The expression of interleukin

Blog

HomeHome / Blog / The expression of interleukin

Jul 16, 2023

The expression of interleukin

BMC Gastroenterology

BMC Gastroenterology volume 23, Article number: 163 (2023) Cite this article

310 Accesses

3 Altmetric

Metrics details

Anti-hepatitis B virus (HBV) treatment uses tenofovir disoproxil fumarate (TDF) along with Pegylated-interferon-alpha (Peg-IFN-α), which is more effective than TDF/Peg-IFN-α monotherapy. We have previously shown that interleukin-1beta (IL-1β) is related to the effectiveness of IFN-α treatment in chronic hepatitis B (CHB) patients. The aim was to investigate the expression of IL-1β in CHB patients treated with Peg-IFN-α combination with TDF and TDF/Peg-IFN-α monotherapy.

Huh7 cells infected with HBV were stimulated by Peg-IFN-α and/or Tenofovir (TFV) for 24h. A single-center cohort study of prospective recruitment of CHB patients: untreated CHB (Group A), TDF combined with Peg-IFN-α therapy (Group B), Peg-IFN-α monotherapy (Group C), TDF monotherapy (Group D). Normal donors served as controls. The clinical datas and blood of patients were collected at 0, 12, and 24 weeks. According to the early response criteria, Group B and C were divided into two subgroups: the early response group (ERG) and the non-early response group (NERG). Stimulation of HBV-infected hepatoma cells with IL-1β to validate the antiviral activity of IL-1β. To test the blood sample, cell culture supernatant, and cell lysates and to assess the expression of IL-1β and HBV replication levels in various treatment protocols, Enzyme-Linked Immunosorbent Assay (ELISA) and quantitative reverse transcription polymerase chain reaction (qRT-PCR) were used. SPSS 26.0 and GraphPad Prism 8.0.2 software were used for statistical analysis. P values < 0.05 was considered to be statistically significant.

In vitro experiments, Peg-IFN-α plus TFV treatment group expressed higher IL-1β and inhibited HBV more effectively than monotherapy. Finally, 162 cases were enrolled for observation (Group A (n = 45), Group B (n = 46), Group C (n = 39), and Group D (n = 32)), and normal donors (n = 20) were enrolled for control. The early virological response rates of Group B, C, and D were 58.7%, 51.3%, and 31.2%. At 24 weeks, IL-1β in Group B(P = 0.007) and C(P = 0.034) showed higher than at 0 week. In Group B, the IL-1β showed an upward trend at 12w and 24w in the ERG. IL-1β significantly reduced HBV replication levels in hepatoma cells.

The increased expression of IL-1β may enhance the efficacy of TDF combined with Peg-IFN-α therapy in achieving an early response for CHB patients.

Peer Review reports

Chronic hepatitis B (CHB) remains a significant public health issue worldwide, with approximately 250 million people worldwide currently infected [1, 2]. As such, the eradication of hepatitis B virus (HBV) is a considerable challenge [3]. At present, IFN-α and nucleos(t)ide analogues (NAs) are used as CHB treatment drugs [4,5,6]. NAs have been shown to reduce HBV-associated proteins and HBV-DNA in the serum of CHB patients[7, 8]. According to previous research, the use of tenofovir disoproxil fumarate (TDF) therapy significantly enhanced the cytotoxic activity of HBV specific CD8+ T lymphocytes [9]. Meanwhile, Pegylated-interferon-alpha (Peg-IFN-α) significantly enhanced serum clearance of HBsAg compared to NAs monotherapy [10, 11]. As is well known, IFN-α can induce hepatocytes to exert non-cytolytic antiviral effects by regulating gene expression and protein translation [12,13,14,15]. IFN-α also activates macrophages, natural killer cells, and T cells, with the ability to release cytokines, such as IL-6, IL-1β, and IL-4, thereby exhibiting antiviral effects at different stages of HBV replication [16]. However, the effectiveness of Peg-IFN-α and TDF is limited when used alone [3]. TDF and Peg-IFN-α have multiple modes of action, and combined application is a potential strategy that can exert complementary and synergistic effects. A randomized controlled trial found that for HBeAg-negative CHB, treatment with TDF plus Peg-IFN-α for 48 weeks is safe and has better effects than TDF monotherapy [17].

According to another study, in contrast to a non-response group, the interferon-response group had higher levels of IL-1β mRNA expression in IFN-α‐pre‐treated liver tissues [18]. Subsequently, IL-1β was discovered to be higher in CHB patients’ peripheral blood in the IFN-response group compared with the non-response group [19]. Notably, the pluripotent pro-inflammatory cytokine IL-1β has been demonstrated to inhibit HBV replication. Isorce [20] et al. stimulated hepatocytes with a variety of cytokines and found that IL-1β reduced HBV-DNA and showed higher anti-HBV activity than others. Additionally, a study indicated that patients with CHB had higher serum levels of IL-1β than patients who were not infected with HBV [21]. Hence, an assumption could be made that IL-1β plays a significant factor in the antiviral process of TDF combined with Peg-IFN-α.

