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<article xml:lang="en" article-type="research-article" xmlns:xlink="http://www.w3.org/1999/xlink">
<front>
<journal-meta>
<journal-id journal-id-type="nlm-ta">OR</journal-id>
<journal-title-group>
<journal-title>Oncology Reports</journal-title>
</journal-title-group>
<issn pub-type="ppub">1021-335X</issn>
<issn pub-type="epub">1791-2431</issn>
<publisher>
<publisher-name>D.A. Spandidos</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3892/or.2020.7763</article-id>
<article-id pub-id-type="publisher-id">or-44-05-2288</article-id>
<article-categories>
<subj-group>
<subject>Articles</subject>
</subj-group>
</article-categories>
<title-group>
<article-title>Triptolide induces apoptosis through the calcium/calmodulin-dependent protein kinase kinase&#x03B2;/AMP-activated protein kinase signaling pathway in non-small cell lung cancer cells</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author"><name><surname>Ren</surname><given-names>Tao</given-names></name>
<xref rid="af1-or-44-05-2288" ref-type="aff">1</xref>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Tang</surname><given-names>Yi-Jun</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Wang</surname><given-names>Mei-Fang</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Wang</surname><given-names>Han-Sheng</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Liu</surname><given-names>Yan</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Qian</surname><given-names>Xin</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Chang</surname><given-names>Chan</given-names></name>
<xref rid="af2-or-44-05-2288" ref-type="aff">2</xref>
<xref rid="af3-or-44-05-2288" ref-type="aff">3</xref></contrib>
<contrib contrib-type="author"><name><surname>Chen</surname><given-names>Ming-Wei</given-names></name>
<xref rid="af1-or-44-05-2288" ref-type="aff">1</xref>
<xref rid="c1-or-44-05-2288" ref-type="corresp"/></contrib>
</contrib-group>
<aff id="af1-or-44-05-2288"><label>1</label>Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Xi&#x0027;an Jiaotong University, Xi&#x0027;an, Shaanxi 710061, P.R. China</aff>
<aff id="af2-or-44-05-2288"><label>2</label>Department of Respiratory and Critical Care Medicine, Taihe Hospital, Hubei University of Medicine, Shiyan, Hubei 442000, P.R. China</aff>
<aff id="af3-or-44-05-2288"><label>3</label>Department of Respiratory and Critical Care Medicine, Affiliated Taihe Hospital of Xi&#x0027;an Jiaotong University Health Science Center, Shiyan, Hubei 442000, P.R. China</aff>
<author-notes>
<corresp id="c1-or-44-05-2288"><italic>Correspondence to</italic>: Professor Ming-Wei Chen, Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Xi&#x0027;an Jiaotong University, 277 Yanta West Road, Xi&#x0027;an, Shaanxi 710061, P.R. China, E-mail: <email>602227077@qq.com</email></corresp>
</author-notes>
<pub-date pub-type="ppub"><month>11</month><year>2020</year></pub-date>
<pub-date pub-type="epub"><day>11</day><month>09</month><year>2020</year></pub-date>
<volume>44</volume>
<issue>5</issue>
<fpage>2288</fpage>
<lpage>2296</lpage>
<history>
<date date-type="received"><day>02</day><month>12</month><year>2019</year></date>
<date date-type="accepted"><day>28</day><month>05</month><year>2020</year></date>
</history>
<permissions>
<copyright-statement>Copyright &#x00A9; 2020, Spandidos Publications</copyright-statement>
<copyright-year>2020</copyright-year>
</permissions>
<abstract>
<p>Triptolide, a triterpene extracted from the Chinese herb <italic>Tripterygium wilfordii</italic>, has been reported to exert multiple bioactivities, including immunosuppressive, anti-inflammatory and anticancer effects. Although the anticancer effect of triptolide has attracted significant attention, the specific anticancer mechanism in non-small-cell lung cancer (NSCLC) remains unclear. The present study aimed to investigate the anticancer effect of triptolide in the H1395 NSCLC cell line and to determine its mechanism of action. The results revealed that triptolide significantly inhibited the cell viability of NSCLC cells in a dose-dependent manner, which was suggested to be through inducing apoptosis. In addition, triptolide was revealed to activate the calcium (Ca<sup>2&#x002B;</sup>)/calmodulin-dependent protein kinase kinase &#x03B2; (CaMKK&#x03B2;)/AMP-activated protein kinase (AMPK) signaling pathway by regulating the intracellular Ca<sup>2&#x002B;</sup> concentration levels, which increased the phosphorylation levels of AMPK and reduced the phosphorylation levels of AKT, ultimately leading to apoptosis. The CaMKK&#x03B2; blocker STO-609 and the AMPK blocker Compound C significantly inhibited the apoptosis-promoting effect of triptolide. In conclusion, the results of the present study suggested that triptolide may induce apoptosis through the CaMKK&#x03B2;-AMPK signaling pathway and may be a promising drug for the treatment of NSCLC.</p>
</abstract>
<kwd-group>
<kwd>triptolide</kwd>
<kwd>non-small cell lung cancer</kwd>
<kwd>calcium/calmodulin-dependent protein kinase &#x03B2;/AMP kinase signaling pathway</kwd>
<kwd>apoptosis</kwd>
</kwd-group>
</article-meta>
</front>
<body>
<sec sec-type="intro">
<title>Introduction</title>
