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Understanding Alveolarization to Induce Lung Regeneration

Overview
Journal Respir Res
Specialty Pulmonary Medicine
Date 2018 Aug 8
PMID 30081910
Citations 27
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Abstract

Background: Gas exchange represents the key physiological function of the lung, and is dependent upon proper formation of the delicate alveolar structure. Malformation or destruction of the alveolar gas-exchange regions are key histopathological hallmarks of diseases such as bronchopulmonary dysplasia (BPD), chronic obstructive pulmonary disease (COPD), and pulmonary fibrosis; all of which are characterized by perturbations to the alveolo-capillary barrier structure. Impaired gas-exchange is the primary initial consequence of these perturbations, resulting in severe clinical symptoms, reduced quality of life, and death. The pronounced morbidity and mortality associated with malformation or destruction of alveoli underscores a pressing need for new therapeutic concepts. The re-induction of alveolarization in diseased lungs is a new and exciting concept in a regenerative medicine approach to manage pulmonary diseases that are characterized by an absence of alveoli.

Main Text: Mechanisms of alveolarization first need to be understood, to identify pathways and mediators that may be exploited to drive the induction of alveolarization in the diseased lung. With this in mind, a variety of candidate cell-types, pathways, and molecular mediators have recently been identified. Using lineage tracing approaches and lung injury models, new progenitor cells for epithelial and mesenchymal cell types - as well as cell lineages which are able to acquire stem cell properties - have been discovered. However, the underlying mechanisms that orchestrate the complex process of lung alveolar septation remain largely unknown.

Conclusion: While important progress has been made, further characterization of the contributing cell-types, the cell type-specific molecular signatures, and the time-dependent chemical and mechanical processes in the developing, adult and diseased lung is needed in order to implement a regenerative therapeutic approach for pulmonary diseases.

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References
1.
BOSTROM H, Willetts K, Pekny M, Leveen P, Lindahl P, Hedstrand H . PDGF-A signaling is a critical event in lung alveolar myofibroblast development and alveogenesis. Cell. 1996; 85(6):863-73. DOI: 10.1016/s0092-8674(00)81270-2. View

2.
Rinkevich Y, Walmsley G, Hu M, Maan Z, Newman A, Drukker M . Skin fibrosis. Identification and isolation of a dermal lineage with intrinsic fibrogenic potential. Science. 2015; 348(6232):aaa2151. PMC: 5088503. DOI: 10.1126/science.aaa2151. View

3.
Hsia C, Herazo L, Weibel E . Compensatory lung growth occurs in adult dogs after right pneumonectomy. J Clin Invest. 1994; 94(1):405-12. PMC: 296323. DOI: 10.1172/JCI117337. View

4.
Ntokou A, Klein F, Dontireddy D, Becker S, Bellusci S, Richardson W . Characterization of the platelet-derived growth factor receptor-α-positive cell lineage during murine late lung development. Am J Physiol Lung Cell Mol Physiol. 2015; 309(9):L942-58. DOI: 10.1152/ajplung.00272.2014. View

5.
Rafii S, Cao Z, Lis R, Siempos I, Chavez D, Shido K . Platelet-derived SDF-1 primes the pulmonary capillary vascular niche to drive lung alveolar regeneration. Nat Cell Biol. 2015; 17(2):123-136. PMC: 4886751. DOI: 10.1038/ncb3096. View