Metabolic and Mechanical Cues Regulating Pluripotent Stem Cell Fate.
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[1] Peng Liu,et al. Insoluble Microenvironment Facilitating the Generation and Maintenance of Pluripotency. , 2018, Tissue engineering. Part B, Reviews.
[2] M. Zernicka-Goetz,et al. Deconstructing and reconstructing the mouse and human early embryo , 2018, Nature Cell Biology.
[3] S. Bicciato,et al. dNTP metabolism links mechanical cues and YAP/TAZ to cell growth and oncogene‐induced senescence , 2018, The EMBO journal.
[4] N. Rivron. Formation of blastoids from mouse embryonic and trophoblast stem cells , 2018 .
[5] A. Oudenaarden,et al. Blastocyst-like structures generated solely from stem cells , 2018, Nature.
[6] Mathias J. Aebersold,et al. Mechanical force induces mitochondrial fission , 2017, eLife.
[7] R. Shaw,et al. AMPK: guardian of metabolism and mitochondrial homeostasis , 2017, Nature Reviews Molecular Cell Biology.
[8] Davi M. Lyra-Leite,et al. Mitochondrial function in engineered cardiac tissues is regulated by extracellular matrix elasticity and tissue alignment. , 2017, American journal of physiology. Heart and circulatory physiology.
[9] Jean-Léon Maître,et al. Mechanics of blastocyst morphogenesis , 2017, Biology of the cell.
[10] B. Suki,et al. Regulation of Mitochondrial Structure and Dynamics by the Cytoskeleton and Mechanical Factors , 2017, International journal of molecular sciences.
[11] S. Karim,et al. Matrix stiffness induces epithelial–mesenchymal transition and promotes chemoresistance in pancreatic cancer cells , 2017, Oncogenesis.
[12] M. Sebbagh,et al. Linking E-cadherin mechanotransduction to cell metabolism through force mediated activation of AMPK , 2017, Nature Cell Biology.
[13] J. Vermot,et al. The balancing roles of mechanical forces during left-right patterning and asymmetric morphogenesis , 2017, Mechanisms of Development.
[14] R. Hiramatsu,et al. Mechanical perspectives on the anterior-posterior axis polarization of mouse implanted embryos , 2017, Mechanisms of Development.
[15] Anne Grapin-Botton,et al. The physics of organoids: a biophysical approach to understanding organogenesis , 2017, Development.
[16] J. Wells,et al. Pluripotent stem cell-derived organoids: using principles of developmental biology to grow human tissues in a dish , 2017, Development.
[17] Y. Morimoto,et al. Quantitative and qualitative changes of mitochondria in human preimplantation embryos , 2017, Journal of Assisted Reproduction and Genetics.
[18] Daniel S. Hitchcock,et al. Starved epithelial cells uptake extracellular matrix for survival , 2017, Nature Communications.
[19] Alexander P Nesmith,et al. Mechanotransduction and Metabolism in Cardiomyocyte Microdomains , 2016, BioMed research international.
[20] S. Bicciato,et al. Induction of Expandable Tissue-Specific Stem/Progenitor Cells through Transient Expression of YAP/TAZ , 2016, Cell stem cell.
[21] H. Clevers,et al. Designer matrices for intestinal stem cell and organoid culture , 2016, Nature.
[22] L. Andolfi,et al. Investigating the mechanical properties of zona pellucida of whole human oocytes by atomic force spectroscopy. , 2016, Integrative biology : quantitative biosciences from nano to macro.
[23] Ling Zhang,et al. Mitofusin 2 regulates the oocytes development and quality by modulating meiosis and mitochondrial function , 2016, Scientific Reports.
[24] François Nédélec,et al. Asymmetric division of contractile domains couples cell positioning and fate specification , 2016, Nature.
[25] John M. Asara,et al. Yap reprograms glutamine metabolism to increase nucleotide biosynthesis and enable liver growth , 2016, Nature Cell Biology.
[26] A. Sutherland. Tissue morphodynamics shaping the early mouse embryo. , 2016, Seminars in cell & developmental biology.