<p>Lung cancer is one of the most common types of malignancy, with an estimated 1.8 million new lung cancer cases reported in 2012, accounting for ~13&#x0025; of total cancer diagnoses worldwide (<xref rid="b1-or-44-05-2288" ref-type="bibr">1</xref>). Non-small-cell lung cancer (NSCLC) accounts for &#x003E;80&#x0025; of lung cancer casesand its overall 5-year survival rate is &#x003C;15&#x0025; (<xref rid="b2-or-44-05-2288" ref-type="bibr">2</xref>). Surgery is currently the standard treatment for patients with stage I NSCLC (<xref rid="b2-or-44-05-2288" ref-type="bibr">2</xref>); however, NSCLC has no typical symptoms and lacks specificity in clinical signs at an early stage (<xref rid="b3-or-44-05-2288" ref-type="bibr">3</xref>); therefore, the majority of patients who are diagnosed with lung cancer are already at the advanced stage and are not suitable for surgical treatment (<xref rid="b1-or-44-05-2288" ref-type="bibr">1</xref>). Even so, among the patients who do undergo surgery, the rate of recurrence and metastasis remains high; for example, in a prospective study of 1,361 patients with NSCLC undergoing surgical resection, Sugimura <italic>et al</italic> (<xref rid="b4-or-44-05-2288" ref-type="bibr">4</xref>) reported that 41&#x0025; of the patients developed recurrence following surgery, and the overall 2- and 5-year survival within this cohort was found to be 17 and 12&#x0025;, respectively. However, NSCLC is not very sensitive to chemotherapeutic drugs; thus, the therapeutic treatment of the disease requires further improvements. Therefore, it is of great practical significance to study effective drugs and therapeutic approaches.</p>
<p>Triptolide, a diterpenoidepoxide, is the major active compound extracted from a traditional Chinese medicinal herb named thunder god vine (<italic>Tripterygium wilfordii</italic>) (<xref rid="b5-or-44-05-2288" ref-type="bibr">5</xref>), which is predominantly used to treat autoimmune diseases, including systemic lupus erythematosus (<xref rid="b6-or-44-05-2288" ref-type="bibr">6</xref>), rheumatoid arthritis (<xref rid="b7-or-44-05-2288" ref-type="bibr">7</xref>) and asthma (<xref rid="b8-or-44-05-2288" ref-type="bibr">8</xref>). In addition to its immunosuppressive effects, triptolide has demonstrated numerous other pharmacological effects, such as anti-inflammatory, anti-fertility and cyst reduction activities (<xref rid="b9-or-44-05-2288" ref-type="bibr">9</xref>). However, the most important feature of triptolide is considered to be its anticancer effect. Previous studies have reported that triptolide exerted an efficient, broad-spectrum antitumor effect; for example, triptolide demonstrated a strong anticancer effect on various types of cancer cells <italic>in vitro</italic> and <italic>in vivo</italic>, including lung cancer (<xref rid="b10-or-44-05-2288" ref-type="bibr">10</xref>), prostate cancer (<xref rid="b11-or-44-05-2288" ref-type="bibr">11</xref>), human breast cancer (<xref rid="b12-or-44-05-2288" ref-type="bibr">12</xref>), oral cancer (<xref rid="b13-or-44-05-2288" ref-type="bibr">13</xref>) and mouse leukemia cells (<xref rid="b14-or-44-05-2288" ref-type="bibr">14</xref>,<xref rid="b15-or-44-05-2288" ref-type="bibr">15</xref>). In addition, triptolide inhibited the growth of tumor cells by inhibiting angiogenesis in prostate cancer (<xref rid="b16-or-44-05-2288" ref-type="bibr">16</xref>). It was also discovered to act synergistically with tumor necrosis factor (TNF)-&#x03B1; in tumor cells and inhibit the upregulation of NF-&#x03BA;B expression caused by the latter, thereby enhancing the sensitivity of cancer cells to TNF-&#x03B1;, which killed the tumor cells (<xref rid="b17-or-44-05-2288" ref-type="bibr">17</xref>). In addition, a previous study indicated that triptolide reduced the levels of total RNA in cells (<xref rid="b18-or-44-05-2288" ref-type="bibr">18</xref>), thus it may be considered a universal transcriptional inhibitor (<xref rid="b19-or-44-05-2288" ref-type="bibr">19</xref>), which exerts an anticancer effect. Previous studieshave revealed that triptolide also inhibited the proliferation of NSCLC and promoted cell apoptosis <italic>in vitro</italic> and <italic>in vivo</italic> (<xref rid="b10-or-44-05-2288" ref-type="bibr">10</xref>,<xref rid="b20-or-44-05-2288" ref-type="bibr">20</xref>). However, the anticancer mechanism of triptolide in NSCLC remains unclear.</p>
<p>Calcium (Ca<sup>2&#x002B;</sup>) ions are very important, ubiquitous intracellular second messenger molecules that are involved in numerous signal transduction pathways, including cell cycle progression, apoptosis, differentiation and proliferation (<xref rid="b21-or-44-05-2288" ref-type="bibr">21</xref>). Calmodulin (CaM) is a central mediator of Ca<sup>2&#x002B;</sup>-dependent signaling; it participates in the regulation of Ca<sup>2&#x002B;</sup> signaling synergistically with various CaM-binding proteins (<xref rid="b22-or-44-05-2288" ref-type="bibr">22</xref>). Important CaM-binding proteins are Ca<sup>2&#x002B;</sup>/CaM-dependent protein kinases (CaMKs), which are a family of structurally related serine/threonine protein kinases, including CaMKI, CaMKIV and Ca<sup>2&#x002B;</sup>/CaM-dependent protein kinase kinase (CaMKK) (<xref rid="b23-or-44-05-2288" ref-type="bibr">23</xref>). CaMKK has two isoforms: CaMKK&#x03B1; and CaMKK&#x03B2; (also named CaMKK1 or CaMKK2, respectively (<xref