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Published in: Respiratory Research 1/2017

Open Access 01-12-2017 | Research

Derivation of therapeutic lung spheroid cells from minimally invasive transbronchial pulmonary biopsies

Authors: Phuong-Uyen C. Dinh, Jhon Cores, M. Taylor Hensley, Adam C. Vandergriff, Junnan Tang, Tyler A. Allen, Thomas G. Caranasos, Kenneth B. Adler, Leonard J. Lobo, Ke Cheng

Published in: Respiratory Research | Issue 1/2017

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Abstract

Background

Resident stem and progenitor cells have been identified in the lung over the last decade, but isolation and culture of these cells remains a challenge. Thus, although these lung stem and progenitor cells provide an ideal source for stem-cell based therapy, mesenchymal stem cells (MSCs) remain the most popular cell therapy product for the treatment of lung diseases. Surgical lung biopsies can be the tissue source but such procedures carry a high risk of mortality.

Methods

In this study we demonstrate that therapeutic lung cells, termed “lung spheroid cells” (LSCs) can be generated from minimally invasive transbronchial lung biopsies using a three-dimensional culture technique. The cells were then characterized by flow cytometry and immunohistochemistry. Angiogenic potential was tested by in-vitro HUVEC tube formation assay. In-vivo bio- distribution of LSCs was examined in athymic nude mice after intravenous delivery.

Results

From one lung biopsy, we are able to derive >50 million LSC cells at Passage 2. These cells were characterized by flow cytometry and immunohistochemistry and were shown to represent a mixture of lung stem cells and supporting cells. When introduced systemically into nude mice, LSCs were retained primarily in the lungs for up to 21 days.

