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Decreased vitamin D-binding protein level portends poor outcome in acute-on-chronic liver failure caused by hepatitis B virus

Clinical and Molecular Hepatology 2022;28(4):912-925.
Published online: July 28, 2022

1Department of Infectious Diseases, the First Affiliated Hospital, Nanchang University, Nanchang, China

2State Key Laboratory for Diagnosis and Treatment of Infectious Diseases, National Clinical Research Center for Infectious Diseases, Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases, The First Affiliated Hospital, College of Medicine, Zhejiang University, Hangzhou, China

3Department of Infectious Diseases, Shulan Hospital of Hangzhou, Hangzhou, China

4Department of Infectious Diseases, Xiangya Hospital of Central South University, Changsha, China

5Jinan Microecological Biomedicine Shandong Laboratory, Jinan, China

Corresponding author : Zeyu Sun Jinan Microecological Biomedicine Shandong Laboratory, Huaiyin District, 3716# Qingdao Rd., Jinan 250117, China Tel: +86-13735526619, Fax: +86-0531-81789601, E-mail: zeyusun@zju.edu.cn
Xiaoyu Cheng Department of Infectious Diseases, the First Affiliated Hospital, Nanchang University, No.17 Yongwai Street, Donghu District, Nanchang 330006, China Tel: +86-13767039717, Fax: +86-791-88692562, E-mail: xiaoyuxychen@163.com

Editor: Hyung Joon Yim, Korea University, Korea

• Received: May 5, 2022   • Revised: July 22, 2022   • Accepted: July 23, 2022

Copyright © 2022 by The Korean Association for the Study of the Liver

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Citations

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  • Vitamin D deficiency in chronic hepatitis B across the disease spectrum: association with viral activity rather than hepatocellular carcinoma
    Dr Tufael, Abu Bakar Siddique, Md Haroon Or Rashid, Mohd Hasan Mujahid, Nabil Deb Nath, Asim Debnath, Most Farhana Akter, Md. Robiul Islam, Vijay Jagdish Upadhye
    BMC Gastroenterology.2026;[Epub]     CrossRef
  • Integrated routine laboratory indices for risk stratification in HBV-related cirrhosis: a real-world study
    Lin Zhang, Liang Li, Xiaowei Du, Suhua Pang, Youde Yan, Zhenjiang Zhang
    BMC Gastroenterology.2026;[Epub]     CrossRef
  • Omics in acute‐on‐chronic liver failure
    Peng Li, Xi Liang, Jinjin Luo, Jun Li
    Liver International.2025;[Epub]     CrossRef
  • Deficiency of vitamin D-binding protein exacerbates liver fibrosis by disrupting iron homeostasis via the activation of YAP signaling
    Qing Zheng, Qingquan Tan, Dan Wang, Yanling Ma, Yanni Zhou, Yonghua Chen, Dan Long, Jiayin Yang, Li Feng
    Experimental Cell Research.2025; 452(2): 114767.     CrossRef
  • miR-223-3p predicts prognosis of hepatitis B virus-related acute-on-chronic liver failure and is involved in hepatocyte injury via HSP90B1
    Feiyue Xie, Qiuping Ren, Jun He, Menghang Wu
    Hereditas.2025;[Epub]     CrossRef