rid="b24-or-44-05-2288" ref-type="bibr">24</xref>). CaMKK&#x03B2; is predominantly expressed at higher levels in central nervous tissues and at lower levels in the thymus, testis, spleen and lung (<xref rid="b25-or-44-05-2288" ref-type="bibr">25</xref>). CaMKK&#x03B2; is known to activate CaMKI, CaMKIV and AMP-activated protein kinase (AMPK) (<xref rid="b25-or-44-05-2288" ref-type="bibr">25</xref>), and it has been discovered to be involved in the regulation of several important physiological and pathophysiological processes, including energy balance, obesity, glucose homeostasis, hematopoiesis, inflammation and cancer (<xref rid="b26-or-44-05-2288" ref-type="bibr">26</xref>). AMPK serves as a protein kinase downstream of CaMKK&#x03B2;, and CaMKK&#x03B2; forms a functional complex with AMPK to activate AMPK (<xref rid="b27-or-44-05-2288" ref-type="bibr">27</xref>). AMPK is an important energy receptor in cells, serving a crucial role in regulating energy metabolism in cells and organisms (<xref rid="b28-or-44-05-2288" ref-type="bibr">28</xref>). Activated AMPK was reported to promote catabolism, inhibit anabolism, respond to the external and internal stimuli of cells and affect basic biological processes, such as cell growth, proliferation and apoptosis (<xref rid="b28-or-44-05-2288" ref-type="bibr">28</xref>&#x2013;<xref rid="b30-or-44-05-2288" ref-type="bibr">30</xref>). In addition, AMPK and its related signaling molecules have been discovered to closely regulate the biological behaviors of NSCLC, including proliferation, apoptosis and autophagy (<xref rid="b31-or-44-05-2288" ref-type="bibr">31</xref>,<xref rid="b32-or-44-05-2288" ref-type="bibr">32</xref>). The activated CaMKK&#x03B2;/AMPK signaling pathway was revealed to inhibit mTOR, which is downstream of AMPK, thereby exerting a tumor-suppressive effect (<xref rid="b33-or-44-05-2288" ref-type="bibr">33</xref>,<xref rid="b34-or-44-05-2288" ref-type="bibr">34</xref>). Therefore, the identification of compounds that target CaMKK&#x03B2;/AMPK signaling may be a novel strategy for NSCLC treatment.</p>
<p>The present study investigated the antitumor effects and mechanism of action of triptolide in NSCLC cells <italic>in vitro</italic>. The results revealed that triptolide inhibited cell viability and promoted apoptosis through activating the CaMKK&#x03B2;/AMPK signaling pathway in NSCLC cells. In addition, the results discovered that the CaMKK&#x03B2; blocker STO-609 and the AMPK blocker Compound C significantly inhibited the apoptosis-promoting effect of triptolide.</p>
</sec>
<sec sec-type="materials|methods">
<title>Materials and methods</title>
<sec>
<title/>
<sec>
<title>Materials</title>
<p>Triptolide powder, the CaMKK&#x03B2; blocker STO-609, the AMPK blocker Compound C and BAPTA-AM were purchased from Sigma Aldrich; Merck KGaA. Primary antibodies against &#x03B2;-actin (cat. no. 4970), GAPDH (cat. no. 5174), total AKT (cat. no. 4691), phosphorylated (p)-AKT (cat. no. 4060), total AMPK (cat. no. 2603), p-AMPK (cat. no. 4188) and poly [ADP-ribose] polymerase 1 (PARP; cat. no. 9542) were purchased from Cell Signaling Technology, Inc. The FITC-conjugated goat anti-rabbit (cat. no. F1262) IgG secondary antibody was purchased from Sigma-Aldrich; Merck KGaA. The Annexin V-FITC/propidium iodide (PI) double staining kit was purchased from BD Biosciences. The Apo-ONE<sup>&#x00AE;</sup> Homogeneous Caspase-3/7 assay kit (cat. no. G7792) was purchased from Promega Corporation.</p>
</sec>
<sec>
<title>Cell lines and culture</title>
<p>NSCLC cell lines A549 and H1395 and the human bronchial epithelial cell line 16-HBE were purchased from the American Type Culture Collection. A549 and H1395 cells were cultured in RPMI-1640 medium (Gibco; Thermo Fisher Scientific, Inc.) and 16-HBE cells were cultured in DMEM (Gibco; Thermo Fisher Scientific, Inc.). All cells were supplemented with 100 &#x00B5;g/ml streptomycin, 100 U/ml penicillin and 10&#x0025; FBS (Gibco; Thermo Fisher Scientific, Inc.). The cells were all maintained at 37&#x00B0;C in a 5&#x0025; CO<sub>2</sub> incubator.</p>
</sec>
<sec>
<title>MTT assay</title>
<p>A549, H1395 and 16-HBE cells were plated at a density of 4&#x00D7;10<sup>3</sup> cells/well into 96-well plates at 37&#x00B0;C for 24 h. The cells were treated with a wide range of concentrations of triptolide (0, 50, 100, 150 and 200 nM) or the vehicle control (0.1&#x0025; DMSO), and incubated at 37&#x00B0;C for 24 h. In view of the low sensitivity of 16-HBE cells to triptolide, doses of 250 nM and 300 nM were added for 16-HBE cells. In another experiment, the cells were treated with 200 nm triptolide in the presence or absence of 5 &#x00B5;M BAPTA-AM for 24 h at 37&#x00B0;C. Each condition was plated in triplicate. Subsequently, 10 &#x00B5;l MTT dye solution (5 mg/ml; Sigma-Aldrich; Merck KGaA) was added to each well and incubated at 37&#x00B0;C for 4 h. Following the incubation, the culture medium was removed and 150 &#x00B5;l DMSO was added/well to stop the reaction. Finally, the absorbance of the plate was measured using wavelengths of 570 nm (absorbance) and 650 nm (reference) using a Multimode Microplate reader (Tecan Group, Ltd.).</p>
<p>The half maximal inhibitory concentration (IC<sub>50</sub>) was calculated using CalcuSyn version 2.1 software (Biosoft). The cell viability was calculated as the percentage change of the absorbance of treated cells/the absorbance of untreated cells.</p>
