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TISSUE-SPECIFIC STEM CELLS |
aCenter for Lung Regeneration, Department of Environmental and Occupational Health, University of Pittsburgh, Pittsburgh, Pennsylvania, USA;
bDivision of Pulmonary Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston Massachusetts, USA;
cDepartment of Pharmacology, Graduate School of Medicine, Kyoto University, Kyoto, Japan
Key Words. Adult stem cells • Progenitor cells • Regeneration • Bronchiole • Transgenic mouse
Correspondence: Correspondence: Barry R. Stripp, Ph.D.,2075 MSRBII, 106 Research Drive, DUMC Box 103000, Durham, North Carolina 27710, USA. Telephone: 919-668-7762; Fax: 919-684-5266; e-mail: barry.stripp{at}duke.edu
Received on January 17, 2008;
accepted for publication on February 26, 2008.
First published online in STEM CELLS EXPRESS March 20, 2008.
| ABSTRACT |
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Disclosure of potential conflicts of interest is found at the end of this article.
| INTRODUCTION |
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Cell maintenance in slowly renewing tissues is thought to be different from that occurring within rapidly renewing tissues. Rapidly renewing tissues, such as the epithelium of the small intestine and the cellular components of the hematopoietic system, are maintained by classic stem cell hierarchies. In these hierarchies, rare tissue stem cells give rise to one or more populations of abundant transit-amplifying cells (TAC). These TAC are responsible for the generation of sufficient differentiating progeny for maintenance of some or all components of the tissue in which they reside [14, 15]. Principal differences between rapidly and slowly renewing tissues relate to the frequency with which TSC and TAC cycle in the steady state and the differentiated status of the TAC population. Transit-amplifying cells of the small intestine proliferate continuously, lack differentiated character, and are spatially separated from their differentiated derivatives that either line the villus or migrate to the crypt base. In contrast, the bronchiolar TAC is thought to be a differentiated secretory (Clara) cell that is normally quiescent but responds to injury by dividing, self-renewing, and giving rise to progeny that differentiate into one or more cell types (ciliated cells and Clara cells). Thus, intestinal TAC are dedicated progenitor cells, whereas TAC of the lung and other slowly renewing organs behave as facultative progenitor cells. In light of these functional distinctions between the stem cell hierarchies of rapidly versus slowly renewing tissues, it is not clear whether molecular signaling mechanisms that regulate one type of hierarchy can be extrapolated to other types of reparative systems.
Genetic perturbations resulting in the stabilization of cytoplasmic β-catenin within the proliferative fraction of intestinal epithelial cells lead to uncontrolled expansion of cells that are unable to generate differentiating postmitotic progeny and have properties similar to the TSC [16, 17]. Potentiation of the Wnt/β-catenin pathway has similarly profound influences on the self-renewal capacity and differentiation potential of other stem cell hierarchies, such as those of the hematopoietic system [18–21] or the epidermis [22–25], leading in each case to expansion of the TSC/TAC pool and either arrested or altered differentiation. However, even though the Wnt/β-catenin pathway plays a critical role in regulation of lung development [26–28], it is unclear whether it fulfills roles in the maintenance of adult lung stem cells similar to those of more rapidly renewing organs.
In this study, we established that β-catenin-mediated signaling, which is active in early lung endoderm, is extinguished within the differentiating epithelium. Constitutive potentiation of β-catenin signaling within the developing lung endoderm at mouse embryonic day 16.5 arrests epithelial maturation and leads to expansion of the bronchiolar stem cell pool in adult airways. These supernumerary bronchiolar stem cells displayed a normal proliferative response to injury and returned to a quiescent state upon epithelial restitution. These findings suggest that downregulation of Wnt/β-catenin signaling is necessary for stratification of the bronchiolar stem cell hierarchy and that stabilization of β-catenin interferes with the establishment of the transit-amplifying pool and differentiated cell types.
| MATERIALS AND METHODS |
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Naphthalene Administration
Naphthalene administration was carried out as previously described, with doses adjusted according to strain to achieve a >90% decrease in the abundance of CCSP and CyP450-2F2 mRNA in total lung RNA of wild-type mice [10].
