{"id":84,"date":"2016-09-21T13:01:01","date_gmt":"2016-09-21T17:01:01","guid":{"rendered":"http:\/\/erzsoregan.voices-old.wooster.edu\/?page_id=84"},"modified":"2025-04-17T13:40:37","modified_gmt":"2025-04-17T13:40:37","slug":"publications","status":"publish","type":"page","link":"https:\/\/erzsoregan.voices.wooster.edu\/?page_id=84","title":{"rendered":"Publications"},"content":{"rendered":"<ul>\n<li><em>Note:<\/em> *corresponding author(s); <strong>\u2020<\/strong> undergraduate students; <strong>\u2020\u2020<\/strong> College of Wooster undergraduate students;<\/li>\n<\/ul>\n<ul>\n<li><strong>Preprints <\/strong>(BioRXiv and\/or under review):\n<ul>\n<li>Deritei D, Anamika WJ, Zhou X, Silverman EK*, <b>Ravasz Regan E<\/b>*<b>, <\/b>Glass K*, <a href=\"https:\/\/www.biorxiv.org\/content\/10.1101\/2024.09.05.611545v1\">HHIP&#8217;s Dynamic Role in Epithelial Wound Healing Reveals a Potential Mechanism of COPD Susceptibility<\/a>, <em>BioRXiv:<\/em>2024.09.05.611545<em>, <\/em>2024.<\/li>\n<\/ul>\n<\/li>\n<\/ul>\n<ul>\n<li><span class=\"title\"><b>Peer Reviewed Articles<\/b><\/span>\n<ol type=\"1\">\n<li>Greene G<strong>\u2020\u2020<\/strong>, Zonfa I<strong>\u2020\u2020<\/strong>, <strong>Ravasz Regan E*<\/strong>, <a href=\"https:\/\/journals.plos.org\/ploscompbiol\/article?id=10.1371\/journal.pcbi.1012735&amp;?utm_id=plos111&amp;utm_source=internal&amp;utm_medium=email&amp;utm_campaign=author\">A Boolean network model of hypoxia, mechanosensing and TGF-\u03b2 signaling captures the role of phenotypic plasticity and mutations in tumor metastasis<\/a>, <em>PLOS Computational Biology<\/em> 21(4): e1012735.<\/li>\n<li>Sizek H<strong>\u2020\u2020<\/strong>, Deritei D, Fleig K<strong>\u2020\u2020<\/strong>, Harris M<strong>\u2020\u2020<\/strong>, Regan PL, Glass K, <b>Ravasz Regan E*<\/b>, <a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S1936523324002110?via%3Dihub\">Unlocking Mitochondrial Dysfunction-Associated Senescence (MiDAS) with NAD<sup>+<\/sup> \u2013 a Boolean Model of Mitochondrial Dynamics and Cell Cycle Control<\/a>, <i>Translational Oncology <\/i>49:102084<i>, <\/i>2024 (special issue &#8220;<i>Non-genetic heterogeneity and adaptive mechanisms in cancer evolution and drug resistance<\/i>&#8220;).<\/li>\n<li>Sullivan E<strong>\u2020\u2020<\/strong>, Harris M<strong>\u2020\u2020<\/strong>, Bhatnagar A<strong>\u2020\u2020<\/strong>, Guberman E<strong>\u2020\u2020<\/strong>, Zonfa I<strong>\u2020\u2020<\/strong>, \u00a0<strong>Ravasz Regan E*, <\/strong><a href=\"https:\/\/doi.org\/10.1016\/j.isci.2023.106321\">Boolean modeling of mechanosensitive Epithelial to Mesenchymal Transition and its reversal<\/a>, <span class=\"highwire-cite-metadata-pages highwire-cite-metadata\"><em>iScience\u00a0<\/em><\/span><span class=\"highwire-cite-metadata-journal highwire-cite-metadata\">26(4): 106321,\u00a0<\/span><span class=\"highwire-cite-metadata-pages highwire-cite-metadata\">2023.<\/span><\/li>\n<li>Zakirov B, Charalambous G, Thuret R, Aspalter I. M., Van-Vuuren K, Mead\u00a0T., Harrington K.,<strong>\u00a0Ravasz Regan E<\/strong>, Herbert S. P., Bentley\u00a0K., <a href=\"https:\/\/royalsocietypublishing.org\/doi\/10.1098\/rstb.2019.0753\">Active perception during angiogenesis: filopodia speed up Notch selection of tip cells <em>in silico<\/em> and <\/a><em>in vivo, Philosophical Transactions of the Royal Society B, <\/em>376: 20190753, 2021.