[27] C. Chazaud,et al. Lineage specification in the mouse preimplantation embryo , 2016, Development.
[28] S. Dupont,et al. Control of YAP/TAZ Activity by Metabolic and Nutrient-Sensing Pathways. , 2016, Trends in cell biology.
[29] A. Ranga,et al. Defined three-dimensional microenvironments boost induction of pluripotency. , 2016, Nature materials.
[30] David B. Camarillo,et al. Human oocyte developmental potential is predicted by mechanical properties within hours after fertilization , 2016, Nature Communications.
[31] Austin G Smith,et al. Stat3 promotes mitochondrial transcription and oxidative respiration during maintenance and induction of naive pluripotency , 2016, The EMBO journal.
[32] Jin-Su Kim,et al. Stiffness of Hydrogels Regulates Cellular Reprogramming Efficiency Through Mesenchymal-to-Epithelial Transition and Stemness Markers. , 2016, Macromolecular bioscience.
[33] J. Albeck,et al. Phosphoinositide 3-Kinase Regulates Glycolysis through Mobilization of Aldolase from the Actin Cytoskeleton , 2016, Cell.
[34] J. Hilmer,et al. Mechanotransduction in primary human osteoarthritic chondrocytes is mediated by metabolism of energy, lipids, and amino acids. , 2015, Journal of biomechanics.
[35] Andrew S. LaCroix,et al. Molecular-Scale Tools for Studying Mechanotransduction. , 2015, Annual review of biomedical engineering.
[36] S. Dalton,et al. Metabolic Reprogramming of Stem Cell Epigenetics. , 2015, Cell stem cell.
[37] B. Suki,et al. Fluctuation-driven mechanotransduction regulates mitochondrial-network structure and function. , 2015, Nature materials.
[38] M. Zernicka-Goetz,et al. Development of the anterior-posterior axis is a self-organizing process in the absence of maternal cues in the mouse embryo , 2015, Cell Research.
[39] H. Haga,et al. Stiff substrates increase YAP-signaling-mediated matrix metalloproteinase-7 expression , 2015, Oncogenesis.
[40] Andreas Fouras,et al. Cortical Tension Allocates the First Inner Cells of the Mammalian Embryo. , 2015, Developmental cell.
[41] T. Perestrelo,et al. Differentiate or Die: 3-Bromopyruvate and Pluripotency in Mouse Embryonic Stem Cells , 2015, PloS one.
[42] A. Moussaieff,et al. Concise Review: Energy Metabolites: Key Mediators of the Epigenetic State of Pluripotency , 2015, Stem cells.
[43] T. Perestrelo,et al. Dichloroacetate, the Pyruvate Dehydrogenase Complex and the Modulation of mESC Pluripotency , 2015, PloS one.
[44] T. Perestrelo,et al. Mitochondrial Mechanisms of Metabolic Reprogramming in Proliferating Cells. , 2015, Current medicinal chemistry.
[45] François Nédélec,et al. Pulsatile cell-autonomous contractility drives compaction in the mouse embryo , 2015, Nature Cell Biology.
[46] S. Bicciato,et al. Aerobic glycolysis tunes YAP/TAZ transcriptional activity , 2015, The EMBO journal.
[47] S. Gupta. Role of zona pellucida glycoproteins during fertilization in humans. , 2015, Journal of reproductive immunology.
[48] S. Shen-Orr,et al. Glycolysis-mediated changes in acetyl-CoA and histone acetylation control the early differentiation of embryonic stem cells. , 2015, Cell metabolism.
[49] V. Weaver,et al. Tumor mechanics and metabolic dysfunction. , 2015, Free radical biology & medicine.
[50] K. Guan,et al. Cellular energy stress induces AMPK-mediated regulation of YAP and the Hippo pathway , 2015, Nature Cell Biology.
[51] A. Terzic,et al. Metabolic determinants of embryonic development and stem cell fate. , 2015, Reproduction, fertility, and development.
