , 2015, Proceedings of the National Academy of Sciences.
[45] U. Greber,et al. Fluorescence Tracking of Genome Release during Mechanical Unpacking of Single Viruses. , 2015, ACS nano.
[46] Christof Koch,et al. Optogenetics: 10 years after ChR2 in neurons—views from the community , 2015, Nature Neuroscience.
[47] Daniel J. Müller,et al. Mechanical control of mitotic progression in single animal cells , 2015, Proceedings of the National Academy of Sciences.
[48] Klaus Schulten,et al. Mapping Mechanical Force Propagation through Biomolecular Complexes. , 2015, Nano letters.
[49] Ben Fabry,et al. Imaging viscoelastic properties of live cells by AFM: power-law rheology on the nanoscale. , 2015, Soft matter.
[50] F. Rico,et al. Atomic Force Microscopy Mechanical Mapping of Micropatterned Cells Shows Adhesion Geometry-Dependent Mechanical Response on Local and Global Scales. , 2015, ACS nano.
[51] M. G. Mateu,et al. Quantitatively probing propensity for structural transitions in engineered virus nanoparticles by single-molecule mechanical analysis. , 2015, Nanoscale.
[52] J. Kashef,et al. Quantitating membrane bleb stiffness using AFM force spectroscopy and an optical sideview setup. , 2015, Integrative biology : quantitative biosciences from nano to macro.
[53] Tomaso Zambelli,et al. Force-controlled patch clamp of beating cardiac cells. , 2015, Nano letters.
[54] Daniel J. Muller,et al. Cdk1-dependent mitotic enrichment of cortical myosin II promotes cell rounding against confinement , 2015, Nature Cell Biology.
[55] Michael P. Sheetz,et al. Appreciating force and shape — the rise of mechanotransduction in cell biology , 2014, Nature Reviews Molecular Cell Biology.
[56] Frederick Sachs,et al. Actin stress in cell reprogramming , 2014, Proceedings of the National Academy of Sciences.
[57] G. Wayne Brodland,et al. Forces driving epithelial wound healing , 2014, Nature Physics.
[58] Anthony A. Hyman,et al. Quantification of surface tension and internal pressure generated by single mitotic cells , 2014, Scientific Reports.
[59] D. J. Harrison,et al. Bright and fast multi-colored voltage reporters via electrochromic FRET , 2014, Nature Communications.
[60] Daniel J. Muller,et al. Multiparametric high-resolution imaging of native proteins by force-distance curve–based AFM , 2014, Nature Protocols.
[61] Chase P. Broedersz,et al. Modeling semiflexible polymer networks , 2014, 1404.4332.
[62] Michael Krieg,et al. Mechanical Control of the Sense of Touch by β Spectrin , 2014, Nature Cell Biology.
[63] M. Goodman,et al. Phospholipids that contain polyunsaturated fatty acids enhance neuronal cell mechanics and touch sensation. , 2014, Cell reports.
[64] W. Roos,et al. Self-assembly and characterization of small and monodisperse dye nanospheres in a protein cage , 2014 .
[65] Patrice Soumillion,et al. Multiparametric atomic force microscopy imaging of single bacteriophages extruding from living bacteria , 2013, Nature Communications.
[66] Daniel J Müller,et al. Quantitative imaging of the electrostatic field and potential generated by a transmembrane protein pore at subnanometer resolution. , 2013, Nano letters.
[67] D. Müller,et al. Multiparametric imaging of biological systems by force-distance curve–based AFM , 2013, Nature Methods.
[68] W. Roos,et al. Probing the biophysical interplay between a viral genome and its capsid. , 2013, Nature chemistry.
[69] C. Heisenberg,et al. Forces in Tissue Morphogenesis and Patterning , 2013, Cell.
[70] Daniel J Müller,et al. Wedged AFM-cantilevers for parallel plate cell mechanics. , 2013, Methods.
[71] Carsten Werner,et al. A practical guide to quantify cell adhesion using single-cell force spectroscopy. , 2013, Methods.