Bromodeoxyuridine Administration
For continuous labeling studies, bromodeoxyuridine (BrdU; Sigma-Aldrich, St. Louis, http://www.sigmaaldrich.com) in sterile saline (20 mg/ml) was delivered using a 14-day mini-osmotic pump (Alzet 2002; Durect, Cupertino, CA, http://www.alzet.com). Pumps were implanted 24 hours after naphthalene exposure. For measurement of the instantaneous proliferative index of epithelial cells in vivo, proliferating cells were pulse-labeled through intraperitoneal injection of BrdU (50 mg/kg body weight; Sigma-Aldrich) 2 hours prior to sacrifice.
Tissue Recovery
The trachea was cannulated, and the left lobe was removed and homogenized for RNA isolation [29]. For standard light microscopy, right lung lobes were inflation-fixed with 10% neutral buffered formalin for 2 hours. For ultrastructural analysis, tissue was inflation-fixed as indicated above with 2.5% glutaraldehyde in phosphate-buffered saline (PBS).
Immunofluorescence
Immunofluorescence techniques were used to detect antigens listed in supplemental online Table 2. Primary antibodies were diluted in 5% BSA/PBS at the concentrations listed in supplemental online Table 2. Antigen-antibody complexes were visualized using an Olympus Fluoview confocal microscope using 2 µg/ml 4,6-diamidino-2-phenylindole (Sigma-Aldrich) in mounting medium as the counterstain.
Transmission Electron Microscopy
Tissue was processed for transmission electron microscopy according to previously published methods [31] and examined using a Jeol 1011 transmission electron microscope (Jeol, Peabody, MA, http://www.jeolusa.com).
Morphometric Analysis
Cell Density Analysis. The length of the bronchiolar and terminal bronchiolar epithelium was determined using the measurement function of Image-Pro Plus (Media Cybernetics, Silver Spring, MD, http://www.mediacy.com). Cell density was determined by counting nucleated cells in this region and is expressed as cells per millimeter of basement membrane.
Proliferative Index Analysis. The proliferative index was defined as the number of BrdU-labeled nuclei divided by the total number of nuclei and is presented as a percentage. Representation of cells within the proliferative pool was defined as the number of cells that coexpressed a lineage marker (CCSP, CGRP, or FoxJ1) and BrdU divided by the total number of BrdU-positive cells.
RNA Abundance
Quantitative reverse transcription (RT)-polymerase chain reaction (PCR) was used to assess mRNA abundance. Total RNA was prepared from the left lung lobe as previously described [10]. cDNA was prepared and assayed as previously described [32] using Assays-on-Demand gene expression probe/primer sets from Applied Biosystems (Foster City, CA, http://www.appliedbiosystems.com). Expression was quantified using an ABI Prism 7000 Sequence Detection System (Applied Biosystems), and values were calculated by the 
CT method using a standard total lung RNA preparation as the calibrator [33].
Clonogenic Frequency Analysis
Airway cells were prepared by the method of Chichester et al. [34]. CD45-positive cells were depleted using Dynabeads (Dynal M-280; Dynal Biotech, Carlsbad, CA, http://www.invitrogen.com/dynal) and biotinylated anti-CD45 according to the manufacturer's directions. Clonogenic frequency within CD45(–) airway cell preparations was determined by the method of Taswell [35]. Cells were cultured in mouse tracheal epithelial medium [36] at 5% CO2, 37°C for 1 week.