In the present study, differences in IL-1β expression between healthy and untreated CHB were analyzed. At the same time, through cohort studies, the expression level and change trend of IL-1β and early virologic response rate in CHB patients treated with Peg-IFN-α combined with TDF and treated with Peg-IFN-α/TDF alone were observed. The expression level of IL-1β in different treatment regimens and the anti-HBV activity of IL-1β were also evaluated through in vitro experiments. The present study offers a significant foundation for an in-depth understanding of the pathogenesis of TDF combined with Peg-IFN-α in the treatment of CHB and the exploration of new treatments for CHB.

Huh7 cells were donated by the Wei Xue research group and cultured with Dulbecco's modified Eagle's medium (DMEM) (GIBCO) supplemented with 1% penicillin/streptomycin and 10% fetal bovine serum (FBS) (Excell) at 37 °C in a 5% CO2 incubator. Huh7 cells transfected by HBV 1.3-mer WT were stimulated with 20µmol/L Tenofovir (TFV) (Meilunbio, China, Cat# MB1386-1, TFV is the main component of TDF antiviral) + 1000U/mL Peg-IFN-α-2b (Tebao, China), 1000U/mL Peg-IFN-α-2b, 20µmol/L TFV, or 0, 100, 200ng/mL IL-1β (BBI, China) for 24h. PBS was used as a control. HepG2.2.15 cells were stored in our research group and cultured by DMEM supplemented with 1% penicillin/streptomycin, 10% FBS, and 400ug/mL G418 (Meilunbio, China). HepG2.2.15 cells were stimulated with IL-1β for 48h in the absence of G418.

The HBV 1.3-mer WT plasmid was synthesized via JISSKANG (Shandong, China), and the corresponding empty plasmid was used as a negative control. Transfection was performed using Lipofectamine3000 (Invitrogen, USA) according to the manufacturer's instructions.

The present study was an observational cohort study with the aim of determining early virological response rates and dynamic trends in IL-1β in different regimens for the treatment of CHB. The diagnostic criteria for CHB as defined by the 2019 guidelines for the prevention and treatment of CHB by the Chinese Society of Hepatology, is a chronic inflammatory disease of the liver caused by persistent infection with HBV. Timely optimization of individual treatment plans is integral to achieving a clinical cure for CHB and lowering the incidence of liver cirrhosis and liver cancer. Prospective recruitment was conducted by CHB patients aged 18 to 60 who attended the outpatient clinic of the Department of Infectious Diseases of the First Affiliated Hospital of Chongqing Medical University between June 2021 and September 2022. A total of 171 cases were enrolled for observation, and 9 cases were excluded. Finally, a total of 162 cases were included in the study and allocated to four groups: Group A (n = 45) - untreated CHB; Group B (n = 46) - CHB treated with a combination of TDF and Peg-IFN-α; Group C (n = 39) - CHB treated with Peg-IFN-α alone; Group D (n = 32) - CHB treated with TDF alone. In addition, 20 healthy donors were recruited for the control group. The study was conducted in accordance with the Declaration of Helsinki, and all patients provided informed consent and signed it before participating in the study.

(1) Criteria for Inclusion

The study included patients between the ages of 18–60 years who met the diagnostic criteria for CHB as defined by the 2019 China Hepatitis B Prevention and Treatment guidelines in China, with positive serum HBsAg and HBeAg, or negative HBeAg. The patients also tested positive or negative for HBV-DNA and provided consent for the use of Peg-IFN-α and TDF.

(2) Criteria for Exclusion

Patients were excluded from the study if they had other viral infections such as HIV, HEV, HCV, and other co-infections, end-stage manifestations of liver cirrhosis, liver failure, liver cancer, and other diseases, serious chronic diseases such as cardiovascular, urinary system, connective tissue, and blood system, experienced serious adverse events during the use of Peg-IFN-α, or did not provide informed consent.

(3) Criteria for early responding

An early response was defined as either a reduction in HBV-DNA > 2 log10 IU/mL or a rapid decrease in HBsAg during the 24-week treatment period (HBsAg < 200 IU/mL or a decrease > 1 log10 IU/mL at 12 or 24 weeks).

(4) Criteria for non-early responding

Non-response was defined as patients whose HBV-DNA had decreased by less than 2 log10 IU/mL at 24 weeks or HBsAg had decreased by less than 1 log10 IU/mL at 12 or 24 weeks.

The patients in Group A had not received any anti-HBV therapy. The patients in Group B received 180ug/week of Peg-IFN-α-2b and 300 mg/day of TDF. Those in Group C were administered 180 µg/week of Peg-IFN-α-2b. Patients in Group D received 300 mg/day of TDF. Healthy donors served as control.

