On the role of lateral stabilization during early patterning in the pancreas
暂无分享,去创建一个
[1] I. Rooman,et al. In vitro generation of insulin-producing beta cells from adult exocrine pancreatic cells , 2004, Diabetologia.
[2] S. F. Konieczny,et al. Inhibition of Mist1 Homodimer Formation Induces Pancreatic Acinar-to-Ductal Metaplasia , 2004, Molecular and Cellular Biology.
[3] G. Gradwohl,et al. Lack of TCF2/vHNF1 in mice leads to pancreas agenesis. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[4] S. Leach,et al. Wnt/β-catenin signaling is required for development of the exocrine pancreas , 2007, BMC Developmental Biology.
[5] H. Spemann,et al. Über Induktion von Medullarplatte durch Medullarplatte im Jüngeren Keim, ein Beispiel homöogenetischer oder assimilatorischer Induktion , 1927, Wilhelm Roux' Archiv für Entwicklungsmechanik der Organismen.
[6] Mark Miodownik,et al. Dynamic filopodia transmit intermittent Delta-Notch signaling to drive pattern refinement during lateral inhibition. , 2010, Developmental cell.
[7] J. Jensen,et al. FGF10 signaling maintains the pancreatic progenitor cell state revealing a novel role of Notch in organ development. , 2003, Developmental biology.
[8] M. German,et al. Gene expression cascades in pancreatic development , 2003, Mechanisms of Development.
[9] C. Wright,et al. The role of the transcriptional regulator Ptf1a in converting intestinal to pancreatic progenitors , 2002, Nature Genetics.
[10] M. Taketo,et al. Stabilization of beta-catenin impacts pancreas growth. , 2006, Development.
[11] F. Guillemot,et al. neurogenin3 is required for the development of the four endocrine cell lineages of the pancreas. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[12] C. Peterson,et al. Stem cell states, fates, and the rules of attraction. , 2009, Cell stem cell.
[13] D. Melton,et al. Single-cell transcript analysis of pancreas development. , 2003, Developmental cell.
[14] I. Rooman,et al. Generation of Beta Cells from Acinar Cells , 2010 .
[15] Bard Ermentrout,et al. Simulating, analyzing, and animating dynamical systems - a guide to XPPAUT for researchers and students , 2002, Software, environments, tools.
[16] D. Melton,et al. Direct evidence for the pancreatic lineage: NGN3+ cells are islet progenitors and are distinct from duct progenitors. , 2002, Development.
[17] G. Cuniberti,et al. Model evaluation for glycolytic oscillations in yeast biotransformations of xenobiotics. , 2004, Biophysical chemistry.
[18] G. Gittes,et al. Developmental biology of the pancreas: a comprehensive review. , 2009, Developmental biology.
[19] Lutz Brusch,et al. Predicting Pancreas Cell Fate Decisions and Reprogramming with a Hierarchical Multi-Attractor Model , 2011, PloS one.
[20] S. Frutiger,et al. The p48 DNA‐binding subunit of transcription factor PTF1 is a new exocrine pancreas‐specific basic helix‐loop‐helix protein. , 1996, The EMBO journal.
[21] H. Watada,et al. Regulation of the Pancreatic Pro-Endocrine Gene , 2001 .
[22] U. Kummer,et al. Fold–Hopf Bursting in a Model for Calcium Signal Transduction , 2003, q-bio/0310018.
[23] R. F. Luco,et al. Hnf6 and Tcf2 (MODY5) are linked in a gene network operating in a precursor cell domain of the embryonic pancreas. , 2003, Human molecular genetics.
[24] W. Rutter,et al. Onset of cell-specific gene expression in the developing mouse pancreas. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[25] K. Nakao,et al. Notch/Rbp-j signaling prevents premature endocrine and ductal cell differentiation in the pancreas. , 2006, Cell metabolism.
[26] Eric H Davidson,et al. The gene regulatory network basis of the "community effect," and analysis of a sea urchin embryo example. , 2010, Developmental biology.
[27] D. Melton,et al. β-Catenin is essential for pancreatic acinar but not islet development , 2005, Development.
[28] M. Taketo,et al. Stabilization of β-catenin impacts pancreas growth , 2006 .
[29] M. Sander,et al. Nkx6 transcription factors and Ptf1a function as antagonistic lineage determinants in multipotent pancreatic progenitors. , 2010, Developmental cell.
[30] David J. Anderson,et al. Notch signalling controls pancreatic cell differentiation , 1999, Nature.
[31] C. Brakebusch,et al. Cdc42-Mediated Tubulogenesis Controls Cell Specification , 2009, Cell.
[32] Sui Huang,et al. Bifurcation dynamics in lineage-commitment in bipotent progenitor cells. , 2007, Developmental biology.
[33] J. Hald,et al. Activated Notch1 prevents differentiation of pancreatic acinar cells and attenuate endocrine development. , 2003, Developmental biology.
[34] L. Sussel,et al. Expression of neurogenin3 reveals an islet cell precursor population in the pancreas. , 2000, Development.
[35] M. C. Jørgensen,et al. An illustrated review of early pancreas development in the mouse. , 2007, Endocrine reviews.
