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Dive into the research topics where Daniel J. Tschumperlin is active.

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Featured researches published by Daniel J. Tschumperlin.


Nature | 2007

Universal physical responses to stretch in the living cell.

Xavier Trepat; Linhong Deng; Steven S. An; Daniel Navajas; Daniel J. Tschumperlin; William T. Gerthoffer; James P. Butler; Jeffrey J. Fredberg

With every beat of the heart, inflation of the lung or peristalsis of the gut, cell types of diverse function are subjected to substantial stretch. Stretch is a potent stimulus for growth, differentiation, migration, remodelling and gene expression. Here, we report that in response to transient stretch the cytoskeleton fluidizes in such a way as to define a universal response class. This finding implicates mechanisms mediated not only by specific signalling intermediates, as is usually assumed, but also by non-specific actions of a slowly evolving network of physical forces. These results support the idea that the cell interior is at once a crowded chemical space and a fragile soft material in which the effects of biochemistry, molecular crowding and physical forces are complex and inseparable, yet conspire nonetheless to yield remarkably simple phenomenological laws. These laws seem to be both universal and primitive, and thus comprise a striking intersection between the worlds of cell biology and soft matter physics.


Journal of Cell Biology | 2010

Feedback amplification of fibrosis through matrix stiffening and COX-2 suppression

Fei Liu; Justin D. Mih; Barry S. Shea; Alvin T. Kho; Asma S. Sharif; Andrew M. Tager; Daniel J. Tschumperlin

In response to tissue stiffening, fibroblasts increase production of extracellular matrix while decreasing production of matrix-degrading enzymes and the fibrosis inhibitor prostaglandin E2.


Nature | 2004

Mechanotransduction through growth-factor shedding into the extracellular space.

Daniel J. Tschumperlin; Guohao Dai; Ivan V. Maly; Tadashi Kikuchi; Lily H. Laiho; Anna McVittie; Kathleen J. Haley; Craig M. Lilly; Peter T. C. So; Douglas A. Lauffenburger; Roger D. Kamm; Jeffrey M. Drazen

Physical forces elicit biochemical signalling in a diverse array of cells, tissues and organisms, helping to govern fundamental biological processes. Several hypotheses have been advanced that link physical forces to intracellular signalling pathways, but in many cases the molecular mechanisms of mechanotransduction remain elusive. Here we find that compressive stress shrinks the lateral intercellular space surrounding epithelial cells, and triggers cellular signalling via autocrine binding of epidermal growth factor family ligands to the epidermal growth factor receptor. Mathematical analysis predicts that constant rate shedding of autocrine ligands into a collapsing lateral intercellular space leads to increased local ligand concentrations that are sufficient to account for the observed receptor signalling; direct experimental comparison of signalling stimulated by compressive stress versus exogenous soluble ligand supports this prediction. These findings establish a mechanism by which mechanotransduction arises from an autocrine ligand–receptor circuit operating in a dynamically regulated extracellular volume, not requiring induction of force-dependent biochemical processes within the cell or cell membrane.


Proceedings of the National Academy of Sciences of the United States of America | 2001

Mechanical stress is communicated between different cell types to elicit matrix remodeling

Melody Swartz; Daniel J. Tschumperlin; Roger D. Kamm; Jeffrey M. Drazen

Tissue remodeling often reflects alterations in local mechanical conditions and manifests as an integrated response among the different cell types that share, and thus cooperatively manage, an extracellular matrix. Here we examine how two different cell types, one that undergoes the stress and the other that primarily remodels the matrix, might communicate a mechanical stress by using airway cells as a representative in vitro system. Normal stress is imposed on bronchial epithelial cells in the presence of unstimulated lung fibroblasts. We show that (i) mechanical stress can be communicated from stressed to unstressed cells to elicit a remodeling response, and (ii) the integrated response of two cell types to mechanical stress mimics key features of airway remodeling seen in asthma: namely, an increase in production of fibronectin, collagen types III and V, and matrix metalloproteinase type 9 (MMP-9) (relative to tissue inhibitor of metalloproteinase-1, TIMP-1). These observations provide a paradigm to use in understanding the management of mechanical forces on the tissue level.