The patients were observed at weeks 0, 12, and 24 (follow-up was stopped when patients experienced a serologic conversion of HBsAg). Blood samples and the following information were collected: (1) Each patient provided a 4ml sample of peripheral blood using an anticoagulant tube containing EDTA. The sample was then centrifuged at 3000 rpm for 20 min at 4 °C, and the plasma was collected. Peripheral blood mononuclear cells (PBMCs) were isolated and RNA was extracted. The plasma and RNA samples were stored at -80 °C; (2) Basic clinical information and epidemiological histories, such as the family history of hepatitis B, drug history and allergy history; (3) Blood tests, including routine blood (WBC and PLT) and liver function (ALT, AST, TBIL); (4) Virological indexes: serum HBV-DNA, HBsAg, HBeAg (HBV-DNA was expressed and calculated as 0 IU/mL when < 20 IU/mL, HBsAg was expressed and calculated as 25,000 IU/mL when ≥ 25,000 IU/mL; HBsAg were expressed and calculated as 0 IU/mL when < 0.05 IU/mL); (5) IL-1β concentration and IL-1β mRNA relative expression level: IL-1β concentration in plasma was detected using the ELISA kit, while IL-1β mRNA was measured by qRT-PCR in PBMCs; (6) Imaging data: color Doppler ultrasound of the upper abdomen/CT scan/MRI enhanced scan and liver transient elastography.

Total cellular RNA was extracted using Trizol plus (Takara, Bio). Reverse transcription was performed by using the primeScriptTMRT reagent Kit (Takara, Cat# RR047A). Quantitative Real-time PCR reactions were performed on a system (Biorad) using SYBR® Premix Ex Taq™ Kit (Takara, Cat# RR820A). The gene expression was normalized compared to β-actin and calculated utilizing the 2−ΔΔCt method. The primers were as follows: β-actin, forward 5’-CAT GTA CGT TGC TAT CCA GGC-3’, reverse 5’-CTC CTT AAT GTC ACG CAC GAT-3’; IL-1β, forward 5’-ATG ATG GCT TAT TAC AGT GGC AA-3’, reverse 5’-CTC CTT AAT GTC ACG CAC GAT-3’; Pg RNA, forward 5’-GCC TTA GAG TCT CCT GAG CA -3’, reverse 5’- GAG GGA GTTC TTC TTC TAG G -3’; HBV RNA, forward 5’-ACC GAC CTT GAG GCA TAC TT-3’, reverse 5’- GCC TAC AGC CTC CTA GTA CA -3’.

HBsAg and HBeAg in the supernatant were measured using ELISA kits (Kehua Biotech, China). The protein expression levels of IL-1β were also measured using ELISA kits (J&L Biological, China).

Ficoll-Paque Plus (Cytiva, Cat#17,144,003) was added to patient blood samples, and PBMCs were isolated by means of density gradient centrifugation.

All variables were tested for normality by the Shapiro-Wilk test and histogram. Quantitative variables were expressed as mean ± standard deviation, medians (IQR), or counts (%). SPSS 26.0 and GraphPad Prism 8.0.2 software were used for statistical analysis and graphing of data. If the two sets of data followed a normal distribution, the t-test was used; otherwise, the Mann-Whitney U test was used. When comparing multiple sets of data, ANOVA or repeated measures ANOVA analysis was used if the data followed a normal distribution; otherwise, the Friedman M test was used. The Kruskal-Wallis test was used for three independent samples with nonnormal distribution use. The comparison of rates was tested with the Pearson χ2 test and χ2 test. A P value < 0.05 was considered to be statistically significant, as indicated by the following: *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

To investigate the expression of IL-1β in TFV in combination with Peg-IFN-α and TFV/Peg-IFN-α monotherapy, Huh7 cells were transfected with HBV 1.3-mer WT and cultivated for 24h in the absence (PBS) or presence of TFV 20µmol/L, Peg-IFN-α 1000U/mL [19], and 20µmol/L TFV + 1000U/mL Peg-IFN-α. The expression levels of IL-1β mRNA, HBV RNA, and Pg RNA in cells were detected by means of qRT-PCR. ELISA was used to detect IL-1β, HBsAg, and HBeAg in cell culture supernatants. As shown in Fig. 1 (b, c, e, f), the TFV + Peg-IFN-α and Peg-IFN-α monotherapy significantly reduced HBV RNA, Pg RNA, HBsAg, and HBeAg compared with the TFV monotherapy (P < 0.0001). The expression levels of IL-1β mRNA and protein in the TFV+ Peg-IFN-α and Peg-IFN-α monotherapy groups were higher than those in the TFV monotherapy group. Notably, the TFV + Peg-IFN-α group expressed higher levels of IL-1β mRNA and protein than the Peg-IFN-α monotherapy group (Fig. 1(a, d)). In summary, the therapeutic effect of TFV + Peg-IFN-α was better than that of the Peg-IFN-α or TFV monotherapy groups and may enhance the antiviral ability by regulating the expression of IL-1β.

