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<front>
<journal-meta>
<journal-id journal-id-type="nlm-ta">Molecular Medicine Reports</journal-id>
<journal-title-group>
<journal-title>Molecular Medicine Reports</journal-title>
</journal-title-group>
<issn pub-type="ppub">1791-2997</issn>
<issn pub-type="epub">1791-3004</issn>
<publisher>
<publisher-name>D.A. Spandidos</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3892/mmr.2023.13149</article-id>
<article-id pub-id-type="publisher-id">MMR-29-2-13149</article-id>
<article-categories>
<subj-group>
<subject>Articles</subject>
</subj-group>
</article-categories>
<title-group>
<article-title>Tea seed saponin‑reduced extract ameliorates palmitic acid‑induced insulin resistance in HepG2 cells</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author"><name><surname>Cho</surname><given-names>Shu-Chi</given-names></name>
<xref rid="af1-mmr-29-2-13149" ref-type="aff"/></contrib>
<contrib contrib-type="author"><name><surname>Shaw</surname><given-names>Shyh-Yu</given-names></name>
<xref rid="af1-mmr-29-2-13149" ref-type="aff"/>
<xref rid="c1-mmr-29-2-13149" ref-type="corresp"/></contrib>
</contrib-group>
<aff id="af1-mmr-29-2-13149">Department of Chemistry, National Cheng Kung University, Tainan 701, Taiwan, R.O.C.</aff>
<author-notes>
<corresp id="c1-mmr-29-2-13149"><italic>Correspondence to</italic>: Dr Shyh-Yu Shaw, Department of Chemistry, National Cheng Kung University, 1 University Road, Tainan 701, Taiwan, R.O.C., E-mail: <email>chengdaojing-88@163.com syshaw@mail.ncku.edu.tw </email></corresp>
</author-notes>
<pub-date pub-type="collection">
<month>02</month>
<year>2024</year></pub-date>
<pub-date pub-type="epub">
<day>14</day>
<month>12</month>
<year>2023</year></pub-date>
<volume>29</volume>
<issue>2</issue>
<elocation-id>26</elocation-id>
<history>
<date date-type="received"><day>19</day><month>07</month><year>2023</year></date>
<date date-type="accepted"><day>29</day><month>11</month><year>2023</year></date>
</history>
<permissions>
<copyright-statement>Copyright: &#x00A9; Cho et al.</copyright-statement>
<copyright-year>2023</copyright-year>
<license license-type="open-access">
<license-p>This is an open access article distributed under the terms of the <ext-link ext-link-type="uri" xlink:href="https://creativecommons.org/licenses/by-nc-nd/4.0/">Creative Commons Attribution-NonCommercial-NoDerivs License</ext-link>, which permits use and distribution in any medium, provided the original work is properly cited, the use is non-commercial and no modifications or adaptations are made.</license-p></license>
</permissions>
<abstract>
<p>Tea (<italic>Camellia sinensis</italic>) seed cake is a potential resource that contains a wealth of bioactive compounds. However, the high toxicity of tea saponins in tea seed cake restricts its applications. The present study aimed to i) develop a method of extracting bioactive compounds and reducing tea saponins during the process of tea seed cake extraction and ii) investigate the anti-insulin resistance effect of tea seed saponin-reduced extract (TSSRE) in a palmitic acid (PA)-induced insulin resistance HepG2-cell model. The concentration of tea saponins in TSSRE was &#x007E;10-fold lower than that in tea seed crude extract (TSCE) after the saponin-reduction process. In addition, TSSRE cytotoxicity was significantly lower than that of TSCE in HepG2 cells. TSSRE treatment improved glucose consumption as well as glucose transporter (GLUT) 2 and GLUT4 expression levels in PA-stimulated HepG2 cells. Moreover, TSSRE enhanced the phosphorylation of the insulin receptor substrate 1/protein kinase B/forkhead box protein O1/glycogen synthase kinase 3&#x03B2; and inhibited the elevated expression of phosphoenolpyruvate carboxykinase in PA-exposed HepG2 cells. The effect of TSSRE on the mediation of the insulin signaling pathway was attributed to the inhibition of PA-induced mitogen-activated protein kinase activation. The findings of the present study indicated that TSSRE ameliorates hepatic insulin resistance by ameliorating insulin signaling and inhibiting inflammation-related pathways.</p>
</abstract>
<kwd-group>
<kwd>TSSRE</kwd>
<kwd>TSCE</kwd>
<kwd>tea saponins</kwd>
<kwd>insulin resistance</kwd>
<kwd>MAPK</kwd>
</kwd-group>
<funding-group>
<award-group>
<funding-source>Higher Education Sprout Project, Ministry of Education to the Headquarters of University Advancement at National Cheng Kung University under Interdisciplinary Research Center on Material and Medicinal Chemistry</funding-source>
<award-id>D112-G2202</award-id>
</award-group>
<funding-statement>The present study was supported by Higher Education Sprout Project, Ministry of Education to the Headquarters of University Advancement at National Cheng Kung University under Interdisciplinary Research Center on Material and Medicinal Chemistry (D112-G2202).</funding-statement>
</funding-group>
</article-meta>
</front>
<body>
<sec sec-type="intro">
<title>Introduction</title>
<p>Diabetes mellitus is a chronic metabolic disorder characterized by high blood sugar levels (hyperglycemia) and a concurrent gradual and irreversible decline in pancreatic insulin secretion over a prolonged period (<xref rid="b1-mmr-29-2-13149" ref-type="bibr">1</xref>,<xref rid="b2-mmr-29-2-13149" ref-type="bibr">2</xref>). Of all types of diabetes mellitus, type 2 diabetes mellitus accounts for &#x007E;90&#x0025; of cases (<xref rid="b3-mmr-29-2-13149" ref-type="bibr">3</xref>). Insulin resistance, also known as impaired insulin sensitivity, is a pathological state of insulin sensitivity where cells do not respond properly to the signal from insulin (<xref rid="b4-mmr-29-2-13149" ref-type="bibr">4</xref>). Insulin-sensitive tissues, such as skeletal muscle, adipose tissue and liver tissue, exhibit diminished glucose uptake into the cytoplasm in patients with insulin resistance (<xref rid="b5-mmr-29-2-13149" ref-type="bibr">5</xref>). Severely, long-term insulin resistance causes hyperglycemia and hyperinsulinemia, eventually leading to type 2 diabetes mellitus (<xref rid="b5-mmr-29-2-13149" ref-type="bibr">5</xref>).</p>