Conclusion

Here, for the first time, we demonstrated that direct culture and expansion of human lung progenitor cells from pulmonary tissues, acquired through a minimally invasive biopsy, is possible and straightforward with a three-dimensional culture technique. These cells could be utilized in long-term expansion of lung progenitor cells and as part of the development of cell-based therapies for the treatment of lung diseases such as chronic obstructive pulmonary disease (COPD) and idiopathic pulmonary fibrosis (IPF).
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Literature
1.
go back to reference Loebinger MR, Aguilar S, Janes SM. Therapeutic potential of stem cells in lung disease: progress and pitfalls. Clin Sci (Lond). 2008;114:99–108.CrossRef Loebinger MR, Aguilar S, Janes SM. Therapeutic potential of stem cells in lung disease: progress and pitfalls. Clin Sci (Lond). 2008;114:99–108.CrossRef
2.
go back to reference Majka S, Beutz M, Hagen M, et al. Identification of novel resident pulmonarystem cells form and function of the lung side population. Stem Cells. 2005;23:1073–081. Majka S, Beutz M, Hagen M, et al. Identification of novel resident pulmonarystem cells form and function of the lung side population. Stem Cells. 2005;23:1073–081.
3.
go back to reference Treutlein B, Brownfield DG, Wu AR, Neff NF, Mantalas GL, Espinoza FH, Desai TJ, Krasnow MA, Quake SR. Reconstructing lineage hierarchies of the distal lung epithelium using single-cell RNA-seq. Nature. 2014;509(7500):371–75. Treutlein B, Brownfield DG, Wu AR, Neff NF, Mantalas GL, Espinoza FH, Desai TJ, Krasnow MA, Quake SR. Reconstructing lineage hierarchies of the distal lung epithelium using single-cell RNA-seq. Nature. 2014;509(7500):371–75. 
4.
go back to reference Rock JR, Onaitis MW, Rawlins EL, Lu Y, Clark CP, Xue Y, Randell SH, Hogan BL. Basal cells as stem cells of the mouse trachea and human airway epithelium. Proc Natl Acad Sci U S A. 2009;106:12771–2775. Rock JR, Onaitis MW, Rawlins EL, Lu Y, Clark CP, Xue Y, Randell SH, Hogan BL. Basal cells as stem cells of the mouse trachea and human airway epithelium. Proc Natl Acad Sci U S A. 2009;106:12771–2775.
5.
go back to reference Hong KU, Reynolds SD, Watkins S, Fuchs E, Stripp BR. In vivo differentiation potential of tracheal basal cells: evidence for multipotent and unipotent subpopulations. Am J Physiol Lung Cell Mol Physiol. 2004;286:L643–649. Hong KU, Reynolds SD, Watkins S, Fuchs E, Stripp BR. In vivo differentiation potential of tracheal basal cells: evidence for multipotent and unipotent subpopulations. Am J Physiol Lung Cell Mol Physiol. 2004;286:L643–649.
6.
go back to reference Hong KU, Reynolds SD, Watkins S, Fuchs E, Stripp BR. Basal cells are a multipotent progenitor capable of renewing the bronchial epithelium. Am J Pathol. 2004;164:577–88. Hong KU, Reynolds SD, Watkins S, Fuchs E, Stripp BR. Basal cells are a multipotent progenitor capable of renewing the bronchial epithelium. Am J Pathol. 2004;164:577–88.
7.
go back to reference Rawlins EL, Okubo T, Xue Y, Brass DM, Auten RL, Hasegawa H, Wang F, Hogan BL. The role of Scgb1a1+ Clara cells in the long-term maintenance and repair of lung airway, but not alveolar, epithelium. Cell Stem Cell. 2009;4:525–34. Rawlins EL, Okubo T, Xue Y, Brass DM, Auten RL, Hasegawa H, Wang F, Hogan BL. The role of Scgb1a1+ Clara cells in the long-term maintenance and repair of lung airway, but not alveolar, epithelium. Cell Stem Cell. 2009;4:525–34.
8.
go back to reference Tata PR, Mou H, Pardo-Saganta A, Zhao R, Prabhu M, Law BM, Vinarsky V, Cho JL, Breton S, Sahay A, Medoff BD, Rajagopal J. Dedifferentiation of committed epithelial cells into stem cells in vivo. Nature. 2013;503:218–23. Tata PR, Mou H, Pardo-Saganta A, Zhao R, Prabhu M, Law BM, Vinarsky V, Cho JL, Breton S, Sahay A, Medoff BD, Rajagopal J. Dedifferentiation of committed epithelial cells into stem cells in vivo. Nature. 2013;503:218–23.
9.
go back to reference Barkauskas CE, Cronce MJ, Rackley CR, Bowie EJ, Keene DR, Stripp BR, Randell SH, Noble PW, Hogan BL. Type 2 alveolar cells are stem cells in adult lung. J Clin Invest. 2013;123:3025–036. Barkauskas CE, Cronce MJ, Rackley CR, Bowie EJ, Keene DR, Stripp BR, Randell SH, Noble PW, Hogan BL. Type 2 alveolar cells are stem cells in adult lung. J Clin Invest. 2013;123:3025–036.
10.