TFV + Peg-IFN-α promoted the expression of IL-1β and inhibited HBV replication: Huh7 cells were transfected with HBV 1.3-mer WT and treated with 20µmol/L TFV, 1000 U/mL Peg-IFN-α, and 20 µmol/L TFV + 1000 U/mL Peg-IFN-α for 24h

(a-c) Cells were harvested and subjected to qRT-PCR. (d-f) The levels of supernatant IL-1β, HBsAg, and HBeAg were detected by ELISA. The results are presented as the means ± SD, *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001

In the present study, 171 CHB patients were recruited, and 9 cases were excluded owing to the absence of blood samples. Finally, 162 CHB were enrolled, with 45 cases in Group A, 46 cases in Group B, 39 cases in Group C, 32 cases in Group D, and 20 cases in the control group. The patients of Groups B, C, and D were followed for 24 weeks unless HBsAg serological conversion occurred. The follow-up procedure is shown in Fig. 2.

CHB patients enrolled in the follow-up process

Previously, a re-evaluation of previous Genome Oligo Microarray data collected by the present authors revealed significantly higher mRNA levels in IL-1β responders in IFN-α pre-treated liver tissue than in non-responders [19]. To further evaluate IL-1β expression in CHB patients, blood samples were collected from healthy individuals and untreated CHB patients, and IL-1β levels in plasma were measured using ELISA, while IL-1β mRNA in PBMCs was assessed using qRT-PCR. Compared with the control group, the mRNA and protein levels of IL-1β in Group A were significantly higher (Fig. 3(a-b)) (P < 0.05). There were no significant differences in age, gender, or family history of hepatitis B, ALT, AST, TBil, WBC, and PLT between Group A and the control group (P > 0.05), as shown in Table 1.

IL-1β expression and early response rates in different groups. (a) IL-1β mRNA in Group A and the control group was measured by means of qRT-PCR in PBMCs. (b) IL-1β in Group A and the control group was measured using ELISA in plasma. (c) Early virological response rates for Groups B, C, and D

At 0 week, there were no significant differences in age, gender, family history of hepatitis B, AST, ALT, TBIL, WBC, and PLT among patients in Groups B, C, and D(P > 0.05), as shown in Tables 2 and 3. At 12 and 24 weeks, compared with Group D, ALT and AST in Groups B and C were significantly increased, and WBC and PLT were significantly decreased (P < 0.05). In Groups B and C, the ALT and AST at 12 and 24 weeks were significantly higher than those at 0 week, and the WBC and PLT were significantly lower than those at 0 week (P < 0.05). In Group D, there were no significant differences in ALT, AST, DBIL, WBC, and PLT at 0, 12, and 24 weeks.

After 24 weeks of follow-up, 4 patients in Group B achieved HBsAg SC, with a median (quartile) HBsAg level of 1001.3 (10.9, 2852.7) IU/ml at 24 weeks, which was significantly lower than the baseline level of 1718.4 (675.3, 5945.1) IU/ml (P < 0.05). In Group C, 7 patients achieved HBsAg SC, with a median (quartile) HBsAg level of 48.7 (0.98, 989.4) IU/ml at 24 weeks, which was significantly lower than the baseline level of 208.1 (46.8, 3451.6) IU/ml, but there was no significant difference from the level at 12 weeks (P > 0.05). None of the patients in Group D achieved HBsAg SC, and there was no significant difference in HBsAg levels between 0, 12, and 24 weeks (Table 3). In addition, the rate of HBV-DNA (-) attainment in Group B patients was significantly higher at 12 and 24 weeks than at 0 week (P < 0.05). Similarly, the proportion of patients in Group C who attained HBV-DNA (-) was significantly higher at 12 and 24 weeks than at 0 week (P<0.05). There was no significant difference in the proportion of patients that attained HBV-DNA (-) in Group D at 0, 12, and 24 weeks (P > 0.05). The early virological response rates of Groups B, C, and D were 58.7% (27/46), 51.3% (20/39), and 31.2% (10/32), respectively, there was no significant difference (Fig. 3c). However, the early virological response rate (EVRR) was higher in Group B (TDF combined with Peg-IFN-α) compared to the TDF/Peg-IFN-α monotherapy groups (Groups C and D).

The expression of IL-1β of Group B in the plasma of CHB patients at 24 weeks was significantly higher than that at 0 week (P = 0.007). Similarly, the IL-1β levels of plasma in Group C at 24 weeks were significantly higher than that at 0 week (P = 0.034). However, IL-1β in Group D did not differ significantly at 0, 12, and 24 weeks (P > 0.05). There were no statistically significant differences in IL-1β levels among Groups B, C, and D at 0, 12, and 24 weeks (Fig. 4).

IL-1β expression in Groups B, C, and D. Plasmas were collected from CHB (including 46 patients in Group B, 39 patients in Group C, and 32 patients in Group D). ELISA was used to measure the levels of IL-1β in plasma. The results are presented as the median (IQR). * P < 0.05, **P < 0.01

Groups B and C were divided into ERG and NERG according to the criteria for early response. In Group B, IL-1β expression in the NERG was higher than in the ERG at 0w and 12w, respectively (Fig. 5a); the expression of IL-1β in ERG showed an increasing trend during treatment, and the expression of IL-1β at 24w was significantly higher than that at 0w (P < 0.05); the expression of IL-1β in the NERG was significantly increased at 12w and 24w compared with 0w (P < 0.05), but the expression of IL-1β at 24w demonstrated a downward trend compared with 12w. In Group C, there was no significant difference between the IL-1β expression response group and NERG at 0, 12, and 24 weeks (P > 0.05), respectively; the expression of IL-1β in ERG and NERG exhibited an increasing trend with the progress of treatment, but the difference was not statistically significant. (Fig. 5)

