Conceived and designed the experiments: YZ MRB. Performed the experiments: YZ. Analyzed the data: YZ MRB. Contributed reagents/materials/analysis tools: JM DZ LB. Wrote the paper: YZ DZ MRB.
Adenosine is generated in response to cellular stress and damage and is elevated in the lungs of patients with chronic lung disease. Adenosine signaling through its cell surface receptors serves as an amplifier of chronic lung disorders, suggesting adenosine-based therapeutics may be beneficial in the treatment of lung diseases such as chronic obstructive pulmonary disease (COPD) and idiopathic pulmonary fibrosis (IPF). Previous studies in mouse models of chronic lung disease demonstrate that the key components of adenosine metabolism and signaling are altered. Changes include an up-regulation of CD73, the major enzyme of adenosine production and down-regulation of adenosine deaminase (ADA), the major enzyme for adenosine metabolism. In addition, adenosine receptors are elevated.
The focus of this study was to utilize tissues from patients with COPD or IPF to examine whether changes in purinergic metabolism and signaling occur in human disease. Results demonstrate that the levels of CD73 and A2BR are elevated in surgical lung biopsies from severe COPD and IPF patients. Immunolocalization assays revealed abundant expression of CD73 and the A2BR in alternatively activated macrophages in both COPD and IPF samples. In addition, mediators that are regulated by the A2BR, such as IL-6, IL-8 and osteopontin were elevated in these samples and activation of the A2BR on cells isolated from the airways of COPD and IPF patients was shown to directly induce the production of these mediators.
These findings suggest that components of adenosine metabolism and signaling are altered in a manner that promotes adenosine production and signaling in the lungs of patients with COPD and IPF, and provide proof of concept information that these disorders may benefit from adenosine-based therapeutics. Furthermore, this study provides the first evidence that A2BR signaling can promote the production of inflammatory and fibrotic mediators in patients with these disorders.
Destructive lung disorders such as chronic obstructive pulmonary disease (COPD) and interstitial lung disease such as idiopathic pulmonary fibrosis (IPF) affect millions of individuals and result in billions of dollars in annual health care cost. Considerable information has been gathered concerning the mechanisms that promote inflammatory and tissue remodeling processes in these disorders; however, relatively little is known about the pathways that drive their progressive and chronic nature. Deregulated or overactive wound healing pathways are hypothesized to contribute to the excessive remodeling responses that are seen in chronic lung diseases
It has been recognized that adenosine may also play a critical role in the pathogenesis of chronic inflammatory disorders of the airways such as asthma and COPD.
Examination of adenosine levels in animal models of chronic lung disease corroborate with these findings in humans. Transgenic mice that over express the Th2 cytokines IL-4 or IL-13 in the lungs develop progressive pulmonary inflammation and injury characterized by eosinophilic and monocytic infiltrates, fibrosis and alveolar airspace destruction in association with increases of adenosine in the lungs
In response to cellular stress and damage, ATP is released into the extracellular space and is rapidly dephosphorylated by extracelluar nucleotidases. CD73 catalyzes the formation of extracellular adenosine from AMP. Extracellular adenosine can interact with seven-transmembrane adenosine receptors, A1R, A2AR, A2BR, and A3R, which are coupled by heterotrimeric G proteins to various second messenger systems, or it can be transported into cells via facilitated nucleoside transporters, such as ENT1. Both extracellular and intracellular adenosine can be deaminated to inosine by adenosine deaminase (ADA). Intracellular adenosine can be secreted or phosphorylated back to ATP. The first step in this process is catalyzed by adenosine kinase (AK).
The objective of the current study was to determine whether adenosine metabolism and signaling are altered in patients with COPD and/or IPF. Our hypothesis was that purinergic metabolism and signaling components are altered in a manner that promotes adenosine production in tissue samples from patients with COPD and IPF. Our results demonstrate that CD73 and the A2BR are elevated in lung biopsy samples from patients with Stage 4 COPD and Severe IPF compared to patients with preserved lung function. Expression of CD73 and the A2BR were localized predominantly to alternatively activated macrophages in airspaces. These elevations were associated with significant alterations in the expression of pro-inflammatory mediators known to be driven by A2BR signaling, and ex vivo studies demonstrated that activation of A2BR can influence the production of key inflammatory and fibrotic mediators from macrophages isolated from these patients.