<p>Insulin resistance is mainly linked to an elevated free fatty acid (FFA) content in the blood resulting from a high-calorie diet (<xref rid="b4-mmr-29-2-13149" ref-type="bibr">4</xref>). After binding to an insulin receptor, insulin initiates the downstream signaling pathway to maintain glucose homeostasis in the liver (<xref rid="b6-mmr-29-2-13149" ref-type="bibr">6</xref>). However, excess circulating FFAs in the blood lead to lipid accumulation, causing impaired insulin signaling (<xref rid="b7-mmr-29-2-13149" ref-type="bibr">7</xref>). Several serine kinases, including p38, extracellular signal-regulated kinase (ERK), and c-Jun-N-terminal kinase (JNK), are activated by FFA accumulation and FFA metabolites (<xref rid="b8-mmr-29-2-13149" ref-type="bibr">8</xref>,<xref rid="b9-mmr-29-2-13149" ref-type="bibr">9</xref>). These serine kinases suppress insulin receptor substrate 1 (IRS1) phosphorylation, thereby inhibiting downstream phosphorylation of protein kinase B (Akt) (<xref rid="b10-mmr-29-2-13149" ref-type="bibr">10</xref>&#x2013;<xref rid="b12-mmr-29-2-13149" ref-type="bibr">12</xref>). In liver tissue, glycogen synthase kinase 3&#x03B2; (GSK-3&#x03B2;) and forkhead box protein O1 (FOXO1) are activated by the reduction in Akt activity, leading to decreased glycogen synthesis and elevated gluconeogenesis, which are critical factors in the development of hepatic insulin resistance (<xref rid="b13-mmr-29-2-13149" ref-type="bibr">13</xref>,<xref rid="b14-mmr-29-2-13149" ref-type="bibr">14</xref>). Therefore, targeting the IRS1/Akt/GSK-3&#x03B2;/FOXO1 signaling pathway is considered a key factor in insulin resistance therapy (<xref rid="b15-mmr-29-2-13149" ref-type="bibr">15</xref>).</p>
<p><italic>Camellia sinensis (C. sinensis)</italic>, known as the tea plant, is an evergreen, medium-sized woody shrub widely distributed across China, Taiwan and Southeast Asia (<xref rid="b16-mmr-29-2-13149" ref-type="bibr">16</xref>). The leaves and leaf buds of <italic>C. sinensis</italic> are used to produce the most commonly consumed non-alcoholic beverage, tea. In addition to its high economic value, <italic>C. sinensis</italic> reportedly provides numerous health benefits for humans, such as anticancer activity, antioxidant activity, cardiovascular benefits and anti-diabetic effects (<xref rid="b17-mmr-29-2-13149" ref-type="bibr">17</xref>). Tea seed, that is, the seed of <italic>C. sinensis</italic>, is typically used to produce tea seed oil, which comprises &#x007E;80&#x0025; unsaturated fatty acids (<xref rid="b18-mmr-29-2-13149" ref-type="bibr">18</xref>). Defatted tea seed, namely, tea seed cake, is an agricultural byproduct that contains numerous bioactive compounds, rendering it a promising resource. (<xref rid="b19-mmr-29-2-13149" ref-type="bibr">19</xref>). For instance, tea seed cake extract exerts an effect on 5-reductase inhibition (<xref rid="b20-mmr-29-2-13149" ref-type="bibr">20</xref>). Moreover, a kaempferol triglycoside purified from tea seed cake was found to attenuate lipopolysaccharide (LPS)-stimulated inflammation and cognitive impairment in a mouse model (<xref rid="b21-mmr-29-2-13149" ref-type="bibr">21</xref>), and flavonoids separated from tea seed cake also proved to ameliorate tumor necrosis factor alpha (TNF-&#x03B1;)-induced insulin resistance in HepG2 cells (<xref rid="b22-mmr-29-2-13149" ref-type="bibr">22</xref>). However, the high toxicity of tea saponins restricts the application of tea seed cake in livestock feed production or supplementation (<xref rid="b23-mmr-29-2-13149" ref-type="bibr">23</xref>).</p>
<p>Oleiferasaponin B<sub>2</sub>, a tea saponin, exhibits strong cytotoxicity with a half maximal inhibitory concentration (IC<sub>50</sub>) of 6.3 mM (SK-OV-3), 0.8 mM (HCT15), 9.2 mM (SK-MEL-2) and 8.4 mM (A549), while oleiferasaponin B<sub>1</sub> exhibits IC<sub>50</sub> values of 11.3 mM (SK-OV-3), 1.6 mM (HCT15), 13.9 mM (SK-MEL-2) and 18.5 mM (A549) (<xref rid="b24-mmr-29-2-13149" ref-type="bibr">24</xref>). Furthermore, a few tea saponins, including floratheasaponins D, E, F and G, have been reported to display potent cytotoxic activity ranging from 6 to 10 &#x00B5;M in RAW 264.7 cells (<xref rid="b25-mmr-29-2-13149" ref-type="bibr">25</xref>). In addition to their toxicity to cell lines, the toxicity of saponins to cold-blooded animals and insects has also been mentioned in several studies (<xref rid="b26-mmr-29-2-13149" ref-type="bibr">26</xref>). A saponin toxicity assay revealed hemorrhage and erosion of the mucosa in the small intestine as well as necrosis of liver cells and renal tubules in a mouse model (<xref rid="b27-mmr-29-2-13149" ref-type="bibr">27</xref>). Presently, several methods are employed to reduce or remove tea saponins from tea seed cake or tea seed cake extract. For instance, tea saponin levels in tea seed cake are significantly lessened by chemical treatment or biodegradation (<xref rid="b28-mmr-29-2-13149" ref-type="bibr">28</xref>); furthermore, semi-preparative high-performance liquid chromatography (HPLC) can be used to isolate non-catechin flavonoids from saponin-rich tea seed extract (<xref rid="b22-mmr-29-2-13149" ref-type="bibr">22</xref>). However, these saponin-reduction processes can also lead to a reduction in bioactive compounds or the production of lower yields of bioactive compounds. Thus, methods of reducing or eliminating saponins in tea seed cake must be optimized.</p>
<p>Therefore, the present study aimed to i) use chemical treatment to reduce tea saponin levels and separate bioactive molecules from the tea seed crude extract (TSCE) of <italic>C. sinensis</italic> and ii) analyze the anti-insulin resistance effect of the saponin-reduced extract of <italic>C. sinensis</italic> in the HepG2 cell line.</p>
</sec>
<sec sec-type="materials|methods">
<title>Materials and methods</title>
<sec>
<title/>
<sec>
<title>Preparation of tea seed saponin-reduced extract (TSSRE) from C. Sinensis tea seeds</title>