<\/li>\n<li>Guberman E\u00a0<strong>\u2020\u2020<\/strong>, H. Sherief H <strong>\u2020\u2020<\/strong>, <strong>Ravasz Regan E*, <\/strong><a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/S2001037020303482\">Boolean model of anchorage dependence and contact inhibition points to coordinated inhibition but semi-independent induction of proliferation and migration<\/a>,\u00a0<em>Computational and Structural Biotechnology Journal<\/em>\u00a018,<em>\u00a02145-2165<\/em>,\u00a02020.<\/li>\n<li>Deritei D, Rozum J, <strong>Ravasz Regan E<\/strong>, Albert R, <a href=\"https:\/\/www.nature.com\/articles\/s41598-019-52725-1\">A feedback loop of conditionally stable circuits drives the cell cycle from checkpoint to checkpoint<\/a>, <em>Scientific Reports,\u00a0<\/em>9,\u00a016430, 2019<em>.<\/em><\/li>\n<li>Sizek H\u00a0<strong>\u2020\u2020<\/strong>, Hamel A\u00a0<strong>\u2020\u2020<\/strong>, Deritei D, Campbell S\u00a0<strong>\u2020\u2020<\/strong>,<strong>\u00a0Ravasz Regan E*<\/strong>,\u00a0\u00a0<a href=\"https:\/\/doi.org\/ 10.1371\/journal.pcbi.1006402\">Boolean model of growth signaling, cell cycle and apoptosis predicts the molecular mechanism of aberrant cell cycle progression driven by hyperactive PI3K<\/a>. <em>PLoS Computational Biology,<\/em> 15(3): e1006402, 2019.<\/li>\n<li>Wade A <strong>\u2020\u2020<\/strong>, Lin CH, Kurkul C, <strong>Ravasz Regan E<\/strong>, Johnson RM, <a href=\"https:\/\/www.mdpi.com\/2075-4450\/10\/1\/20\">Combined toxicity of insecticides and fungicides applied to California almond orchards to honey bee larvae and adults<\/a>. <em>Insects,<\/em>\u00a010(1), 20,\u00a02019.<\/li>\n<li>Venkatraman L, <strong>Ravasz Regan E<\/strong>, Bentley K, <a href=\"https:\/\/journals.plos.org\/plosone\/article?id=10.1371\/journal.pone.0166489\">Time to Decide? Dynamical Analysis Predicts Partial Tip\/Stalk Patterning States Arise during Angiogenesis<\/a>, <em>PLOS One<\/em>, 11(11): e0166489,\u00a02016.<\/li>\n<li>Deritei D \u2020, Aird WC, Ercsey-Ravasz MM, <strong>Ravasz Regan E*<\/strong>, <a href=\"http:\/\/dx.doi.org\/10.1038%2Fsrep21957\">Principles of dynamical modularity in biological regulatory networks<\/a>, <em>Scientific Reports<\/em> 2016; 6:21957.<\/li>\n<li>Yuan L, Chan GC, Beeler D, Janes L, Spokes KC, Dharaneeswaran H, Mojiri A, Adams WJ, Sciu- to T, Garcia-Carde\u00f1a G, Molema G, Kang PM, Jahroudi N, Marsden PA, Dvorak A, Regan ER, Aird WC, <strong>Ravasz Regan E*<\/strong>, Aird WC*, <a href=\"http:\/\/dx.doi.org\/10.1038\/ncomms10160\">A role of stochastic phenotype switching in generating mosaic endothelial cell heterogeneity<\/a>, <em>Nature Communications<\/em> 2016; 7:10160. (Citations: WoS &#8211; 4, Google Scholar &#8211; 7)<\/li>\n<li>Moser J, Heeringa P, Jongman RM, Zwiers PJ, Niemarkt AE, Yan R, de Graaf IA, Li R, <strong>Ravasz Regan E<\/strong>, K\u00fcmpers P, Aird WC, van Nieuw Amerongen GP, Zijlstra JG, Molema G, van Meurs M, <a href=\"http:\/\/dx.doi.org\/10.4049\/jimmunol.1501819\">Intracellular RIG-I Signaling Regulates TLR4-independent Endothelial Inflammatory Responses to Endotoxin<\/a>, <em>Journal of Immunology<\/em> 2016; 1501819.