</sec>
<sec>
<title>Flow cytometric analysis of apoptosis</title>
<p>H1395 cells were treated with 0, 50, 100 or 200 nM triptolide at 37&#x00B0;C for 24 h. In another experiment, H1395 cells were treated with 200 nM triptolide, 10 &#x00B5;M STO-609, 10 &#x00B5;M Compound C or combinations at 37&#x00B0;C for 24 h. H1395 cells were harvested by centrifugation for 5 min at 200 &#x00D7; g at room temperature and the cells were washed in PBS and then suspended in 1X binding buffer (100 &#x00B5;l). A dye solution consisting of 5 &#x00B5;l PI and 5 &#x00B5;l Annexin V-FITC was added and after mixing, the cells were incubated for 15 min at room temperature in the dark. Apoptotic cells were then analyzed using a BD FACSAria III flow cytometer (BD Biosciences) and analyzed using FlowJo version 7.6.1 software (FlowJo LLC). Single Annexin V-FITC positive cells were considered as early apoptotic, while both PI and Annexin V-FITC positive cells were considered as late apoptotic. Meanwhile, single PI positive cells indicated necrosis. The apoptotic rate was determined as the percentage of early and late apoptotic cells.</p>
</sec>
<sec>
<title>Western blotting</title>
<p>H1395 cells were treated with 0, 25, 50, 100 or 200 nM triptolide at 37&#x00B0;C for 24 h. In another experiment, H1395 cells were treated with 200 nM triptolide, 10 &#x00B5;M STO-609, 10 &#x00B5;M Compound C or combinations at 37&#x00B0;C for 24 h. Total protein was extracted from cells using RIPA lysis buffer (Cell Signaling Technology, Inc.) and freshly PMSF (1 M; Sigma-Aldrich; Merck KGaA). Total protein was quantified using a DC protein assay kit (Bio-Rad Laboratories, Inc.) and 30 &#x00B5;g protein/lane was separated via 10&#x0025; SDS-PAGE. The separated proteins were subsequently transferred onto a polyvinylidene difluoride membrane (EMD Millipore) and blocked with 5&#x0025; skimmed milk at room temperature for 1 h. Then, the membranes were incubated at 4&#x00B0;C with primary antibodies (1:1,000) overnight. Following the primary antibody incubation, the membranes were washed three times with TBS-0.05&#x0025; Tween-20 and incubated with a FITC-conjugated secondary antibody (1:10,000) at room temperature for 1.5 h. GAPDH or &#x03B2;-actin were used as the loading controls and for normalization. The membranes were then scanned using the Odyssey Infrared Imaging system (Li-Cor Biosciences). Image Lab version 5.0 software (Bio-Rad Laboratories, Inc.) was used for image acquisition and densitometric analysis.</p>
</sec>
<sec>
<title>Intracellular Ca<sup>2&#x002B;</sup> measurement</title>
<p>A total of 1&#x00D7;10<sup>5</sup> H1395 cells/ml were cultured and treated with 0, 50, 100 or 200 nM triptolide at 37&#x00B0;C for 24 h. Cells were washed with PBS three times and stained with 1 &#x00B5;M Fluo-3 AM (cat no. S1056; Beyotime Institute of Biotechnology) for 30 min at 37&#x00B0;C in the dark. Fluo-3 AM is cleaved by intracellular esterases to form Fluo-3 after entering the cells, which emits green fluorescence upon binding to Ca<sup>2&#x002B;</sup> (<xref rid="b35-or-44-05-2288" ref-type="bibr">35</xref>). Flow cytometric analysis was performed to analyze the intracellular Ca<sup>2&#x002B;</sup> concentration using a BD BDFACSAria&#x2122; III flow cytometer (BD Biosciences), an excitation wavelength of 488 nm and an emission wavelength of 525 nm. The data was analyzed using FlowJo 7.6.1 software (FlowJo LLC).</p>
</sec>
<sec>
<title>Caspase-3/7 activity apoptosis assay</title>
<p>Caspase-3/7 activity was measured using an Apo-ONE<sup>&#x00AE;</sup> Homogeneous Caspase-3/7 assay kit, according to the manufacturer&#x0027;s protocol. Briefly, H1395 cells were seeded in 96-well plates at a density of 4&#x00D7;10<sup>3</sup> cells/well. The cells were treated with different concentrations (0, 50, 100, 150, 200 or 250 nM) of triptolide at 37&#x00B0;C and 5&#x0025; CO<sub>2</sub> for 24 h. Caspase-3/7 assay loading solution was composed by adding 50 &#x00B5;l caspase-3/7 substrate (Component A) to 10 ml assay buffer (Component B) and mixing well. Then, 100 &#x00B5;l/well caspase-3/7 assay loading solution was added and incubated at room temperature for &#x003E;1 h in the dark. The luminescence intensity was measured using a Multimode microplate reader (BioTek Instruments, Inc.) with an excitation wavelength of 485 nm and an emission wavelength of 530 nm.</p>
</sec>
<sec>
<title>Cell morphology detection</title>
<p>A total of 1&#x00D7;10<sup>5</sup> H1395 cells were treated with 200 nM triptolide, 10 &#x00B5;M STO-609, 10 &#x00B5;M Compound C or combinations at 37&#x00B0;C for 24 h and visualized using an inverted light microscope (Leica Microsystems GmbH; magnification, &#x00D7;100).</p>
</sec>
<sec>
<title>Statistical analysis</title>
<p>Statistical analysis was performed using GraphPad Prism 8 software (GraphPad Software, Inc.) and SPSS 22.0 software (IBM Corp.). The data from three independent experiments are presented as the mean &#x00B1; SD, unless otherwise noted. Statistically significant differences were determined using a one-way ANOVA, followed by a Bonferroni&#x0027;s post hoc test. P&#x003C;0.05 was considered to indicate a statistically significant difference.</p>
</sec>
</sec>
</sec>
<sec sec-type="results">
