Person: Fredberg, Jeffrey
Email Address
AA Acceptance Date
Birth Date
Research Projects
Organizational Units
Job Title
Last Name
First Name
Name
Search Results
Publication Cell Elasticity Determines Macrophage Function
(Public Library of Science, 2012) Patel, Naimish R.; Bole, Medhavi; Chen, Cheng; Hardin, Charles; Kho, Alvin; Mih, Justin; Deng, Linhong; Butler, James; Tschumperlin, Daniel J.; Fredberg, Jeffrey; Krishnan, Ramaswamy; Koziel, HenrykMacrophages serve to maintain organ homeostasis in response to challenges from injury, inflammation, malignancy, particulate exposure, or infection. Until now, receptor ligation has been understood as being the central mechanism that regulates macrophage function. Using macrophages of different origins and species, we report that macrophage elasticity is a major determinant of innate macrophage function. Macrophage elasticity is modulated not only by classical biologic activators such as LPS and IFN-γ, but to an equal extent by substrate rigidity and substrate stretch. Macrophage elasticity is dependent upon actin polymerization and small rhoGTPase activation, but functional effects of elasticity are not predicted by examination of gene expression profiles alone. Taken together, these data demonstrate an unanticipated role for cell elasticity as a common pathway by which mechanical and biologic factors determine macrophage function.
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, JeffreyIn 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 Fluidization and Resolidification of the Human Bladder Smooth Muscle Cell in Response to Transient Stretch
(Public Library of Science, 2010) Rajendran, Kavitha; Deng, Linhong; Sokolov, Igor; Chen, Cheng; Krishnan, Ramaswamy; Zhou, Enhua; Ramachandran, Aruna; Tambe, Dhananjay; Adam, Rosalyn; Fredberg, JeffreyBackground: Cells resident in certain hollow organs are subjected routinely to large transient stretches, including every adherent cell resident in lungs, heart, great vessels, gut, and bladder. We have shown recently that in response to a transient stretch the adherent eukaryotic cell promptly fluidizes and then gradually resolidifies, but mechanism is not yet understood. Principal Findings: In the isolated human bladder smooth muscle cell, here we applied a 10% transient stretch while measuring cell traction forces, elastic modulus, F-actin imaging and the F-actin/G-actin ratio. Immediately after a transient stretch, F-actin levels and cell stiffness were lower by about 50%, and traction forces were lower by about 70%, both indicative of prompt fluidization. Within 5min, F-actin levels recovered completely, cell stiffness recovered by about 90%, and traction forces recovered by about 60%, all indicative of resolidification. The extent of the fluidization response was uninfluenced by a variety of signaling inhibitors, and, surprisingly, was localized to the unstretch phase of the stretch-unstretch maneuver in a manner suggestive of cytoskeletal catch bonds. When we applied an “unstretch-restretch” (transient compression), rather than a “stretch-unstretch” (transient stretch), the cell did not fluidize and the actin network did not depolymerize. Conclusions: Taken together, these results implicate extremely rapid actin disassembly in the fluidization response, and slow actin reassembly in the resolidification response. In the bladder smooth muscle cell, the fluidization response to transient stretch occurs not through signaling pathways, but rather through release of increased tensile forces that drive acute disassociation of actin.
Publication Altered mechanobiology of Schlemm's canal endothelial cells in glaucoma
(Proceedings of the National Academy of Sciences, 2014) Overby, Darryl R.; Zhou, Enhua; Vargas-Pinto, Rocio; Pedrigi, Ryan M.; Fuchshofer, Rudolf; Braakman, Sietse T.; Gupta, Ritika; Perkumas, Kristin M.; Sherwood, Joseph M.; Vahabikashi, Amir; Dang, Quynh; Kim, Jae Hun; Ethier, C. Ross; Stamer, W. Daniel; Fredberg, Jeffrey; Johnson, MarkIncreased flow resistance is responsible for the elevated intraocular pressure characteristic of glaucoma, but the cause of this resistance increase is not known. We tested the hypothesis that altered biomechanical behavior of Schlemm’s canal (SC) cells contributes to this dysfunction. We used atomic force microscopy, optical magnetic twisting cytometry, and a unique cell perfusion apparatus to examine cultured endothelial cells isolated from the inner wall of SC of healthy and glaucomatous human eyes. Here we establish the existence of a reduced tendency for pore formation in the glaucomatous SC cell—likely accounting for increased outflow resistance—that positively correlates with elevated subcortical cell stiffness, along with an enhanced sensitivity to the mechanical microenvironment including altered expression of several key genes, particularly connective tissue growth factor. Rather than being seen as a simple mechanical barrier to filtration, the endothelium of SC is seen instead as a dynamic material whose response to mechanical strain leads to pore formation and thereby modulates the resistance to aqueous humor outflow. In the glaucomatous eye, this process becomes impaired. Together, these observations support the idea of SC cell stiffness—and its biomechanical effects on pore formation—as a therapeutic target in glaucoma.