<p><italic>C. sinensis</italic> (L.) O. Kuntze is an economic crop in Taiwan; there might be not any policy to regulate the permission of using <italic>C. sinensis</italic> implementing experiment in Taiwan. Specimen of <italic>C. sinensis</italic> identified by Kuoh-Cheng Yan is stored in public at the herbarium of the Research Center for Biodiversity, Academia Sinica, Taipei (HAST). The seeds of <italic>C. sinensis</italic> (L.) O. Kuntze were cultivated in Taitung, Taiwan. They were ground into tea seed powder, which was subsequently stirred in hexane (1:10 w/v) at room temperature for 40 min to simulate tea seed cake. The defatted tea seed powder was subsequently extracted in 95&#x0025; ethanol (1:10 w/v) for 24 h to obtain TSCE. Thereafter, TSCE was dissolved in 80&#x0025; ethanol (1:20 w/v). Ethyl acetate was then mixed with TSCE for precipitation (3:1 v/v). After centrifugation at 3,800 &#x00D7; g for 10 min, the supernatant was evaporated and lyophilized to obtain TSSRE powder.</p>
</sec>
<sec>
<title>Determination of the saponin content in TSCE and TSSRE</title>
<p>The tea saponin content in TSSRE was determined as previously reported, with some modifications (<xref rid="b29-mmr-29-2-13149" ref-type="bibr">29</xref>). TSCE, TSSRE and tea saponins (ChemFaces; cat. no. CFN91688) were dissolved in methanol. The samples were mixed with 8&#x0025; vanillin (Thermo Fisher Scientific, Inc.; cat. no. A11169), followed by 77&#x0025; sulfuric acid. After mixing, the samples were heated to 65&#x00B0;C for 15 min and subsequently cooled for 10 min. Absorbance values were measured at 505 nm and 510 nm using a microplate reader (SpectraMax Plus 384; Molecular Devices, LLC), and the difference between the absorbance values at these wavelengths reflected tea saponin content.</p>
</sec>
<sec>
<title>HPLC analysis of TSSRE</title>
<p>The chromatographic separation of compounds from TSSRE was conducted using an HPLC system (JASCO) and a Hypersil GOLD<sup>&#x2122;</sup> C18 column (250&#x00D7;4.6 mm i.d., 5 &#x00B5;m; Thermo Fisher Scientific, Inc.). The mobile phase comprised solvents A (0.2&#x0025; phosphoric acid water) and B (acetonitrile), which were pumped at a flow rate of 1.0 ml/min. 10 &#x00B5;l sample was injected by an autosampler (JASCO). The gradient elution program was conducted under the following conditions: 0&#x2013;20 min and 95&#x0025; A to 40&#x0025; A. Catechin (MedChemExpress; cat. no. HY-B1890), pyrroside B (ChemFaces; cat. no. CFN96142), narirutin (ChemFaces; cat. no. CFN99543), and naringin (MedChemExpress; cat. no. HY-N0153) were used as the standards.</p>
</sec>
<sec>
<title>Determination of the total flavonoid content in TSSRE</title>
<p>The total flavonoid content in TSSRE was estimated using the aluminum chloride colorimetric and 2,4-dinitrophenylhydrazine methods (<xref rid="b30-mmr-29-2-13149" ref-type="bibr">30</xref>,<xref rid="b31-mmr-29-2-13149" ref-type="bibr">31</xref>), and calculated as the sum of the results obtained from these methods.</p>
<p>The aluminum chloride colorimetric method was employed to estimate the levels of flavones and flavonols, which are subclasses of flavonoids. Briefly, 200 &#x00B5;l of sample was mixed with 40 &#x00B5;l of 10&#x0025; aluminum chloride (Thermo Fisher Scientific, Inc.; cat. no. A11892), followed by 600 &#x00B5;l of 95&#x0025; ethanol, 20 &#x00B5;l of 1 M potassium acetate, and 1,120 &#x00B5;l of distilled water. The mixture was incubated in the dark at room temperature for 30 min. The absorbance values of the samples and standard (quercetin) (MedChemExpress; cat. no. HY-18085) were measured at 415 nm using a microplate reader.</p>
<p>To estimate the levels of flavanones and flavanonols, which are also subclasses of flavonoids, the 2,4-dinitrophenylhydrazine method was employed. Briefly, 200 &#x00B5;l of sample was mixed with 400 &#x00B5;l of 1&#x0025; 2,4-dinitrophenylhydrazine reagent (Sigma-Aldrich; Merck KGaA; cat. no. D199303), followed by 400 &#x00B5;l of methanol at 50&#x00B0;C for 50 min. After cooling, the mixture was mixed with 1,000 &#x00B5;l of 1&#x0025; potassium hydroxide dissolved in 70&#x0025; methanol and kept at room temperature for 2 min. A total of five times the volume of methanol was mixed with the sample and subsequently centrifuged at 1,000 &#x00D7; g for 10 min at 25&#x00B0;C. After centrifugation, the absorbance values of the supernatant and standard (naringenin) (MedChemExpress; cat. no. HY-W011641) were determined at 495 nm using a microplate reader.</p>
</sec>
<sec>
<title>Cell culture</title>
<p>The HepG2 cell line (cat. no. RM60025) was obtained from the Bioresources Collection and Research Center of the Food Industry Research and Development Institute (Hsinchu, Taiwan). HepG2 cells were cultured in high-glucose Dulbecco&#x0027;s Modified Eagle Medium (HyClone; Cytiva; cat. no. SH30243) with 10&#x0025; fetal bovine serum (HyClone; Cytiva; cat. no. SH30396) containing 100 units/ml penicillin and 0.1 mg/ml streptomycin (BioConcept Ltd.; cat. no. 4-01F00-H) at 37&#x00B0;C with 5&#x0025; CO<sub>2</sub>. The medium was altered every 2 days, and the cells were maintained in culture by passaging them with 0.25&#x0025; trypsin (HyClone; Cytiva; cat. no. SH30042).</p>
</sec>
<sec>
<title>Cell viability assay</title>
<p>HepG2 cells (1&#x00D7;10<sup>4</sup> cells/well) were cultured in 96-well microtiter plates. After 24-h incubation at 37&#x00B0;C, the HepG2 cells were treated with various concentrations of TSCE and TSSRE for 24 h. Subsequently, 200 &#x00B5;l of 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) reagent (Sigma-Aldrich; Merck KGaA; cat. no. 475989) was added to each well, and the plates were incubated at 37&#x00B0;C with 5&#x0025; CO<sub>2</sub> in the dark for 4 h. Thereafter, 150 &#x00B5;l of dimethyl sulfoxide was added to each well, and the plates were subsequently shaken on a shaker at room temperature for 10 min. The absorbance values of the samples were determined at 490 nm using a microplate reader.</p>
</sec>
<sec>
<title>Glucose consumption assay</title>