<title>Results</title>
<sec>
<title/>
<sec>
<title>Triptolide effectively inhibits the cell viability of NSCLC cells</title>
<p>The cytotoxicity of triptolide was determined using an MTT assay; briefly, the effects of triptolide on two NSCLC cell lines, H1395 and A549 were determined following the incubation of cells with a range of different concentrations of triptolide (0, 50, 100, 150 or 200 nM) for 24 h. The cell viability of both NSCLC cell lines was significantly inhibited by triptolide in a dose-dependent manner (<xref rid="f1-or-44-05-2288" ref-type="fig">Fig. 1A</xref>). The IC<sub>50</sub> values of triptolide in A549 and H1395 cell lines at 24 h was determined to be 140.3 and 143.2 nM, respectively. In addition, the effect of triptolide in 16-HBE cells was investigated; it was identified that triptolide had the weakest inhibitory effect on 16-HBE cells, demonstrating an IC<sub>50</sub> value of 286.4 nM (<xref rid="f1-or-44-05-2288" ref-type="fig">Fig. 1B</xref>). These results indicated that triptolide may exert a cytotoxic effect in both H1395 and A549 NSCLC cell lines.</p>
</sec>
<sec>
<title>Triptolide induces apoptosis in NSCLC cells</title>
<p>To determine whether triptolide induced apoptosis in NSCLC cells, H1395 cells were treated with the indicated concentrations (0, 50, 100, 150 or 200 nM) of triptolide at 37&#x00B0;C for 24 h and stained with Annexin V-FITC/PI. Annexin V-FITC-stained cells and double-stained cells were considered to be in the early and late stages of apoptosis, respectively. The results revealed that the percentage of apoptotic cells significantly increased in a dose-dependent manner following the treatment with triptolide compared with the untreated cells (<xref rid="f1-or-44-05-2288" ref-type="fig">Fig. 1C</xref>). These results indicated that triptolide may be a potent inducer of apoptosis.</p>
<p>The activation of PARP and caspase-3/7, which are the most commonly used indicators of apoptosis (<xref rid="b36-or-44-05-2288" ref-type="bibr">36</xref>) was subsequently analyzed. The protein expression levels of p-AKT, p-AKT and cleaved PARP were detected using western blotting. As the triptolide concentration increased, the expression levels of p-AKT/AKT were increasingly downregulated compared with the untreated cells, while the expression levels of cleaved PARP protein were gradually upregulated and the expression levels of total AKT protein remained unchanged (<xref rid="f2-or-44-05-2288" ref-type="fig">Fig. 2A</xref>).</p>
<p>To determine the effect of triptolide on caspase-3/7 protein activity in the NSCLC cell line, H1395, the cells were treated with 0, 50, 100, 150 or 200 nM triptolide at 37&#x00B0;C for 24 h and the luminescence intensity was measured to determine the degree of caspase-3/7 protein activation. As the concentration of triptolide increased, the activity of caspase-3/7 protein significantly increased in a dose-dependent manner compared with the control cells (<xref rid="f2-or-44-05-2288" ref-type="fig">Fig. 2B</xref>).</p>
</sec>
<sec>
<title>Triptolide induces apoptosis through promoting Ca<sup>2&#x002B;</sup> influx</title>
<p>Since it has been previously demonstrated that triptolide is able to regulate Ca<sup>2&#x002B;</sup> signaling (<xref rid="b37-or-44-05-2288" ref-type="bibr">37</xref>) it was investigated whether triptolide was involved in apoptosis induction by analyzing the concentration of Ca<sup>2&#x002B;</sup> in NSCLC cells using flow cytometry. H1395 cells were treated with 0, 50, 100 or 200 nM triptolide at 37&#x00B0;C for 24 h and the fluorescence intensity of Ca<sup>2&#x002B;</sup> in the cytoplasm was detected. As the concentration of triptolide increased, the cytoplasmic Ca<sup>2&#x002B;</sup> levels were observed to significantly increase in a dose-dependent manner (9.58, 26.1, 40.9 and 61.7&#x0025; for 0, 50, 100 and 200 nM triptolide, respectively; <xref rid="f3-or-44-05-2288" ref-type="fig">Fig. 3C and D</xref>). These results suggested that triptolide may increase intracellular Ca<sup>2&#x002B;</sup> levels in NSCLC in a dose-dependent manner.</p>
<p>Subsequently, the association between triptolide-induced apoptosis and Ca<sup>2&#x002B;</sup> influx was investigated. BAPTA-AM, a selective calcium chelator, was used to reduce the activation of Ca<sup>2&#x002B;</sup> signaling. Compared with the triptolide treatment alone group, the cell viability was partially reversed in the BAPTA-AM treatment and BAPTA-AM&#x002B; triptolide groups (<xref rid="f2-or-44-05-2288" ref-type="fig">Fig. 2E</xref>). These results indicated that BAPTA-AM may effectively reduce the apoptosis induced by triptolide by decreasing intracellular Ca<sup>2&#x002B;</sup> concentrations.</p>
</sec>
<sec>
<title>Triptolide-induced apoptosis may require the activation of the CaMKK&#x03B2;/AMPK signaling pathway</title>