The use of human material for this study was reviewed by the University of Texas Health Science Center at Houston Committee for the Protection of Human Subjects. All studies in tissues were from existing samples already collected and deidentified and were therefore considered exempt. The analysis of lavage isolated from patients was also reviewed and approved by this committee with no ethical concerns. Surgical lung biopsy tissue samples were obtained from the Lung Tissue Research Consortium (LTRC) (
Representative H&E staining and hign-resolution CT scan images showing: (A) A Stage 0 COPD patient with preserved lung function. (B) A Mild IPF patient with preserved lung function. (C) A Stage 4 COPD patient. (D) A Severe IPF patient. Sections are representative of 10–14 different patients from each group. The yellow boxes in the CT scan images represent the approximate location of the surgical biopsies for obtaining tissues sections frozen material for analysis in these examples.
| Parameter | Stage 0 COPD1 | Mild IPF2 | Stage 4 COPD3 | Severe IPF4 |
| N | 4 | 10 | 10 | 10 |
| Age, yrs | 69 (61–78) | 60 (50–77) | 50 (44–63) | 54 (26–62) |
| Sex, M/F | 1/3 | 6/4 | 6/4 | 7/3 |
| Pack-yrs smoking | 25 (25–50)a | 8 (3–10)b | 36 (1–120)c | 20 (3–32)d |
| Smoking status | ||||
| Ever/Never | 4/0 | 5/4e | 10/0 | 4/5e |
| FEV1, % pred | 86 (84–89) | 92 (66–109) | 20 (12–40)* | 38 (30–46)# |
| FVC, % pred | 107 (80–113) | 89 (80–105) | 54 (13–77)* | 38 (25–43)# |
| FEV1/FVC, % | 60 (50–80) | 80 (60–90) | 30 (20–60)* | 90 (70–100) |
Data are presented as median (interquartile range). M/F: male/female; FEV1: forced expiratory volume in one second; % pred: % predicted; FVC: forced vital capacity. 1: Stage 0 COPD is defined as FEV1, % pred >80; 2: Mild IPF is defined as FVC, % pred >80; 3: Stage 4 COPD is defined as FEV1, % pred <50; 4: Severe IPF is defined as FVC, % pred <50; a: data available for 3/4 Stage 0 COPD patients; b: data available for 5/10 Mild IPF patients; c: data available for 9/10 Stage 4 COPD patients; d: data available for 4/10 Severe IPF patients; e: data available for 9/10 Mild or Severe IPF patients. *: p<0.05 compared with Stage 0 COPD patients; #: p<0.05 compared with Mild IPF patients.
Total RNA was isolated from frozen lung tissue using Trizol reagent (Invitrogen Corp.). RNA was purified through an RNA-purification column (Qiagen) and treated using RNase-free DNase (Invitrogen Corp.). Transcript levels were quantified using Taqman real-time quantitative RT-PCR. Primer sequences for the transcripts examined are found in
| Gene | Accession Number | Sequences |
| CD73 | NM_002526 | 1447+GACAGAGTAGTCAAATTAGATG 1511−TGAGAGGGTCATAACTGG 1471+FAM |
| ADA | NM_000022 | 264+CTGCTGAACGTCATTGG 340−GCAGGCATGTAGTAGTC 281+FAM |
| AK | NM_006721 | 1092+CCACTATGCAGCAAGCATC 1156−GGAAGTCTGGCTTCTCAGG 112+FAM |
| ENT1 | NM_001078177 | 1413+CCAGCCGTGACTGTTGAG 1489−CAGGACACAGGAATGAAGTAAC 1438+FAM |
| A1R | NM_000647 | 1147+GCTGGCTGCCTTTGCAC 1215−GGATGCTGGGCTTGTGG 1165+FAM |
| A2AR | NM_000675 | 838+ATGCTGGGTGTCTATTTGCG 902−TGGCTCTCCATCTGCTTCAG 865+FAM |
| A2BR | NM_000676 | 977+CACTGAGCTGATGGACCACTC 1040−CAGTGACTTGGCTGCATGG 1018−FAM |
| A3R | NM_000677 | 708+CCCTACAGACGGATCTTGCTG 777−TGTTGGGCATCTTGCCTTC 734+FAM |
| IL-6 | NM_000600 | 153+ |
| IL-8 | NM_000584 | 100+TCTTGGCAGCCTTCCTGA 182−GCACTGACATCTAAGTTCTTTAGCACT 121+FAM |
| OPN | NM_000582 | 619+GGACTGAGGTCAAAATCTAAGAAG 693−GGTGATGTCCTCGTCTGTAG 646+FAM |
