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Park, Chan Young

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Park

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Chan Young

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Park, Chan Young

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Now showing 1 - 7 of 7
  • Publication

    Monolayer Stress Microscopy: Limitations, Artifacts, and Accuracy of Recovered Intercellular Stresses

    (Public Library of Science, 2013) Tambe, Dhananjay; Croutelle, Ugo; Trepat, Xavier; Park, Chan Young; Kim, Jae Hun; Millet, Emil; Butler, James; Fredberg, Jeffrey

    In wound healing, tissue growth, and certain cancers, the epithelial or the endothelial monolayer sheet expands. Within the expanding monolayer sheet, migration of the individual cell is strongly guided by physical forces imposed by adjacent cells. This process is called plithotaxis and was discovered using Monolayer Stress Microscopy (MSM). MSM rests upon certain simplifying assumptions, however, concerning boundary conditions, cell material properties and system dimensionality. To assess the validity of these assumptions and to quantify associated errors, here we report new analytical, numerical, and experimental investigations. For several commonly used experimental monolayer systems, the simplifying assumptions used previously lead to errors that are shown to be quite small. Out-of-plane components of displacement and traction fields can be safely neglected, and characteristic features of intercellular stresses that underlie plithotaxis remain largely unaffected. Taken together, these findings validate Monolayer Stress Microscopy within broad but well-defined limits of applicability.

  • Publication

    Propulsion and navigation within the advancing monolayer sheet

    (Springer Nature, 2013) Kim, Jae Hun; Serra-Picamal, Xavier; Tambe, Dhananjay; Zhou, Enhua; Park, Chan Young; Sadati, Monirosadat; Park, Jin-Ah; Krishnan, Ramaswamy; Gweon, Bomi; Millet, Emil; Butler, James P.; Trepat, Xavier; Fredberg, Jeffrey

    As a wound heals, or a body plan forms, or a tumour invades, observed cellular motions within the advancing cell swarm are thought to stem from yet to be observed physical stresses that act in some direct and causal mechanical fashion. Here we show that such a relationship between motion and stress is far from direct. Using monolayer stress microscopy, we probed migration velocities, cellular tractions and intercellular stresses in an epithelial cell sheet advancing towards an island on which cells cannot adhere. We found that cells located near the island exert tractions that pull systematically towards this island regardless of whether the cells approach the island, migrate tangentially along its edge, or paradoxically, recede from it. This unanticipated cell-patterning motif, which we call kenotaxis, represents the robust and systematic mechanical drive of the cellular collective to fill unfilled space.