<p>As CaMKK&#x03B2;/AMPK signaling is one of the main signaling pathways downstream of Ca<sup>2&#x002B;</sup> signaling (<xref rid="b38-or-44-05-2288" ref-type="bibr">38</xref>) the effect of triptolide on the activation of CaMKK&#x03B2;/AMPK signaling was investigated. Following the increases in triptolide concentration, the expression levels of p-AMPK/AMPK were significantly upregulated compared with the untreated cells in a dose-dependent manner (<xref rid="f3-or-44-05-2288" ref-type="fig">Fig. 3A</xref>). These results indicated that triptolide may promote the phosphorylation of AMPK. Next, the specific blockers of CaMKK&#x03B2; and AMPK, STO-609 (10 &#x00B5;M) and Compound C (10 &#x00B5;M), were used to inhibit the anticancer effect of triptolide (200 nM). Both STO-609 and compound C effectively blocked the decrease of p-AKT and the cleavage of PARP induced by triptolide (<xref rid="f3-or-44-05-2288" ref-type="fig">Fig. 3B</xref>). The cleavage of PARP is the ultimate characteristic of apoptosis (<xref rid="b39-or-44-05-2288" ref-type="bibr">39</xref>). Thus, the above results indicated that triptolide may induce apoptosis through CaMKK&#x03B2;/AMPK signaling. In the caspase-3/7 activity assay, compared with the triptolide treatment group, the activation of caspase-3/7 was partially decreased in the co-treated groups (STO-609/Compound C &#x002B; triptolide groups; <xref rid="f3-or-44-05-2288" ref-type="fig">Fig. 3C</xref>). Moreover, the effects of STO-609 and Compound C on cell viability were verified; compared with the triptolide treatment alone group, the cell viability was increased in the co-treated groups (STO-609/Compound C &#x002B; triptolide groups; <xref rid="f3-or-44-05-2288" ref-type="fig">Fig. 3D</xref>). Thus, these two treatments partially reversed the effects of triptolide. The changes of cell morphology were consistent with the results of the viability assay (<xref rid="f4-or-44-05-2288" ref-type="fig">Fig. 4A</xref>).</p>
<p>Finally, the effect of STO-609 and Compound C on cell apoptosis was analyzed. Following treatment, cells were stained with Annexin V-FITC/PI. Both inhibitors in the co-treatment groups (STO-609/Compound C &#x002B; triptolide) significantly decreased the apoptotic rate compared with triptolide treatment alone (<xref rid="f4-or-44-05-2288" ref-type="fig">Fig. 4B</xref>). These results indicated that STO-609 and Compound C may significantly attenuate the anticancer effect of triptolide, which suggested that triptolide-induced apoptosis may require the activation of the CaMKK&#x03B2;/AMPK signaling pathway.</p>
<p>Overall, the findings of the present study suggested that triptolide may induce endoplasmic reticulum (ER) stress (<xref rid="b11-or-44-05-2288" ref-type="bibr">11</xref>,<xref rid="b40-or-44-05-2288" ref-type="bibr">40</xref>) which subsequently promotes Ca<sup>2&#x002B;</sup> to be released from the ER into the cytoplasm (<xref rid="b11-or-44-05-2288" ref-type="bibr">11</xref>). The cytoplasmic free Ca<sup>2&#x002B;</sup> is then able to induce apoptosis by inhibiting mTOR via the CaMKK&#x03B2;-mediated activation of AMPK in H1395 cells (<xref rid="f5-or-44-05-2288" ref-type="fig">Fig. 5</xref>).</p>
</sec>
</sec>
</sec>
<sec sec-type="discussion">
<title>Discussion</title>
<p>In previous years, the anticancer activity of triptolide has become a research hotspot that has attracted increasing attention from researchers; for example, within certain types of cancers such as pancreatic (<xref rid="b41-or-44-05-2288" ref-type="bibr">41</xref>), breast (<xref rid="b12-or-44-05-2288" ref-type="bibr">12</xref>) and lung cancer (<xref rid="b10-or-44-05-2288" ref-type="bibr">10</xref>). The broad-spectrum anticancer effect of triptolide has been discovered to mainly promote the induction of apoptosis, and the inhibition of proliferation and metastasis through various molecules and signaling pathways (<xref rid="b42-or-44-05-2288" ref-type="bibr">42</xref>,<xref rid="b43-or-44-05-2288" ref-type="bibr">43</xref>). The results of the present study suggested that triptolide may be a potent inducer of apoptosis and exert a significant cytotoxic effect over NSCLC cell lines. However, although triptolide has a variety of pharmacological effects, its clinical application is greatly limited due to its toxicity (<xref rid="b44-or-44-05-2288" ref-type="bibr">44</xref>). In view of its broad-spectrum anticancer activity against a variety of types of tumor, it is suggested that low doses of triptolide in combination with other drugs may exert an anticancer effect, while reducing its toxicity and side effects.</p>
<p>CaMKK&#x03B2; is a Ca<sup>2&#x002B;</sup>-dependent kinase, whose activity is mediated by intracellular Ca<sup>2&#x002B;</sup> signaling (<xref rid="b26-or-44-05-2288" ref-type="bibr">26</xref>). In the present study, it was demonstrated that triptolide significantly increased Ca<sup>2&#x002B;</sup> levels in the cytoplasm, while the calcium chelator BAPTA-AM partially attenuated the cytotoxic effect of triptolide. Therefore, these findings suggested that triptolide may induce elevations in intracellular Ca<sup>2&#x002B;</sup> levels and activate CaMKK&#x03B2;.</p>