<p>Insulin resistance was induced in a HepG2 cell model using palmitic acid (PA) according to a method previously described, with some modifications (<xref rid="b32-mmr-29-2-13149" ref-type="bibr">32</xref>). Normal glucose (5.5 mM) (HyClone; Cytiva; cat. no. SH30021) was used as the control. Normal glucose group was adopted to simulate the condition of normal and healthy cells (<xref rid="b33-mmr-29-2-13149" ref-type="bibr">33</xref>), which i) evaluated if TSSRE could recover cells to the normal and healthy condition and ii) analyzed how the level of improvement of insulin resistance the drug could affect cells with insulin resistance. HepG2 cells (4&#x00D7;10<sup>4</sup> cells/well) were cultured in 96-well microtiter plates. After 24-h incubation at 37&#x00B0;C, the cells were washed twice with phosphate-buffered saline (PBS) and subsequently treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA (Thermo Fisher Scientific, Inc.; cat. no. AC416700050) in the absence or presence of the indicated concentrations of TSSRE for 24 h. Thereafter, 100 nM of insulin (MedChemExpress; cat. no. HY-P73243) was added to each sample, and the plates were incubated at 37&#x00B0;C with 5&#x0025; CO<sub>2</sub> for 30 min. The cells were washed twice with PBS, and RPMI-1640 (HyClone; Cytiva; cat. no. SH30027) containing 0.2&#x0025; fatty acid-free bovine serum albumin (BSA, Bio Basic; cat. no. AD0023) was subsequently added to each well. After 24-h incubation at 37&#x00B0;C, the medium was collected for further assay. Each sample (25 &#x00B5;l) was mixed with 500 &#x00B5;l of o-toluidine (Abbkine Scientific Co., Ltd.; cat. no. KTB1300). The mixtures were heated in boiling water for 8 min and subsequently cooled down. The absorbance values of the samples were determined at 630 nm using a microplate reader. RPMI-1640 contains a suitable concentration of glucose (11.1 mM) compared with high glucose DMEM (25 mM) and low glucose DMEM (5 mM) for this assay.</p>
</sec>
<sec>
<title>Western blot analysis</title>
<p>HepG2 cells (5&#x00D7;10<sup>5</sup> cells/well) were cultured in six-well plates. After incubation for 24 h, the HepG2 cells were washed twice with PBS and incubated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of the indicated concentrations of TSSRE. After 24-h treatment, 100 nM of insulin was added to each well for 30 min. The HepG2 cells were washed twice with cold PBS and lysed in radioimmunoprecipitation assay buffer (BIOTOOLS; cat. no. TAAR-ZBZ5) supplemented with protease (BIOTOOLS; cat. no. TAAR-BBI2) and phosphatase (BIOTOOLS; cat. no. TAAR-WBC1) inhibitor cocktails at 0&#x00B0;C. After being scraped off the six-well plates, the cell lysates were collected, transferred to microcentrifuge tubes, and centrifuged (16,500 &#x00D7; g, 20 min, 4&#x00B0;C); thereafter, the supernatants were collected as protein samples. Bicinchoninic acid protein assay reagents (Visual Protein; BC03-500) were utilized to determine the total protein concentration of each sample using a standard BSA curve. The protein samples were diluted to equal amounts of protein and 20 &#x00B5;l/lane was subsequently separated via 8 or 10&#x0025; sodium dodecyl sulfate-polyacrylamide gel electrophoresis. Thereafter, the gels were transferred to polyvinylidene difluoride (PerkinElmer, Inc.; cat. no. NEF1002001PK) membranes for 2 h. The membranes were blocked for 1 h at room temperature with 5&#x0025; BSA buffer. After blocking, these membranes were incubated with the following primary antibodies at 4&#x00B0;C overnight: Phosphorylated (p-)p38 (cat. no. 4511; 1:1,000), p38 (cat. no. 8690; 1:1,000), p-ERK (cat. no. 4370; 1:1,000), ERK (cat. no. 4695; 1:1,000), p-JNK (cat. no. 4668; 1:1,000), JNK (cat. no. 9252; 1:1,000), p-Akt (cat. no. 9271; 1:1,000), Akt (cat. no. 9272; 1:1,000), p-IRS1 (cat. no. 3070; 1:1,000), IRS1 (all from Cell Signaling Technology, Inc.; cat. no. 2382; 1:1,000), phosphoenolpyruvate carboxykinase (PEPCK; cat. no. E-AB-11396; 1:1,000), p-GSK-3&#x03B2; (cat. no. E-AB-20886; 1:1,000), GSK-3&#x03B2; (cat. no. E-AB-31629; 1:1,000), glucose transporter (GLUT) 4 (all from Elabscience Biotechnology, Inc.; cat. no. E-AB-30268; 1:1,000), GLUT2 (Proteintech Group, Inc.; cat. no. 20436-1-AP; 1:1,000), p-FOXO1 (cat. no. AF3417; 1:1,000), FOXO1 (both from Affinity Biosciences; cat. no. AF6416; 1:1,000), and &#x03B2;-actin (iReal Biotechnology, Inc.; cat. no. IR2-7; 1:1,000). The membranes were washed thrice with Tris-buffered saline with 0.1&#x0025; Tween 20 and subsequently incubated with horseradish peroxidase-conjugated secondary antibodies (Abcam; cat. no. ab6721; 1:10,000) at room temperature for 1 h. The immunoblots were visualized using an enhanced chemiluminescence reagent (Visual Protein; cat. no. LF08-500) and captured using a chemiluminescence imaging system. Relative protein levels were quantified using ImageJ software (version 1.8.0; National Institutes of Health), and &#x03B2;-actin was employed as the internal control.</p>
</sec>
<sec>
<title>Statistical analysis</title>
<p>Data are presented as the mean &#x00B1; standard deviation of three independent experiments. GraphPad Prism 9.0 software (Dotmatics) was employed to evaluate statistical differences between groups. P&#x003C;0.05 was considered to indicate a statistically significant difference based on one-way ANOVA followed by Dunnett&#x0027;s multiple comparisons test.</p>
</sec>
</sec>
</sec>
<sec sec-type="results">
<title>Results</title>
<sec>
<title/>
<sec>
<title>TSSRE saponin content</title>
<p>The saponin content in TSSRE was measured using the vanillin-sulfuric acid method (<xref rid="tI-mmr-29-2-13149" ref-type="table">Table I</xref>). The tea saponin concentrations in TSCE and TSSRE were 5.34&#x00B1;0.46 and 0.54&#x00B1;0.07 mg/g, respectively.</p>
</sec>
<sec>
<title>Identification of TSSRE</title>
<p>As revealed in <xref rid="f1-mmr-29-2-13149" ref-type="fig">Fig. 1A and B</xref>, TSSRE yielded several chromatographic peaks, and the major peaks represented catechin, pyrroside B, narirutin and naringin, identified at the same time points as the standards.</p>
</sec>
<sec>
<title>The total flavonoid content in TSSRE</title>
<p>The total flavonoid content in TSSRE was measured using the aluminum chloride colorimetric and 2,4-dinitrophenylhydrazine methods (<xref rid="tII-mmr-29-2-13149" ref-type="table">Table II</xref>). In TSSRE, the aluminum chloride assay revealed a flavone and flavonol content of 13.56&#x00B1;1.15 mg/g, while the 2,4-dinitrophenylhydrazine assay revealed a flavanone and flavanonol content of 68.84&#x00B1;7.53 mg/g. Therefore, the total flavonoid content in TSSRE was 82.40&#x00B1;8.68 mg/g.</p>
</sec>
<sec>
<title>Cell viability</title>