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Decreased vitamin D-binding protein level portends poor outcome in acute-on-chronic liver failure caused by hepatitis B virus
Clin Mol Hepatol. 2022;28(4):912-925.   Published online July 28, 2022
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Decreased vitamin D-binding protein level portends poor outcome in acute-on-chronic liver failure caused by hepatitis B virus
Clin Mol Hepatol. 2022;28(4):912-925.   Published online July 28, 2022
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Decreased vitamin D-binding protein level portends poor outcome in acute-on-chronic liver failure caused by hepatitis B virus
Image Image Image Image Image Image Image
Figure 1. Association of VDBP level at admission with HBV-ACLF prognosis. (A) VDBP distribution for patients with chronic HBV-ACLF in survivors and non-survivors. (B) The receiver operating characteristic curves of VDBP in prediction of 30-day mortality of HBV-ACLF patients. (C) Survival rates after 30 days of patients in the high- and low-VDBP groups. (D-F) The linear regression between VDBP and commonly used prognostic models. VDBP levels were compared using the Mann-Whitney U test, and Kaplan-Meier plots were compared by log-rank test. VDBP, vitamin D-binding protein; MELD, model for end-stage liver disease; CLIF-SOFA, chronic liver failure-sequential organ failure assessment; HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure. *P<0.001.
Figure 2. Association of VDBP and the number of organ failures. VDBP distribution with increased numbers of organ failure (A). VDBP distribution with increased numbers of organ failure in ACLF survivors and non-survivors (B). VDBP distribution with increased numbers of organ failure in ACLF patients with and without cirrhosis (C). Rank correlation was analyzed by the Spearman method. VDBP, vitamin D-binding protein; ACLF, acute-on-chronic liver failure. *P<0.001. †P<0.01.
Figure 3. Alterations of VDBP levels according to organ failure. VDBP distribution of HBV-ACLF patients with and without (A) liver failure, (B) coagulation failure, (C) respiratory failure, and (D) cerebral failure. The associations of VDBP with circulation and kidney failures were not shown due to their low frequencies. VDBP levels were compared using the Mann-Whitney U test. VDBP, vitamin D-binding protein; LF, liver failure; CoF, coagulation failure; RF, respiratory failure; CeF, cerebral failure; HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure. *P<0.01. †P<0.001. ‡P<0.05.
Figure 4. The prognostic performance of VDBP-based models in predicting 30-day mortality of HBV-ACLF patients in the derivation cohort. The prognostic performance of VDBP-based models for overall (A-C) and cirrhotic (D-F) HBV-ACLF patients, respectively. VDBP, vitamin D-binding protein; MELD, model for end-stage liver disease; CLIF-SOFA, chronic liver failure-sequential organ failure assessment; HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure.
Figure 5. The prognostic performance of VDBP-based models in predicting 30-day mortality of HBV-ACLF patients in the external validation cohort. The prognostic performance of VDBP-based models for overall (A-C) and HBV-ACLF patients with cirrhosis (D-F), respectively. The prognostic performance of VDBP-based models for HBV-ACLF patients without cirrhosis was not analyzed because the sample size was too small to draw reliable conclusions. VDBP, vitamin D-binding protein; MELD, model for end-stage liver disease; CLIF-SOFA, chronic liver failure-sequential organ failure assessment; HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure.
Figure 6. Longitudinal changes of VDBP levels according to clinical course. (A) Dynamic changes of VDBP levels in HBV-ACLF survivors and non-survivors by longitudinal observation during hospitalization. (B) Changes in VDBP levels between the initial (admission) and final (14 days after admission or discharge) assessments. Repeated-measures data were analyzed with the Greenhouse-Geisser method, and paired data were analyzed with Wilcoxon tests. VDBP, vitamin D-binding protein; NS, not significant; HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure. *P<0.001. †P<0.05.
Graphical abstract
Decreased vitamin D-binding protein level portends poor outcome in acute-on-chronic liver failure caused by hepatitis B virus
Variable Total (n=287) Non-survivor (n=72) Survivor (n=215) Univariate Cox regression
Multivariate Cox regression
HR (95% CI) P-value HR (95% CI) P-value
Age (years) 47.80±12.74 51.31±12.18 46.63±12.73 1.023 (1.005–1.042) 0.011 1.032 (1.012–1.053) 0.002