The expression of IL-1β in ERG and NERG of Groups B and C (a-c). The expression of IL-1β in ERG and NERG of Group B; (d-f) The expression of IL-1β in ERG and NERG of Group C;*P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001

To investigate the potential antiviral activity of IL-1β, Huh7 cells were transfected with HBV 1.3mer WT and treated with IL-1β (0-200 ng/ml) for 24h. The treatment with IL-1β resulted in reduced levels of HBV RNA, Pg RNA, HBsAg, and HBeAg in Huh7 cells transfected with HBV (Fig. 6a-d). Additionally, IL-1β was found to decrease the level of HBV replication in HepG2.2.15 cells with stable HBV expression (Fig. 6e-h). The results confirm the anti-HBV activity of IL-1β in hepatocytes through in vitro experiments.

Anti-HBV activity of IL-1β in hepatoma cells. (a-d) Huh7 cells were transfected with HBV 1.3-mer WT plasmids and cultivated for 24h in the absence (PBS) or presence of IL-1β (100 and 200 ng/ml); (e-h) HepG2.2.15 cells were stimulated with 0 and 200ng/ml IL-1β for 48h; Cells were harvested and subjected to RT-qPCR. The HBsAg and HBeAg in the supernatant were analyzed using ELISA. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001

CHB can be controlled, but eliminating HBV remains a challenge. Currently, a functional cure is the optimal outcome. IFN-α and NAs are first-line drugs for CHB. TDF reduces liver cancer incidence with low resistance [22, 23], and has also been discovered to affect immunological function. The difficulty in treating HBV infections is primarily caused by cccDNA [11]. IFN-α has been the only treatment option until now for targeting persistent cccDNA within the hepatocyte nuclei of patients with chronic HBV infections through immunomodulation [24]. As such, through modifying the human immune response, the combination of TDF and Peg-IFN-α may be more beneficial than monotherapy in increasing host clearance of the HBV and re-establishing the body's antiviral immune response function. In previous research by the present authors, IL-1β was found to be potentially associated with antiviral efficacy. In the present study, in vitro experiments were first conducted. As shown in Fig. 1, in vitro experiments were conducted to stimulate Huh7 cells infected with HBV using TFV, Peg-IFN-α, and TFV in combination with Peg-IFN-α. The findings revealed that the expression levels of IL-1β were higher in the TFV + Peg-IFN-α therapy group compared with those in the Peg-IFN-α/TFV monotherapy group. At the same time, treatments with TFV + Peg-IFN-α and Peg-IFN-α monotherapy, administered through Huh7 infection of the HBV model, were revealed to considerably suppress the levels of HBV RNA and Pg RNA. In conclusion, an assumption could be made that TDF + Peg-IFN-α promotes increased expression of IL-1β in patients with CHB, possibly related to the more effective inhibition of HBV replication.

In the present study, 45 untreated patients with CHB and 20 healthy individuals were enrolled, IL-1β expression in patients with CHB was found to be significantly higher than in healthy people. The aim of the present study was to evaluate the IL-1β expression in CHB patients who received TDF with Peg-IFN-α or monotherapy. A total of 117 CHB patients were categorized into Group B (TDF + Peg-IFN-α), Group C (Peg-IFN-α), and Group D (TDF). The results revealed that Groups B and C showed anomalies in WBC, PLT, AST, and ALT after initiating the treatment, possibly due to immunomodulatory and pro-inflammatory cytokine expression. Peg-IFN-α monotherapy and TDF with Peg-IFN-α were more effective in reducing HBsAg and HBV-DNA levels compared with TDF monotherapy. The EVRR was higher in Group B than in Groups C and D. According to the described data, TDF combined with Peg-IFN-α had better anti-HBV efficacy than Peg-IFN-α/TDF monotherapy. Subsequently, the changes in IL-1β expression during the follow-up period were assessed. The results indicate that the IL-1β levels in Groups B and C at 24 weeks were significantly higher than at baseline. Notably, the increase in IL-1β expression was more pronounced in the combination therapy group than in the Peg-IFN-α monotherapy group. Additionally, there was no significant difference in IL-1β levels in Group C at 0, 12, and 24 weeks, respectively. TDF combined with Peg-IFN-α treatment could promote increased expression of IL-1β in the ERG and the NERG, but the expression of IL-1β in the NERG decreased after 12 weeks, which may also be the reason for the early non-response in patients with CHB. No significant increase in IL-1β was observed in the treated Peg-IFN-α monotherapy group. Thus, the higher efficacy of TDF combined with Peg-IFN-α compared with monotherapy may be related to promoting the expression of IL-1β in patients. Undoubtedly, IFN-α can promote an increase in IL-1β [16]. As previously reported, HBV may inhibit the activation of inflammatory bodies and the production of IL-1β by inhibiting the activation of p-STAT1 and p-P65. As HBV is inhibited, the expression of IL-1β increases [19]. Therefore, the combined treatment of TDF and Peg-IFN-α can better inhibit the replication of HBV, while the inhibitory effect of HBV on inflammatory pathways is weakened, which is beneficial to the secretion of IL-1β. IL-1β assists TDF and Peg-IFNα to suppress HBV. Further, the results of the in vitro experiments indicate potent anti-HBV activity of IL-1β. A study found that IL-1β is a significant factor in controlling aggressive pathogens such as hepatitis B and C viruses by activating the expression of the specific immune gene [25, 26] and promoting lymphocyte recruitment to the primary site of infection [27, 28]. As such, the next step will be to investigate the IL-1β anti-HBV pathway.