<p>HepG2 cells were treated with different concentrations of TSCE and TSSRE to evaluate their cell viability. The cell viability assay results are demonstrated in <xref rid="f2-mmr-29-2-13149" ref-type="fig">Fig. 2</xref>. The cell viability of HepG2 cells significantly declined following 24-h treatment with 32 and 64 &#x00B5;g/ml TSCE (<xref rid="f2-mmr-29-2-13149" ref-type="fig">Fig. 2A</xref>; 80 and 25&#x0025;, respectively; P=0.0084 and P&#x003C;0.0001, respectively) but did not differ significantly at concentrations of 16, 32 and 64 &#x00B5;g/ml from that of the untreated group (<xref rid="f2-mmr-29-2-13149" ref-type="fig">Fig. 2B</xref>; P=0.9999, P=0.9741 and P=0.999, respectively).</p>
</sec>
<sec>
<title>Effect of TSSRE on glucose consumption</title>
<p>Impaired glucose uptake in liver tissues is a characteristic of insulin resistance (<xref rid="b5-mmr-29-2-13149" ref-type="bibr">5</xref>). Therefore, the effect of TSSRE on glucose consumption in PA-triggered insulin-resistant HepG2 cells was investigated (<xref rid="f3-mmr-29-2-13149" ref-type="fig">Fig. 3</xref>). Glucose consumption in these cells significantly decreased after exposure to 0.25 mM PA compared with that after normal-glucose treatment (3.2-fold). The effect of treatment with 16, 32 and 64 &#x00B5;g/ml TSSRE was not significantly different compared with normal-glucose treatment (P=0.9442, P=0.8796 and P=0.9992, respectively). However, treatment with 32 and 64 &#x00B5;g/ml TSSRE ameliorated glucose consumption in PA-stimulated insulin-resistant HepG2 cells (1.3- and 2.4-fold, respectively; P=0.0064 and P&#x003C;0.0001, respectively). These results suggested that TSSRE enhanced glucose consumption in PA-stimulated insulin-resistant HepG2 cells. Therefore, treatment with TSSRE in PA-stimulated groups was adopted to implement the further experiments.</p>
</sec>
<sec>
<title>Effect of TSSRE on the expression levels of GLUT2 and GLUT4</title>
<p>GLUT2 facilitates glucose transportation across the cell membrane (<xref rid="b34-mmr-29-2-13149" ref-type="bibr">34</xref>). The effect of TSSRE on GLUT2 in PA-stimulated insulin-resistant HepG2 cells was analyzed (<xref rid="f4-mmr-29-2-13149" ref-type="fig">Fig. 4A</xref>). In the present study, GLUT2 expression in PA-induced insulin-resistant HepG2 cells was significantly lower than that in the normal-glucose group (2.2-fold). However, 64 &#x00B5;g/ml TSSRE treatment ameliorated GLUT2 expression in these cells (1.8-fold; P&#x003C;0.0001). GLUT4, an insulin-regulated GLUT, mediates glucose uptake (<xref rid="b34-mmr-29-2-13149" ref-type="bibr">34</xref>). The effect of TSSRE on GLUT4 in PA-stimulated insulin-resistant HepG2 cells was evaluated (<xref rid="f4-mmr-29-2-13149" ref-type="fig">Fig. 4B</xref>). GLUT4 expression in these cells was significantly lower than that in the normal-glucose group (2.4-fold). However, treatment with 32 and 64 &#x00B5;g/ml TSSRE elevated GLUT4 expression in HepG2 cells with PA-induced insulin resistance (1.2- and 2.4-fold, respectively; P=0.0077 and P&#x003C;0.0001, respectively). These results suggested that TSSRE ameliorated the expression levels of GLUT2 and GLUT4 in PA-stimulated insulin-resistant HepG2 cells.</p>
</sec>
<sec>
<title>Effect of TSSRE on the IRS1/Akt signaling pathway</title>
<p>The IRS1/Akt signaling pathway was investigated to elucidate the mechanism by which TSSRE ameliorates GLUT4 expression in PA-induced insulin-resistant HepG2 cells. The effect of TSSRE on IRS1 in these cells was investigated (<xref rid="f5-mmr-29-2-13149" ref-type="fig">Fig. 5A</xref>). In the present study, IRS1 phosphorylation was evidently decreased by PA treatment compared with that in the normal-glucose group in HepG2 cells (4.2-fold). However, treatment with 32 and 64 &#x00B5;g/ml TSSRE significantly improved IRS1 phosphorylation (2.2- and 3.3-fold, respectively; P=0.0037 and P&#x003C;0.0001, respectively). The effect of TSSRE on Akt in PA-induced insulin-resistant HepG2 cells was analyzed (<xref rid="f5-mmr-29-2-13149" ref-type="fig">Fig. 5B</xref>). Akt phosphorylation in these cells decreased significantly in the present study (3.6-fold). TSSRE treatment at 32 and 64 mg/ml significantly ameliorated Akt phosphorylation (1.8- and 2.5-fold, respectively; P=0.0070, and P=0.0002, respectively). These results demonstrated that TSSRE enhanced the IRS1/Akt signaling pathway in PA-stimulated insulin-resistant HepG2 cells.</p>
</sec>
<sec>
<title>Effect of TSSRE on PEPCK and FOXO1</title>
<p>PEPCK is an enzyme involved in gluconeogenesis, a process in which glucose is synthesized from non-hexose precursors (<xref rid="b35-mmr-29-2-13149" ref-type="bibr">35</xref>). The effect of TSSRE on PEPCK in PA-stimulated insulin-resistant HepG2 cells was evaluated (<xref rid="f6-mmr-29-2-13149" ref-type="fig">Fig. 6A</xref>). PEPCK expression increased significantly in these cells compared with that in the normal-glucose group (2.1-fold). However, treatment with 32 and 64 mg/ml TSSRE reduced PEPCK expression in PA-triggered insulin-resistant HepG2 cells (1.3- and 2.1-fold, respectively; P=0.0034 and P&#x003C;0.0001, respectively). FOXO1, a transcription factor, regulates gluconeogenesis (<xref rid="b14-mmr-29-2-13149" ref-type="bibr">14</xref>). The effect of TSSRE on FOXO1 in PA-induced insulin-resistant HepG2 cells was investigated (<xref rid="f6-mmr-29-2-13149" ref-type="fig">Fig. 6B</xref>). FOXO1 phosphorylation declined significantly after 24-h PA treatment (2.4-fold). TSSRE treatment at 32 and 64 mg/ml significantly improved FOXO1 phosphorylation in PA-triggered insulin-resistant HepG2 cells (1.8- and 2.6-fold, respectively; P=0.0054 and P&#x003C;0.0001, respectively).</p>
</sec>
<sec>
<title>Effect of TSSRE on GSK-3&#x03B2; phosphorylation</title>
<p>GSK-3&#x03B2; has been known to play a critical role in inhibiting the activity of glycogen synthase (<xref rid="b13-mmr-29-2-13149" ref-type="bibr">13</xref>). The effect of TSSRE on GSK-3&#x03B2; in PA-stimulated insulin-resistant HepG2 cells was analyzed (<xref rid="f7-mmr-29-2-13149" ref-type="fig">Fig. 7</xref>). In the present study, GSK-3&#x03B2; phosphorylation decreased significantly in these cells compared with that in the normal-glucose group (2.7-fold). TSSRE treatment at 16, 32, and 64 mg/ml notably ameliorated GSK-3&#x03B2; phosphorylation in PA-induced insulin-resistant HepG2 cells (2.1-, 2.5- and 2.7-fold, respectively; P=0.0001, P&#x003C;0.0001 and P&#x003C;0.0001, respectively).</p>