[52] Randy L. Johnson,et al. AMPK modulates Hippo pathway activity to regulate energy homeostasis , 2015, Nature Cell Biology.
[53] J. Norman,et al. Ligand-Occupied Integrin Internalization Links Nutrient Signaling to Invasive Migration. , 2015, Cell reports.
[54] T. Perestrelo,et al. From gametogenesis and stem cells to cancer: common metabolic themes. , 2014, Human reproduction update.
[55] C. Allis,et al. Intracellular α-ketoglutarate maintains the pluripotency of embryonic stem cells , 2014, Nature.
[56] J. Asara,et al. Energy stress regulates hippo-YAP signaling involving AMPK-mediated regulation of angiomotin-like 1 protein. , 2014, Cell reports.
[57] Maki Maeda,et al. Mitochondrial Fission Factor Drp1 Maintains Oocyte Quality via Dynamic Rearrangement of Multiple Organelles , 2014, Current Biology.
[58] G. Shivashankar,et al. YAP/TAZ as mechanosensors and mechanotransducers in regulating organ size and tumor growth , 2014, FEBS letters.
[59] Yojiro Yamanaka,et al. Initiation of Hippo signaling is linked to polarity rather than to cell position in the pre-implantation mouse embryo , 2014, Development.
[60] Kevin Kit Parker,et al. Micromolded gelatin hydrogels for extended culture of engineered cardiac tissues. , 2014, Biomaterials.
[61] Eric D. Siggia,et al. A method to recapitulate early embryonic spatial patterning in human embryonic stem cells , 2014, Nature Methods.
[62] H. Kong,et al. Matrix Rigidity-Modulated Cardiovascular Organoid Formation from Embryoid Bodies , 2014, PloS one.
[63] A. Rosato,et al. Metabolic control of YAP and TAZ by the mevalonate pathway , 2014, Nature Cell Biology.
[64] Magdalena Zernicka-Goetz,et al. Self-Organizing Properties of Mouse Pluripotent Cells Initiate Morphogenesis upon Implantation , 2014, Cell.
[65] E. Wanker,et al. HIF1α Modulates Cell Fate Reprogramming Through Early Glycolytic Shift and Upregulation of PDK1–3 and PKM2 , 2014, Stem cells.
[66] Lin Mei,et al. Interplay of mevalonate and Hippo pathways regulates RHAMM transcription via YAP to modulate breast cancer cell motility , 2013, Proceedings of the National Academy of Sciences.
[67] João Ramalho-Santos,et al. Inhibition of Mitochondrial Complex III Blocks Neuronal Differentiation and Maintains Embryonic Stem Cell Pluripotency , 2013, PloS one.
[68] D. Schaffer,et al. Biophysical regulation of epigenetic state and cell reprogramming. , 2013, Nature materials.
[69] S. Bissière,et al. Cadherin-dependent filopodia control preimplantation embryo compaction , 2013, Nature Cell Biology.
[70] M. Son,et al. Interference with the mitochondrial bioenergetics fuels reprogramming to pluripotency via facilitation of the glycolytic transition. , 2013, The international journal of biochemistry & cell biology.
[71] T. Adachi,et al. External mechanical cues trigger the establishment of the anterior-posterior axis in early mouse embryos. , 2013, Developmental cell.
[72] J. Ramalho‐Santos,et al. Mitochondria and mammalian reproduction , 2013, Molecular and Cellular Endocrinology.
[73] D. Ingber,et al. Mechanobiology and developmental control. , 2013, Annual review of cell and developmental biology.
[74] D. Clift,et al. Restarting life: fertilization and the transition from meiosis to mitosis , 2013, Nature Reviews Molecular Cell Biology.
[75] A. Hadjantonakis,et al. Anatomy of a blastocyst: Cell behaviors driving cell fate choice and morphogenesis in the early mouse embryo , 2013, Genesis.
[76] P. Braghetta,et al. Changes in Muscle Cell Metabolism and Mechanotransduction Are Associated with Myopathic Phenotype in a Mouse Model of Collagen VI Deficiency , 2013, PloS one.