<p>AMPK, a heterotrimeric complex comprising a catalytic &#x03B1; subunit, and regulatory &#x03B2; and &#x03B3; subunits, has been primarily studied as a major regulator of energy balance in both single cells and the whole organism (<xref rid="b45-or-44-05-2288" ref-type="bibr">45</xref>). Activated AMPK has been discovered to enhance catabolism, inhibit anabolism, respond to the external and internal stimulation of cells and affect basic biological processes, such as cell growth, proliferation and apoptosis (<xref rid="b28-or-44-05-2288" ref-type="bibr">28</xref>&#x2013;<xref rid="b30-or-44-05-2288" ref-type="bibr">30</xref>). Shao <italic>et al</italic> (<xref rid="b46-or-44-05-2288" ref-type="bibr">46</xref>) reported that the activation of the AMPK signaling pathway promoted growth inhibition and apoptosis in A549 lung cancer cells. The predominant upstream kinases of AMPK are liver kinase B1 (LKB1) and CaMKK&#x03B2; (<xref rid="b47-or-44-05-2288" ref-type="bibr">47</xref>). Previous studies have reported that in LKB1-deficient cells, AMPK was activated by the phosphorylation of the CaMKK&#x03B2; signaling pathway when Ca<sup>2&#x002B;</sup> levels were elevated (<xref rid="b38-or-44-05-2288" ref-type="bibr">38</xref>). Other studies have identified that the LKB1 gene was mutated and/or functionally inactivated in ~30&#x0025; of NSCLCs (<xref rid="b48-or-44-05-2288" ref-type="bibr">48</xref>&#x2013;<xref rid="b50-or-44-05-2288" ref-type="bibr">50</xref>). Therefore, it was hypothesized that the Ca<sup>2&#x002B;</sup>-mediated CaMKK&#x03B2;/AMPK signaling pathway may serve an important role in the occurrence and development of lung cancer. In the present study, the expression levels of p-AMPK protein were upregulated in a dose-dependent manner following the treatment with triptolide, which suggested that the treatment with triptolide may activate the CaMKK&#x03B2;/AMPK signaling pathway. AMPK and mTOR are crucial molecules for the regulation of bioenergy metabolism and biosynthesis, and their negative regulatory relationship can promote apoptosis (<xref rid="b51-or-44-05-2288" ref-type="bibr">51</xref>). Apoptosis is a major mechanism of cell death; thus, the induction of cell death may represent the most promising anticancer treatment (<xref rid="b52-or-44-05-2288" ref-type="bibr">52</xref>). Activated AMPK inhibits downstream mTOR complex 1 activity, leading to the inhibition of caspase-3 phosphorylation, hindering protein synthesis, arresting the cell cycle in the G0/G1 phase, arresting cell growth and proliferation and inducing apoptosis (<xref rid="b53-or-44-05-2288" ref-type="bibr">53</xref>). In the present study, it was revealed that triptolide induced apoptosis in a dose-dependent manner. In addition, it was also discovered that the activation of caspase-3/7 and cleaved-PARP proteins was significantly increased in NSCLC cells treated with triptolide. Thus, to further validate the critical role of the CaMKK&#x03B2;/AMPK signaling pathway in triptolide-induced apoptosis, triptolide-treated NSCLC cells were co-cultured with the CaMKK&#x03B2; inhibitor STO-609 or the AMPK inhibitor Compound C. Compared with the triptolide treatment alone, STO-609 and Compound C significantly attenuated triptolide-induced caspase-3/7 and cleaved PARP protein activation and increased the phosphorylation of AKT. In addition, STO-609 and Compound C partially reversed the cytotoxic and apoptotic effects induced by triptolide. Zhao <italic>et al</italic> (<xref rid="b11-or-44-05-2288" ref-type="bibr">11</xref>) previously reported that triptolide promoted protective autophagy in prostate cancer by inducing CaMKK&#x03B2;/AMPK signaling activation. AMPK signaling is also an important signal for the activation of autophagy (<xref rid="b54-or-44-05-2288" ref-type="bibr">54</xref>) In certain types of cancer, such as ovarian, breast and prostate cancer, following the induction of apoptosis by drugs, cells often end up undergoing autophagy, that is, autophagic death (<xref rid="b55-or-44-05-2288" ref-type="bibr">55</xref>). In the future, one must investigate whether triptolide induces autophagy and apoptosis in lung cancer cells through CaMKK/AMPK signaling. This may be an effective strategy for cancer drug discovery. The present study indicated that triptolide may induce apoptosis through CaMKK&#x03B2;/AMPK signaling in lung cancer cells. Unfortunately, the current study neither determined the toxicological effects of triptolide <italic>in vivo</italic>, nor verified the mechanism of action of triptolide <italic>in vivo</italic>. Therefore, a complete explanation of its mechanism of action is lacking. In the future, the aim is to further investigate the mechanism of triptolide in NSCLC in depth.</p>
<p>In conclusion, the findings of the present study suggested that triptolide may promote the elevation of Ca<sup>2&#x002B;</sup> levels in the cytoplasm of NSCLC, induce apoptosis and inhibit cell viability through activating the CaMKK&#x03B2;/AMPK signaling pathway. These findings revealed a novel mechanism by which triptolide may induce apoptosis in NSCLC cells. Thus, triptolide may represent a promising drug for the treatment of patients with NSCLC in the future.</p>
</sec>
</body>
<back>
<ack>
<title>Acknowledgements</title>
<p>Not applicable.</p>
</ack>
<sec>
<title>Funding</title>
<p>The present study was supported by The National Natural Science Foundation of China (grant. no. 81270092) and The Scientific and Technological Project of Shiyan City of Hubei Province of China (grant no. ZD2013014).</p>
</sec>
<sec>
<title>Availability of data and materials</title>
<p>The datasets used and/or analyzed during the current study are available from the corresponding author on reasonable request.</p>
</sec>
<sec>
<title>Authors&#x0027; contributions</title>