</sec>
<sec>
<title>Effect of TSSRE on the phosphorylation of JNK, p38 and ERK</title>
<p>JNK, p38 and ERK suppress IRS1 phosphorylation (<xref rid="b10-mmr-29-2-13149" ref-type="bibr">10</xref>&#x2013;<xref rid="b12-mmr-29-2-13149" ref-type="bibr">12</xref>). The effect of TSSRE on the LPS-stimulated phosphorylation of mitogen-activated protein kinases (MAPKs), that is, p38, ERK and JNK, was explored using western blot analysis (<xref rid="f8-mmr-29-2-13149" ref-type="fig">Fig. 8</xref>). The results demonstrated that the phosphorylation of p38, ERK and JNK was significantly induced by 24-h stimulation with 0.25 mM PA compared with that in the normal-glucose group in HepG2 cells (11.7-, 3.1- and 3.7-fold, respectively). PA-stimulated p38 phosphorylation was significantly attenuated by TSSRE at concentrations of 32 and 64 &#x00B5;g/ml (1.8- and 3.3-fold, respectively; P=0.0004 and P&#x003C;0.0001, respectively). Furthermore, TSSRE treatment at 32 and 64 mg/ml also suppressed PA-induced ERK phosphorylation (1.7- and 2.1-fold, respectively; P=0.0003 and P=0.0012, respectively). JNK phosphorylation was also significantly inhibited by TSSRE treatment at 32 and 64 mg/ml in PA-stimulated insulin-resistant HepG2 cells (1.8- and 1.9-fold, respectively; P&#x003C;0.0001 and P&#x003C;0.0001, respectively).</p>
</sec>
</sec>
</sec>
<sec sec-type="discussion">
<title>Discussion</title>
<p>In the present study, the administration of TSSRE extracted from tea seed cake effectively reversed PA-induced insulin resistance in HepG2 cells. Tea seed cake is an agricultural residue that remains after tea seed oil extraction. Hence, the efficient utilization of this resource and waste reduction are critical issues in agriculture. Tea seed cake, which comprises 10&#x2013;16&#x0025; tea saponins, possesses hemolytic and cytotoxic properties (<xref rid="b36-mmr-29-2-13149" ref-type="bibr">36</xref>,<xref rid="b37-mmr-29-2-13149" ref-type="bibr">37</xref>), and these properties potentially cause toxicity in cold-blooded animals and mice (<xref rid="b38-mmr-29-2-13149" ref-type="bibr">38</xref>,<xref rid="b39-mmr-29-2-13149" ref-type="bibr">39</xref>). In the present study, a simple, low-cost method was developed to obtain saponin-reduced extract from tea seed cake. After the saponin-reduction process, the tea saponin concentration in TSSRE significantly decreased compared with that in TSCE. The vanillin-sulfuric acid assay demonstrated that the tea saponin concentration in TSSRE was &#x007E;10-fold lower than that in TSCE, and this result indicated that this saponin-reduction process could markedly decrease the concentration of tea saponins in TSCE. The MTT assay revealed that only 25&#x0025; of HepG2 cells survived after 24 h treatment with 64 &#x00B5;g/ml TSCE in the cytotoxicity analysis. However, no significant cytotoxicity was observed in HepG2 cells after treatment with 64 &#x00B5;g/ml TSSRE, suggesting that this saponin-reduction process not only decreased the concentration of tea saponins but also ameliorated their cytotoxic effect in HepG2 cells. HPLC analysis demonstrated that the primary peaks in TSCE represented catechin, pyrroside B, narirutin and naringin, which are flavonoids, natural substances found in the kingdom of plants (<xref rid="b40-mmr-29-2-13149" ref-type="bibr">40</xref>). The total flavonoid content in TSSRE was determined to be 82.40&#x00B1;8.68 mg/g, and flavanones and flavanonols were the predominant flavonoids (&#x007E;80&#x0025;). Among these flavonoids, naringin and catechin have proven effective in improving insulin resistance (<xref rid="b41-mmr-29-2-13149" ref-type="bibr">41</xref>,<xref rid="b42-mmr-29-2-13149" ref-type="bibr">42</xref>). Hence, the anti-insulin resistance effect of TSSRE may be attributed to the presence of these two flavonoids. A previous study also indicated that flavonoids purified from tea seed cake alleviate TNF-&#x03B1;-induced insulin resistance in HepG2 cells (<xref rid="b22-mmr-29-2-13149" ref-type="bibr">22</xref>). Furthermore, numerous flavonoids exerting anti-diabetic and anti-insulin resistance effects have also been reported (<xref rid="b43-mmr-29-2-13149" ref-type="bibr">43</xref>,<xref rid="b44-mmr-29-2-13149" ref-type="bibr">44</xref>).</p>
<p>Dietary habits constitute an important factor contributing to the risk of insulin resistance (<xref rid="b45-mmr-29-2-13149" ref-type="bibr">45</xref>). PA, a 16-carbon-chain fatty acid is the most common saturated fatty acid in the human diet (<xref rid="b46-mmr-29-2-13149" ref-type="bibr">46</xref>). Excessive FFA consumption has proven to be largely associated with the development of metabolic syndrome, such as insulin resistance and type 2 diabetes mellitus (<xref rid="b47-mmr-29-2-13149" ref-type="bibr">47</xref>). In the present study, PA was employed to induce insulin resistance in HepG2 cells. After 24 h of PA exposure, glucose consumption in HepG2 cells was markedly decreased compared with that in the untreated group. Nevertheless, 32- and 64-&#x00B5;g/ml TSSRE treatments significantly reversed the PA-induced impaired glucose consumption. GLUTs constitute a class of membrane proteins that facilitate glucose transportation across the cell membrane (<xref rid="b34-mmr-29-2-13149" ref-type="bibr">34</xref>). Among them, GLUT2 is predominantly found in the &#x03B2; cells of the pancreas, kidney and liver (<xref rid="b48-mmr-29-2-13149" ref-type="bibr">48</xref>). GLUT4, an insulin-dependent GLUT, responds to insulin-stimulated cell signaling to reduce blood glucose levels (<xref rid="b34-mmr-29-2-13149" ref-type="bibr">34</xref>). In the present study, the expression levels of GLUT2 and GLUT4 were decreased by PA treatment compared with those in the normal-glucose group. However, TSSRE treatment ameliorated the PA-induced expression levels of GLUT2 and GLUT4. The present data indicated that TSSRE enhances glucose consumption in PA-stimulated insulin-resistant HepG2 cells by increasing GLUT2 and GLUT4 expression.</p>