go back to reference Zheng D, Limmon GV, Yin L, Leung NH, Yu H, Chow VT, Chen J. Regeneration of alveolar type I and II cells from Scgb1a1-expressing cells following severe pulmonary damage induced by bleomycin and influenza. PLoS One. 2012;7:e48451. Zheng D, Limmon GV, Yin L, Leung NH, Yu H, Chow VT, Chen J. Regeneration of alveolar type I and II cells from Scgb1a1-expressing cells following severe pulmonary damage induced by bleomycin and influenza. PLoS One. 2012;7:e48451.
11.
go back to reference Desai TJ, Brownfield DG, Krasnow MA. Alveolar progenitor and stem cells in lung development, renewal and cancer. Nature. 2014;507:190–94. Desai TJ, Brownfield DG, Krasnow MA. Alveolar progenitor and stem cells in lung development, renewal and cancer. Nature. 2014;507:190–94.
12.
go back to reference Eisenhauer P, Earle B, Loi R, Sueblinvong V, Goodwin M, Allen GB, Lundblad L, Mazan MR, Hoffman AM, Weiss DJ. Endogenous distal airway progenitor cells, lung mechanics, and disproportionate lobar growth following long-term postpneumonectomy in mice. Stem Cells. 2013;31:1330–339. Eisenhauer P, Earle B, Loi R, Sueblinvong V, Goodwin M, Allen GB, Lundblad L, Mazan MR, Hoffman AM, Weiss DJ. Endogenous distal airway progenitor cells, lung mechanics, and disproportionate lobar growth following long-term postpneumonectomy in mice. Stem Cells. 2013;31:1330–339.
13.
go back to reference Chen H, Matsumoto K, Brockway BL, Rackley CR, Liang J, Lee JH, Jiang D, Noble PW, Randell SH, Kim CF, Stripp BR. Airway epithelial progenitors are region specific and show differential responses to bleomycin-induced lung injury. Stem Cells. 2012;30:1948–960. Chen H, Matsumoto K, Brockway BL, Rackley CR, Liang J, Lee JH, Jiang D, Noble PW, Randell SH, Kim CF, Stripp BR. Airway epithelial progenitors are region specific and show differential responses to bleomycin-induced lung injury. Stem Cells. 2012;30:1948–960.
14.
go back to reference Borok Z, Crandall ED. More life for a “terminal” cell. Am J Physiol Lung Cell Mol Physiol. 2009;297:L1042–L1044. Borok Z, Crandall ED. More life for a “terminal” cell. Am J Physiol Lung Cell Mol Physiol. 2009;297:L1042–L1044.
15.
go back to reference Rojas M, Xu J, Woods C, et al. Bone marrow-derived mesenchymal stem cells in repair of the injured lung. Am J Respir Cell Mol Biol. 2005;33:145–52. Rojas M, Xu J, Woods C, et al. Bone marrow-derived mesenchymal stem cells in repair of the injured lung. Am J Respir Cell Mol Biol. 2005;33:145–52.
16.
go back to reference Burt R, Pearce W, Luo K, et al. Hematopoietic stem cell transplantation for cardiac and peripheral vascular disease. Bone Marrow Transplant. 2003;32:S33–35. Burt R, Pearce W, Luo K, et al. Hematopoietic stem cell transplantation for cardiac and peripheral vascular disease. Bone Marrow Transplant. 2003;32:S33–35.
17.
go back to reference Krausse D, Theise N, Collector M, et al. Multi-organ, multi-lineage engraftment by a single bone marrow derived stem cell. Cell. 2001;105:369–77. Krausse D, Theise N, Collector M, et al. Multi-organ, multi-lineage engraftment by a single bone marrow derived stem cell. Cell. 2001;105:369–77.
18.
go back to reference Allers C, Sierratta W, Neubauer S, et al. Dynamic of distribution of human bone marrow derivedmesenchymal stem cells after transplantation into adult unconditioned mice. Transplantation. 2004;78:503–08. Allers C, Sierratta W, Neubauer S, et al. Dynamic of distribution of human bone marrow derivedmesenchymal stem cells after transplantation into adult unconditioned mice. Transplantation. 2004;78:503–08.
19.
go back to reference Anjos-Afonso F, Siapati E, Bonnet D. In vivo contribution of murine mesenchymal stem cells into multiple cell-types under minimal damage conditions. J Cell Sci. 2004;117:5655–664. Anjos-Afonso F, Siapati E, Bonnet D. In vivo contribution of murine mesenchymal stem cells into multiple cell-types under minimal damage conditions. J Cell Sci. 2004;117:5655–664.
20.
go back to reference Luo L, Tang J, Nishi K, Yan C, Dinh P, Cores J, Cheng K. Fabrication of Synthetic Mesenchymal Stem Cells for the Treatment of Acute Myocardial Infarction in Mice. Circ Res. 2017;120(11):1768–775. Luo L, Tang J, Nishi K, Yan C, Dinh P, Cores J, Cheng K. Fabrication of Synthetic Mesenchymal Stem Cells for the Treatment of Acute Myocardial Infarction in Mice. Circ Res. 2017;120(11):1768–775.
21.