PLOS ONE | 2010

Matrix Rigidity Regulates Cancer Cell Growth and Cellular Phenotype

Robert W. Tilghman; Catharine R. Cowan; Justin D. Mih; Yulia Koryakina; Daniel Gioeli; Jill K. Slack-Davis; Brett R. Blackman; Daniel J. Tschumperlin; J. Thomas Parsons

Background The mechanical properties of the extracellular matrix have an important role in cell growth and differentiation. However, it is unclear as to what extent cancer cells respond to changes in the mechanical properties (rigidity/stiffness) of the microenvironment and how this response varies among cancer cell lines. Methodology/Principal Findings In this study we used a recently developed 96-well plate system that arrays extracellular matrix-conjugated polyacrylamide gels that increase in stiffness by at least 50-fold across the plate. This plate was used to determine how changes in the rigidity of the extracellular matrix modulate the biological properties of tumor cells. The cell lines tested fall into one of two categories based on their proliferation on substrates of differing stiffness: “rigidity dependent” (those which show an increase in cell growth as extracellular rigidity is increased), and “rigidity independent” (those which grow equally on both soft and stiff substrates). Cells which grew poorly on soft gels also showed decreased spreading and migration under these conditions. More importantly, seeding the cell lines into the lungs of nude mice revealed that the ability of cells to grow on soft gels in vitro correlated with their ability to grow in a soft tissue environment in vivo. The lung carcinoma line A549 responded to culture on soft gels by expressing the differentiated epithelial marker E-cadherin and decreasing the expression of the mesenchymal transcription factor Slug. Conclusions/Significance These observations suggest that the mechanical properties of the matrix environment play a significant role in regulating the proliferation and the morphological properties of cancer cells. Further, the multiwell format of the soft-plate assay is a useful and effective adjunct to established 3-dimensional cell culture models.


American Journal of Physiology-lung Cellular and Molecular Physiology | 1998

Equibiaxial deformation-induced injury of alveolar epithelial cells in vitro

Daniel J. Tschumperlin; Susan S. Margulies

Deformation of the alveolar epithelial basement membrane with lung inflation has been implicated in blood-gas barrier breakdown during the development of ventilator-induced lung injury. To determine the vulnerability of alveolar epithelial cells to deformation-induced injury, we developed a cell-stretching device that subjects cells to cyclic, equibiaxial strains. Alveolar epithelial type II cells from primary culture were tested 1 and 5 days after seeding, during which time the cells underwent major morphological and phenotypic changes. Cells were subjected to changes in surface area of 12, 24, 37, and 50%, which corresponded to lung inflation of ∼60, 80, 100, and >100% of total lung capacity. Deformation-induced injury of alveolar epithelial cells, assessed with a fluorescent cell viability assay, increased with deformation magnitude and decreased with time elapsed after seeding. In cells stretched after 1 day in culture, the percentage of dead cells after a single deformation ranged from 0.5 to 72% over the range of deformations used. In cells stretched at 5 days, the percentage of dead cells ranged from 0 to 9% when exposed to identical deformation protocols. These results suggest that morphological and phenotypic changes with time in culture fundamentally change the vulnerability of alveolar epithelial cells to deformation.


American Journal of Physiology-lung Cellular and Molecular Physiology | 2015

Mechanosignaling through YAP and TAZ drives fibroblast activation and fibrosis.

Fei Liu; David Lagares; Kyoung Moo Choi; Lauren Stopfer; Aleksandar Marinkovic; Vladimir Vrbanac; Clemens K. Probst; Samantha E. Hiemer; Thomas H. Sisson; Jeffrey C. Horowitz; Ivan O. Rosas; Carol A. Feghali-Bostwick; Xaralabos Varelas; Andrew M. Tager; Daniel J. Tschumperlin

Pathological fibrosis is driven by a feedback loop in which the fibrotic extracellular matrix is both a cause and consequence of fibroblast activation. However, the molecular mechanisms underlying this process remain poorly understood. Here we identify yes-associated protein (YAP) (homolog of drosophila Yki) and transcriptional coactivator with PDZ-binding motif (TAZ) (also known as Wwtr1), transcriptional effectors of the Hippo pathway, as key matrix stiffness-regulated coordinators of fibroblast activation and matrix synthesis. YAP and TAZ are prominently expressed in fibrotic but not healthy lung tissue, with particularly pronounced nuclear expression of TAZ in spindle-shaped fibroblastic cells. In culture, both YAP and TAZ accumulate in the nuclei of fibroblasts grown on pathologically stiff matrices but not physiologically compliant matrices. Knockdown of YAP and TAZ together in vitro attenuates key fibroblast functions, including matrix synthesis, contraction, and proliferation, and does so exclusively on pathologically stiff matrices. Profibrotic effects of YAP and TAZ operate, in part, through their transcriptional target plasminogen activator inhibitor-1, which is regulated by matrix stiffness independent of transforming growth factor-β signaling. Immortalized fibroblasts conditionally expressing active YAP or TAZ mutant proteins overcome soft matrix limitations on growth and promote fibrosis when adoptively transferred to the murine lung, demonstrating the ability of fibroblast YAP/TAZ activation to drive a profibrotic response in vivo. Together, these results identify YAP and TAZ as mechanoactivated coordinators of the matrix-driven feedback loop that amplifies and sustains fibrosis.