Gender, female/male 56/231 17/55 39/176 0.768 (0.446–1.324) 0.343
Fatigue 14 (4.9) 3 (4.2) 11 (5.1) 0.829 (0.277–2.797) 0.829
Alcohol consumption 32 (11.1) 9 (12.5) 23 (10.7) 1.135 (0.734–1.756) 0.569
HBV reactivation 173 (60.3) 46 (63.9) 127 (59.1) 1.186 (0.733–1.919) 0.486
Hepatotoxic drug use 37 (12.9) 7 (9.7) 30 (14.0) 0.702 (0.322–1.530) 0.373
Bacterial infection 106 (36.9) 39 (54.2) 67 (31.2) 2.187 (1.376–3.478) 0.001
UGIB 42 (14.6) 9 (12.5) 33 (15.3) 1.231 (0.612–2.474) 0.560
Ascites, mild/serve 104/65 29/17 75/48 1.088 (0.811–1.460) 0.572
Cirrhosis 172 (59.9) 41 (56.9) 131 (60.9) 0.817 (0.513–1.304) 0.397
HE, mild/serve 21/24 11/22 10/2 4.040 (3.071–5.316) <0.001 2.396 (1.738–3.303) <0.001
CRP (mg/L) 10.50 (7.31–15.45) 11.10 (7.40–16.20) 10.30 (7.19–15.20) 1.001 (0. 982–1.020) 0.912
WBC (×109/L) 6.70 (5.10–8.90) 7.80 (5.65–10.65) 6.20 (4.80–8.30) 1.902 (1.033–1.150) 0.002
Neutrophil (×109/L) 4.50 (3.20–6.10) 5.80 (3.93–7.78) 4.20 (3.00–5.70) 1.114 (1.050–1.181) <0.001 1.072 (0.993–1.157) 0.077
RBC (×1012/L) 4.05±0.74 4.16±0.77 4.01±0.73 1.257 (0.911–1.735) 0.164
Platelet (×109/L) 112.18±55.60 104.13±44.05 114.88±58.80 0.997 (0. 992–1.001) 0.161
Total protein (g/L) 58.67±8.15 58.32±6.77 58.78±8.58 0.593 (0.964–1.021) 0.992
Albumin (g/L) 31.43±4.45 31.43±4.35 31.43±4.50 1.003 (0.952–1.057) 0.897
ALT (U/L) 249.00 (90.00–603.00) 341.50 (182.00–713.75) 208.00 (86.00–574.00) 1.000 (1.000–1.001) 0.121
AST (U/L) 190.00 (91.00–391.00) 301.50 (147.25–507.75) 162.00 (86.00–350.00) 1.001 (1.000–1.001) 0.001 1.001 (1.000–1.001) 0.022
Serum bilirubin (mg/dL) 17.31 (11.75–23.45) 21.05 (16.79–26.26) 16.02 (10.82–22.70) 1.065 (1.036–1.095) <0.001 1.057 (1.021–1.094) 0.002
Creatinine (mg/dL) 0.72 (0.63–0.84) 0.72 (0.63–0.95) 0.72 (0.62–0.81) 1.313 (0.997–1.729) 0.053
Potassium (mmol/L) 4.25±0.60 4.35±0.57 4.21±0.60 1.358 (0.949–1.944) 0.094
Sodium (mmol/L) 137.30±4.27 137.29±4.20 137.31±4.30 0.999 (0.946–1.056) 0.983
INR 1.99 (1.71–2.55) 2.70 (2.32–3.46) 1.86 (1.67–2.25) 1.999 (1.757–2.275) <0.001 1.535 (1.291–1.824) <0.001
Log10 (DNA) 4.95 (3.61–6.55) 5.44 (4.05–7.19) 4.79 (3.50–6.25) 1.121 (0.993–1.266) 0.065
Log10 (HBsAg) 2.98 (1.99–3.63) 2.99 (1.84–3.71) 2.98 (2.08–3.54) 0.991 (0.835–1.177) 0.919
VDBP (μg/mL) 46.58 (31.25–64.58) 29.08 (23.76–44.50) 53.24 (38.58–71.36) 0.956 (0.943–0.969) <0.001 0.984 (0.971–0.998) 0.023
Model Cut-off Sensitivity (%) Specificity (%) Youden AUROC (95% CI) P-value
Overall (n=287)
 Child-Pugh 10.00 83.33 53.95 0.3729 0.732 (0.677–0.782) <0.0001
 Child-Pugh-VDBP 7.47 81.94 65.58 0.4753 0.797 (0.746–0.842) <0.0001
 MELD 25.13 72.22 85.58 0.5780 0.829 (0.781–0.871) <0.0001
 MELD-VDBP 1.91 68.06 87.44 0.5550 0.844 (0.797–0.884) <0.0001
 CLIF-SOFA 9.00 68.06 79.53 0.4759 0.816 (0.766–0.859) <0.0001
 CLIF-SOFA-VDBP 5.76 72.22 81.86 0.5408 0.847 (0.800–0.886) <0.0001
No-cirrhosis (n=115)
 Child-Pugh 10.00 83.87 64.29 0.4816 0.790 (0.704–0.861) <0.0001
 Child-Pugh-VDBP 7.35 83.87 66.67 0.5054 0.814 (0.731–0.880) <0.0001
 MELD 23.20 83.87 83.87 0.5292 0.835 (0.755–0.898) <0.0001
 MELD-VDBP 0.78 96.77 60.71 0.5749 0.840 (0.760–0.901) <0.0001
 CLIF-SOFA 9.00 87.10 75.00 0.6210 0.886 (0.813–0.938) <0.0001
 CLIF-SOFA-VDBP 5.76 87.10 78.57 0.6567 0.894 (0.823–0.944) <0.0001
Cirrhosis (n=172)
 Child-Pugh 10.00 82.93 47.33 0.3026 0.699 (0.625–0.767) <0.0001
 Child-Pugh-VDBP 7.47 85.37 64.12 0.4949 0.786 (0.717–0.845) <0.0001
 MELD 25.13 70.73 90.08 0.6081 0.821 (0.755–0.875) <0.0001
 MELD-VDBP 1.60 75.61 83.97 0.5958 0.846 (0.783–0.897) <0.0001
 CLIF-SOFA 7.00 80.49 61.83 0.4232 0.764 (0.693–0.825) <0.0001
 CLIF-SOFA-VDBP 4.98 82.93 67.94 0.5087 0.813 (0.746–0.868) <0.0001
Table 1. Comparison of characteristics on admission between non-survivors and survivors in the derivation cohort

Values are presented as mean±standard deviation, number (range), or number (%) unless otherwise indicated.

HR, hazard ratio; CI, confidence interval; HBV, hepatitis B virus; UGIB, upper gastrointestinal bleeding; HE, hepatic encephalopathy; CRP, C-reactive protein; WBC, white blood cell; RBC, red blood cell; ALT, alanine aminotransferase; AST, aspartate amino transferase; INR, international normalized ratio; VDBP, vitamin D-binding protein.

Table 2. Performance of the various scores for predicting the prognosis of patients with HBV-ACLF in the derivation cohort

HBV-ACLF, hepatitis B virus-related acute-on-chronic liver failure; AUROC, area under the receiver operating characteristic curve; CI, confidence interval; VDBP, vitamin D-binding protein; MELD, model for end-stage liver disease; CLIF-SOFA, chronic liver failure-sequential organ failure assessment.