go back to reference Wagers AJ, Sherwood RI, Christensen JL, et al. Little evidence for developmental plasticity of adult hematopoietic stem cells. Science. 2002;297:2256–259. Wagers AJ, Sherwood RI, Christensen JL, et al. Little evidence for developmental plasticity of adult hematopoietic stem cells. Science. 2002;297:2256–259.
22.
go back to reference Krause DS. Engraftment of bone marrow-derived epithelial cells. Ann NY Acad Sci. 2005;1044:117–24. Krause DS. Engraftment of bone marrow-derived epithelial cells. Ann NY Acad Sci. 2005;1044:117–24.
23.
go back to reference Bruscia EM, Ziegler EC, Price JE, et al. Engraftment of donor-derived epithelial cells in multiple organs following bone marrow transplantation into newborn mice. Stem Cells. 2006;24:2299–308. Bruscia EM, Ziegler EC, Price JE, et al. Engraftment of donor-derived epithelial cells in multiple organs following bone marrow transplantation into newborn mice. Stem Cells. 2006;24:2299–308.
24.
go back to reference Hensley MT, Tang J, Woodruff K, Defrancesco T, Tou S, Williams CM, Cheng K. Intracoronary allogeneic cardiosphere-derived stem cells are safe for use in dogs with dilated cardiomyopathy. Journal of Cellular and Molecular Medicine. 2017 Mar 15. [Epub ahead of print]. Hensley MT, Tang J, Woodruff K, Defrancesco T, Tou S, Williams CM, Cheng K. Intracoronary allogeneic cardiosphere-derived stem cells are safe for use in dogs with dilated cardiomyopathy. Journal of Cellular and Molecular Medicine. 2017 Mar 15. [Epub ahead of print].
25.
go back to reference Tang J, Shen D, Caranasos TG, Wang Z, Vandergriff AC, Allen TA, Cheng K. Therapeutic microparticles functionalized with biomimetic cardiac stem cell membranes and secretome. Nat Commun. 2017;8:13724. Tang J, Shen D, Caranasos TG, Wang Z, Vandergriff AC, Allen TA, Cheng K. Therapeutic microparticles functionalized with biomimetic cardiac stem cell membranes and secretome. Nat Commun. 2017;8:13724.
26.
go back to reference Henry E, Cores J, Hensley MT, Anthony S, Vandergriff A, Andrade JB, Cheng K. Adult Lung Spheroid Cells Contain Progenitor Cells and Mediate Regeneration in Rodents With Bleomycin-Induced Pulmonary Fibrosis. Stem Cells Transl Med. 2015;4(11):1265–274. Henry E, Cores J, Hensley MT, Anthony S, Vandergriff A, Andrade JB, Cheng K. Adult Lung Spheroid Cells Contain Progenitor Cells and Mediate Regeneration in Rodents With Bleomycin-Induced Pulmonary Fibrosis. Stem Cells Transl Med. 2015;4(11):1265–274.
27.
go back to reference Chimenti I, Pagano F, Angelini F, Siciliano C, Mangino G, Picchio V, Frati G. Human Lung Spheroids as In-Vitro Niches of Lung Progenitor Cells With Distinctive Paracrine and Plasticity Properties. Stem Cells Translational Medicine. 2017;6(3):767-77. Chimenti I, Pagano F, Angelini F, Siciliano C, Mangino G, Picchio V, Frati G. Human Lung Spheroids as In-Vitro Niches of Lung Progenitor Cells With Distinctive Paracrine and Plasticity Properties. Stem Cells Translational Medicine. 2017;6(3):767-77.
28.
go back to reference Park J, Kim D, Kim D, Koh Y, Lee S, Kim W, Park S. Mortality and risk factors for surgical lung biopsy in patients with idiopathic interstitial pneumonia. Eur J Cardiothorac Surg. 2007;31(6):1115–119. Park J, Kim D, Kim D, Koh Y, Lee S, Kim W, Park S. Mortality and risk factors for surgical lung biopsy in patients with idiopathic interstitial pneumonia. Eur J Cardiothorac Surg. 2007;31(6):1115–119.
29.
go back to reference Herf SM, Suratt PM, Arora NS. Deaths and complications associated with transbronchial lung biopsy. Am Rev Respir Dis. 1977;115(4):708–11. Herf SM, Suratt PM, Arora NS. Deaths and complications associated with transbronchial lung biopsy. Am Rev Respir Dis. 1977;115(4):708–11.
30.
go back to reference Li T, Cheng K, Lee S, Matsushita S, Davis D, Malliaras K, Marbán E. Cardiospheres recapitulate a nichelike microenvironment rich in stemness and cell-matrix interactions, rationalizing their enhanced functional potency for myocardial repair. Stem Cells. 2010;28(11):2088–098. Li T, Cheng K, Lee S, Matsushita S, Davis D, Malliaras K, Marbán E. Cardiospheres recapitulate a nichelike microenvironment rich in stemness and cell-matrix interactions, rationalizing their enhanced functional potency for myocardial repair. Stem Cells. 2010;28(11):2088–098.
32.
go back to reference Shaw R, Djukanovic R, Tashkin D, Millar A, Bois RD, Corris P. The role of small airways in lung disease. Respir Med. 2002;96(2):67–80. Shaw R, Djukanovic R, Tashkin D, Millar A, Bois RD, Corris P. The role of small airways in lung disease. Respir Med. 2002;96(2):67–80.