<\/li>\n<li>Okada Y, Naruse H, Tanaka T, Funahashi N, <strong>Ravasz Regan E<\/strong>, Yamakawa K, Hino N, Ishimoto K, Doi T, Aird WC, <a href=\"http:\/\/dx.doi.org\/10.1016\/j.bbrc.2015.10.029\">Expression of the Robo4 receptor in endothelial cells is regulated by two AP-1 protein complexes<\/a>, <em>Biochemical and Biophysical Research Communications<\/em> 2015; S0006-291X(15):30729-4.<\/li>\n<li>H. Dharaneeswaran, R. Abid, L. Yuan, D. Dupuis, D. Beeler, KC Spokes, L. Janes, T. Sciuto, P. Kang, SC. Jaminet, A. Dvorak, M.A. Grant,\u00a0<b>E. Ravasz Regan<\/b>, W. C. Aird,\u00a0<a href=\"http:\/\/circres.ahajournals.org\/content\/early\/2014\/05\/29\/CIRCRESAHA.115.303227.abstract\"><span class=\"title\">FoxO1-mediated Activation of Akt plays a critical role in vascular homeostasis<\/span><\/a>,\u00a0<em><span class=\"title\">Circulation Research<\/span><\/em>\u00a0<span class=\"volume\">115<\/span>, 238-51, 2014;<\/li>\n<li>Bentley K, Philippides A,\u00a0<b>Ravasz Regan E<\/b>,\u00a0<a href=\"http:\/\/www.cell.com\/developmental-cell\/abstract\/S1534-5807(14)00193-2\"><span class=\"title\">Do Endothelial Cells Dream of Eclectic Shape?<\/span><\/a>,\u00a0<em><span class=\"title\">Developmental Cell<\/span><\/em>\u00a0 <span class=\"volume\">29<\/span>, 146-158 (2014);<\/li>\n<li>D\u00e1vid Deritei\u00a0\u2020 , Zsolt L\u00e1z\u00e1r, Istv\u00e1n Papp \u2020, Ferenc J\u00e1rai-Szab\u00f3, Robert Sumi \u2020, Levente Varga \u2020,\u00a0\u00a0<b>Erzs\u00e9bet Ravasz Regan<\/b>, M\u00e1ria-Magdolna Ercsey-Ravasz,\u00a0<a href=\"http:\/\/iopscience.iop.org\/1367-2630\/16\/6\/063007\">Community detection by graph Voronoi diagrams<\/a>,\u00a0<em><span class=\"title\">New Journal of Physics<\/span><\/em>\u00a0<span class=\"volume\">16<\/span>, 063007, 2014;\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/videoabstract2_Ercsey-Ravasz_495117.mp4\">Video Abstract<\/a><\/li>\n<li>K. Bentley, K. Harrington,\u00a0<b>E. Ravasz Regan<\/b>, Can active perception generate bistability? Heterogeneous collective dynamics and vascular patterning,\u00a0<em><span class=\"title\">ALIFE 14: The Fourteenth International Conference on the Synthesis and Simulation of Living Systems<\/span><\/em><span class=\"volume\">14<\/span>, 328-335, 2014;<\/li>\n<li>C. Priolo, S. Pyne, J. Rose,\u00a0<b>E. Ravasz Regan<\/b>, G. Zadra, C. Photopoulos, S. Cacciatore, D. Schultz, N. Scaglia, J. McDunn, A. De-Marzo, M. Loda,\u00a0<a href=\"http:\/\/cancerres.aacrjournals.org\/content\/early\/2014\/10\/16\/0008-5472.CAN-14-1490.abstract\"><span class=\"title\">AKT1 and MYC Induce Distinctive Metabolic Fingerprints in Human Prostate Cancer<\/span><\/a>,\u00a0<em><span class=\"title\">Cancer Research<\/span><\/em>,\u00a074:7198-204,\u00a02014.<\/li>\n<li>Kurniati NF, Jongman RM, von Hagen F, Spokes KC, Moser J,\u00a0<b>Ravasz Regan E<\/b>, Krenning G, Moonen JRAJ, Harmsen MC, Struys MMRF, Hammes HP, Zijlstra JG, Aird WC, Heeringa P, Molema G, van Meurs M.\u00a0<a href=\"http:\/\/link.springer.com\/article\/10.1007\/s00134-013-2899-7\"><span class=\"title\">The flow dependency of Tie2 expression in endotoxemia<\/span><\/a>,\u00a0<em><span class=\"title\">Intensive Care Medicine<\/span><\/em>\u00a0<span class=\"volume\">39<\/span>, 1262-1271, 2013;<\/li>\n<li><b>Ravasz Regan E*<\/b>, Aird WC.