Lungs were homogenized and lysed on ice with protein lysis buffer (50mM Tris pH7.4, 150mM NaCl, 1% Triton-X 100, 0.1% SDS, 0.5% Na deoxycholate) freshly supplemented with 1X protease inhibitor cocktail (Roche Diagnostics). Lysates were vigorously vortexed and cleared by centrifugation at 14,000rpm for 15 min at 4°C. To quantify CD73 enzyme activity, 5 µg of protein extracts were incubated with 100 µM AMP at 37°C for 30 min in the presence of 1 µM deoxyconformycin in HEPES buffer, with or without 100 µM CD73 inhibitor adenosine- 5′- O- (α, β- methylenediphosphate) (AOPCP). To quantify ADA enzyme activity, 10 of µg protein extracts were incubated with 0.2 mM adenosine at 37°C for 60 min in HEPES buffer with or without 1 µM deoxyconformycin, an ADA inhibitor. Heat-inactive protein extracts were used as negative controls. Reactions were terminated at 95°C for 5 min. Reaction mixtures were then analyzed by reversed-phase (C18) HPLC, which permitted direct separation, identification, and quantification of enzymatic products
HOPE or paraformaldyhyde fixed lung samples from the same location as RNA and protein lysates were dehydrated, and embedded in paraffin, and sections (5 µm) were collected on microscope slides and stained with H&E (Shandon-Lipshaw) according to manufacturer’s instructions. For CD73 immunostaining, HOPE-fixed sections were deparaffinized in isopropanol at 60°C and rehydrated in 70% acetone. Rehydrated slides were quenched with 1% hydrogen peroxide and endogenous avidin and biotin blocked with a Biotin Blocking System (DAKO Corp.). Slides were incubated with mouse anti-human CD73 antibody (Hycult Biotechnology, 1∶50 dilution, overnight at 4°C). For A2BR immunostaining, rehydrated slides were quenched with 1% hydrogen peroxide, antigen retrieval performed (Dako Corp.), and endogenous avidin and biotin blocked with a Biotin Blocking System (DAKO Corp.). Slides were incubated with rabbit anti-human A2BR Antibody (Chemicon, 1∶500 dilution, 1 hr at room temperature). Sections were incubated with ABC Streptavidin reagents and appropriate secondary antibodies, then developed with 3, 3′-diaminobenzidine (Sigma-Aldrich) and counterstained with methyl green. The number of positively stained inflammatory cells in each group was performed by counting positive cells in 20 images of each lung section at 10X magnification using Image Pro Plus software (Cybernetics). For immunofluorescence on tissue sections, rehydrated slides were fixed in 1∶1 acetone-methanol and treated with 1% NaBH4. Slides were blocked in 1% BSA, and incubated overnight at 4°C with the primary antibodies. For immunofluorescence on primary human macrophages, cells were cytospun and fixed in 3.7% paraformaldehyde in PBS and permeabilized in cold Methanol. Slides were blocked with 1% rabbit serum and incubated overnight at 4°C with the primary antibodies. Primary antibodies include: mouse anti-human CD73 antibody (Hycult Biotechnology, 1∶50 dilution), Rabbit Anti-human A2BR Antibody (Chemicon, 1∶500 dilution), rat anti-human MMR (CD206) antibody (R&D Systems, 1∶50 dilution). Sections and cells were incubated with the following secondary antibodies: Alexa Fluor 488 rabbit anti-mouse IgG, Alexa Fluor 488 goat anti-rabbit IgG, Alexa Fluor 568 goat anti-rat IgG (Intritrogen) then coversliped with Vectashield with DAPI (Vector Laboratories).
Primary alveolar macrophages were obtained from BAL fluid of stage 4 COPD or severe IPF patients. BAL fluid was spun and cell pellets were resuspended in RPMI1640 containing 10% FBS and 10,000 U/ml penicillin/streptomycin. Cells were portioned into aliquots of 2×105 cells/well, allowed to adhere for 4 hours at 37°C 5% CO2, and then rinsed twice with RPMI1640 without FBS. Cells were either pre-incubated with 100 nM CVT-6883 (selective A2BR antagonist) for 30 min followed by NECA or incubated with NECA alone (in DMSO, 10 µM NECA/well; Tocris Bioscience) for 12 h at 37°C 5% CO2. Tissue culture supernatants were collected and IL-8 and IL-6 levels were quantified using Human Quantikine ELISA kits (R&D Systems).