<p>TR, YJT and MWC conceived and designed the study; TR, HSW, YL, XQ performed the laboratory experiments; MFW and CC analyzed the data; TR wrote the draft of the manuscript; and MWC, YJT and MFW reviewed and edited the manuscript. All authors read and approved the final manuscript.</p>
</sec>
<sec>
<title>Ethics approval and consent to participate</title>
<p>Not applicable.</p>
</sec>
<sec>
<title>Patient consent for publication</title>
<p>Not applicable.</p>
</sec>
<sec>
<title>Competing interests</title>
<p>The authors declare that they have no competing interests.</p>
</sec>
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<floats-group>
<fig id="f1-or-44-05-2288" position="float">
<label>Figure 1.</label>
<caption><p>Triptolide effectively inhibits the cell viability of NSCLC cells. (A) MTT assay results demonstrated that triptolide decreased the cell viability of H1395 and A549 cells following 24 h of treatment. (B) MTT assay was used to analyze the inhibitory effect of 24-h triptolide treatment in 16-HBE cells. (C) Triptolide induced apoptosis in H1395 cells at different concentrations, as determined using flow cytometry. &#x002A;P&#x003C;0.05, &#x002A;&#x002A;&#x002A;P&#x003C;0.001 vs. 0 nM triptolide. PI, propidium iodide.</p></caption>
<graphic xlink:href="OR-44-05-2288-g00.tif"/>
</fig>
<fig id="f2-or-44-05-2288" position="float">
<label>Figure 2.</label>
<caption><p>Triptolide induces apoptosis in NSCLC cells. (A) Following treatment with triptolide (0, 25, 50, 100 or 200 nM) for 24 h, the protein expression levels of AKT, p-AKT, PARP and cleaved PARP in H1395 cells were determined using western blotting. The phosphorylated and total proteins detected on the different membranes were from the same extract and used the same loading concentration/mass. &#x002A;&#x002A;P&#x003C;0.01 vs. 0 nM triptolide. (B) Activation level of caspase-3/7 protein in each group was detected. &#x002A;&#x002A;P&#x003C;0.01, &#x002A;&#x002A;&#x002A;P&#x003C;0.001 vs. 0 nM triptolide. (C) Levels of Ca<sup>2&#x002B;</sup> in H1395 cells were analyzed following the treatment with triptolide for 24 h using flow cytometry and Fluo-3 staining. (D) Quantification of the Ca<sup>2&#x002B;</sup> levels from part (C). &#x002A;P&#x003C;0.05, &#x002A;&#x002A;&#x002A;P&#x003C;0.001 vs. 0 nM triptolide. (E) Compared with the triptolide treatment group, BAPTA-AM partially attenuated the triptolide-mediated effects on the cell viability of H1395 cells. &#x002A;P&#x003C;0.05, &#x002A;&#x002A;P&#x003C;0.01, &#x002A;&#x002A;&#x002A;P&#x003C;0.001 vs. Triptolide. p-, phosphorylated; PARP, poly[ADP-ribose] polymerase 1; Ca<sup>2&#x002B;</sup>, calcium.</p></caption>
<graphic xlink:href="OR-44-05-2288-g01.tif"/>
</fig>
<fig id="f3-or-44-05-2288" position="float">
<label>Figure 3.</label>
<caption><p>Triptolide induces apoptosis through promoting Ca<sup>2&#x002B;</sup> influx. (A) Following the treatment with triptolide (0, 25, 50, 100 or 200 nM) for 24 h, the protein expression levels of AMPK and p-AMPK in H1395 cells were determined by western blotting. The phosphorylated and total proteins detected on the different membranes were from the same extract and used the same loading concentration/mass. (B) Effects of STO-609 and Compound C on the activation of p-AKT and PARP were detected at western blotting following the treatment with 200 nM triptolide. The left panel demonstrates the western blot results for STO-609 and the right panel shows the western blot results for Compound C. The phosphorylated and total proteins detected on the different membranes were from the same extract and used the same loading concentration/mass. (C) STO-609 and Compound C partially attenuated the activation of caspase-3/7 induced by 200 nM triptolide in H1395 cells. (D) Compared with the triptolide treatment group, STO-609 and Compound C partially reversed the reduced cell viability induced by triptolide. &#x002A;P&#x003C;0.05, &#x002A;&#x002A;P&#x003C;0.01, &#x002A;&#x002A;&#x002A;P&#x003C;0.001 vs. control/0 nM triptolide. p-, phosphorylated; PARP, poly[ADP-ribose] polymerase 1.</p></caption>
<graphic xlink:href="OR-44-05-2288-g02.tif"/>
</fig>
<fig id="f4-or-44-05-2288" position="float">
<label>Figure 4.</label>
<caption><p>Triptolide-induced apoptosis may require the activation of the CaMKK&#x03B2;/AMPK signaling pathway. (A) Compared with the triptolide treatment group, STO-609 and Compound C significantly attenuated the changes of cell morphology induced by triptolide. Magnification, &#x00D7;100. (B) Flow cytometric analysis of the apoptotic effect of different treatments in H1395 cells. &#x002A;&#x002A;&#x002A;P&#x003C;0.001. PI, propidium iodide.</p></caption>
<graphic xlink:href="OR-44-05-2288-g03.tif"/>
</fig>
<fig id="f5-or-44-05-2288" position="float">
<label>Figure 5.</label>
<caption><p>Schematic diagram of the anticancer mechanism of action of triptolide. Triptolide induces ER stress, which causes Ca<sup>2&#x002B;</sup> to be released from the ER into the cytoplasm. Cytoplasmic free Ca<sup>2&#x002B;</sup> induces apoptosis by inhibiting mTOR via the CaMKK&#x03B2;-mediated activation of AMPK in H1395 cells. PARP, poly[ADP-ribose] polymerase 1; CaMKK&#x03B2;, calmodulin-dependent protein kinase kinase &#x03B2;; AMPK, AMP-activated protein kinase; Ca<sup>2&#x002B;</sup>, calcium; P, phosphorylated; ER, endoplasmic reticulum.</p></caption>
<graphic xlink:href="OR-44-05-2288-g04.tif"/>
</fig>
</floats-group>
</article>