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, JeffreyAs 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 JPublication The actin regulator zyxin reinforces airway smooth muscle and accumulates in airways of fatal asthmatics
(Public Library of Science, 2017) Rosner, Sonia R.; Pascoe, Christopher D.; Blankman, Elizabeth; Jensen, Christopher C.; Krishnan, Ramaswamy; James, Alan L.; Elliot, John G.; Green, Francis H.; Liu, Jeffrey C.; Seow, Chun Y.; Park, Jin-Ah; Beckerle, Mary C.; Paré, Peter D.; Fredberg, Jeffrey; Smith, Mark A.Bronchospasm induced in non-asthmatic human subjects can be easily reversed by a deep inspiration (DI) whereas bronchospasm that occurs spontaneously in asthmatic subjects cannot. This physiological effect of a DI has been attributed to the manner in which a DI causes airway smooth muscle (ASM) cells to stretch, but underlying molecular mechanisms–and their failure in asthma–remain obscure. Using cells and tissues from wild type and zyxin-/- mice we report responses to a transient stretch of physiologic magnitude and duration. At the level of the cytoskeleton, zyxin facilitated repair at sites of stress fiber fragmentation. At the level of the isolated ASM cell, zyxin facilitated recovery of contractile force. Finally, at the level of the small airway embedded with a precision cut lung slice, zyxin slowed airway dilation. Thus, at each level zyxin stabilized ASM structure and contractile properties at current muscle length. Furthermore, when we examined tissue samples from humans who died as the result of an asthma attack, we found increased accumulation of zyxin compared with non-asthmatics and asthmatics who died of other causes. Together, these data suggest a biophysical role for zyxin in fatal asthma.
Publication Corrigendum: Airway and Parenchymal Strains during Bronchoconstriction in the Precision Cut Lung Slice
(Frontiers Media S.A., 2017) Hiorns, Jonathan E.; Bidan, Cécile M.; Jensen, Oliver E.; Gosens, Reinoud; Kistemaker, Loes E. M.; Fredberg, Jeffrey; Butler, Jim P.; Krishnan, Ramaswamy; Brook, Bindi S.Publication Bronchospasm and its Biophysical Basis in Airway Smooth Muscle
(BioMed Central, 2004) Fredberg, JeffreyAirways hyperresponsiveness is a cardinal feature of asthma but remains unexplained. In asthma, the airway smooth muscle cell is the key end-effector of bronchospasm and acute airway narrowing, but in just the past five years our understanding of the relationship of responsiveness to muscle biophysics has dramatically changed. It has become well established, for example, that muscle length is equilibrated dynamically rather than statically, and that non-classical features of muscle biophysics come to the forefront, including unanticipated interactions between the muscle and its time-varying load, as well as the ability of the muscle cell to adapt rapidly to changes in its dynamic microenvironment. These newly discovered phenomena have been described empirically, but a mechanistic basis to explain them is only beginning to emerge.
Publication Airway Obstruction in Asthma: Does the Response to a Deep Inspiration Matter?
(BioMed Central, 2001) Fredberg, JeffreyAirway hyperresponsiveness in asthma may not be a problem of too much airway smooth muscle strength. Rather, it may be a problem of too little of the factors that oppose muscle shortening. The weight of available evidence seems to support the idea that loss of the dilating response to a deep inspiration may play a central role in this process, and that the locus of the response is within the airway smooth muscle cell. Bridge dynamics and plastic reorganization of the smooth muscle cytoskeleton are the focus of this commentary; how these factors interact and details about underlying mechanisms remain unclear.