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IL-13 promotes functional recovery after myocardial infarction via direct signaling to macrophages
Santiago Alvarez-Argote, Samantha J. Paddock, Michael A. Flinn, Caelan W. Moreno, Makenna C. Knas, Victor A. Almeida, Sydney L. Buday, Amirala Bakhshian Nik, Michaela Patterson, Yi-Guang Chen, Chien-Wei Lin, Caitlin C. O’Meara
Santiago Alvarez-Argote, Samantha J. Paddock, Michael A. Flinn, Caelan W. Moreno, Makenna C. Knas, Victor A. Almeida, Sydney L. Buday, Amirala Bakhshian Nik, Michaela Patterson, Yi-Guang Chen, Chien-Wei Lin, Caitlin C. O’Meara
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Research Article Cardiology

IL-13 promotes functional recovery after myocardial infarction via direct signaling to macrophages

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Abstract

There is great interest in identifying signaling pathways that promote cardiac repair after myocardial infarction (MI). Prior studies suggest a beneficial role for IL-13 signaling in neonatal heart regeneration; however, the cell types mediating cardiac regeneration and the extent of IL-13 signaling in the adult heart after injury are unknown. We identified an abundant source of IL-13 and the related cytokine, IL-4, in neonatal cardiac type 2 innate lymphoid cells, but this phenomenon declined precipitously in adult hearts. Moreover, IL-13 receptor deletion in macrophages impaired cardiac function and resulted in larger scars early after neonatal MI. By using a combination of recombinant IL-13 administration and cell-specific IL-13 receptor genetic deletion models, we found that IL-13 signaling specifically to macrophages mediated cardiac functional recovery after MI in adult mice. Single transcriptomics revealed a subpopulation of cardiac macrophages in response to IL-13 administration. These IL-13–induced macrophages were highly efferocytotic and were identified by high IL-1R2 expression. Collectively, we elucidated a strongly proreparative role for IL-13 signaling directly to macrophages following cardiac injury. While this pathway is active in proregenerative neonatal stages, reactivation of macrophage IL-13 signaling is required to promote cardiac functional recovery in adults.

Authors

Santiago Alvarez-Argote, Samantha J. Paddock, Michael A. Flinn, Caelan W. Moreno, Makenna C. Knas, Victor A. Almeida, Sydney L. Buday, Amirala Bakhshian Nik, Michaela Patterson, Yi-Guang Chen, Chien-Wei Lin, Caitlin C. O’Meara

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Figure 3

rIL-13 administration improves functional recovery after MI in adult mice.

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rIL-13 administration improves functional recovery after MI in adult mic...
(A) Experiment protocol. (B) Fractional shortening shown as percentage of LV end-diastolic diameter (LVEDD). (C) Representative images of Gömöri trichrome staining of mouse heart sections at 28 dpi. Scale bar: 2 mm. (D) Quantification of total scar area summed from 3 serial cardiac sections. (E) Representative images of CD31, WGA, and DAPI of 28 dpi hearts. White box insets indicate zoomed-in regions. (F and G) Quantifications of capillary density and capillary size at the BZ and RZ in 28 dpi heart sections. (H) Representative images of EdU, PCM1, and DAPI in cardiac sections from 28 dpi mice. (I) Quantifications of EdU+PCM1+ cells as a percentage of total PCM1+ cells in BZ and RZ. (J) Survival curves up to 28 dpi after MI. Data are shown as mean ± SD. Each data point represents 1 mouse. *P < 0.05. Interaction of treatment (PBS versus rIL-13) and time effect by 2-way repeated-measures ANOVA and Sidak’s post hoc test at 28 dpi in B. Comparison by unpaired 2-tailed t test in D, F, G, and I. Data were analyzed by Mantel-Cox in J.

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