| RESULTS |
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The relationship between secretory differentiation and β-catenin signaling was determined at day post coitum (dpc) 18.5 by colocalization CCSP with expression of the β-catenin reporter transgene TOPGal. TOPGal transgene activity was measured through X-gal histochemical staining of the β-galactosidase (β-gal) reporter gene [40]. At this time, the bronchial epithelium expressed CCSP and was negative for βgal activity (supplemental online Fig. 2). In contrast, the distal airway epithelium was in transition. CCSP-immunoreactive terminal bronchioles were βgal-negative, whereas regions that were CCSP-negative exhibited high levels of βgal activity. This analysis indicated that CCSP and the TOPGal transgene were expressed in reciprocal patterns and suggested that establishment of the airway secretory lineage, like that of other cell types of the maturing lung endoderm, was regulated by Wnt/β-catenin signaling.
Stabilization of β-Catenin Within the Airway Epithelium Blocks Clara Cell Differentiation
Stabilization of β-Catenin Attenuates Airway Epithelial Cell Differentiation.
Efficient and airway-specific recombination of the ROSA26-floxed STOP-LacZ (ROSA26-RS [41]) and CatnbfloxE3 [42] alleles was observed in mice expressing Cre recombinase under regulation of the CCSP promoter (CCSP-Cre transgene [43] (supplemental online Figs. 3, 4). Use of the ROSA26-RS Cre reporter indicated that recombination first occurred at embryonic day 16.5 and proceeded through the early postnatal period (supplemental online Fig. 3). Comparative morphological analysis of the adult conducting airway epithelium in wild-type and Catnb
E3 mice suggested that stabilization of β-catenin altered the molecular characteristics of steady-state secretory cells (Fig. 1). In contrast with wild-type CCSP-expressing cells, recombined cells of the Catnb
E3 airway exhibited weak CCSP immunofluorescence and an unusual low cuboidal to squamous morphology. Transmission electron microscopic analysis of adult wild-type bronchioles detected nonciliated Clara cells characterized by their domed morphology, a high cytoplasmic-to-nuclear ratio, and an abundance of cytoplasmic organelles, including mitochondria, secretory granules, and endoplasmic reticulum (Fig. 1). In contrast, the majority of nonciliated cells within bronchioles of Catnb
E3 mice exhibited a low cuboidal shape, a low cytoplasmic-to-nuclear ratio, and an accompanying reduction in cytoplasmic organelles. Abundant glycogen granules, a hallmark of embryonic airway cells, were absent from nonciliated airway cells of adult wild-type or Catnb
E3 mice. These data demonstrated that nonciliated airway cells of Catnb
E3 mice were undifferentiated relative to epithelial cells at this airway location in wild-type mice.
Qualitative changes to Catnb
E3 secretory cells identified by immunofluorescent staining were quantified through analysis of two secretory cell-specific mRNAs, CCSP and CyP450-2F2, within total lung RNA (Fig. 2). CCSP (wild-type [WT] vs. heterozygous [het], p = .001; WT vs. homozygous [homo], p = .0003) and CyP450-2F2 (WT vs. het, p = .0003; WT vs. homo, p = .004) mRNA abundance was significantly decreased in adult lung RNA from mice that were positive for the CCSP-Cre transgene and either homozygous or heterozygous for the Catnbflox(E3) allele. Expression of these secretory cell-specific genes did not vary as a function of zygosity (CCSP, p = .807; CyP450-2F2, p = .108). Abundance of SP-C mRNA, a marker for early lung epithelial progenitor cells and adult alveolar type 2 cells, did not vary between wild-type and heterozygous (p = .154) or homozygous (p = .696) mice. These data demonstrated that expression of truncated β-catenin specifically altered the molecular phenotype of airway secretory cells in the adult lung and that this was a dominant phenotype.