The expression of IL-1β in Group B was comparatively lower than that in the early non-response group at 0w, possibly due to the high viral load, elevated expression of HBV-related proteins, and the presence of HBsAg > 3000IU/mL, HBeAg (+), and HBV-DNA (+) in patients with chronic hepatitis B (CHB), which may result in an elevated baseline IL-1β expression. The sequential treatment of TDF and Peg-IFN-α may have a better effect on the complete elimination of HBV in such patients.

A better understanding of the mechanisms of Peg-IFN-α in the treatment of chronic hepatitis B in combination with TDF can facilitate the discovery of new treatment strategies to cure CHB. According to the present data, the combination therapy of Peg-IFN-α and TDF exhibited a higher virological response rate and increased IL-1β expression than Peg-IFN-α/TDF monotherapy. TDF combined with Peg IFN-α in treating CHB may enhance antiviral efficacy by increasing IL-1β expression. The described method has the potential to serve as a novel therapeutic approach for patients with CHB, particularly for non-responsive patients. The method allows for the assessment of treatment efficacy at an early stage and enables timely adjustments to individual treatment plans, potentially reducing the risk of complications. The present findings support the crucial role of TDF + Peg-IFN-α in controlling and eliminating HBV and shed light on how the hepatitis B virus interacts with the innate immune system. Despite the significant advantages, the present study needs to be validated in the context of a larger potential patient population and extended follow-up.

The datasets generated and/or analysed during the current study are not publicly available due to protect the privacy of the patients, but are available from the corresponding author on reasonable request.

Nucleos(t)ide analogues

Pegylated-interferon-α

Hepatitis B Virus

Chronic hepatitis B

Interleukin-1beta

Tenofovir disoproxil fumarate

Alanine transaminase

Aspartate transaminase

Total bilirubin

White Blood Cells

Platelets

Hepatitis B surface antigen

Hepatitis B virus deoxyribonucleic acid

Polaris Observatory C. Global prevalence, treatment, and prevention of hepatitis B virus infection in 2016: a modelling study. Lancet Gastroenterol Hepatol. 2018;3(6):383–403. https://doi.org/10.1016/S2468-1253(18)30056-6.

Article Google Scholar

Martinez MG, Boyd A, Combe E, Testoni B, Zoulim F. Covalently closed circular DNA: the ultimate therapeutic target for curing HBV infections. J Hepatol. 2021;75(3):706–17. https://doi.org/10.1016/j.jhep.2021.05.013.

Article CAS PubMed Google Scholar

Seto WK, Lo YR, Pawlotsky JM, Yuen MF. Chronic hepatitis B virus infection. Lancet. 2018;392(10161):2313–24. https://doi.org/10.1016/S0140-6736(18)31865-8.

Article PubMed Google Scholar

Hou J, Wang G, Wang F, Cheng J, Ren H, Zhuang H, Sun J, Li L, Li J, Meng Q, et al. Guideline of Prevention and Treatment for Chronic Hepatitis B (2015 update). J Clin Transl Hepatol. 2017;5(4):297–318. https://doi.org/10.14218/JCTH.2016.00019.

Article PubMed PubMed Central Google Scholar

European Association for the Study of the Liver. Electronic address eee, European Association for the study of the L: EASL 2017 clinical practice guidelines on the management of hepatitis B virus infection. J Hepatol. 2017;67(2):370–98. https://doi.org/10.1016/j.jhep.2017.03.021.

Article Google Scholar

Terrault NA, Lok ASF, McMahon BJ, Chang KM, Hwang JP, Jonas MM, Brown RS Jr, Bzowej NH, Wong JB. Update on prevention, diagnosis, and treatment of chronic hepatitis B: AASLD 2018 hepatitis B guidance. Hepatology. 2018;67(4):1560–99. https://doi.org/10.1002/hep.29800.

Article PubMed Google Scholar

Zhang Y, Hu P, Qi X, Ren H, Mao RC, Zhang JM. A comparison of telbivudine and entecavir in the treatment of hepatitis B e antigen-positive patients: a prospective cohort study in China. Clin Microbiol Infect. 2016;22(3):287e281–289. https://doi.org/10.1016/j.cmi.2015.10.024.