\u00a0<a href=\"http:\/\/circres.ahajournals.org\/content\/111\/1\/110.long\"><span class=\"title\">Dynamical systems approach to endothelial heterogeneity<\/span><\/a>,\u00a0<em><span class=\"title\">Circulation Research<\/span><\/em>,\u00a0<span class=\"volume\">111<\/span>, 110-130 (2012);<\/li>\n<li>Liu J, Yuan L, Molema G,\u00a0<b>Regan E<\/b>, Janes L, Beeler D, Spokes KC, Minami T, Oettgen P, Aird WC,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/von_Willebrand_factor_in_heart_skeletal_muscle.pdf\"><span class=\"title\">Vascular bed-specific regulation of the von Willebrand factor promoter in the heart and skeletal muscle<\/span><\/a>,\u00a0<em><span class=\"title\">Blood<\/span><\/em>\u00a0<span class=\"volume\">117<\/span>(1):342-51 (2011);<\/li>\n<li>Jin E, Liu J, Suehiro J, Okada Y, Yuan L, Nikolova-Krstevski V, Yano K, Janes L, Beeler D, Spokes KC,\u00a0<b>Regan E<\/b>, Shih SC, Oettgen P, Minami T, Aird WC.\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/VEGFR1_expression_in_vivo.pdf\"><span class=\"title\">Differential Roles for ETS, CREB and EGR Binding Sites in Mediating VEGF Receptor 1 Expression in Vivo<\/span><\/a>,\u00a0<em><span class=\"title\">Blood<\/span><\/em>\u00a0<span class=\"volume\">114<\/span>(27):5557-66 (2009).<\/li>\n<li><b>E. Ravasz<\/b>, A.-L. Barab\u00e1si,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Hierarchical_org_in_Complex_Netw_PRE.pdf\"><span class=\"title\">Hierarchical organization in complex networks<\/span><\/a>,\u00a0<em><span class=\"title\">Phys. Rev. E<\/span><\/em>,\u00a0<span class=\"volume\">67<\/span>, 026112 (2003);<\/li>\n<li>S. Y. Gerdes, M. D. Scholle, J. W. Campbell, G. Bal\u00e1zsi,\u00a0<b>E. Ravasz<\/b>, M. D. Daugherty, A. L. Somera, N. C. Kyrpides, I. Anderson, M. S. Gelfand, A. Bhattacharya, V. Kapatral, M. D&#8217;Souza, M. V. Baev, Y. Grechkin, F. Mseeh, M. Y. Fonstein, R. Overbeek, A.-L. Barab\u00e1si, Z. N. Oltvai, and A. L. Osterman,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Experimental_Determination_and_System_Level_Analysis_of_Essential_Genes_in_Escherichia_coli_MG1655__JBact.pdf\"><span class=\"title\">Experimental Determination and System Level Analysis of Essential Genes in Escherichia coli MG1655<\/span><\/a>,\u00a0<em><span class=\"title\">Journal of Bacteriology<\/span><\/em>,\u00a0<span class=\"volume\">185<\/span>, 5673 (2003);<\/li>\n<li><b>E. Ravasz<\/b>, A. L. Somera, D. A. Mongru, Z. N. Oltvai and A.-L. Barab\u00e1si,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Hier_Org_MOdularity_in_Metab_Networks_SCI.pdf\"><span class=\"title\">Hierarchical organization of modularity in metabolic networks<\/span><\/a>,\u00a0<em><span class=\"title\">Science<\/span><\/em>,\u00a0<span class=\"volume\">297<\/span>, 1551 (2002);\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Hier_Org_MOdularity_in_Metab_Networks_Suppl_Mat_SCI.pdf\">Supplementaty Material<\/a>.<\/li>\n<li>I. Farkas, I. Der\u00e9nyi, H. Jeong, Z. N\u00e9da, Z. N. Oltvai,\u00a0<b>E. Ravasz<\/b>, A. Schubert, A.