Groups were compared by analysis of variance; follow-up comparisons between groups were conducted using 2-tailed Student's t test. Associations between transcript levels of two genes were established by linear regression. Correlation significances were analyzed using Pearson correlation calculator software. Values are expressed as mean ± SEM. A p value of ≤0.05 was considered to be significant.
Transcript Levels of Components of Adenosine Metabolism and Signaling are Altered in the Lungs of COPD and IPF Patients
Components of adenosine metabolism and signaling are altered in mouse models of chronic lung disease in association with elevated levels of adenosine
Transcript levels of various enzymes in adenosine metabolism, and adenosine receptors were quantified in lung RNA extracts from patients using quantitative RT-PCR. Shown are levels of (A) CD73, (B) ADA, (C) AK, (D) ENT1, (E) Adenosine receptors. Results are presented as mean percentage of 18sRNA transcripts ± SEM. *p≤0.05 versus Stage 0 COPD. #p≤0.05 versus Mild IPF. n = 4 (Stage 0 COPD), n = 10 (Mild IPF), n = 8 (Stage 4 COPD and Severe IPF).
To examine alterations in enzymatic activities of the key enzymes of adenosine metabolism, protein extracts were made from surgical lung biopsy specimens and enzymatic activities of CD73 and ADA were determined using HPLC. The enzymatic activity of CD73 was increased by 2 fold and 2.5 fold, respectively, in Stage 4 COPD and Severe IPF patients compared to subjects with preserved lung function (
CD73 (A) and ADA (B) enzyme activity were quantified in lung protein extracts from patients. Reaction mixtures were separated, identified, and quantified by HPLC. Data are presented as mean nanomoles of substrate converted to product per min per milligram of protein ± SEM. *p≤0.05 versus Stage 0 COPD. #p≤0.05 versus Mild IPF. n = 4 (Stage 0 COPD), n = 10 (Mild IPF), n = 8 (Stage 4 COPD and Severe IPF).
To identify the cellular localization of key components of adenosine metabolism and signaling, tissue sections from surgical lung biopsies were subjected to immunostaining with antibodies against CD73 and the A2BR. In subjects with preserved lung function, CD73 was expressed on inflammatory cells as well as endothelial cells (
Lung sections were stained with antibodies against CD73. (A) Lung section from a Stage 0 COPD patient. (B) Lung section from a Mild IPF patient. (C) Lung section from a Stage 4 COPD patient. (D) Lung section from a Severe IPF patient. Sections are representative of 10–14 different patients from each group. Scale bars = 100 µm. (E) CD73 positive inflammatory cells were quantified in 20 images. Data are presented as mean number of positive cells per 10X field ± SEM. *p≤0.05 versus Stage 0 COPD. #p≤0.05 versus Mild IPF. n = 4 (Stage 0 COPD), n = 10 (Mild IPF), n = 8 (Stage 4 COPD and Severe IPF).
Lung sections were stained with antibodies against the A2BR. (A) Lung section from a Stage 0 COPD patient. (B) Lung section from a Mild IPF patient. (C) Lung section from a Stage 4 COPD patient. (D) Lung section from a Severe IPF patient. Sections are representative of 10–14 different patients from each group. Scale bars = 100 µm. (E) A2BR positive inflammatory cells were quantified in 20 images. Data are presented as mean number of positive cells per 10X field ± SEM. *p≤0.05 versus Stage 0 COPD. #p≤0.05 versus Mild IPF. n = 4 (Stage 0 COPD), n = 10 (Mild IPF), n = 8 (Stage 4 COPD and Severe IPF). (F) A2BR expression in hyperplastic airway epithelial cells (blue arrow) and fibroblasts (red asterix). Scale bar = 200 µm.
Alternatively activated macrophages, also known as M2 macrophages, are involved in microenvironments exhibiting prolonged inflammation and fibrosis, where they produce mediators that contribute to disease maintenance and progression
Lung sections from COPD or IPF patients were reacted with antibodies against CD73 (A, green) or the A2BR (B, green) together with the M2 macrophage marker CD206 (red). In the merged images, yellow represents co-localization of CD73 or the A2BR and the M2 marker, blue is dapi stained nuclei. Sections are representative of 10–14 different patients from each group. Scale bars = 100 µm.