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E3 lungs progress through this postnatal differentiation process (Fig. 2). In wild-type lung, the abundance of CCSP and CyP450-2F2 mRNAs did not vary between dpc 17.5 and postnatal day (pnd) 1, underwent a statistically significant increase in abundance between pnd 1 and 21 (CCSP: p < .0001; CyP450-2F2: p < .0001), and was constant between pnd 21 and 48. In lungs of Catnb
E3 mice, the abundance of CCSP and CyP450-2F2 mRNAs did not vary between dpc 17.5 and pnd 1 and was indistinguishable from expression levels detected in lungs of wild-type mice. Abundance of both mRNAs increased between pnd 1 and 21 (p = .002) but was approximately 30% of that observed in wild-type lung (p = .0001). CCSP and CyP450-2F2 mRNA abundance did not vary between pnd 21 and 48 in Catnb
E3 mice, and the expression level was significantly different from that of wild-type (CCSP, p = .008; CyP450-2F2, p = .012). Similar genotype-dependent differences in expression of additional Clara cell-specific markers were noted (supplemental online Fig. 5). These results were in agreement with the histological demonstration of reduced CCSP protein levels in Catnb
E3 airways and indicated that stabilization of β-catenin in airway secretory cells attenuated the normal program of postnatal differentiation. Previous studies involving potentiation of β-catenin signaling in the early embryonic lung epithelium demonstrated metaplasia to a mucus cell phenotype [46] or transdetermination to a gut phenotype [26]. In the present model, genotype-dependent differences in expression of gut genes, including MUC2 and TFF3, or the mucus cell gene product Muc5AC were not observed (supplemental online Fig. 6). Similarly, analysis of metaplasia through staining of lung tissue with periodic acid Schiff reagent failed to detect evidence of mucus cells in either strain of mice (data not shown). These data support the conclusion that stabilization of β-catenin affects airway epithelial cell differentiation without altering specification of the bronchiolar lineage.
Truncation of β-Catenin Does Not Alter Airway Cell Density or Proliferation.
Expression of an N-terminally truncated form of β-catenin has been associated with hyperplasia and tumorigenesis [46]. However, histomorphometric analysis failed to detect alterations in epithelial cell density in the present model system (Fig. 3). To determine whether proliferation was altered, the cumulative proliferative index for conducting airway epithelial cells was determined. Continuous labeling of proliferating cells over a 7-day period was chosen in preference to pulse labeling because of the very low rate of proliferation typically observed in the conducting airway epithelium of the steady-state adult lung [47]. The cumulative proliferative index for the wild-type and Catnb
E3 epithelium was 1.20 ± 0.70 and 2.02 ± 0.47, respectively (Fig. 3). These values were indistinguishable by Student's t test (p = .67) and demonstrated that stabilization of β-catenin did not affect airway epithelial proliferation in the steady state. These data are consistent with an absence of tumors in more than 500 Catnb
E3 mice bred to date and suggest that expression of N-terminally truncated β-catenin does not predispose cells to transformation.
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Increased Number of Clonogenic Cells.
Molecular and ultrastructural characteristics of Catnb
E3 airway cells were similar to that of neuroepithelial body-associated Clara-like cells [48] and the mitotically active facultative progenitor cell, the type A Clara cell [4]. Since stem and transit-amplifying cells have been distinguished on the basis of colony formation in vitro [49–51], we determined the clonogenic frequency of wild-type and Catnb
E3 epithelial cells. This analysis (Fig. 3) demonstrated an approximately fourfold increase in colony-forming cells in airways of Catnb
E3 mice relative to wild-type controls (p = .001). This finding suggested that the available pool of tissue stem cells was increased in airways of Catnb
E3 mice.