[77] Albert J. Keung,et al. Soft microenvironments promote the early neurogenic differentiation but not self-renewal of human pluripotent stem cells. , 2012, Integrative biology : quantitative biosciences from nano to macro.
[78] Stefano Piccolo,et al. Transduction of mechanical and cytoskeletal cues by YAP and TAZ , 2012, Nature Reviews Molecular Cell Biology.
[79] E. Maltepe,et al. Effect of Substrate Stiffness on Early Mouse Embryo Development , 2012, PloS one.
[80] L. Poellinger,et al. Dual Inhibition of Src and GSK3 Maintains Mouse Embryonic Stem Cells, Whose Differentiation Is Mechanically Regulated by Src Signaling , 2012, Stem cells.
[81] T. Zwaka,et al. Pluripotency and nuclear reprogramming. , 2012, Annual review of biochemistry.
[82] C. Hamanishi,et al. Reduced oxygen concentration enhances conversion of embryonic stem cells to epiblast stem cells. , 2012, Stem cells and development.
[83] C. Ware,et al. HIF1α induced switch from bivalent to exclusively glycolytic metabolism during ESC‐to‐EpiSC/hESC transition , 2012, The EMBO journal.
[84] Daniel G. Anderson,et al. The influence of scaffold elasticity on germ layer specification of human embryonic stem cells. , 2011, Biomaterials.
[85] M. V. Vander Heiden,et al. Aerobic glycolysis: meeting the metabolic requirements of cell proliferation. , 2011, Annual review of cell and developmental biology.
[86] Ning Wang,et al. Mechanotransduction at cadherin-mediated adhesions. , 2011, Current opinion in cell biology.
[87] Andre Terzic,et al. Somatic oxidative bioenergetics transitions into pluripotency-dependent glycolysis to facilitate nuclear reprogramming. , 2011, Cell metabolism.
[88] G. Schatten,et al. Energy Metabolism in Human Pluripotent Stem Cells and Their Differentiated Counterparts , 2011, PloS one.
[89] Ning Wang,et al. Soft Substrates Promote Homogeneous Self-Renewal of Embryonic Stem Cells via Downregulating Cell-Matrix Tractions , 2010, PloS one.
[90] Sheng Ding,et al. Reprogramming of human primary somatic cells by OCT4 and chemical compounds. , 2010, Cell stem cell.
[91] J. Downward,et al. PI3-kinase p110α mediates β1 integrin-induced Akt activation and membrane protrusion during cell attachment and initial spreading. , 2010, Cellular signalling.
[92] A. Chinnaiyan,et al. The role of YAP transcription coactivator in regulating stem cell self-renewal and differentiation. , 2010, Genes & development.
[93] Mahdi Navidbakhsh,et al. Estimating Young's modulus of zona pellucida by micropipette aspiration in combination with theoretical models of ovum , 2010, Journal of The Royal Society Interface.
[94] Ning Wang,et al. Cell material property dictates stress-induced spreading and differentiation in embryonic stem cells , 2009, Nature materials.
[95] Caterina Minelli,et al. Substrate stiffness affects early differentiation events in embryonic stem cells. , 2009, European cells & materials.
[96] A. Amaral,et al. Mitochondrial functionality in reproduction: from gonads and gametes to embryos and embryonic stem cells. , 2009, Human reproduction update.
[97] A. Ben-Yehudah,et al. Enhancement of human embryonic stem cell pluripotency through inhibition of the mitochondrial respiratory chain. , 2009, Stem cell research.
[98] Justin R. Cross,et al. ATP-Citrate Lyase Links Cellular Metabolism to Histone Acetylation , 2009, Science.
[99] Paul Pavlidis,et al. Histone deacetylase inhibition elicits an evolutionarily conserved self-renewal program in embryonic stem cells. , 2009, Cell stem cell.
[100] T. Ichisaka,et al. Induction of Pluripotent Stem Cells from Adult Human Fibroblasts by Defined Factors , 2007, Cell.