-L. Barab\u00e1si and T. Vicsek,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Networks_in_Life-Scaling_Properties_and_Eigenvalue_Spectra_PHYS_A.pdf\"><span class=\"title\">Networks in life: Scaling properties and eigenvalue spectra<\/span><\/a>,\u00a0<em><span class=\"title\">Physica A<\/span><\/em>,\u00a0<span class=\"volume\">314<\/span>, 25 (2002);<\/li>\n<li>A.-L. Barab\u00e1si, H. Jeong, Z. N\u00e9da,\u00a0<b>E. Ravasz<\/b>, A. Schubert and T. Vicsek,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Evol_Sci_Collab_PHYSA.pdf\"><span class=\"title\">Evolution of the social network of scientific collaborations<\/span><\/a>,\u00a0<em><span class=\"title\">Physica A<\/span><\/em>,\u00a0<span class=\"volume\">311<\/span>, 590 (2002);<\/li>\n<li>A.-L. Barab\u00e1si,\u00a0<b>E. Ravasz<\/b>\u00a0and T. Vicsek,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Determ_SF_Net_PHYSA.pdf\"><span class=\"title\">Deterministic scale-free networks<\/span><\/a>,\u00a0<em><span class=\"title\">Physica A<\/span><\/em>,\u00a0<span class=\"volume\">299<\/span>, 559 (2001);<\/li>\n<li>Z. N\u00e9da,\u00a0<b>E. Ravasz<\/b>, T. Vicsek, Y. Brechet, and A.-L. Barab\u00e1si,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Clap_NATURE.pdf\"><span class=\"title\">The sound of many hands clapping<\/span><\/a>,\u00a0<em><span class=\"title\">Nature<\/span><\/em>,\u00a0<span class=\"volume\">403<\/span>, 850 (2000);<\/li>\n<li>Z. N\u00e9da,\u00a0<b>E. Ravasz<\/b>, T. Vicsek, Y. Brechet, and A.-L. Barab\u00e1si,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Phys_Rhythmic_Appl_PRE.pdf\"><span class=\"title\">Physics of the rhythmic applause<\/span><\/a>,\u00a0<em><span class=\"title\">Phys. Rev. E<\/span><\/em>,\u00a0<span class=\"volume\">61<\/span>, 6987 (2000);<\/li>\n<li>Z. N\u00e9da, \u00c1. Rusz,\u00a0<b>E. Ravasz<\/b>, P. Lakdawala, and P. M. Gade,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Spatial_SR_1D_Ising_PRE.pdf\"><span class=\"title\">Spatial stochastic resonance in one-dimensional Ising systems<\/span><\/a>,\u00a0<em><span class=\"title\">Phys. Rev. E<\/span><\/em>,\u00a0<span class=\"volume\">60<\/span>, R3463 (1999);<\/li>\n<\/ol>\n<\/li>\n<\/ul>\n<ul>\n<li><span class=\"title\"><b>Book chapters:<\/b><\/span>\n<ol type=\"1\">\n<li><strong>Ravasz Regan E,<\/strong>\u00a0<a href=\"https:\/\/www.sciencedirect.com\/science\/article\/pii\/B9780128179963000049\">Stochastic phenotypic switching in endothelial cell heterogeneity<\/a>. In: Levine H\u00a0(ed). <em>Phenotypic Switching: Implications in Biology and Medicine<\/em>; Academic Press; 2020, 0128179961 (ISBN-13: 978-0-128-17996-3).<\/li>\n<li><b>Ravasz Regan E.<\/b>\u00a0<span class=\"title\">Hierarchical Modularity in Biological Networks<\/span>. In: Buchanan, Calderelli, De Los Rios, Rao and Vendruscolo (eds).\u00a0<span class=\"title\">Networks in Cell Biology<\/span>. Cambridge University Press; 2010 (SBN-13: 978-0-521-88273-6).<\/li>\n<li><b>Ravasz Regan E.<\/b>\u00a0<span class=\"title\">Networks: Structure and Dynamics<\/span>. In: Meyers RA, editor in chief.\u00a0<span class=\"title\">Encyclopedia of Complexity and System Science<span class=\"title\">. Springer; 2009 (SBN-13: 978-0-387-75888-6).<\/span><\/span><\/li>\n<li><b>Ravasz E.<\/b>\u00a0<a href=\"https:\/\/link.springer.com\/protocol\/10.1007%2F978-1-59745-243-4_7\"><span class=\"title\">Detecting hierarchical modularity in biological networks<\/span><\/a>. In: McDermott J, Samudrala R, Bumgarner R, Montgomery K, editors.