[72] Daniel J Müller,et al. Nanomechanical properties of proteins and membranes depend on loading rate and electrostatic interactions. , 2013, ACS nano.
[73] D. Otzen,et al. Coexistence of ribbon and helical fibrils originating from hIAPP20–29 revealed by quantitative nanomechanical atomic force microscopy , 2013, Proceedings of the National Academy of Sciences.
[74] Alba Diz-Muñoz,et al. Use the force: membrane tension as an organizer of cell shape and motility. , 2013, Trends in cell biology.
[75] G. Charras,et al. The cytoplasm of living cells behaves as a poroelastic material , 2013, Nature materials.
[76] M. G. Mateu. Structure and Physics of Viruses , 2013, Subcellular Biochemistry.
[77] E. Mandelkow,et al. The fuzzy coat of pathological human Tau fibrils is a two-layered polyelectrolyte brush , 2012, Proceedings of the National Academy of Sciences.
[78] W. Roos,et al. Probing the impact of loading rate on the mechanical properties of viral nanoparticles. , 2012, Micron.
[79] William J. Tyler,et al. The mechanobiology of brain function , 2012, Nature Reviews Neuroscience.
[80] Ueli Aebi,et al. The nanomechanical signature of breast cancer. , 2012, Nature nanotechnology.
[81] Roger C. Hardie,et al. Photomechanical Responses in Drosophila Photoreceptors , 2012, Science.
[82] Aaron P. Mosier,et al. A novel microfluidic device for the in situ optical and mechanical analysis of bacterial biofilms. , 2012, Journal of microbiological methods.
[83] Peter Grütter,et al. Atomic force microscopy reveals important differences in axonal resistance to injury. , 2012, Biophysical journal.
[84] Helmut Grubmüller,et al. Influenza virus binds its host cell using multiple dynamic interactions , 2012, Proceedings of the National Academy of Sciences.
[85] N. Gavara,et al. Cytoskeletal changes in actin and microtubules underlie the developing surface mechanical properties of sensory and supporting cells in the mouse cochlea , 2012, Development.
[86] Celine Elie-Caille,et al. Glyphosate-induced stiffening of HaCaT keratinocytes, a Peak Force Tapping study on living cells. , 2012, Journal of structural biology.
[87] Ricardo Garcia,et al. The emergence of multifrequency force microscopy. , 2012, Nature nanotechnology.
[88] John E. Johnson,et al. Mechanics of bacteriophage maturation , 2012, Proceedings of the National Academy of Sciences.
[89] M. G. Mateu,et al. Resolving Structure and Mechanical Properties at the Nanoscale of Viruses with Frequency Modulation Atomic Force Microscopy , 2012, PloS one.
[90] J. Notbohm,et al. Analysis of nanoindentation of soft materials with an atomic force microscope , 2012 .
[91] Daniel J. Muller,et al. Imaging and quantifying chemical and physical properties of native proteins at molecular resolution by force-volume AFM. , 2011, Angewandte Chemie.
[92] H. Gaub,et al. Interlaboratory round robin on cantilever calibration for AFM force spectroscopy. , 2011, Ultramicroscopy.
[93] Albert J R Heck,et al. Prestress strengthens the shell of Norwalk virus nanoparticles. , 2011, Nano letters.
[94] Emeric Bron,et al. Pectin-Induced Changes in Cell Wall Mechanics Underlie Organ Initiation in Arabidopsis , 2011, Current Biology.
[95] V. Weaver,et al. In situ force mapping of mammary gland transformation. , 2011, Integrative biology : quantitative biosciences from nano to macro.
[96] Chanmin Su,et al. Mechanical mapping of single membrane proteins at submolecular resolution. , 2011, Nano letters.
[97] Brenton D. Hoffman,et al. Dynamic molecular processes mediate cellular mechanotransduction , 2011, Nature.
[98] V. Hlady,et al. Stiffness and heterogeneity of the pulmonary endothelial glycocalyx measured by atomic force microscopy. , 2011, American journal of physiology. Lung cellular and molecular physiology.
