Intravenously delivered multilineage-differentiating stress-enduring cells dampen hyperoxia-induced lung injury in a rat model with features of bronchopulmonary dysplasia

BACKGROUND: Neonatal bronchopulmonary dysplasia (BPD) is a lung injury caused by various factors, including intrauterine inflammation, mechanical ventilation, and oxidative stress. BPD results in serious respiratory and neurological dysfunctions and mortality. Recently, some clinical trials have commenced using intravenous delivery of donor-derived multilineage-differentiating stress enduring (Muse) cells. In the present study, we aimed to investigate the therapeutic effects of human Muse cells in hyperoxia-induced neonatal lung injury in a rat model with features of bronchopulmonary dysplasia. METHODS: Rats were put into the incubator within 24 h from birth to expose to hyperoxia (83%) until postnatal day 15. Muse and non-Muse cells, obtained from the bone marrow-mesenchymal stromal cells (MSCs) as stage-specific embryonic antigen-3 (SSEA-3)+ and -, respectively, were administered slowly via the right external jugular vein or trachea (Muse cells only) on postnatal day 5. For the vehicle groups, only the acetic acid Ringer's solution was administered. RESULTS: Respiratory function, histological findings, and inflammatory parameters did not differ significantly between intravenous and intratracheal administration. In contrast, body weight gain and survival were worse following intratracheal administration. Intravenous administration of Muse cells resulted in superior amelioration of lung tissue injury, inflammation, and pulmonary hypertension compared with non-Muse cells. We also confirmed the engraftment of Muse cells in the lung tissues. Proteomic profiling identified hyperoxia-induced lung injury associated changes in the abundance of proteins annotated to cell adhesion and coagulation/fibrinolysis-related pathways, and Muse cell administration was associated with differential abundance of subsets of these proteins. CONCLUSIONS: Our findings suggest that intravenously transplanted Muse cells provide functional benefits in hyperoxia-induced lung injury in a rat model with features of bronchopulmonary dysplasia.

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Journal
Stem Cell Research & Therapy
Published
2026-09-04
DOI
https://doi.org/10.1186/s13287-026-05086-2
Primary Topic
Neonatal Respiratory Health Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Intravenously delivered multilineage-differentiating stress-enduring cells dampen hyperoxia-induced lung injury in a rat model with features of bronchopulmonary dysplasia

Shinobu Shimizu, Toshihiko Suzuki, Kazuto Ueda, Atsuto Onoda et al.
Stem Cell Research & Therapy
Neonatal Respiratory Health Research
article

Intravenously delivered multilineage-differentiating stress-enduring cells dampen hyperoxia-induced lung injury in a rat model with features of bronchopulmonary dysplasia

Shinobu Shimizu, Toshihiko Suzuki, Kazuto Ueda, Atsuto Onoda, Sakiko Suzuki, Azusa Okamoto, Ryosuke Miura, Yoshiaki Sato, Takahiro Kanzawa, Yoshiyuki Takahashi, Masahiro Hayakawa
article en

Abstract

BACKGROUND: Neonatal bronchopulmonary dysplasia (BPD) is a lung injury caused by various factors, including intrauterine inflammation, mechanical ventilation, and oxidative stress. BPD results in serious respiratory and neurological dysfunctions and mortality. Recently, some clinical trials have commenced using intravenous delivery of donor-derived multilineage-differentiating stress enduring (Muse) cells. In the present study, we aimed to investigate the therapeutic effects of human Muse cells in hyperoxia-induced neonatal lung injury in a rat model with features of bronchopulmonary dysplasia. METHODS: Rats were put into the incubator within 24 h from birth to expose to hyperoxia (83%) until postnatal day 15. Muse and non-Muse cells, obtained from the bone marrow-mesenchymal stromal cells (MSCs) as stage-specific embryonic antigen-3 (SSEA-3)+ and -, respectively, were administered slowly via the right external jugular vein or trachea (Muse cells only) on postnatal day 5. For the vehicle groups, only the acetic acid Ringer's solution was administered. RESULTS: Respiratory function, histological findings, and inflammatory parameters did not differ significantly between intravenous and intratracheal administration. In contrast, body weight gain and survival were worse following intratracheal administration. Intravenous administration of Muse cells resulted in superior amelioration of lung tissue injury, inflammation, and pulmonary hypertension compared with non-Muse cells. We also confirmed the engraftment of Muse cells in the lung tissues. Proteomic profiling identified hyperoxia-induced lung injury associated changes in the abundance of proteins annotated to cell adhesion and coagulation/fibrinolysis-related pathways, and Muse cell administration was associated with differential abundance of subsets of these proteins. CONCLUSIONS: Our findings suggest that intravenously transplanted Muse cells provide functional benefits in hyperoxia-induced lung injury in a rat model with features of bronchopulmonary dysplasia.

Stem Cell Research & TherapyVol. 17(1)
Nagoya University Hospital (JP), Nagoya University (JP), Sanyo-Onoda City University (JP)
Japan Agency for Medical Research and Development
Good health and well-being
Openalex Percentile: Top 11%
Neonatal Respiratory Health Research
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