Article CAS Google Scholar

Hou J, Yin YK, Xu D, Tan D, Niu J, Zhou X, Wang Y, Zhu L, He Y, Ren H, et al. Telbivudine versus lamivudine in chinese patients with chronic hepatitis B: results at 1 year of a randomized, double-blind trial. Hepatology. 2008;47(2):447–54. https://doi.org/10.1002/hep.22075.

Article CAS PubMed Google Scholar

Duan SP, Zhu LH, Hou LJ, Wang HW, Zhu XW, Hao J. [Effect of tenofovir disoproxil fumarate antiviral therapy on virus-specific CD8 + T cells function in patients with chronic hepatitis B]. Zhonghua Gan Zang Bing Za Zhi. 2021;29(5):421–6. https://doi.org/10.3760/cma.j.cn501113-20191113-00420.

Article CAS PubMed Google Scholar

Ning Q, Han M, Sun Y, Jiang J, Tan D, Hou J, Tang H, Sheng J, Zhao M. Switching from entecavir to PegIFN alfa-2a in patients with HBeAg-positive chronic hepatitis B: a randomised open-label trial (OSST trial). J Hepatol. 2014;61(4):777–84. https://doi.org/10.1016/j.jhep.2014.05.044.

Article CAS PubMed Google Scholar

Revill PA, Chisari FV, Block JM, Dandri M, Gehring AJ, Guo H, Hu J, Kramvis A, Lampertico P, Janssen HLA, et al. A global scientific strategy to cure hepatitis B. Lancet Gastroenterol Hepatol. 2019;4(7):545–58. https://doi.org/10.1016/S2468-1253(19)30119-0.

Article PubMed PubMed Central Google Scholar

Ye J, Chen J. Interferon and Hepatitis B: current and future perspectives. Front Immunol. 2021;12:733364. https://doi.org/10.3389/fimmu.2021.733364.

Article CAS PubMed PubMed Central Google Scholar

Bonvin M, Achermann F, Greeve I, Stroka D, Keogh A, Inderbitzin D, Candinas D, Sommer P, Wain-Hobson S, Vartanian JP, et al. Interferon-inducible expression of APOBEC3 editing enzymes in human hepatocytes and inhibition of hepatitis B virus replication. Hepatology. 2006;43(6):1364–74. https://doi.org/10.1002/hep.21187.

Article CAS PubMed Google Scholar

Wang YX, Niklasch M, Liu T, Wang Y, Shi B, Yuan W, Baumert TF, Yuan Z, Tong S, Nassal M, et al. Interferon-inducible MX2 is a host restriction factor of hepatitis B virus replication. J Hepatol. 2020;72(5):865–76. https://doi.org/10.1016/j.jhep.2019.12.009.

Article CAS PubMed Google Scholar

Imam H, Kim GW, Mir SA, Khan M, Siddiqui A. Interferon-stimulated gene 20 (ISG20) selectively degrades N6-methyladenosine modified Hepatitis B Virus transcripts. PLoS Pathog. 2020;16(2):e1008338. https://doi.org/10.1371/journal.ppat.1008338.

Article CAS PubMed PubMed Central Google Scholar

Xia Y, Protzer U. Control of Hepatitis B Virus by Cytokines. Viruses. 2017;9(1). https://doi.org/10.3390/v9010018.

Bahardoust M, Mokhtare M, Barati M, Bagheri-Hosseinabadi Z, Karimi Behnagh A, Keyvani H, Agah S. A randomized controlled trial of pegylated interferon-alpha with tenofovir disoproxil fumarate for hepatitis B e antigen-negative chronic hepatitis B: a 48-week follow-up study. J Infect Chemother. 2020;26(12):1265–71. https://doi.org/10.1016/j.jiac.2020.07.005.

Article CAS PubMed Google Scholar

Xiao C, Qin B, Chen L, Liu H, Zhu Y, Lu X. Preactivation of the interferon signalling in liver is correlated with nonresponse to interferon alpha therapy in patients chronically infected with hepatitis B virus. J Viral Hepat. 2012;19(2):e1–10. https://doi.org/10.1111/j.1365-2893.2011.01471.x.

Article CAS PubMed Google Scholar

Lei Q, Li T, Kong L, Li L, Ding X, Wang X, Zhang X, Qin B. HBV-Pol is crucial for HBV-mediated inhibition of inflammasome activation and IL-1beta production. Liver Int. 2019;39(12):2273–84. https://doi.org/10.1111/liv.14214.

Article CAS PubMed Google Scholar

Isorce N, Testoni B, Locatelli M, Fresquet J, Rivoire M, Luangsay S, Zoulim F, Durantel D. Antiviral activity of various interferons and pro-inflammatory cytokines in non-transformed cultured hepatocytes infected with hepatitis B virus. Antiviral Res. 2016;130:36–45. https://doi.org/10.1016/j.antiviral.2016.03.008.

Article CAS PubMed Google Scholar

Tian ZJ, Shen Y, Li XR, Wei YN, Fan H, Ren QK. Increased interleukin-32, interleukin-1, and interferon-gamma levels in serum from hepatitis B patients and in HBV-stimulated peripheral blood mononuclear cells from healthy volunteers. J Infect Public Health. 2019;12(1):7–12. https://doi.org/10.1016/j.jiph.2018.06.006.