[99] Robert T Sauer,et al. AAA+ proteases: ATP-fueled machines of protein destruction. , 2011, Annual review of biochemistry.
[100] Jonathon Howard,et al. Turing's next steps: the mechanochemical basis of morphogenesis , 2011, Nature Reviews Molecular Cell Biology.
[101] J. Gómez‐Herrero,et al. Noninvasive protein structural flexibility mapping by bimodal dynamic force microscopy. , 2011, Physical review letters.
[102] J. Lammerding. Mechanics of the nucleus. , 2011, Comprehensive Physiology.
[103] L. Davidson,et al. Whole-Cell Electrical Activity Under Direct Mechanical Stimulus by AFM Cantilever Using Planar Patch Clamp Chip Approach , 2011, Cellular and molecular bioengineering.
[104] D. Reguera,et al. Built-in mechanical stress in viral shells. , 2011, Biophysical journal.
[105] A. Herrmann,et al. Bending and puncturing the influenza lipid envelope. , 2011, Biophysical journal.
[106] Evan Evans,et al. Five challenges to bringing single-molecule force spectroscopy into living cells , 2011, Nature Methods.
[107] Daniel J. Muller,et al. Hydrostatic pressure and the actomyosin cortex drive mitotic cell rounding , 2011, Nature.
[108] Daniel J. Muller,et al. Human Tau Isoforms Assemble into Ribbon-like Fibrils That Display Polymorphic Structure and Stability* , 2010, The Journal of Biological Chemistry.
[109] Taekjip Ha,et al. Measuring mechanical tension across vinculin reveals regulation of focal adhesion dynamics , 2010, Nature.
[110] Daniel A. Fletcher,et al. Cell mechanics and the cytoskeleton , 2010, Nature.
[111] Klaus Schulten,et al. Supporting Material Elucidating the Mechanism behind Irreversible Deformation of Viral Capsids , 2022 .
[112] Hermann E Gaub,et al. Force and function: probing proteins with AFM-based force spectroscopy. , 2009, Current opinion in structural biology.
[113] M. Dong,et al. Determination of protein structural flexibility by microsecond force spectroscopy. , 2009, Nature nanotechnology.
[114] C D Woodworth,et al. Atomic force microscopy detects differences in the surface brush of normal and cancerous cells. , 2009, Nature nanotechnology.
[115] Daniel A. Fletcher,et al. Combined atomic force microscopy and side-view optical imaging for mechanical studies of cells , 2009, Nature Methods.
[116] Helmut Grubmüller,et al. Mechanical properties of the icosahedral shell of southern bean mosaic virus: a molecular dynamics study. , 2009, Biophysical journal.
[117] Daniel J. Muller,et al. A bond for a lifetime: employing membrane nanotubes from living cells to determine receptor-ligand kinetics. , 2008, Angewandte Chemie.
[118] Y. Dufrêne,et al. Direct Observation of Staphylococcus aureus Cell Wall Digestion by Lysostaphin , 2008, Journal of bacteriology.
[119] Albert J R Heck,et al. High-resolution mass spectrometry of viral assemblies: Molecular composition and stability of dimorphic hepatitis B virus capsids , 2008, Proceedings of the National Academy of Sciences.
[120] Yves F Dufrêne,et al. Nanostructure and nanomechanics of live Phaeodactylum tricornutum morphotypes. , 2008, Environmental microbiology.
[121] Michael George,et al. Planar patch-clamp force microscopy on living cells. , 2008, Ultramicroscopy.
[122] M. Krieg,et al. Tensile forces govern germ-layer organization in zebrafish , 2008, Nature Cell Biology.
[123] Atsushi Miyawaki,et al. Visualizing Spatiotemporal Dynamics of Multicellular Cell-Cycle Progression , 2008, Cell.
[124] J. Rao,et al. Nanomechanical analysis of cells from cancer patients. , 2007, Nature nanotechnology.
[125] David Barlam,et al. A stiffness switch in human immunodeficiency virus. , 2007, Biophysical journal.