[36] P. Carmeliet,et al. Transcription Factor Hepatocyte Nuclear Factor 6 Regulates Pancreatic Endocrine Cell Differentiation and Controls Expression of the Proendocrine Gene ngn3 , 2000, Molecular and Cellular Biology.
[37] Olivier Pourquié,et al. Maintenance of neuroepithelial progenitor cells by Delta–Notch signalling in the embryonic chick retina , 1997, Current Biology.
[38] T. Masui,et al. Development and Adulthood Expression during Ptf1a Pancreatic Transcriptional Autoregulation Controls , 2008 .
[39] M. C. Jørgensen,et al. Ptf1a-mediated control of Dll1 reveals an alternative to the lateral inhibition mechanism , 2012, Development.
[40] J. Lewis,et al. Delta-Notch signalling and the patterning of sensory cell differentiation in the zebrafish ear: evidence from the mind bomb mutant. , 1998, Development.
[41] P. Maini,et al. Pattern formation by lateral inhibition with feedback: a mathematical model of delta-notch intercellular signalling. , 1996, Journal of theoretical biology.
[42] D. Melton,et al. A multipotent progenitor domain guides pancreatic organogenesis. , 2007, Developmental cell.
[43] L. Bouwens,et al. Can β‐cells be derived from exocrine pancreas? , 2008, Diabetes, obesity & metabolism.
[44] S. F. Konieczny,et al. The bHLH transcription factor Mist1 is required to maintain exocrine pancreas cell organization and acinar cell identity , 2001, The Journal of cell biology.
[45] Eduardo Sontag,et al. Untangling the wires: A strategy to trace functional interactions in signaling and gene networks , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[46] Raymond Turner,et al. Specification , 2011, Minds and Machines.
[47] D. Melton,et al. Notch signaling controls multiple steps of pancreatic differentiation , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[48] F. Real,et al. Adult pancreatic acinar cells dedifferentiate to an embryonic progenitor phenotype with concomitant activation of a senescence programme that is present in chronic pancreatitis , 2010, Gut.
[49] H. Meinhardt,et al. A theory of biological pattern formation , 1972, Kybernetik.
[50] Ryoichiro Kageyama,et al. Control of endodermal endocrine development by Hes-1 , 2000, Nature Genetics.
[51] J. Slack. Developmental biology of the pancreas. , 1995, Development.
[52] Jan Jensen,et al. Gene regulatory factors in pancreatic development , 2004, Developmental dynamics : an official publication of the American Association of Anatomists.
[53] J. Egan,et al. Notch signaling in pancreatic endocrine cell and diabetes. , 2010, Biochemical and biophysical research communications.
[54] D. Kemp,et al. Minireview: transcriptional regulation in pancreatic development. , 2005, Endocrinology.
[55] H. Edlund,et al. Fgf10 maintains notch activation, stimulates proliferation, and blocks differentiation of pancreatic epithelial cells , 2003, Developmental dynamics : an official publication of the American Association of Anatomists.
[56] S. Artavanis-Tsakonas,et al. Notch Signaling : Cell Fate Control and Signal Integration in Development , 1999 .
[57] Reka Albert,et al. Biological switches and clocks , 2008, Journal of The Royal Society Interface.
[58] Mark Miodownik,et al. The importance of structured noise in the generation of self-organizing tissue patterns through contact-mediated cell–cell signalling , 2010, Journal of The Royal Society Interface.
[59] J. Lewis,et al. Notch signalling and the control of cell fate choices in vertebrates. , 1998, Seminars in cell & developmental biology.
[60] I. Rooman,et al. Notch signaling as gatekeeper of rat acinar-to-beta-cell conversion in vitro. , 2009, Gastroenterology.
[61] H. Meinhardt. Models for positional signalling with application to the dorsoventral patterning of insects and segregation into different cell types. , 1989, Development.
[62] S. K. Kim,et al. Intercellular signals regulating pancreas development and function. , 2001, Genes & development.
[63] Juliana R. Brown,et al. Notch gene expression during pancreatic organogenesis , 2000, Mechanisms of Development.
[64] P. Lemaire,et al. Community effects and related phenomena in development , 1993, Cell.
[65] J. Jensen,et al. Notch mediated patterning and cell fate allocation of pancreatic progenitor cells , 2011 .
[66] Cédric Lhoussaine,et al. Theoretical basis of the community effect in development , 2010, BMC Systems Biology.
[67] L. K. Romanova. Modern Views of Prenatal Morphogenesis of Human Lung , 2002, Russian Journal of Developmental Biology.
[68] N. Lemoine,et al. Rapid acinar to ductal transdifferentiation in cultured human exocrine pancreas , 1992, The Journal of pathology.
[69] D. Melton,et al. Pancreatic lineage analysis using a retroviral vector in embryonic mice demonstrates a common progenitor for endocrine and exocrine cells. , 2002, The International journal of developmental biology.
[70] Susumu Seino,et al. Role of Cadherin-mediated Cell-Cell Adhesion in Pancreatic Exocrine-to-Endocrine Transdifferentiation*♦ , 2008, Journal of Biological Chemistry.