<p>The insulin signaling pathway plays an important role in regulating insulin signaling transduction and maintaining glucose homeostasis (<xref rid="b6-mmr-29-2-13149" ref-type="bibr">6</xref>). Upon binding to insulin, the insulin receptor undergoes conformational changes, thereby activating kinase activity (<xref rid="b49-mmr-29-2-13149" ref-type="bibr">49</xref>). Thereafter, downstream IRS1 is recruited and phosphorylated (<xref rid="b50-mmr-29-2-13149" ref-type="bibr">50</xref>). IRS1 phosphorylation subsequently stimulates Akt to perform further regulation. The activated IRS1/Akt signaling pathway has proven to increase GLUT4 expression (<xref rid="b51-mmr-29-2-13149" ref-type="bibr">51</xref>). In the present study, p-Akt and p-IRS1 levels were reduced in PA-treated HepG2 cells. However, TSSRE significantly improved PA-induced Akt and IRS1 phosphorylation. These results suggested that TSSRE ameliorated GLUT4 expression by elevating IRS1 and Akt phosphorylation. Since Akt does not regulate GLUT2 expression in the liver (<xref rid="b52-mmr-29-2-13149" ref-type="bibr">52</xref>), the elevated GLUT2 expression in PA-stimulated insulin-resistant HepG2 cells was not regulated through Akt pathway.</p>
<p>In addition to increasing GLUT4 expression, Akt also regulates several factors of glucose metabolism in hepatocytes, such as gluconeogenesis and glycogen synthesis (<xref rid="b53-mmr-29-2-13149" ref-type="bibr">53</xref>). Activated Akt phosphorylates transcription factor FOXO1 to promote FOXO1 efflux from the nucleus into the cytosol, preventing FOXO1 from promoting the transcription of genes involved in gluconeogenesis, such as the gene encoding PEPCK, a key enzyme in gluconeogenesis (<xref rid="b14-mmr-29-2-13149" ref-type="bibr">14</xref>). In insulin resistance, increased hepatic gluconeogenesis leads to excessive glucose production, contributing to elevated blood glucose levels (<xref rid="b54-mmr-29-2-13149" ref-type="bibr">54</xref>). FOXO1 phosphorylation was suppressed in the insulin-resistance group, and increased PEPCK expression was also observed after PA treatment in HepG2 cells. However, TSSRE treatment significantly ameliorated FOXO1 phosphorylation and inhibited PEPCK expression. Therefore, these findings demonstrated the inhibitory effect of TSSRE on gluconeogenesis in HepG2 cells by mediating Akt/FOXO1 signaling.</p>
<p>Glycogen, found in muscle and liver tissues, is an extensively branched polysaccharide comprising glucose (<xref rid="b55-mmr-29-2-13149" ref-type="bibr">55</xref>). The liver catabolizes glycogen into glucose, which is subsequently conveyed to the blood and tissues to maintain appropriate blood sugar levels and provide fuel, respectively (<xref rid="b55-mmr-29-2-13149" ref-type="bibr">55</xref>). In insulin resistance, reduced insulin signaling leads to decreased liver glycogen levels (<xref rid="b56-mmr-29-2-13149" ref-type="bibr">56</xref>). Activated Akt serves an essential role in inhibiting GSK-3&#x03B2; activation by phosphorylating GSK-3&#x03B2; (<xref rid="b13-mmr-29-2-13149" ref-type="bibr">13</xref>). When Akt is inhibited, GSK-3&#x03B2; activation decreases the activity of glycogen synthase, a key enzyme involved in glycogen synthesis (<xref rid="b13-mmr-29-2-13149" ref-type="bibr">13</xref>). In the present study, PA was found to inhibit GSK-3&#x03B2; phosphorylation. Nonetheless, GSK-3&#x03B2; phosphorylation was significantly elevated by TSSRE treatment in PA-stimulated insulin-resistant HepG2 cells, suggesting that TSSRE inhibits GSK-3&#x03B2; activation by mediating Akt/GSK-3&#x03B2; signaling.</p>
<p>The MAPK pathway, a cell signaling pathway, is responsible for transducing various extracellular stimuli to the nucleus, leading to gene regulation (<xref rid="b57-mmr-29-2-13149" ref-type="bibr">57</xref>). It is activated by FFA accumulation, which interferes with IRS1 phosphorylation, thereby inhibiting insulin signal transduction (<xref rid="b8-mmr-29-2-13149" ref-type="bibr">8</xref>). This interference leads to the disruption of downstream signaling and gene expression, including decreased GLUT4 expression, elevated gluconeogenesis and GSK-3&#x03B2; activation, which are key factors of insulin resistance (<xref rid="b13-mmr-29-2-13149" ref-type="bibr">13</xref>,<xref rid="b14-mmr-29-2-13149" ref-type="bibr">14</xref>). Hence, further investigation is required to determine whether the amelioration of IRS1 phosphorylation by TSSRE is associated with MAPK inhibition. In the present study, the phosphorylation of p38, ERK and JNK was markedly induced by 24-h PA treatment. TSSRE was found to significantly inhibit the PA-induced phosphorylation of p38, ERK and JNK in HepG2 cells, indicating that TSSRE improves hepatic insulin resistance by suppressing the MAPK pathway (the upstream pathway of IRS1).</p>
<p>Nevertheless, it is important to acknowledge potential limitations in the present study. Given that skeletal muscle plays a pivotal role in utilizing more than 75&#x0025; of glucose in response to insulin (<xref rid="b58-mmr-29-2-13149" ref-type="bibr">58</xref>), it may be prudent to consider utilizing a skeletal muscle cell line for investigating the anti-insulin resistance effects of TSSRE. Therefore, in the forthcoming research, the authors intend to employ the C2C12 cell line to assess whether TSSRE can ameliorate insulin resistance in skeletal muscle cells.</p>
<p>In conclusion, the current study developed a simple, low-cost method of obtaining saponin-reduced extract from tea seed cake, and treatment with the extract (TSSRE) exhibited significant improvements in glucose homeostasis in PA-stimulated insulin-resistant HepG2 cells. The findings of the present study conclusively demonstrated that TSSRE regulates hepatic insulin resistance by ameliorating the IRS-1/Akt/GSK-3&#x03B2;/FOXO1 pathway and inhibiting the MAPK pathway. Overall, the beneficial effect of TSSRE in alleviating hepatic insulin resistance was indicated.</p>
</sec>
</body>
<back>
<ack>
<title>Acknowledgements</title>
<p>Not applicable.</p>
</ack>
<sec sec-type="data-availability">
<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>SCC and SYS designed the study. SCC performed the experiments and wrote the manuscript. SYS provided the supervision of the study and was involved in editing and revising of the manuscript. SCC and SYS confirm the authenticity of all the raw data. Both authors read and approved the final version of the 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 sec-type="COI-statement">