A2BR signaling can regulate the expression of inflammatory and fibrotic mediators in cell types and lung tissue associated with chronic lung disease
Transcript levels of various cytokines and chemokines were quantified in lung RNA extracts from patients using quantitative RT-PCR. Shown are levels of (A) IL-6, (B) IL-8, (C) OPN. Results are presented as mean percentage of 18sRNA transcripts ± SEM. *p≤0.05 versus Stage 0 COPD. #p≤0.05 versus Mild IPF. n = 4 (Stage 0 COPD), n = 10 (Mild IPF), n = 8 (Stage 4 COPD and Severe IPF).
To investigate the associations between these components of adenosine metabolism and signaling and downstream effecter molecules, correlations between A2BR, CD73 and inflammatory/fibrotic mediator transcript levels were determined using linear regression. CD73 levels demonstrated a significant correlation with A2BR transcript levels (
The transcript levels of CD73 in individual COPD and IPF patients were significantly associated with transcript levels of the A2BR (A). In IPF patients, the transcript levels of IL-6 (B) and IL-8 (C) were significantly correlated with the transcript levels of CD73; the transcript levels of IL-8 (D) and OPN (E) were significantly correlated with the transcript levels of A2BR.
To determine if the A2BR on M2 macrophages is directly involved in the induction of pro-inflammatory/fibrotic mediators, human primary alveolar macrophages were isolated from the BAL fluid of Severe IPF and Stage 4 COPD patients. Co-localization studies using an M2 macrophage marker, CD206 and either CD73 or A2BR antibodies were conducted on cells isolated from a patient with IPF to validate that the isolated cells were predominantly M2 macrophages and to demonstrate that they express both CD73 and the A2BR (
(A) Cells from an IPF patient were reacted with antibodies against CD73 (A,
Adenosine is a signaling molecule produced as a result of cell stress or damage. Several studies demonstrate elevated adenosine levels in patients with chronic lung disease. Adenosine levels are elevated in lavage fluid collected from asthmatics
CD73 is the major enzyme for extracellular adenosine production. CD73 levels are up-regulated in the lungs of mouse models with chronic lung disease including ADA-deficient mice and mice exposed to bleomycin
ADA is the major enzyme of adenosine metabolism
Adenosine regulates numerous cellular activities by engaging cell surface adenosine receptors
The A2BR has the lowest affinity for adenosine and is therefore likely activated under pathological conditions where adenosine levels are increased
Although evidence of purinergic remodeling and A2BR driven mediator expression was found in both IPF and COPD patients, it is important to note that there were differences in these features between diseases. For example, association studies demonstrated a close relationship between CD73 or A2BR expression and IL-6, IL-8 and OPN expression in IPF patients but not in COPD patients. This suggests that although purinergic remodeling exists in both COPD and IPF patients, it is more likely that there is a causative role for A2BR driven mediator expression in IPF than in COPD. Alternatively, CD73 and A2BR differences might correlate with yet uncharacterized responses that are more closely associated with COPD, such as protease production. Thus, purinergic remodeling responses in IPF and COPD exists to increase adenosine levels; however, the downstream consequences likely differ amongst disorders with different pathological manifestations.
Substantial evidence in mouse models of chronic lung disease suggests that adenosine-based therapeutics are beneficial for the treatment of chronic lung disease where airspace destruction and fibrosis is prominent
In conclusion, findings in the current study suggest that components of adenosine metabolism and signaling are altered in a manner that promotes adenosine production in patients with Stage 4 COPD and Severe IPF. These changes include the up-regulation of CD73, a down-regulation of ADA activity, and elevations in the A2BR. It provides proof of concept information that human COPD and IPF patients may benefit from adenosine-based therapeutics such as ADA enzyme replacement therapy or treatment with an A2BR antagonist. In addition, monitoring purinergic remodeling responses in lung samples provides an attractive approach for screening patients for the potential effectiveness of adenosine-based therapeutics.
The authors would like to thank Greg Shipley in the Quantitative Genomics Core Laboratory at The University of Texas Health Science Center at Houston for his assistance in designing and running the real-time qPCR assays for this study. We also thank the Lung Tissue Research Consortium (LTRC) at the National Institute of Heart Lung and Blood for providing the tissue samples necessary for completing these studies.