Article PubMed Google Scholar

Choi WM, Choi J, Lim YS. Effects of Tenofovir vs Entecavir on Risk of Hepatocellular Carcinoma in patients with chronic HBV infection: a systematic review and Meta-analysis. Clin Gastroenterol Hepatol. 2021;19(2):246–258e249. https://doi.org/10.1016/j.cgh.2020.05.008.

Article CAS PubMed Google Scholar

Liang X, Gao Z, Xie Q, Zhang J, Sheng J, Cheng J, Chen C, Mao Q, Zhao W, Ren H, et al. Long-term efficacy and safety of tenofovir disoproxil fumarate in chinese patients with chronic hepatitis B: 5-year results. Hepatol Int. 2019;13(3):260–9. https://doi.org/10.1007/s12072-019-09943-6.

Article PubMed Google Scholar

Tan G, Song H, Xu F, Cheng G. When Hepatitis B Virus meets interferons. Front Microbiol. 2018;9:1611. https://doi.org/10.3389/fmicb.2018.01611.

Article PubMed PubMed Central Google Scholar

Li Y, Que L, Fukano K, Koura M, Kitamura K, Zheng X, Kato T, Aly HH, Watashi K, Tsukuda S, et al. MCPIP1 reduces HBV-RNA by targeting its epsilon structure. Sci Rep. 2020;10(1):20763. https://doi.org/10.1038/s41598-020-77166-z.

Article CAS PubMed PubMed Central Google Scholar

Ibrahim MK, Abdelhafez TH, Takeuchi JS, Wakae K, Sugiyama M, Tsuge M, Ito M, Watashi K, El Kassas M, Kato T, et al. MafF is an antiviral host factor that suppresses transcription from Hepatitis B Virus Core promoter. J Virol. 2021;95(15):e0076721. https://doi.org/10.1128/JVI.00767-21.

Article PubMed Google Scholar

Watashi K, Liang G, Iwamoto M, Marusawa H, Uchida N, Daito T, Kitamura K, Muramatsu M, Ohashi H, Kiyohara T, et al. Interleukin-1 and tumor necrosis factor-alpha trigger restriction of hepatitis B virus infection via a cytidine deaminase activation-induced cytidine deaminase (AID). J Biol Chem. 2013;288(44):31715–27. https://doi.org/10.1074/jbc.M113.501122.

Article CAS PubMed PubMed Central Google Scholar

Dinarello CA. Interleukin-1 in the pathogenesis and treatment of inflammatory diseases. Blood. 2011;117(14):3720–32. https://doi.org/10.1182/blood-2010-07-273417.

Article CAS PubMed PubMed Central Google Scholar

Download references

We would like to thank Wei Xue for his assistance with this study. We thank Xiamen Tebao Biological Engineering Company for providing Peg-IFN-α-2b. We would like to acknowledge our team members, Haiying Luo, Guili Tan, Yadi Li, and Bo Qin, for their wonderful collaboration and patient support.

This work was supported by Chongqing Natural Science Foundation, China (cstc2020jcyj-msxmX0221).

Department of Infectious Diseases, Chongqing Key Laboratory of Infectious Diseases and Parasitic Diseases, the First Affiliated Hospital of Chongqing Medical University, No. 1 Youyi Road, Yuzhong District, Chongqing, 400016, China

Xiaoxia Hu, Haiying Luo, Guili Tan, Yadi Li & Bo Qin

You can also search for this author in PubMed Google Scholar

You can also search for this author in PubMed Google Scholar

You can also search for this author in PubMed Google Scholar

You can also search for this author in PubMed Google Scholar

You can also search for this author in PubMed Google Scholar

Xiaoxia Hu completed the cell experiment, collected and analyzed data, interpreted the data, and drafted the work; Haiying Luo and Guili Tan, and Yadi Li participated in collecting case data; Bo Qin designed the project, revised the manuscript, and approved the submission. All authors read and approved the final version of the manuscript.

Correspondence to Bo Qin.

The authors declare no competing interests.

All patients provided their consent and signed an informed consent form to participate in the study. This study was performed in line with the principles of the Declaration of Helsinki and was approved by the Ethics Committee of the First Affiliated Hospital of Chongqing Medical University (2022-8).

Not applicable.

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated in a credit line to the data.

Reprints and Permissions

Hu, X., Luo, H., Tan, G. et al. The expression of interleukin-1β in patients with chronic hepatitis B treated with pegylated-interferon-alpha combined with tenofovir disoproxil fumarate and monotherapy. BMC Gastroenterol 23, 163 (2023). https://doi.org/10.1186/s12876-023-02812-5

Download citation

Received: 09 February 2023

Accepted: 10 May 2023

Published: 19 May 2023

DOI: https://doi.org/10.1186/s12876-023-02812-5

Anyone you share the following link with will be able to read this content:

Sorry, a shareable link is not currently available for this article.

Provided by the Springer Nature SharedIt content-sharing initiative