| Literature DB >> 26954258 |
Lindsay M Godin1, Brian J Sandri2, Darcy E Wagner3, Carolyn M Meyer1, Andrew P Price1, Ifeolu Akinnola4, Daniel J Weiss3, Angela Panoskaltsis-Mortari1,2.
Abstract
The lung changes functionally and structurally with aging. However, age-related effects on the extracellular matrix (ECM) and corresponding effects on lung cell behavior are not well understood. We hypothesized that ECM from aged animals would induce aging-related phenotypic changes in healthy inoculated cells. Decellularized whole organ scaffolds provide a powerful model for examining how ECM cues affect cell phenotype. The effects of age on ECM composition in both native and decellularized mouse lungs were assessed as was the effect of young vs old acellular ECM on human bronchial epithelial cells (hBECs) and lung fibroblasts (hLFs). Native aged (1 year) lungs demonstrated decreased expression of laminins α3 and α4, elastin and fibronectin, and elevated collagen, compared to young (3 week) lungs. Proteomic analyses of decellularized ECM demonstrated similar findings, and decellularized aged lung ECM contained less diversity in structural proteins compared to young ECM. When seeded in old ECM, hBECs and hLFs demonstrated lower gene expression of laminins α3 and α4, respectively, as compared to young ECM, paralleling the laminin deficiency of aged ECM. ECM changes appear to be important factors in potentiating aging-related phenotypes and may provide clues to mechanisms that allow for aging-related lung diseases.Entities:
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Year: 2016 PMID: 26954258 PMCID: PMC4783067 DOI: 10.1371/journal.pone.0150966
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Fig 1Matrix stains of native (A) and decellularized (B) lungs of mice of different ages. Stains for Trichrome (collagen is blue), elastin (black) and GAGs (red) are shown. Representative images are shown for 1 out of 3 mice per age group. V = blood vessel; b = bronchiole. Magnification 200X, size bars = 200um (size bars on top row apply to all rows).
Differentially expressed ECM proteins in young versus old decellularized murine lungs identified by iTRAQ.
| Agrn | Agrin | 0.34 |
| Col1a1 | Collagen alpha-1(I) chain | 1.71 |
| Col1a2 | Collagen alpha-2(I) chain | 1.75 |
| Col2a1 | Collagen alpha-1(II) chain | 4.00 |
| Col3a1 | Collagen alpha-1(III) chain | 1.29 |
| Col4a1 | Collagen alpha-1(IV) chain | 4.61 |
| Col4a2 | Collagen alpha-2(IV) chain | 2.67 |
| Col4a3 | Collagen alpha-3(IV) chain | 3.94 |
| Col5a1 | Collagen alpha-1(V) chain | 2.06 |
| Col5a2 | Collagen alpha-2(V) chain | 2.17 |
| Col5a3 | Collagen type V alpha 3 chain | 2.60 |
| Col6a1 | Collagen alpha-1(VI) chain | 0.70 |
| Col6a2 | Collagen alpha-2(VI) chain | 1.07 |
| Col6a5 | Collagen alpha-5(VI) chain | 2.29 |
| Col6a6 | Collagen alpha-6(VI) chain | 1.86 |
| Col7a1 | Collagen alpha-1(VII) chain | 0.38 |
| Col12a1 | Collagen alpha-1(XII) chain | 0.42 |
| Col18a1 | Isoform 3 of Collagen alpha-1(XVIII) chain | 2.77 |
| Dcn | Decorin | 0.26 |
| Eln | Elastin | 0.48 |
| Emilin1 | EMILIN-1 | 0.41 |
| Fgb | Fibrinogen beta chain | 0.81 |
| Fn1 | Fibronectin | 0.58 |
| Fbln5 | Fibulin-5 | 0.81 |
| Hspg2 | Basement membrane heparan sulfate proteoglycan core | 0.57 |
| Lama3 | Laminin subunit alpha-3 | 0.50 |
| Lama5 | Laminin subunit alpha-5 | 0.70 |
| Lamb2 | Laminin subunit beta-2 | 0.98 |
| Lamc1 | Laminin subunit gamma-1 | 0.73 |
| Lamb3 | Laminin subunit beta-3 | 0.41 |
| Lamc2 | Laminin subunit gamma-2 | 0.31 |
| Lama2 | Laminin subunit alpha-2 | 0.50 |
| Lamb1 | Laminin subunit beta-1 | 0.28 |
| Lama4 | Laminin subunit alpha-4 | 0.88 |
| Mfap4 | Microfibril-associated glycoprotein 4 | 0.38 |
| Nid2 | Nidogen-2 | 0.58 |
| Npnt | Nephronectin | 1.14 |
| Postn | Periostin | 0.34 |