AFM study: Cell cycle and probe geometry influences nanomechanical characterization of Panc1 cells.
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[1] I. N. Sneddon. The relation between load and penetration in the axisymmetric boussinesq problem for a punch of arbitrary profile , 1965 .
[2] K. Porter,et al. The ground substance of the living cell. , 1981, Scientific American.
[3] F. Sala,et al. Aphidicolin: a specific inhibitor of nuclear DNA replication in eukaryotes , 1982 .
[4] P. Roller,et al. Formaldehyde fixation. , 1985, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[5] M. Jordan,et al. Effects of vinblastine, podophyllotoxin and nocodazole on mitotic spindles. Implications for the role of microtubule dynamics in mitosis. , 1992, Journal of cell science.
[6] S. Shurtleff,et al. Overexpression of mouse D-type cyclins accelerates G1 phase in rodent fibroblasts. , 1993, Genes & development.
[7] Z. Shao,et al. Cryo atomic force microscopy: a new approach for biological imaging at high resolution. , 1995, Biochemistry.
[8] E. Gold,et al. Epidemiology of and risk factors for pancreatic cancer. , 1995, The Surgical clinics of North America.
[9] James M. Roberts,et al. Human cyclin E, a nuclear protein essential for the G1-to-S phase transition , 1995, Molecular and cellular biology.
[10] P K Hansma,et al. Measuring the viscoelastic properties of human platelets with the atomic force microscope. , 1996, Biophysical journal.
[11] G. Wahl,et al. A reversible, p53-dependent G0/G1 cell cycle arrest induced by ribonucleotide depletion in the absence of detectable DNA damage. , 1996, Genes & development.
[12] AFM investigation of gold nanoparticles synthesized in water/AOT/n-heptane microemulsions , 1996 .
[13] Ahlgren Jd. Epidemiology and risk factors in pancreatic cancer , 1996 .
[14] C. Sherr. Cancer Cell Cycles , 1996, Science.
[15] N. Lemoine. Molecular advances in pancreatic cancer. , 1997, Digestion.
[16] P Wadsworth,et al. Nanomolar concentrations of nocodazole alter microtubule dynamic instability in vivo and in vitro. , 1997, Molecular biology of the cell.
[17] S. Kern. Advances from genetic clues in pancreatic cancer , 1998, Current opinion in oncology.
[18] S. Elledge,et al. How the Cyclin Became a Cyclin Regulated Proteolysis in the Cell Cycle , 1999, Cell.
[19] F. MacKintosh,et al. Scanning probe-based frequency-dependent microrheology of polymer gels and biological cells. , 2000, Physical review letters.
[20] S. Nomoto,et al. Gene therapy for pancreatic cancer. , 1998, Hepato-gastroenterology.
[21] Duncan Walker,et al. Pluripotent cell division cycles are driven by ectopic Cdk2, cyclin A/E and E2F activities , 2002, Oncogene.
[22] Ferenc Horkay,et al. Determination of elastic moduli of thin layers of soft material using the atomic force microscope. , 2002, Biophysical journal.
[23] Haiyong Han,et al. Identification of differentially expressed genes in pancreatic cancer cells using cDNA microarray. , 2002, Cancer research.
[24] Ueli Aebi,et al. Dynamic elastic modulus of porcine articular cartilage determined at two different levels of tissue organization by indentation-type atomic force microscopy. , 2004, Biophysical journal.
[25] 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.
[26] V. Moy,et al. Dynamic Adhesion of T Lymphocytes to Endothelial Cells Revealed by Atomic Force Microscopy , 2006, Experimental biology and medicine.
[27] Daniel J. Muller,et al. A new technical approach to quantify cell-cell adhesion forces by AFM. , 2006, Ultramicroscopy.
[28] J. Sukmanowski,et al. Study of agglomeration of alumina nanoparticles by atomic force microscopy (AFM) and photon correlation spectroscopy (PCS) , 2007 .
[29] A. Downard,et al. Atomic force microscopy characterization of the surface wettability of natural fibres , 2007 .
[30] Shamik Sen,et al. Microtissue elasticity: measurements by atomic force microscopy and its influence on cell differentiation. , 2007, Methods in cell biology.
[31] James K Gimzewski,et al. AFM-based analysis of human metastatic cancer cells , 2008, Nanotechnology.
[32] D. Needham,et al. Possible role of cell cycle-dependent morphology, geometry, and mechanical properties in tumor cell metastasis , 1991, Cell Biophysics.
[33] Bernhard Hennig,et al. Alumina nanoparticles induce expression of endothelial cell adhesion molecules. , 2008, Toxicology letters.
[34] Sanjay Kumar,et al. The mechanical rigidity of the extracellular matrix regulates the structure, motility, and proliferation of glioma cells. , 2009, Cancer research.
[35] Dezba Coughlin,et al. Nanomechanical properties of calcification, fibrous tissue, and hematoma from atherosclerotic plaques. , 2009, Journal of biomedical materials research. Part A.
[36] M. Korc,et al. 17 Smad4/TGF-b Signaling Pathways in Pancreatic Cancer Pathogenesis , 2010 .
