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DeLaughter, Daniel

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DeLaughter

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Daniel

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DeLaughter, Daniel

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  • Publication

    Cardiovascular homeostasis dependence on MICU2, a regulatory subunit of the mitochondrial calcium uniporter

    (National Academy of Sciences, 2017) Bick, Alexander; Wakimoto, Hiroko; Kamer, Kimberli; Sancak, Yasemin; Goldberger, Olga; Axelsson, Anna; DeLaughter, Daniel; Gorham, Joshua; Mootha, Vamsi; Seidman, J. G.; Seidman, Christine

    Comparative analyses of transcriptional profiles from humans and mice with cardiovascular pathologies revealed consistently elevated expression of MICU2, a regulatory subunit of the mitochondrial calcium uniporter complex. To determine if MICU2 expression was cardioprotective, we produced and characterized Micu2−/− mice. Mutant mice had left atrial enlargement and Micu2−/− cardiomyocytes had delayed sarcomere relaxation and cytosolic calcium reuptake kinetics, indicating diastolic dysfunction. RNA sequencing (RNA-seq) of Micu2−/− ventricular tissues revealed markedly reduced transcripts encoding the apelin receptor (Micu2−/− vs. wild type, P = 7.8 × 10−40), which suppresses angiotensin II receptor signaling via allosteric transinhibition. We found that Micu2−/− and wild-type mice had comparable basal blood pressures and elevated responses to angiotensin II infusion, but that Micu2−/− mice exhibited systolic dysfunction and 30% lethality from abdominal aortic rupture. Aneurysms and rupture did not occur with norepinephrine-induced hypertension. Aortic tissue from Micu2−/− mice had increased expression of extracellular matrix remodeling genes, while single-cell RNA-seq analyses showed increased expression of genes related to reactive oxygen species, inflammation, and proliferation in fibroblast and smooth muscle cells. We concluded that Micu2−/− mice recapitulate features of diastolic heart disease and define previously unappreciated roles for Micu2 in regulating angiotensin II-mediated hypertensive responses that are critical in protecting the abdominal aorta from injury.

  • Publication

    IL-11 Is a Crucial Determinant of Cardiovascular Fibrosis

    (Springer Science and Business Media LLC, 2017-12-07) Schafer, Sebastian; Viswanathan, Sivakumar; Widjaja, Anissa A.; Lim, Wei-Wen; Moreno-Moral, Aida; DeLaughter, Daniel; Ng, Benjamin; Patone, Giannino; Chow, Kingsley; Khin, Ester; Tan, Jessie; Chothani, Sonia P.; Ye, Lei; Rackham, Owen J. L.; Ko, Nicole S. J.; Sahib, Norliza E.; Pua, Chee Jian; Zhen, Nicole T. G.; Xie, Chen; Wang, Mao; Maatz, Henrike; Lim, Shiqi; Saar, Kathrin; Blachut, Susanne; Petretto, Enrico; Schmidt, Sabine; Putoczki, Tracy; Guimarães-Camboa, Nuno; Wakimoto, Hiroko; van Heesch, Sebastiaan; Sigmundsson, Kristmundur; Lim, See L.; Soon, Jia L.; Chao, Victor T. T.; Chua, Yeow L.; Tan, Teing E.; Evans, Sylvia M.; Loh, Yee J.; Jamal, Muhammad H.; Ong, Kim K.; Chua, Kim C.; Ong, Boon-Hean; Chakaramakkil, Mathew J.; Seidman, Jonathan; Seidman, Christine; Hubner, Norbert; Sin, Kenny Y. K.; Cook, Stuart A.

    Fibrosis is a common pathology in cardiovascular disease1. In the heart, fibrosis causes mechanical and electrical dysfunction1,2 and in the kidney, it predicts the onset of renal failure3. Transforming growth factor β1 (TGFβ1) is the principal pro-fibrotic factor4,5, but its inhibition is associated with side effects due to its pleiotropic roles6,7. We hypothesized that downstream effectors of TGFβ1 in fibroblasts could be attractive therapeutic targets and lack upstream toxicity. Here we show, using integrated imaging–genomics analyses of primary human fibroblasts, that upregulation of interleukin-11 (IL-11) is the dominant transcriptional response to TGFβ1 exposure and required for its pro-fibrotic effect. IL-11 and its receptor (IL11RA) are expressed specifically in fibroblasts, in which they drive non-canonical, ERK-dependent autocrine signalling that is required for fibrogenic protein synthesis. In mice, fibroblast-specific Il11 transgene expression or Il-11 injection causes heart and kidney fibrosis and organ failure, whereas genetic deletion of Il11ra1 protects against disease. Therefore, inhibition of IL-11 prevents fibroblast activation across organs and species in response to a range of important pro-fibrotic stimuli. These results reveal a central role of IL-11 in fibrosis and we propose that inhibition of IL-11 is a potential therapeutic strategy to treat fibrotic diseases.