Stabilization of β-Catenin Blocks Clara to Ciliated Cell Differentiation
Ciliated cells arise through two mechanisms. During lung development, ciliated cells may be specified directly from endodermal progenitor cells [52]. In contrast, nascent ciliated cells of the adult bronchiole are generated through differentiation of daughter cells of the facultative progenitor cell [4, 5]. The developmental appearance of ciliated cells occurs in a proximal-to-distal gradient that initiates on dpc 14.5 and is essentially complete by approximately dpc 16. After this time, bronchiolar ciliated cells are maintained through proliferation and differentiation of Clara cells. Qualitative analysis of the Catnb
E3 epithelium suggested that ciliated cells were underrepresented in the adult Catnb
E3 epithelium (Fig. 4) To quantify this observation and to determine the cellular basis for the apparent deficiency of ciliated cells, the abundance of FoxJ1 mRNA in wild-type and Catnb
E3 lung tissue was determined. Genotype-dependent differences in FoxJ1 message abundance were not observed at either dpc 17.5 or pnd 1 (Fig. 4). These results suggested that specification of the endodermal progenitor was not altered in the context of β-catenin stabilization. Analysis of FoxJ1 expression in wild-type weanling and adult mice demonstrated a significant increase in mRNA levels between days 21 and 48 (p = .042). In contrast, FoxJ1 mRNA levels decreased in Catnb
E3 between pnd 1 and 21 (p = .0001) and did not change between pnd 21 and 48. FoxJ1 mRNA levels in wild-type and Catnb
E3 lung were significantly different on pnd 21 (p = .0001) and in adults (p = .02). Demonstration of normal epithelial proliferation (Fig. 3) in combination with underexpression of FoxJ1 mRNA (Fig. 4) in the adult airway supported the conclusion that stabilization of β-catenin in CCSP-expressing cells altered the ability of their daughter cells to initiate or progress through the ciliated cell differentiation program.
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Rapid Epithelial Repair Following Naphthalene-Mediated Injury.
The impact of β-catenin stabilization on airway epithelial injury and repair was assessed using the naphthalene model of lung injury [10]. Immunofluorescence staining for CCSP and proSPC on recovery day 3 suggested significant differences in the reparative capacity of wild-type and Catnb
E3 airways (Fig. 5). CCSP-immunoreactive cells within the wild-type epithelium were detected as discrete foci of nascent cells on recovery day 3. Such regenerative zones were typically 3–5 cell diameters in length. Cells within repairing zones of the wild-type epithelium did not express detectable proSPC. In contrast, the Catnb
E3 epithelium was characterized by large stretches of CCSPLo cells separated by small zones of squamous epithelium. Nearly all CCSPLo cells coexpressed proSPC, although intensities varied from barely detectable to levels equivalent to that observed in alveolar type 2 cells. ProSPC antigen was nonuniformly distributed within the cytoplasm of dual-positive cells; however, lamellar bodies, indicative of mature alveolar type 2 cells, were not observed (data not shown).
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E3 lung decreased to 24.69% ± 5.22% of steady-state levels on recovery day 3 and recovered to 70.97% ± 14.54% of steady-state levels on day 8. Similar results were noted for CyP450-2F2 (Fig. 5). Consistent with the finding that expression of truncated β-catenin in CCSP-expressing cells attenuated postnatal acquisition of secretory and metabolic functions (Figs. 1, 2, 4; supplemental online Figs. 4, 5), the naphthalene challenge studies provided evidence that stabilization of β-catenin attenuated the xenobiotic metabolizing capacity of Catnb
E3 airway secretory cells and resulted in functional enrichment of naphthalene-resistant cells.
Increased Abundance of Naphthalene-Resistant Reparative Cells.