  • Publication

    AllerGen’s 8th research conference

    (BioMed Central, 2016) Arrieta, Marie-Claire; Arevalos, Andrea; Stiemsma, Leah; Chico, Marta E.; Sandoval, Carlos; Jin, Minglian; Walter, Jens; Cooper, Phil; Finlay, Brett; Bernatchez, Emilie; Gold, Matthew J.; Langlois, Anick; Blais-Lecours, Pascale; Duchaine, Caroline; Marsolais, David; McNagny, Kelly M.; Blanchet, Marie-Renée; Brubacher, Jordan; Chhetri, Bimal; Sabaliauskas, Kelly; Bassil, Kate; Kwong, Jeff; Coates, Frances; Takaro, Tim K.; Chow, Angela; Miller, Gregory E.; Chen, Edith; Mandhane, Piushkumar J.; Turvey, Stuart E.; Elliott, Susan J.; Becker, Allan B.; Subbarao, Padmaja; Sears, Malcolm R.; Kozyrskyj, Anita L.; Dubeau, Aimée; Lu, Zihang; Balkovec, Susan; Kowalik, Krzysztof; Gustafsson, Per; Ratjen, Felix; Edgar, Rachel D.; Bush, Nicole R.; MacIssac, Julie L.; McEwen, Lisa M.; Boyce, Thomas W.; Kobor, Michael S.; Emmerson, Melanie; Shen, Bingqing; Moraes, Theo J.; Gabrielli, Sofianne; Clarke, Ann; Eisman, Harley; Morris, Judy; Joseph, Lawrence; LaVieille, Sebastien; Ben-Shoshan, Moshe; Islam, Sumaiya A.; Brückmann, Christof; Nieratschker, Vanessa; Jamieson, Kyla C.; Proud, David; Kanagaratham, Cynthia; Camateros, Pierre; Kopriva, Frantisek; Henri, Jennifer; Hajduch, Marian; Radzioch, Danuta; Kang, Liane J.; Koleva, Petya T.; Field, Catherine J.; Konya, Tedd; Scott, James A.; Konya, Theodore; Azad, Meghan B.; Brook, Jeff; Guttman, David; Kumari, Manjeet; Bridgman, Sarah L.; Tun, Mon H.; Mandal, Rupasri; Wishart, David S.; Lee, Amy H. Y.; Xia, Jeff; Gill, Erin; Hancock, Bob; Maestre, Danay; Sutherland, Darren; Hirota, Jeremy; Pena, Olga; Carlsten, Christopher; Jones, Meaghan J.; MacIsaac, Julia L.; Dow, William H.; Rosero-Bixby, Luis; Rehkopf, David H.; Morimoto, Takeshi; Smith, Steven G.; Oliveria, John-Paul; Beaudin, Suzanne; Schlatman, Abbey; Howie, Karen; Obminski, Caitlin; Nusca, Graeme; Sehmi, Roma; Gauvreau, Gail M.; O’Byrne, Paul M.; North, Michelle; Peng, Cheng; Sanchez-Guerra, Marco; Byun, Hyang-Min; Ellis, Anne K.; Baccarelli, Andrea; Okeme, Joseph O.; Dhal, Suman; Saini, Aman; Diamond, Miriam L.; Olesovsky, Christopher J.; Salter, Brittany M.; Wang, Michael; Lacy, Paige; O’Sullivan, Michael J.; Park, Chan Young; Fredberg, Jeffrey; Lauzon, Anne-Marie; Martin, James G.; Ryu, Min Hyung; Mookherjee, Neeloffer; Simons, Elinor; Lefebvre, Diana; Dai, David; Singh, Amrit; Shannon, Casey P.; Kim, Young Woong; Yang, Chen Xi; Mark FitzGerald, J.; Boulet, Louis-Philippe; Tebbutt, Scott J.; Singhera, Gurpreet K.; JasemineYang, S.; Dorscheid, Delbert R.; Sinnock, Hasantha; Goruk, Susan; Tavakoli, Hamid; Lynd, Larry D.; Sadatsafavi, Mohsen; Tenn, Mark W.; Thiele, Jenny; Adams, Daniel E.; Steacy, Lisa M.; Torabi, Bahar; De Schryver, Sarah; Lejtenyi, Duncan; Baerg, Ingrid; Chan, Edmond S.; Mazer, Bruce D.; Tran, Maxwell M.; Dai, Wei Hao; Lou, Wendy; Chari, Radha S.; Conway, Edward M.; Neighbour, Helen; Larché, Mark; Tebbutt, Scott J
  • Publication

    Reinforcement versus Fluidization in Cytoskeletal Mechanoresponsiveness

    (Public Library of Science, 2009) Heintzmann, Rainer; Krishnan, Ramaswamy; Park, Chan Young; Lin, Yu-Chun; Mead, Jere; Jaspers, Richard T.; Trepat, Xavier; Lenormand, Guillaume; Tambe, Dhananjay; Smolensky, Alexander; Knoll, Andrew; Butler, James; Fredberg, Jeffrey

    Every adherent eukaryotic cell exerts appreciable traction forces upon its substrate. Moreover, every resident cell within the heart, great vessels, bladder, gut or lung routinely experiences large periodic stretches. As an acute response to such stretches the cytoskeleton can stiffen, increase traction forces and reinforce, as reported by some, or can soften and fluidize, as reported more recently by our laboratory, but in any given circumstance it remains unknown which response might prevail or why. Using a novel nanotechnology, we show here that in loading conditions expected in most physiological circumstances the localized reinforcement response fails to scale up to the level of homogeneous cell stretch; fluidization trumps reinforcement. Whereas the reinforcement response is known to be mediated by upstream mechanosensing and downstream signaling, results presented here show the fluidization response to be altogether novel: it is a direct physical effect of mechanical force acting upon a structural lattice that is soft and fragile. Cytoskeletal softness and fragility, we argue, is consistent with early evolutionary adaptations of the eukaryotic cell to material properties of a soft inert microenvironment.