American Journal of Respiratory and Critical Care Medicine | 2014

Future Directions in Idiopathic Pulmonary Fibrosis Research. An NHLBI Workshop Report

Timothy S. Blackwell; Andrew M. Tager; Zea Borok; Bethany B. Moore; David A. Schwartz; Kevin J. Anstrom; Ziv Bar-Joseph; Peter B. Bitterman; Michael R. Blackburn; William Bradford; Kevin K. Brown; Harold A. Chapman; Harold R. Collard; Gregory P. Cosgrove; Robin R. Deterding; Ramona Doyle; Kevin R. Flaherty; Christine Kim Garcia; James S. Hagood; Craig A. Henke; Erica L. Herzog; Cory M. Hogaboam; Jeffrey C. Horowitz; Talmadge E. King; James E. Loyd; William Lawson; Clay B. Marsh; Paul W. Noble; Imre Noth; Dean Sheppard

The median survival of patients with idiopathic pulmonary fibrosis (IPF) continues to be approximately 3 years from the time of diagnosis, underscoring the lack of effective medical therapies for this disease. In the United States alone, approximately 40,000 patients die of this disease annually. In November 2012, the NHLBI held a workshop aimed at coordinating research efforts and accelerating the development of IPF therapies. Basic, translational, and clinical researchers gathered with representatives from the NHLBI, patient advocacy groups, pharmaceutical companies, and the U.S. Food and Drug Administration to review the current state of IPF research and identify priority areas, opportunities for collaborations, and directions for future research. The workshop was organized into groups that were tasked with assessing and making recommendations to promote progress in one of the following six critical areas of research: (1) biology of alveolar epithelial injury and aberrant repair; (2) role of extracellular matrix; (3) preclinical modeling; (4) role of inflammation and immunity; (5) genetic, epigenetic, and environmental determinants; (6) translation of discoveries into diagnostics and therapeutics. The workshop recommendations provide a basis for directing future research and strategic planning by scientific, professional, and patient communities and the NHLBI.


Nature Communications | 2017

Cellular senescence mediates fibrotic pulmonary disease

Marissa J. Schafer; Thomas A. White; Koji Iijima; Andrew J. Haak; Giovanni Ligresti; Elizabeth J. Atkinson; Ann L. Oberg; Jodie Birch; Yi Zhu; Daniel L. Mazula; Robert W. Brooks; Heike Fuhrmann-Stroissnigg; Tamar Pirtskhalava; Y. S. Prakash; Tamara Tchkonia; Paul D. Robbins; Marie Christine Aubry; João F. Passos; James L. Kirkland; Daniel J. Tschumperlin; Hirohito Kita; Nathan K. LeBrasseur

Idiopathic pulmonary fibrosis (IPF) is a fatal disease characterized by interstitial remodelling, leading to compromised lung function. Cellular senescence markers are detectable within IPF lung tissue and senescent cell deletion rejuvenates pulmonary health in aged mice. Whether and how senescent cells regulate IPF or if their removal may be an efficacious intervention strategy is unknown. Here we demonstrate elevated abundance of senescence biomarkers in IPF lung, with p16 expression increasing with disease severity. We show that the secretome of senescent fibroblasts, which are selectively killed by a senolytic cocktail, dasatinib plus quercetin (DQ), is fibrogenic. Leveraging the bleomycin-injury IPF model, we demonstrate that early-intervention suicide-gene-mediated senescent cell ablation improves pulmonary function and physical health, although lung fibrosis is visibly unaltered. DQ treatment replicates benefits of transgenic clearance. Thus, our findings establish that fibrotic lung disease is mediated, in part, by senescent cells, which can be targeted to improve health and function.


Journal of Cell Science | 2012

Matrix stiffness reverses the effect of actomyosin tension on cell proliferation

Justin D. Mih; Aleksandar Marinkovic; Fei Liu; Asma S. Sharif; Daniel J. Tschumperlin

Summary The stiffness of the extracellular matrix exerts powerful effects on cell proliferation and differentiation, but the mechanisms transducing matrix stiffness into cellular fate decisions remain poorly understood. Two widely reported responses to matrix stiffening are increases in actomyosin contractility and cell proliferation. To delineate their relationship, we modulated cytoskeletal tension in cells grown across a physiological range of matrix stiffnesses. On both synthetic and naturally derived soft matrices, and across a panel of cell types, we observed a striking reversal of the effect of inhibiting actomyosin contractility, switching from the attenuation of proliferation on rigid substrates to the robust promotion of proliferation on soft matrices. Inhibiting contractility on soft matrices decoupled proliferation from cytoskeletal tension and focal adhesion organization, but not from cell spread area. Our results demonstrate that matrix stiffness and actomyosin contractility converge on cell spreading in an unexpected fashion to control a key aspect of cell fate.

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Alvin T. Kho

Boston Children's Hospital

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