Pulse BrdU-labeling techniques were used to determine the kinetics of proliferation in the wild-type and Catnb
E3 epithelium. The instantaneous proliferative index for wild-type and Catnb
E3 epithelium was indistinguishable in control animals (p = .36) and reinforced the previous observation that truncated β-catenin did not affect steady-state proliferation. Analysis of wild-type bronchiolar and terminal bronchiolar epithelium detected a wave of proliferation that was initiated 72 hours after naphthalene injury and subsided by 240 hours (Fig. 6). In contrast, proliferation of Catnb
E3 epithelial cells was consistently increased by 36 hours. Proliferation peaked in animals of either genotype at 72 hours and returned to normal at 240 hours. The instantaneous proliferative index for wild-type and Catnb
E3 epithelium was indistinguishable at the 18-hour (p = .25) and 240-hour (p = .23) recovery time points. These data demonstrated that cells of both genotypes are competent to respond to stimuli that initiate and terminate the proliferative response to injury. A significant increase in proliferative index was identified in Catnb
E3 airways at the 36-hour (p = .04) and 72-hour (p = .002) time points. Phenotypic analysis of cells that proliferated in response to naphthalene treatment demonstrated that the majority of BrdU-labeled cells were CCSP-immunoreactive and that their representation within the total proliferative pool did not vary by genotype (Fig. 6). These data suggested that β-catenin stabilization resulted in an increase in the number of naphthalene-resistant, proliferative cells and suggested that amplification of the reparative cell pool was the basis for enhanced repair of the Catnb
E3 epithelium.
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Depletion of the Ciliated Cell Population Within Repairing Epithelium.
Previous analysis indicated that β-catenin stabilization altered the differentiated characteristics (Figs. 1, 2) and differentiation potential of CCSP-expressing cells in the steady state (Fig. 4) and that these cells self-renewed in the context of repair (Fig. 5). To determine the differentiation potential of cells that proliferate in response to naphthalene injury, FoxJ1 mRNA abundance was analyzed by quantitative RT-PCR (Fig. 7). Messenger RNA abundance at the 8-day recovery time point was 1.969 ± 0.387 for the wild-type lung and 0.958 ± 0.270 in the Catnb
E3 lung, and differences were statistically significant (p = .05; data not shown). To further assess the differentiation potential of the naphthalene-resistant progenitor cell population, representation of FoxJ1-expressing cells in nascent epithelium of wild-type and Catnb
E3 was determined. Since Clara cell proliferation is associated with differentiation of some daughter cells into ciliated cells [5] and ciliated cells did not proliferate in response to naphthalene injury (Fig. 6), continuous BrdU labeling was used to distinguish nascent versus pre-existing FoxJ1-immunoreactive ciliated cells (Fig. 7). In the wild-type epithelium, nascent ciliated cells were 14.95% ± 0.53% of total epithelial cells, whereas they were 1.05% ± 0.12% of epithelial cells in the Catnb
E3 epithelium. These data further reinforce the conclusion that stabilization of β-catenin in CCSP-expressing cells attenuates secretory to ciliated cell differentiation.
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| DISCUSSION |
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dpc 13.5 and gradually recedes along the proximal-to-distal axis during the remainder of lung development [26, 53] (supplemental online Fig. 2). It is well established that epithelial differentiation in the developing airway proceeds in a proximal-to-distal wave that accompanies specification of proximal versus distal lineages [13, 37, 38]. Our observation of a reciprocal relationship between downregulation of reporter gene expression from the TOPGal transgene and appearance of early secretory cell precursors is consistent with roles for β-catenin signaling in regulation of these processes.
Ultrastructural and molecular properties of nonciliated epithelial cells lining bronchioles of Catnb
E3 mice were distinct from those of mature Clara cells that normally reside in bronchioles of wild-type mice. Clara cells of the steady-state bronchiolar epithelium are characterized by a high cytoplasmic-to-nuclear ratio, abundant secretory granules, high-level expression of Clara cell differentiation markers, and sensitivity to naphthalene [8, 9, 54, 55]. Even though Clara cells of the steady-state airway exhibit differentiated features, their phenotype changes dramatically upon entry into the cell cycle. Actively proliferating Clara cells, referred to as type A Clara cells, lack secretory granules and smooth endoplasmic reticulum [4]. The proliferative quiescence of nonciliated cells of the steady-state Catnb
E3 airway distinguished them from the mitotic type A cell of the repairing wild-type airway. Only bronchiolar stem cells have the properties of less differentiated character, naphthalene resistance, and infrequent proliferation that are observed among nonciliated cells in bronchioles of Catnb
E3 mice [2, 3, 11]. On the basis of these observations, we conclude that nonciliated cells lining bronchioles of Catnb
E3 mice represent supernumerary bronchiolar stem cells whose differentiation is arrested through constitutive expression of stabilized β-catenin.