33.
go back to reference Nishiyama O, Tohda Y. Obstructive lung function in idiopathic pulmonary fibrosis. Chronic Respir Dis. 2016;13(2):206. Nishiyama O, Tohda Y. Obstructive lung function in idiopathic pulmonary fibrosis. Chronic Respir Dis. 2016;13(2):206.
35.
go back to reference Kim CF, Jackson EL, Woolfenden AE, Lawrence S, Babar I, Vogel S, Crowley D, Bronson RT, Jacks T. Identification of bronchioalveolar stem cells in normal lung and lung cancer. Cell. 2005;121:823–35. Kim CF, Jackson EL, Woolfenden AE, Lawrence S, Babar I, Vogel S, Crowley D, Bronson RT, Jacks T. Identification of bronchioalveolar stem cells in normal lung and lung cancer. Cell. 2005;121:823–35.
36.
go back to reference Makkar RR, Smith RR, Cheng K, et al. Intra- coronary cardiosphere-derived cells for heart regeneration after myocardial infarction (CA- DUCEUS): a prospective, randomised phase 1 trial. Lancet. 2012;379:895–904. Makkar RR, Smith RR, Cheng K, et al. Intra- coronary cardiosphere-derived cells for heart regeneration after myocardial infarction (CA- DUCEUS): a prospective, randomised phase 1 trial. Lancet. 2012;379:895–904.
37.
go back to reference Dingle YL, Boutin ME, Chirila AM, Livi LL, Labriola NR, Jakubek LM, Morgan JR, Darling EM, Kauer JA, Hoffman-Kim D. Three-dimensional neural spheroid culture: an in-vitro model for cortical studies. Tissue Eng Part C Methods. 2015;21(12):1274–283. Dingle YL, Boutin ME, Chirila AM, Livi LL, Labriola NR, Jakubek LM, Morgan JR, Darling EM, Kauer JA, Hoffman-Kim D. Three-dimensional neural spheroid culture: an in-vitro model for cortical studies. Tissue Eng Part C Methods. 2015;21(12):1274–283.
38.
go back to reference Hegab AE, Arai D, Gao J, Kuroda A, Yasuda H, Ishii M, Betsuyaku T. Mimicking the niche of lung epithelial stem cells and characterization of several effectors of their in vitro behavior. Stem Cell Res. 2015;15(1):109–21. Hegab AE, Arai D, Gao J, Kuroda A, Yasuda H, Ishii M, Betsuyaku T. Mimicking the niche of lung epithelial stem cells and characterization of several effectors of their in vitro behavior. Stem Cell Res. 2015;15(1):109–21.
39.
go back to reference McQualter JL, McCarty RC, Van der Velden J, O’Donoghue RJ, Asselin-Labat ML, Bozinovski S, Bertoncello I. TGF-β signaling in stromal cells acts upstream of FGF-10 to regulate epithelial stem cell growth in the adult lung. Stem Cell Res. 2013;11:1222–233. McQualter JL, McCarty RC, Van der Velden J, O’Donoghue RJ, Asselin-Labat ML, Bozinovski S, Bertoncello I. TGF-β signaling in stromal cells acts upstream of FGF-10 to regulate epithelial stem cell growth in the adult lung. Stem Cell Res. 2013;11:1222–233.
40.
go back to reference Yin Y, Betsuyaku T, Garbow JR, Miao J, Govindan R, Ornitz DM. Rapid induction of lung adenocarcinoma by fibro- blast growth factor 9 signaling through FGF receptor 3. Cancer Res. 2013;73:5730–741. Yin Y, Betsuyaku T, Garbow JR, Miao J, Govindan R, Ornitz DM. Rapid induction of lung adenocarcinoma by fibro- blast growth factor 9 signaling through FGF receptor 3. Cancer Res. 2013;73:5730–741.
41.
go back to reference Goss AM, Tian Y, Cheng L, Yang J, Zhou D, Cohen ED, Morrisey EE. Wnt2 signaling is necessary and sufficient to activate the airway smooth muscle program in the lung by regulating myocardin/Mrtf-B and Fgf10 expression. Dev Biol. 2011;356:541–52. Goss AM, Tian Y, Cheng L, Yang J, Zhou D, Cohen ED, Morrisey EE. Wnt2 signaling is necessary and sufficient to activate the airway smooth muscle program in the lung by regulating myocardin/Mrtf-B and Fgf10 expression. Dev Biol. 2011;356:541–52.
42.
go back to reference Kotton DN, Morrisey EE. Lung regeneration: mechanisms, applications and emerging stem cell populations. Nat Med. 2014;20(8):822–32. Kotton DN, Morrisey EE. Lung regeneration: mechanisms, applications and emerging stem cell populations. Nat Med. 2014;20(8):822–32.
Metadata
Title
Derivation of therapeutic lung spheroid cells from minimally invasive transbronchial pulmonary biopsies
Authors
Phuong-Uyen C. Dinh
Jhon Cores
M. Taylor Hensley
Adam C. Vandergriff
Junnan Tang
Tyler A. Allen
Thomas G. Caranasos
Kenneth B. Adler
Leonard J. Lobo
Ke Cheng
Publication date
01-12-2017
Publisher
BioMed Central
Published in
Respiratory Research / Issue 1/2017
Electronic ISSN: 1465-993X
DOI
https://doi.org/10.1186/s12931-017-0611-0

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