  • Publication

    Unjamming and cell shape in the asthmatic airway epithelium

    (Nature Publishing Group, 2015) Park, Jin-Ah; Kim, Jae Hun; Bi, Dapeng; Mitchel, Jennifer; Qazvini, Nader Taheri; Tantisira, Kelan; Park, Chan Young; McGill, Maureen; Kim, Sae-Hoon; Gweon, Bomi; Notbohm, Jacob; Steward Jr, Robert; Burger, Stephanie; Randell, Scott H.; Kho, Alvin; Tambe, Dhananjay; Hardin, Corey; Shore, Stephanie; Israel, Elliot; Weitz, David; Tschumperlin, Daniel J.; Henske, Elizabeth; Weiss, Scott; Manning, Mary; Butler, James; Drazen, Jeffrey; Fredberg, Jeffrey

    From coffee beans flowing in a chute to cells remodelling in a living tissue, a wide variety of close-packed collective systems— both inert and living—have the potential to jam. The collective can sometimes flow like a fluid or jam and rigidify like a solid. The unjammed-to-jammed transition remains poorly understood, however, and structural properties characterizing these phases remain unknown. Using primary human bronchial epithelial cells, we show that the jamming transition in asthma is linked to cell shape, thus establishing in that system a structural criterion for cell jamming. Surprisingly, the collapse of critical scaling predicts a counter-intuitive relationship between jamming, cell shape and cell–cell adhesive stresses that is borne out by direct experimental observations. Cell shape thus provides a rigorous structural signature for classification and investigation of bronchial epithelial layer jamming in asthma, and potentially in any process in disease or development in which epithelial dynamics play a prominent role.

  • Publication

    Homogenizing cellular tension by hepatocyte growth factor in expanding epithelial monolayer

    (Nature Publishing Group, 2017) Jang, Hwanseok; Notbohm, Jacob; Gweon, Bomi; Cho, Youngbin; Park, Chan Young; Kee, Sun-Ho; Fredberg, Jeffrey; Shin, Jennifer H.; Park, Yongdoo

    Hepatocyte growth factor (HGF) induces cell migration and scattering by mechanisms that are thought to tip a local balance of competing physical forces; cell-to-cell and cell-to-substrate forces. In this local process, HGF is known to attenuate local cadherin-dependent adhesion forces for cell-cell junction development and enhance local integrin-dependent contractile forces for pulling neighboring cells apart. Here we use an expanding island of confluent Madin-Darby canine kidney (MDCK) cells as a model system to quantify the collective cell migration. In the absence of HGF, cell trajectories are highly tortuous whereas in the presence of HGF, they become far less so, resembling free expansion of a gas. At the level of cell-to-cell junctions, HGF attenuates the linkage of stress fibers to cell-to-cell junctions with concomitant decrease in intercellular stress. At the level of cell-to-substrate junctions, HGF augments the linkage of stress fibers to cell-to-substrate junctions with no apparent effect on traction. Together, HGF induces both structural changes in the actin-bound junctional protein complex and physical forces spanning multicellular clusters, which further promotes the expansion of confluent cellular layer.

  • Publication

    Assessing the impact of engineered nanoparticles on wound healing using a novel in vitro bioassay

    (Future Medicine Ltd, 2014) Zhou, Enhua; Watson, Christa; Pizzo, Richard; Cohen, Joel; Dang, Quynh; Ferreira de Barros, Pedro Macul; Park, Chan Young; Chen, Cheng; Brain, Joseph; Butler, James; Ruberti, Jeffrey W; Fredberg, Jeffrey; Demokritou, Philip

    AIM: As engineered nanoparticles (ENPs) increasingly enter consumer products, humans become increasingly exposed. The first line of defense against ENPs is the epithelium, the integrity of which can be compromised by wounds induced by trauma, infection, or surgery, but the implications of ENPs on wound healing are poorly understood. MATERIALS & METHODS: Herein, we developed an in vitro assay to assess the impact of ENPs on the wound healing of cells from human cornea. RESULTS & DISCUSSION: We show that industrially relevant ENPs impeded wound healing and cellular migration in a manner dependent on the composition, dose and size of the ENPs as well as cell type. CuO and ZnO ENPs impeded both viability and wound healing for both fibroblasts and epithelial cells. Carboxylated polystyrene ENPs retarded wound healing of corneal fibroblasts without affecting viability. CONCLUSION: Our results highlight the impact of ENPs on cellular wound healing and provide useful tools for studying the physiological impact of ENPs.