[126] Shamik Sen,et al. Microtissue elasticity: measurements by atomic force microscopy and its influence on cell differentiation. , 2007, Methods in cell biology.
[127] David Barlam,et al. Measurement of the mechanical properties of isolated tectorial membrane using atomic force microscopy , 2006, Proceedings of the National Academy of Sciences.
[128] H. Lang,et al. How the doors to the nanoworld were opened , 2006, Nature nanotechnology.
[129] A Carreira,et al. DNA-mediated anisotropic mechanical reinforcement of a virus , 2006, Proceedings of the National Academy of Sciences.
[130] A. Fery,et al. Direct method to study membrane rigidity of small vesicles based on atomic force microscope force spectroscopy. , 2006, Physical review. E, Statistical, nonlinear, and soft matter physics.
[131] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[132] J. Fredberg,et al. Fast and slow dynamics of the cytoskeleton , 2006, Nature materials.
[133] F. Guilak,et al. Viscoelastic properties of zonal articular chondrocytes measured by atomic force microscopy. , 2006, Osteoarthritis and cartilage.
[134] Y. Dufrêne,et al. Detection and localization of single molecular recognition events using atomic force microscopy , 2006, Nature Methods.
[135] Daniel A Fletcher,et al. Force microscopy of nonadherent cells: a comparison of leukemia cell deformability. , 2006, Biophysical journal.
[136] Russell P. Goodman,et al. Rapid Chiral Assembly of Rigid DNA Building Blocks for Molecular Nanofabrication , 2005, Science.
[137] P. Janmey,et al. Tissue Cells Feel and Respond to the Stiffness of Their Substrate , 2005, Science.
[138] Shamik Sen,et al. Indentation and adhesive probing of a cell membrane with AFM: theoretical model and experiments. , 2005, Biophysical journal.
[139] N. Gavara,et al. Probing mechanical properties of living cells by atomic force microscopy with blunted pyramidal cantilever tips. , 2005, Physical review. E, Statistical, nonlinear, and soft matter physics.
[140] E. Dague,et al. Surface Structure and Nanomechanical Properties of Shewanella putrefaciens Bacteria at Two pH values (4 and 10) Determined by Atomic Force Microscopy , 2005, Journal of bacteriology.
[141] P. Janmey,et al. Nonlinear elasticity in biological gels , 2004, Nature.
[142] R. Waugh,et al. Rheological analysis and measurement of neutrophil indentation. , 2004, Biophysical journal.
[143] David A Weitz,et al. Dealing with mechanics: mechanisms of force transduction in cells. , 2004, Trends in biochemical sciences.
[144] Nancy R Forde,et al. Mechanical processes in biochemistry. , 2004, Annual review of biochemistry.
[145] G. Wuite,et al. Bacteriophage capsids: tough nanoshells with complex elastic properties. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[146] Xuemei Liang,et al. Probing small unilamellar EggPC vesicles on mica surface by atomic force microscopy. , 2004, Colloids and surfaces. B, Biointerfaces.
[147] Daniel Isabey,et al. Partitioning of Cortical and Deep Cytoskeleton Responses from Transient Magnetic Bead Twisting , 2003, Annals of Biomedical Engineering.
[148] Y. Lyubchenko. An Atomic Force Microscopy Study , 2004 .
[149] F. MacKintosh,et al. Deformation and collapse of microtubules on the nanometer scale. , 2003, Physical review letters.
[150] Bernard Nysten,et al. Nanoscale mapping of the elasticity of microbial cells by atomic force microscopy , 2003 .
[151] Ferenc Horkay,et al. Determination of elastic moduli of thin layers of soft material using the atomic force microscope. , 2002, Biophysical journal.
[152] Carlos Bustamante,et al. Supplemental data for : The Bacteriophage ø 29 Portal Motor can Package DNA Against a Large Internal Force , 2001 .
[153] D. Navajas,et al. Scaling the microrheology of living cells. , 2001, Physical review letters.
