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dc.contributor.authorBennett, Robert D.
dc.contributor.authorYsasi, Alexandra B.
dc.contributor.authorWagner, Willi L.
dc.contributor.authorValenzuela, Cristian D.
dc.contributor.authorTsuda, Akira
dc.contributor.authorPyne, Saumyadipta
dc.contributor.authorLi, Shuqiang
dc.contributor.authorGrimsby, Jonna
dc.contributor.authorPokharel, Prapti
dc.contributor.authorLivak, Kenneth J.
dc.contributor.authorAckermann, Maximilian
dc.contributor.authorMentzer, Steven J.
dc.contributor.authorBlainey, Paul C
dc.date.accessioned2018-11-29T16:30:50Z
dc.date.available2018-11-29T16:30:50Z
dc.date.issued2017-01
dc.date.submitted2016-08
dc.identifier.issn1040-0605
dc.identifier.issn1522-1504
dc.identifier.urihttp://hdl.handle.net/1721.1/119369
dc.description.abstractIn many mammals, including humans, removal of one lung (pneumonectomy) results in the compensatory growth of the remaining lung. Compensatory growth involves not only an increase in lung size, but also an increase in the number of alveoli in the peripheral lung; however, the process of compensatory neoalveolarization remains poorly understood. Here, we show that the expression of α-smooth muscle actin (SMA)—a cytoplasmic protein characteristic of myofibroblasts—is induced in the pleura following pneumonectomy. SMA induction appears to be dependent on pleural deformation (stretch) as induction is prevented by plombage or phrenic nerve transection (P < 0.001). Within 3 days of pneumonectomy, the frequency of SMA⁺ cells in subpleural alveolar ducts was significantly increased (P < 0.01). To determine the functional activity of these SMA⁺ cells, we isolated regenerating alveolar ducts by laser microdissection and analyzed individual cells using microfluidic single-cell quantitative PCR. Single cells expressing the SMA (Acta2) gene demonstrated significantly greater transcriptional activity than endothelial cells or other discrete cell populations in the alveolar duct (P < 0.05). The transcriptional activity of the Acta2⁺ cells, including expression of TGF signaling as well as repair-related genes, suggests that these myofibroblast-like cells contribute to compensatory lung growth. Keywords: compensatory growth; gene expression; lung; myofibroblastsen_US
dc.description.sponsorshipNational Institutes of Health (U.S.) (Grant HL94567)en_US
dc.description.sponsorshipNational Institutes of Health (U.S.) (Grant CA009535)en_US
dc.description.sponsorshipNational Institutes of Health (U.S.) (Grant ES000002)en_US
dc.language.isoen_US
dc.publisherAmerican Physiological Societyen_US
dc.relation.isversionofhttps://doi.org/10.1152/ajplung.00383.2016en_US
dc.rightsCreative Commons Attribution-Noncommercial-Share Alikeen_US
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/en_US
dc.sourceProf. Blainey via Howard Silveren_US
dc.titleDeformation-induced transitional myofibroblasts contribute to compensatory lung growthen_US
dc.typeArticleen_US
dc.identifier.citationBennett, Robert D. et al. “Deformation-Induced Transitional Myofibroblasts Contribute to Compensatory Lung Growth.” American Journal of Physiology-Lung Cellular and Molecular Physiology 312, 1 (January 2017): L79–L88 © 2017 American Physiological Societyen_US
dc.contributor.departmentMassachusetts Institute of Technology. Department of Biological Engineeringen_US
dc.contributor.approverBlainey, Paul Cen_US
dc.contributor.mitauthorBlainey, Paul C
dc.relation.journalAmerican Journal of Physiology-Lung Cellular and Molecular Physiologyen_US
dc.eprint.versionAuthor's final manuscripten_US
dc.type.urihttp://purl.org/eprint/type/JournalArticleen_US
eprint.statushttp://purl.org/eprint/status/PeerRevieweden_US
dspace.orderedauthorsBennett, Robert D.; Ysasi, Alexandra B.; Wagner, Willi L.; Valenzuela, Cristian D.; Tsuda, Akira; Pyne, Saumyadipta; Li, Shuqiang; Grimsby, Jonna; Pokharel, Prapti; Livak, Kenneth J.; Ackermann, Maximilian; Blainey, Paul; Mentzer, Steven J.en_US
dspace.embargo.termsNen_US
dc.identifier.orcidhttps://orcid.org/0000-0001-7014-3830
mit.licenseOPEN_ACCESS_POLICYen_US


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