<title>Competing interests</title>
<p>The authors declare that they have no competing interests.</p>
</sec>
<glossary>
<def-list>
<title>Abbreviations</title>
<def-item><term>TSSRE</term><def><p>tea seed saponin-reduced extract</p></def></def-item>
<def-item><term>TSCE</term><def><p>tea seed crude extract</p></def></def-item>
<def-item><term>PA</term><def><p>palmitic acid</p></def></def-item>
<def-item><term>GLUT</term><def><p>glucose transporter</p></def></def-item>
<def-item><term>IRS1</term><def><p>insulin receptor substrate 1</p></def></def-item>
<def-item><term>Akt</term><def><p>protein kinase B</p></def></def-item>
<def-item><term>FOXO1</term><def><p>forkhead box protein O1</p></def></def-item>
<def-item><term>MAPK</term><def><p>mitogen-activated protein kinase</p></def></def-item>
<def-item><term>GSK-3&#x03B2;</term><def><p>glycogen synthase kinase 3&#x03B2;</p></def></def-item>
</def-list>
</glossary>
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<floats-group>
<fig id="f1-mmr-29-2-13149" position="float">
<label>Figure 1.</label>
<caption><p>HPLC analysis of (A) standards and (B) tea seed saponin-reduced extract. Peak identification: (<xref rid="b1-mmr-29-2-13149" ref-type="bibr">1</xref>) Catechin, (<xref rid="b2-mmr-29-2-13149" ref-type="bibr">2</xref>) pyrroside B, (<xref rid="b3-mmr-29-2-13149" ref-type="bibr">3</xref>) narirutin and (<xref rid="b4-mmr-29-2-13149" ref-type="bibr">4</xref>) naringin.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g00.jpg"/>
</fig>
<fig id="f2-mmr-29-2-13149" position="float">
<label>Figure 2.</label>
<caption><p>Cell viability of TSCE and TSSRE in HepG2 cells. (A) HepG2 cells were treated with various concentrations of TSCE for 24 h. (B) HepG2 cells were treated with various concentrations of TSSRE for 24 h. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose with palmitic acid (0.25 mM) in the absence or presence of TSSRE for 24 h. &#x002A;P&#x003C;0.05. TSCE, tea seed cake crude extract; TSSRE, tea seed saponin-reduced extract.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g01.jpg"/>
</fig>
<fig id="f3-mmr-29-2-13149" position="float">
<label>Figure 3.</label>
<caption><p>Effects of TSSRE on glucose consumption in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose with PA (0.25 mM) in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; PA, palmitic acid.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g02.jpg"/>
</fig>
<fig id="f4-mmr-29-2-13149" position="float">
<label>Figure 4.</label>
<caption><p>Effects of TSSRE on the expression levels of (A) GLUT2 and (B) GLUT4 in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; GLUT, glucose transporter.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g03.jpg"/>
</fig>
<fig id="f5-mmr-29-2-13149" position="float">
<label>Figure 5.</label>
<caption><p>Effects of TSSRE on phosphorylation of (A) IRS1 and (B) Akt in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; IRS1, insulin receptor substrate 1; PA, palmitic acid; p-, phosphorylated.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g04.jpg"/>
</fig>
<fig id="f6-mmr-29-2-13149" position="float">
<label>Figure 6.</label>
<caption><p>Effects of TSSRE on phosphorylation of (A) FOXO1 and (B) PEPCK in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; FOXO1, forkhead box protein O1; PEPCK, phosphoenolpyruvate carboxykinase; PA, palmitic acid; p-, phosphorylated.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g05.jpg"/>
</fig>
<fig id="f7-mmr-29-2-13149" position="float">
<label>Figure 7.</label>
<caption><p>Effects of TSSRE on GSK-3&#x03B2; phosphorylation in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; GSK-3&#x03B2;, glycogen synthase kinase 3&#x03B2;; PA, palmitic acid; p-, phosphorylated.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g06.jpg"/>
</fig>
<fig id="f8-mmr-29-2-13149" position="float">
<label>Figure 8.</label>
<caption><p>Effects of TSSRE on phosphorylation of (A) JNK, (B) p38 and (C) ERK in HepG2 cells. HepG2 cells were treated with normal-(5.5 mM) or high-concentration (30 mM) glucose plus 0.25 mM PA in the absence or presence of TSSRE for 24 h and subsequently treated with insulin (100 nM) for 30 min. &#x002A;P&#x003C;0.05. TSSRE, tea seed saponin-reduced extract; PA, palmitic acid; p-, phosphorylated.</p></caption>
<graphic xlink:href="mmr-29-02-13149-g07.jpg"/>
</fig>
<table-wrap id="tI-mmr-29-2-13149" position="float">
<label>Table I.</label>
<caption><p>The saponin contents in TSCE and TSSRE measured by vanillin-sulfuric acid assay.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th align="left" valign="bottom">Extract</th>
<th align="center" valign="bottom">Saponin content (mg/g)</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">TSCE</td>
<td align="center" valign="top">5.34&#x00B1;0.46</td>
</tr>
<tr>
<td align="left" valign="top">TSSRE</td>
<td align="center" valign="top">0.54&#x00B1;0.07</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="tfn1-mmr-29-2-13149"><p>TSSRE, tea seed saponin-reduced extract; TSCE, tea seed cake crude extract.</p></fn>
</table-wrap-foot>
</table-wrap>
<table-wrap id="tII-mmr-29-2-13149" position="float">
<label>Table II.</label>
<caption><p>The flavonoid contents in TSSRE measured by aluminum chloride and 2,4-dinitrophenylhydrazine colorimetric assays.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th/>
<th align="center" valign="bottom" colspan="3">Flavonoid content (mg/g)</th>
</tr>
<tr>
<th/>
<th align="center" valign="bottom" colspan="3"><hr/></th>
</tr>
<tr>
<th align="left" valign="bottom">Extract</th>
<th align="center" valign="bottom">AlCl<sub>3</sub></th>
<th align="center" valign="bottom">2.4-D</th>
<th align="center" valign="bottom">Total</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left" valign="top">TSSRE</td>
<td align="center" valign="top">13.56&#x00B1;1.15</td>
<td align="center" valign="top">68.84&#x00B1;7.53</td>
<td align="center" valign="top">82.40&#x00B1;8.68</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="tfn2-mmr-29-2-13149"><p>TSSRE, tea seed saponin-reduced extract; 2.4-D, 2,4-dinitrophenylhydrazine.</p></fn>
</table-wrap-foot>
</table-wrap>
</floats-group>
</article>