[154] Manfred Radmacher,et al. Direct, high-resolution measurement of furrow stiffening during division of adherent cells , 2001, Nature Cell Biology.
[155] Michael P. Sheetz,et al. Cell control by membrane–cytoskeleton adhesion , 2001, Nature Reviews Molecular Cell Biology.
[156] C. Morris,et al. Cell Surface Area Regulation and Membrane Tension , 2001, The Journal of Membrane Biology.
[157] S. Tans,et al. The bacteriophage straight phi29 portal motor can package DNA against a large internal force. , 2001, Nature.
[158] Daniel J. Müller,et al. Observing single biomolecules at work with the atomic force microscope , 2000, Nature Structural Biology.
[159] F. MacKintosh,et al. Scanning probe-based frequency-dependent microrheology of polymer gels and biological cells. , 2000, Physical review letters.
[160] H. C. van der Mei,et al. Direct probing by atomic force microscopy of the cell surface softness of a fibrillated and nonfibrillated oral streptococcal strain. , 2000, Biophysical journal.
[161] C Rotsch,et al. Drug-induced changes of cytoskeletal structure and mechanics in fibroblasts: an atomic force microscopy study. , 2000, Biophysical journal.
[162] D. Pink,et al. Thickness and Elasticity of Gram-Negative Murein Sacculi Measured by Atomic Force Microscopy , 1999, Journal of bacteriology.
[163] C. Rotsch,et al. Dimensional and mechanical dynamics of active and stable edges in motile fibroblasts investigated by using atomic force microscopy. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[164] David C. Morse,et al. VISCOELASTICITY OF TIGHTLY ENTANGLED SOLUTIONS OF SEMIFLEXIBLE POLYMERS , 1998 .
[165] O. Marti,et al. Influence of the topography on adhesion measured by SFM , 1998 .
[166] W F Heinz,et al. Relative microelastic mapping of living cells by atomic force microscopy. , 1998, Biophysical journal.
[167] C. Rotsch,et al. AFM IMAGING AND ELASTICITY MEASUREMENTS ON LIVING RAT LIVER MACROPHAGES , 1997, Cell biology international.
[168] Julia M. Goodfellow,et al. Molecular dynamics study , 1997 .
[169] W. Xu,et al. Modeling and measuring the elastic properties of an archaeal surface, the sheath of Methanospirillum hungatei, and the implication of methane production , 1996, Journal of bacteriology.
[170] M. Radmacher,et al. Imaging soft samples with the atomic force microscope: gelatin in water and propanol. , 1995, Biophysical journal.
[171] Hans-Jürgen Butt,et al. Calculation of thermal noise in atomic force microscopy , 1995 .
[172] G Büldt,et al. Force-induced conformational change of bacteriorhodopsin. , 1995, Journal of molecular biology.
[173] J. Hoh,et al. Surface morphology and mechanical properties of MDCK monolayers by atomic force microscopy , 1996 .
[174] M. Schwartz,et al. The extracellular matrix as a cell survival factor. , 1993, Molecular biology of the cell.
[175] J. Sader,et al. Theoretical analysis of the static deflection of plates for atomic force microscope applications , 1993 .
[176] M. Radmacher,et al. From molecules to cells: imaging soft samples with the atomic force microscope. , 1992, Science.
[177] J. Dubochet,et al. Cryo-electron microscopy of vitrified specimens , 1988, Quarterly Reviews of Biophysics.
[178] Gerber,et al. Atomic Force Microscope , 2020, Definitions.
[179] B. V. Derjaguin,et al. Effect of contact deformations on the adhesion of particles , 1975 .
[180] B A Mobley,et al. Size changes in single muscle fibers during fixation and embedding. , 1975, Tissue & cell.
[181] K. Kendall,et al. Surface energy and the contact of elastic solids , 1971, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[182] I. N. Sneddon. The relation between load and penetration in the axisymmetric boussinesq problem for a punch of arbitrary profile , 1965 .
[183] H. Hertz. Ueber die Berührung fester elastischer Körper. , 1882 .