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Published on: May 4, 2020
Therapeutic potential of mesenchymal stem cells for pulmonary complications associated with preterm birth
Mandy Laube1, Alexandra Stolzing2, Ulrich H Thome1
1Center for Pediatric Research Leipzig, Hospital for Children & Adolescents, Division of Neonatology, University of Leipzig, Leipzig, Germany.
Insights
Mesenchymal stem cells (MSCs) show promise for treating bronchopulmonary dysplasia (BPD) in preterm infants. Further research is needed to adapt MSC therapies for the "new" BPD, focusing on lung maturation and immunomodulation.
Area of Science:
- Neonatology
- Pulmonology
- Regenerative Medicine
Background:
- Preterm infants face significant lung complications due to immaturity, leading to respiratory distress.
- Mechanical ventilation and oxygen, while life-saving, can exacerbate inflammation, potentially causing bronchopulmonary dysplasia (BPD).
- Current BPD treatments are limited and have side effects, necessitating novel therapeutic strategies.
Purpose of the Study:
- To review and critically compare Mesenchymal Stem Cell (MSC)-based therapies for bronchopulmonary dysplasia (BPD) in animal models.
- To identify translational bottlenecks hindering the clinical application of MSC therapies for BPD.
- To discuss the mechanisms of MSC action and strategies for enhancing their efficacy in BPD treatment.
Main Methods:
- Review of existing literature on MSC-based therapeutic approaches in BPD animal models.
- Critical comparison of results from different BPD models.
- Analysis of MSC mechanisms, including paracrine effects, immunomodulation, and regeneration.
Main Results:
- MSCs demonstrate therapeutic potential in preclinical BPD models, primarily through paracrine effects enhancing regeneration and immunomodulation.
- A discrepancy exists between "old" BPD models (inflammation/injury) and "new" BPD (arrested lung maturation), requiring adapted models for future research.
- Genetic modification or preconditioning of MSCs may enhance their therapeutic efficacy for BPD.
Conclusions:
- MSC-based therapies offer a promising avenue for treating BPD, particularly by stimulating lung maturation and modulating inflammation.
- Future research must focus on validating MSC therapies in animal models that accurately reflect the "new" BPD phenotype.
- Optimizing MSCs through genetic or conditioning strategies could significantly improve their clinical utility in combating BPD.
Abstract:
Preterm infants frequently suffer from pulmonary complications resulting in significant morbidity and mortality. Physiological and structural lung immaturity impairs perinatal lung transition to air breathing resulting in respiratory distress. Mechanical ventilation and oxygen supplementation ensure sufficient oxygen supply but enhance inflammatory processes which might lead to the establishment of a chronic lung disease called bronchopulmonary dysplasia (BPD). Current therapeutic options to prevent or treat BPD are limited and have salient side effects, highlighting the need for new therapeutic approaches. Mesenchymal stem cells (MSCs) have demonstrated therapeutic potential in animal models of BPD. This review focuses on MSC-based therapeutic approaches to treat pulmonary complications and critically compares results obtained in BPD models. Thereby bottlenecks in the translational systems are identified that are preventing progress in combating BPD. Notably, current animal models closely resemble the so-called "old" BPD with profound inflammation and injury, whereas clinical improvements shifted disease pathology towards a "new" BPD in which arrest of lung maturation predominates. Future studies need to evaluate the utility of MSC-based therapies in animal models resembling the "new" BPD though promising in vitro evidence suggests that MSCs do possess the potential to stimulate lung maturation. Furthermore, we address the mode-of-action of MSC-based therapies with regard to lung development and inflammation/fibrosis. Their therapeutic efficacy is mainly attributed to an enhancement of regeneration and immunomodulation due to paracrine effects. In addition, we discuss current improvement strategies by genetic modifications or precondition of MSCs to enhance their therapeutic efficacy which could also prove beneficial for BPD therapies.
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