» Articles » PMID: 23927678

Human Tracheobronchial Basal Cells. Normal Versus Remodeling/repairing Phenotypes in Vivo and in Vitro

Overview
Date 2013 Aug 10
PMID 23927678
Citations 34
Authors
Affiliations
Soon will be listed here.
Abstract

Human tracheobronchial epithelial (TBE) basal cells (BCs) function as progenitors in normal tissue. However, mechanistic studies are typically performed in vitro and frequently use BCs recovered from patients who die of nonrespiratory disease. It is not known whether the cadaveric epithelium (1) is undergoing homeostatic remodeling and/or repair, or (2) yields BC clones that represent homeostatic processes identified in tissue. We sought to compare the phenotype of TBE-BCs with that of BCs cultured under optimal clone-forming conditions. TBE pathology was evaluated using quantitative histomorphometry. The cultured BC phenotype was determined by fluorescence-activated cell sorter analysis. Clone organization and cell phenotype were determined by immunostaining. The cadaveric TBE is 20% normal. In these regions, BCs are keratin (K)-5(+) and tetraspanin CD151(+), and demonstrate a low mitotic index. In contrast, 80% of the cadaveric TBE exhibits homeostatic remodeling/repair processes. In these regions, BCs are K5(+)/K14(+), and a subset expresses tissue factor (TF). Passage 1 TBE cells are BCs that are K5(+)/TF(+), and half coexpress CD151. Optimal clone formation conditions use an irradiated NIH3T3 fibroblast feeder layer (American Type Culture Collection, Frederick, MD) and serum-supplemented Epicult-B medium (Stemcell Technologies, La Jolla, CA). The TF(+)/CD151(-) BC subpopulation is the most clonogenic BC subtype, and is enriched with K14(+) cells. TF(+)/CD151(-) BCs generate clones containing BCs that are K5(+)/Trp63(+), but K14(-)/CD151(-). TF(+) cells are limited to the clone edge. In conclusion, clonogenic human TBE BCs (1) exhibit a molecular phenotype that is a composite of the normal and remodeling/reparative BC phenotypes observed in tissue, and (2) generate organoid clones that contain phenotypically distinct BC subpopulations.

Citing Articles

Bioengineering Human Upper Respiratory Mucosa: A Systematic Review of the State of the Art of Cell Culture Techniques.

Sonfack D, Tanguay Boivin C, Touzel Deschenes L, Maurand T, Maguemoun C, Berthod F Bioengineering (Basel). 2024; 11(8).

PMID: 39199784 PMC: 11352167. DOI: 10.3390/bioengineering11080826.


Epithelial cells/progenitor cells in developing human lower respiratory tract: Characterization and transplantation to rat model of pulmonary injury.

Ganji F, Ebrahimi M, Shirani A, Golmohammadi M, Gholipourmalekabadi M, Kashanian M Bioimpacts. 2023; 13(6):505-520.

PMID: 38022383 PMC: 10676525. DOI: 10.34172/bi.2023.26456.


Phase Ib trial of inhaled iloprost for the prevention of lung cancer with predictive and response biomarker assessment.

Miller Y, Ghosh M, Merrick D, Kubala B, Szabo E, Bengtson L Front Oncol. 2023; 13:1204726.

PMID: 37711198 PMC: 10499515. DOI: 10.3389/fonc.2023.1204726.


Spatiotemporally organized immunomodulatory response to SARS-CoV-2 virus in primary human broncho-alveolar epithelia.

Castaneda D, Jangra S, Yurieva M, Martinek J, Callender M, Coxe M iScience. 2023; 26(8):107374.

PMID: 37520727 PMC: 10374611. DOI: 10.1016/j.isci.2023.107374.


Type 2 inflammation drives an airway basal stem cell program through insulin receptor substrate signaling.

Wang X, Hallen N, Lee M, Samuchiwal S, Ye Q, Buchheit K J Allergy Clin Immunol. 2023; 151(6):1536-1549.

PMID: 36804595 PMC: 10784786. DOI: 10.1016/j.jaci.2023.01.030.


References
1.
Rock J, Onaitis M, Rawlins E, Lu Y, Clark C, Xue Y . Basal cells as stem cells of the mouse trachea and human airway epithelium. Proc Natl Acad Sci U S A. 2009; 106(31):12771-5. PMC: 2714281. DOI: 10.1073/pnas.0906850106. View

2.
Stingl J, Eaves C, Zandieh I, Emerman J . Characterization of bipotent mammary epithelial progenitor cells in normal adult human breast tissue. Breast Cancer Res Treat. 2001; 67(2):93-109. DOI: 10.1023/a:1010615124301. View

3.
Dupuit F, Gaillard D, Hinnrasky J, Mongodin E, De Bentzmann S, Copreni E . Differentiated and functional human airway epithelium regeneration in tracheal xenografts. Am J Physiol Lung Cell Mol Physiol. 2000; 278(1):L165-76. DOI: 10.1152/ajplung.2000.278.1.L165. View

4.
Rock J, Gao X, Xue Y, Randell S, Kong Y, Hogan B . Notch-dependent differentiation of adult airway basal stem cells. Cell Stem Cell. 2011; 8(6):639-48. PMC: 3778678. DOI: 10.1016/j.stem.2011.04.003. View

5.
Seibold M, Smith R, Urbanek C, Groshong S, Cosgrove G, Brown K . The idiopathic pulmonary fibrosis honeycomb cyst contains a mucocilary pseudostratified epithelium. PLoS One. 2013; 8(3):e58658. PMC: 3603941. DOI: 10.1371/journal.pone.0058658. View