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Genetic background influences developmental airway smooth muscle program and susceptibility to airway hyperresponsiveness in mice
Takehiro Otoshi, Benjamin D. Kotton, Ayyappa K.S. Kameshwar, Yoshinori Seki, Zachary Cardell, Xiangyi Ke, Yuta Matsuno, Pooja Rajaram, Youn-Kyung Kim, Sarah M. Sharpton, Loredana Quadro, Wellington V. Cardoso, Masako Suzuki
Takehiro Otoshi, Benjamin D. Kotton, Ayyappa K.S. Kameshwar, Yoshinori Seki, Zachary Cardell, Xiangyi Ke, Yuta Matsuno, Pooja Rajaram, Youn-Kyung Kim, Sarah M. Sharpton, Loredana Quadro, Wellington V. Cardoso, Masako Suzuki
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Research Article Development Pulmonology

Genetic background influences developmental airway smooth muscle program and susceptibility to airway hyperresponsiveness in mice

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Abstract

Airway structural remodeling and hyperresponsiveness (AHR), hallmarks of asthma, are influenced by genetic variations and adverse exposures. While intrauterine perturbations in lung development have been linked to adult pulmonary disease, the developmental origins of these abnormalities remain poorly understood. Here, we provide evidence of genetic background playing a key role in this process. Using A/J and C57BL/6J mice known for their distinct susceptibility to AHR, we show that A/J embryos selectively develop an aberrant airway smooth muscle (SM) program and AHR in adulthood when exposed transiently to a vitamin A/retinoic acid (RA)–disrupted intrauterine environment in vivo by maternal BMS493 administration. Single-nucleus multiomics identified a mesenchymal cell population overactivating TGF-β targets in response to BMS493 selectively in A/J lungs. These cells, localized to sites of airway SM initiation and p-SMAD2- and -3, exhibited robust BMS493-mediated upregulation of SMAD2/3 targets, including regulators of SM program Pdgfra and Tnc. Functional analyses in vivo and cultured lungs showed aberrant SM formation in areas of overactive TGF-β of BMS493-exposed lungs. These abnormalities were prevented by inhibiting TGF-β signaling in utero in RA-deficient embryos. These findings underscore how distinct genetic backgrounds respond to intrauterine perturbations that program airway structure and function, with potential lasting consequences in postnatal pulmonary function.

Authors

Takehiro Otoshi, Benjamin D. Kotton, Ayyappa K.S. Kameshwar, Yoshinori Seki, Zachary Cardell, Xiangyi Ke, Yuta Matsuno, Pooja Rajaram, Youn-Kyung Kim, Sarah M. Sharpton, Loredana Quadro, Wellington V. Cardoso, Masako Suzuki

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Figure 7

The aberrant airway SM program of prenatal RA signaling disruption in AJ lungs is prevented by TGF-β pathway inactivation in uterus.

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The aberrant airway SM program of prenatal RA signaling disruption in AJ...
(A) Analyses of E14.5 AJ lungs exposed to maternal BMS, BMS+Gal, or control conditions. IF of PDGFRA and TNC in Control AJ showing typical expression pattern of these markers in distal mesenchyme associated with bud stalks (white arrows), distinct from BMS-exposed lungs, in which signals are much stronger and widely distributed (yellow arrowheads). Concomitant disruption of RA signaling and TGF-β inactivation in uterus prevents the aberrant PDGFRA and TNC expression of BMS-exposed lungs, as shown by their distinct pattern in BMS+Gal lungs comparable with controls. Graphs: Relative area of marker expression per field in AJ distal lung. Mean ± SEM (1-way ANOVA followed by Tukey’s post hoc test, n = 3 measurements per group). *P < 0.05. (B) IF of aSMA and SM22 in E14.5 AJ lungs showing that exposure to BMS+Gal prevented the aberrant ectopic SM formation in distal airways of embryos exposed to BMS alone. Graphs: Quantitative analysis of marker expression. Mean ± SEM (1-way ANOVA followed by Tukey’s post hoc test, n = 3–4 measurements per group). *P < 0.05. Scale bars: 20 μm.

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