Bronchiolar stem cells reside in close apposition to pulmonary neuroendocrine cells within neuroepithelial bodies and at the bronchoalveolar duct junction [2, 3]. Their appearance during lung development is less well understood. Cells that expressed truncated β-catenin were remarkably similar to a unique population of neuroepithelial body (NEB) associated cells that are segregated during lung development. These cells were originally termed Clara-like cells [56] and were found to express CCSP [57] but were distinguished from surrounding CCSP-expressing cells by their low cytoplasmic-to-nuclear ratio [58]. The structural, phenotypic, and functional similarities between cells expressing truncated β-catenin and NEB-associated cells suggest that β-catenin signaling (or a pathway that mimics this process) functions in the maintenance of this immature cell type. We suggest that potentiation of β-catenin during the period of airway cell differentiation inhibits differentiation to a Clara cell phenotype. Similarly, depletion of the ciliated cell population can be attributed to a deficiency in the precursor to this cell type, the Clara cell. Hyperplasia of an undifferentiated, quiescent, naphthalene-resistant cell with properties of the bronchiolar stem cell suggests that differentiation status is the critical distinction between the bronchiolar stem cell and the facultative TAC. Our findings suggest that downregulation of β-catenin signaling during lung maturation is a prerequisite for differentiation of endodermal precursor cells into the facultative TAC and differentiated ciliated cells. We speculate that sequestration of the bronchiolar stem cell requires extrinsic signaling cues provided by the stem cell niche. Constitutive potentiation of β-catenin signaling beyond the developmental stage at which this pathway is typically downregulated leads to niche-independent expansion of cells with properties of the bronchiolar stem cell.
We present data demonstrating that supernumerary bronchiolar stem cells generated through stabilization of β-catenin are quiescent in the steady state and responsive to mitotic cues generated within injured airways. This observation is in stark contrast to events occurring within rapidly renewing tissues following activation of β-catenin signaling. Cells within rapidly renewing tissues, such as those of the gut and hematopoietic systems, are positioned within the stem cell hierarchy according to their unique proliferative, migratory, and differentiation potentials [14, 15]. However, the recent demonstration that intestinal stem cells proliferate frequently, like their TAC progeny [59], suggests that longevity of the TSC must be attributed to mechanisms other than cell cycle frequency. The critical difference between TSC and TAC may be their relative level of commitment to the differentiation program. Accordingly, TSC would be maintained over the life span of the organism because they do not differentiate. In contrast, TAC have a finite life span, their daughters eventually committing to programs of differentiation giving rise to either villus or Paneth lineages. Genetic manipulation of β-catenin stability within rapidly renewing tissues supports a critical role for Wnt/β-catenin signaling in regulation of the mitotic compartment. However, our demonstration that stabilized β-catenin negatively regulates bronchiolar stem/progenitor cell differentiation without increasing the rate of cell proliferation suggests an alternative role for active β-catenin in the modulation of the stem cell compartment. We propose that β-catenin-mediated inhibition of either TSC or TAC differentiation increases the number of cells capable of responding to mitotic signals. Accordingly, the impact of β-catenin stabilization varies with the mitotic status of the tissue. In rapidly renewing tissues, such as the gut, stabilization of β-catenin leads to uncontrolled expansion of cells whose differentiation into postmitotic progeny is arrested. In contrast, potentiation of β-catenin signaling within slowly renewing tissues arrests the differentiation of TSC/TAC without further proliferative expansion because of the absence of local mitotic cues.
| CONCLUSION |
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| DISCLOSURE OF POTENTIAL CONFLICTS OF INTEREST |
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| ACKNOWLEDGMENTS |
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