\u00a0<span class=\"title\">Computational Systems Biology<span class=\"title\">. Humana Press; 2009. p. 145-160 (SBN-10: 1588299058).\u00a0<\/span><\/span><\/li>\n<li>S. Wuchty,\u00a0<b>Ravasz E.<\/b>\u00a0and A.-L. Barab\u00e1si,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/The_architecture_of_biological_networks.pdf\"><span class=\"title\">The Architecture of Biological Networks<\/span><\/a>, in: T.S. Deisboeck, J. Yasha Kresh and T.B. Kepler (eds.),\u00a0<span class=\"title\">Complex Systems in Biomedicine<\/span>, Kluwer Academic Publishing, New York (2005), ISBN: 0306477874.<\/li>\n<\/ol>\n<\/li>\n<\/ul>\n<ul>\n<li><span class=\"title\"><b>Proceedings:<\/b><\/span>\n<ol type=\"1\">\n<li>A.-L. Barab\u00e1si, Z. Dezs\u0151,\u00a0<b>Ravasz E.<\/b>, S. H. Yook, and Z. N. Oltvai,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Scale-free_and_Hierarchical_Structures_in_Complex_Networks__LectNotesP.pdf\"><span class=\"title\">Scale-free and hierarchical structures in complex networks<\/span><\/a>,\u00a0<span class=\"title\">AIP Conf. Proc.<\/span>\u00a0<span class=\"volume\">661<\/span>, 1 (2003);\u00a0<span class=\"title\">MODELING OF COMPLEX SYSTEMS: Seventh Granada Lectures<\/span>, Granada, Spain, 2002, Melville, New York;<\/li>\n<li>A.-L. Barab\u00e1si,\u00a0<b>Ravasz E.<\/b>, and Z. N. Oltvai,\u00a0<a href=\"http:\/\/regan.med.harvard.edu\/pdf\/publications\/Hier_Lect_Notes_Phys.pdf\"><span class=\"title\">Hierarchical Organization of Modularity in Complex Networks<\/span><\/a>,\u00a0<span class=\"title\">Lecture Notes in Physics<\/span>\u00a0<span class=\"volume\">625<\/span>, 46 (2003); R. Pastor-Satorras, J.M. Rubi,and A. Diaz-Guilera (eds.),\u00a0<span class=\"title\">Proc. of the XVIII Sitges Conference on Statistical Mechanics<\/span>, Sitges, Barcelona, Spain, 2002, Springer, Berlin;<\/li>\n<\/ol>\n<\/li>\n<\/ul>\n","protected":false},"excerpt":{"rendered":"<p>Note: *corresponding author(s); \u2020 undergraduate students; \u2020\u2020 College of Wooster undergraduate students; Preprints (BioRXiv and\/or under review): Deritei D, Anamika WJ, Zhou X, Silverman EK*, Ravasz Regan E*, Glass K*, HHIP&#8217;s Dynamic Role in Epithelial Wound Healing Reveals a Potential &hellip; <a href=\"https:\/\/erzsoregan.voices.wooster.edu\/?page_id=84\">Continue reading <span class=\"meta-nav\">&rarr;<\/span><\/a><\/p>\n","protected":false},"author":276,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"footnotes":""},"class_list":["post-84","page","type-page","status-publish","hentry"],"_links":{"self":[{"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/pages\/84","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/users\/276"}],"replies":[{"embeddable":true,"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=%2Fwp%2Fv2%2Fcomments&post=84"}],"version-history":[{"count":20,"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/pages\/84\/revisions"}],"predecessor-version":[{"id":911,"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=\/wp\/v2\/pages\/84\/revisions\/911"}],"wp:attachment":[{"href":"https:\/\/erzsoregan.voices.wooster.edu\/index.php?rest_route=%2Fwp%2Fv2%2Fmedia&parent=84"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}