[37] Stephanie Alexander,et al. Cancer Invasion and the Microenvironment: Plasticity and Reciprocity , 2011, Cell.
[38] Raul Martinez-Zaguilan,et al. AFM nano-mechanics and calcium dynamics of prostate cancer cells with distinct metastatic potential. , 2012, Biochimica et biophysica acta.
[39] Masoud Agah,et al. The effects of cancer progression on the viscoelasticity of ovarian cell cytoskeleton structures. , 2012, Nanomedicine : nanotechnology, biology, and medicine.
[40] S. Diekmann,et al. Cell-Cycle-Dependent Structural Transitions in the Human CENP-A Nucleosome In Vivo , 2012, Cell.
[41] N. Brown,et al. Selective measurement and manipulation of adhesion forces between cancer cells and bone marrow endothelial cells using atomic force microscopy. , 2013, Nanomedicine.
[42] M. Yeh,et al. The Influence of Physical and Physiological Cues on Atomic Force Microscopy-Based Cell Stiffness Assessment , 2013, PloS one.
[43] H. Gong,et al. The effect of the endothelial cell cortex on atomic force microscopy measurements. , 2013, Biophysical journal.
[44] L. Qin,et al. Gold Nanoparticles Inhibit VEGF165-Induced Migration and Tube Formation of Endothelial Cells via the Akt Pathway , 2014, BioMed research international.
[45] C. Verdier,et al. Atomic Force Microscopy Reveals a Role for Endothelial Cell ICAM-1 Expression in Bladder Cancer Cell Adherence , 2014, PloS one.
[46] Yang-Kao Wang,et al. Mechanical phenotype of cancer cells: cell softening and loss of stiffness sensing , 2015, Oncotarget.
[47] M. Hung,et al. Investigating the Influence of Anti-Cancer Drugs on the Mechanics of Cells Using AFM , 2015 .
[48] M. Papi,et al. Mapping viscoelastic properties of healthy and pathological red blood cells at the nanoscale level. , 2015, Nanoscale.
[49] Qingze Zou,et al. An Atomic Force Microscope Study Revealed Two Mechanisms in the Effect of Anticancer Drugs on Rate-Dependent Young’s Modulus of Human Prostate Cancer Cells , 2015, PloS one.
[50] Nanping Wu,et al. Stiffness of pancreatic cancer cells is associated with increased invasive potential. , 2016, Integrative biology : quantitative biosciences from nano to macro.
[51] Marco De Spirito,et al. Nano-mechanical signature of brain tumours. , 2016, Nanoscale.
[52] M. Lekka. Discrimination Between Normal and Cancerous Cells Using AFM , 2016, BioNanoScience.
[53] D. Navajas,et al. Probing Micromechanical Properties of the Extracellular Matrix of Soft Tissues by Atomic Force Microscopy , 2017, Journal of cellular physiology.
[54] Mechanical Properties of Normal Breast Cells and Metastatic Cancer Cells in Co-Culture , 2017 .
[55] A. Herrmann,et al. Cell cycle dependent changes in the plasma membrane organization of mammalian cells. , 2017, Biochimica et biophysica acta. Biomembranes.
[56] Yoosoo Yang,et al. Cancer‐derived exosomes as a delivery platform of CRISPR/Cas9 confer cancer cell tropism‐dependent targeting , 2017, Journal of controlled release : official journal of the Controlled Release Society.
[57] Sarah E. Bohndiek,et al. Nanodiamond preparation and surface characterization for biological applications , 2017, BiOS.
[58] D. Khismatullin,et al. Quantitative Deformability Cytometry: Rapid, Calibrated Measurements of Cell Mechanical Properties. , 2017, Biophysical journal.
[59] D. Tschumperlin,et al. Measured pulmonary arterial tissue stiffness is highly sensitive to AFM indenter dimensions. , 2017, Journal of the mechanical behavior of biomedical materials.
[60] Wenxiao Zhang,et al. AFM-detected apoptosis of hepatocellular carcinoma cells induced by American ginseng root water extract. , 2018, Micron.
[61] S. Surassmo,et al. Efficiency of resveratrol-loaded sericin nanoparticles: Promising bionanocarriers for drug delivery. , 2018, International journal of pharmaceutics.
[62] C. Deng,et al. The role of TGF-β/SMAD4 signaling in cancer , 2018, International journal of biological sciences.
[63] Federico Lazzaro,et al. Characterization of Structural and Configurational Properties of DNA by Atomic Force Microscopy. , 2018, Methods in molecular biology.
[64] P. Kondaiah,et al. TGF-β induces changes in breast cancer cell deformability , 2018, Physical biology.
[65] Xiaoxiao Cai,et al. Doxorubicin conjugated carbon dots as a drug delivery system for human breast cancer therapy , 2018, Cell proliferation.
[66] P. Mukherjee,et al. SMAD4-independent activation of TGF-β signaling by MUC1 in a human pancreatic cancer cell line , 2018, Oncotarget.
[67] R. Chang,et al. Distinct relaxation timescales of neurites revealed by rate-dependent indentation, relaxation and micro-rheology tests. , 2019, Soft matter.