[101] R. McKay,et al. New cell lines from mouse epiblast share defining features with human embryonic stem cells , 2007, Nature.
[102] M. Trotter,et al. Derivation of pluripotent epiblast stem cells from mammalian embryos , 2007, Nature.
[103] D. Loebel,et al. Gene function in mouse embryogenesis: get set for gastrulation , 2007, Nature Reviews Genetics.
[104] Andre Terzic,et al. Mitochondrial oxidative metabolism is required for the cardiac differentiation of stem cells , 2007, Nature Clinical Practice Cardiovascular Medicine.
[105] Sadao Omata,et al. Mouse zona pellucida dynamically changes its elasticity during oocyte maturation, fertilization and early embryo development , 2006, Human Cell.
[106] S. Sen,et al. Matrix Elasticity Directs Stem Cell Lineage Specification , 2006, Cell.
[107] S. Yamanaka,et al. Induction of Pluripotent Stem Cells from Mouse Embryonic and Adult Fibroblast Cultures by Defined Factors , 2006, Cell.
[108] Tomohiro Hayakawa,et al. Maintenance of self‐renewal ability of mouse embryonic stem cells in the absence of DNA methyltransferases Dnmt1, Dnmt3a and Dnmt3b , 2006, Genes to cells : devoted to molecular & cellular mechanisms.
[109] T. Chevassut,et al. Severe Global DNA Hypomethylation Blocks Differentiation and Induces Histone Hyperacetylation in Embryonic Stem Cells , 2004, Molecular and Cellular Biology.
[110] B. Fleischmann,et al. Activity of complex III of the mitochondrial electron transport chain is essential for early heart muscle cell differentiation , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[111] D. Skalnik,et al. Histone deacetylase activity is required for embryonic stem cell differentiation , 2004, Genesis.
[112] A. Blamire,et al. Hypertrophic cardiomyopathy due to sarcomeric gene mutations is characterized by impaired energy metabolism irrespective of the degree of hypertrophy. , 2003, Journal of the American College of Cardiology.
[113] Lewis C Cantley,et al. The phosphoinositide 3-kinase pathway. , 2002, Science.
[114] P. Thibault,et al. Transcription Factor HIF-1 Is a Necessary Mediator of the Pasteur Effect in Mammalian Cells , 2001, Molecular and Cellular Biology.
[115] J. Thomson,et al. Embryonic stem cell lines derived from human blastocysts. , 1998, Science.
[116] L. Larue,et al. E-cadherin null mutant embryos fail to form a trophectoderm epithelium. , 1994, Proceedings of the National Academy of Sciences of the United States of America.
[117] D. Ingber,et al. Mechanotransduction across the cell surface and through the cytoskeleton , 1993 .
[118] D F Katz,et al. Biophysical properties of the zona pellucida measured by capillary suction: is zona hardening a mechanical phenomenon? , 1988, The Journal of experimental zoology.
[119] G. Martin,et al. Isolation of a pluripotent cell line from early mouse embryos cultured in medium conditioned by teratocarcinoma stem cells. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[120] M. Kaufman,et al. Establishment in culture of pluripotential cells from mouse embryos , 1981, Nature.
[121] E. Anderson,et al. Changes in cell surface and cortical cytoplasmic organization during early embryogenesis in the preimplantation mouse embryo , 1977, The Journal of cell biology.
[122] J. Ramalho-Santos,et al. Sirtuins in metabolism, stemness and differentiation. , 2017, Biochimica et biophysica acta. General subjects.
[123] A. S. Rodrigues,et al. From Oocytes and Pluripotent Stem Cells to Fully Differentiated Fates: (Also) a Mitochondrial Odyssey , 2013 .
[124] S. Sheehy,et al. The Role of Mechanical Forces in Guiding Tissue Differentiation , 2011 .
[125] Donald E Ingber,et al. Mechanical control of tissue morphogenesis during embryological development. , 2006, The International journal of developmental biology.