Intrahepatic quantification of HBV antigens in chronic hepatitis B reveals heterogeneity and treatment-mediated reductions in HBV core-positive cells.

ADV, adefovir ALT, alanine aminotransferase Biomarkers CHB, chronic hepatitis B CNN, convolutional neural network HBV HBV core HBV core, hepatitis B core antigen HBV, Hepatitis B Virus HBcrAg, hepatitis B core-related antigen HBeAg HBeAg, Hepatitis B e antigen HBsAg HBsAg, Hepatitis B surface antigen HCC, hepatocellular carcinoma IF, immunofluorescence NUC NUC, nucleo(t)side Na+K+-ATPase, sodium–potassium ATPase QC, quality control TDF, tenofovir disoproxil fumarate cccDNA, covalently closed circular DNA dslDNA, double-stranded linear DNA

Journal

JHEP reports : innovation in hepatology
ISSN: 2589-5559
Titre abrégé: JHEP Rep
Pays: Netherlands
ID NLM: 101761237

Informations de publication

Date de publication:
Apr 2023
Historique:
received: 19 10 2022
revised: 02 12 2022
accepted: 07 12 2022
entrez: 13 3 2023
pubmed: 14 3 2023
medline: 14 3 2023
Statut: epublish

Résumé

Patterns of liver HBV antigen expression have been described but not quantified at single-cell resolution. We applied quantitative techniques to liver biopsies from individuals with chronic hepatitis B and evaluated sampling heterogeneity, effects of disease stage, and nucleos(t)ide (NUC) treatment, and correlations between liver and peripheral viral biomarkers. Hepatocytes positive for HBV core and HBsAg were quantified using a novel four-plex immunofluorescence assay and image analysis. Biopsies were analysed from HBeAg-positive (n = 39) and HBeAg-negative (n = 75) participants before and after NUC treatment. To evaluate sampling effects, duplicate biopsies collected at the same time point were compared. Serum or plasma samples were evaluated for levels of HBV DNA, HBsAg, hepatitis B core-related antigen (HBcrAg), and HBV RNA. Diffusely distributed individual HBV core+ cells and foci of HBsAg+ cells were the most common staining patterns. Hepatocytes positive for both HBV core and HBsAg were rare. Paired biopsies revealed large local variation in HBV staining within participants, which was confirmed in a large liver resection. NUC treatment was associated with a >100-fold lower median frequency of HBV core+ cells in HBeAg-positive and HBeAg-negative participants, whereas reductions in HBsAg+ cells were not statistically significant. The frequency of HBV core+ hepatocytes was lower in HBeAg-negative participants than in HBeAg-positive participants at all time points evaluated. Total HBV+ hepatocyte burden correlated with HBcrAg, HBV DNA, and HBV RNA only in baseline HBeAg-positive samples. Reductions in HBV core+ hepatocytes were associated with HBeAg-negative status and NUC treatment. Variation in HBV positivity within individual livers was extensive. Correlations between the liver and the periphery were found only between biomarkers likely indicative of cccDNA (HBV core+ and HBcrAg, HBV DNA, and RNA). HBV infects liver hepatocyte cells, and its genome can exist in two forms that express different sets of viral proteins: a circular genome called cccDNA that can express all viral proteins, including the HBV core and HBsAg proteins, or a linear fragment that inserts into the host genome typically to express HBsAg, but not HBV core. We used new techniques to determine the percentage of hepatocytes expressing the HBV core and HBsAg proteins in a large set of liver biopsies. We find that abundance and patterns of expression differ across patient groups and even within a single liver and that NUC treatment greatly reduces the number of core-expressing hepatocytes.

Sections du résumé

Background & Aims UNASSIGNED
Patterns of liver HBV antigen expression have been described but not quantified at single-cell resolution. We applied quantitative techniques to liver biopsies from individuals with chronic hepatitis B and evaluated sampling heterogeneity, effects of disease stage, and nucleos(t)ide (NUC) treatment, and correlations between liver and peripheral viral biomarkers.
Methods UNASSIGNED
Hepatocytes positive for HBV core and HBsAg were quantified using a novel four-plex immunofluorescence assay and image analysis. Biopsies were analysed from HBeAg-positive (n = 39) and HBeAg-negative (n = 75) participants before and after NUC treatment. To evaluate sampling effects, duplicate biopsies collected at the same time point were compared. Serum or plasma samples were evaluated for levels of HBV DNA, HBsAg, hepatitis B core-related antigen (HBcrAg), and HBV RNA.
Results UNASSIGNED
Diffusely distributed individual HBV core+ cells and foci of HBsAg+ cells were the most common staining patterns. Hepatocytes positive for both HBV core and HBsAg were rare. Paired biopsies revealed large local variation in HBV staining within participants, which was confirmed in a large liver resection. NUC treatment was associated with a >100-fold lower median frequency of HBV core+ cells in HBeAg-positive and HBeAg-negative participants, whereas reductions in HBsAg+ cells were not statistically significant. The frequency of HBV core+ hepatocytes was lower in HBeAg-negative participants than in HBeAg-positive participants at all time points evaluated. Total HBV+ hepatocyte burden correlated with HBcrAg, HBV DNA, and HBV RNA only in baseline HBeAg-positive samples.
Conclusions UNASSIGNED
Reductions in HBV core+ hepatocytes were associated with HBeAg-negative status and NUC treatment. Variation in HBV positivity within individual livers was extensive. Correlations between the liver and the periphery were found only between biomarkers likely indicative of cccDNA (HBV core+ and HBcrAg, HBV DNA, and RNA).
Impact and Implications UNASSIGNED
HBV infects liver hepatocyte cells, and its genome can exist in two forms that express different sets of viral proteins: a circular genome called cccDNA that can express all viral proteins, including the HBV core and HBsAg proteins, or a linear fragment that inserts into the host genome typically to express HBsAg, but not HBV core. We used new techniques to determine the percentage of hepatocytes expressing the HBV core and HBsAg proteins in a large set of liver biopsies. We find that abundance and patterns of expression differ across patient groups and even within a single liver and that NUC treatment greatly reduces the number of core-expressing hepatocytes.

Identifiants

pubmed: 36908748
doi: 10.1016/j.jhepr.2022.100664
pii: S2589-5559(22)00236-1
pmc: PMC9996321
doi:

Types de publication

Journal Article

Langues

eng

Pagination

100664

Informations de copyright

© 2022 The Author(s).

Déclaration de conflit d'intérêts

At the time this study was conducted, AA, PO, JB, NvB, CM, SC, MVA, VS, TT, ST, AG, SF, LD, BF, and SB were employees and stockholders of Gilead Sciences, Inc. Please refer to the accompanying ICMJE disclosure forms for further details.

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Auteurs

Abhishek Aggarwal (A)

Gilead Sciences, Foster City, CA, USA.

Pamela M Odorizzi (PM)

Gilead Sciences, Foster City, CA, USA.

Jens Brodbeck (J)

Gilead Sciences, Foster City, CA, USA.

Nicholas van Buuren (N)

Gilead Sciences, Foster City, CA, USA.

Christina Moon (C)

Gilead Sciences, Foster City, CA, USA.

Silvia Chang (S)

Gilead Sciences, Foster City, CA, USA.

MaryVic Adona (M)

Gilead Sciences, Foster City, CA, USA.

Silpa Suthram (S)

Gilead Sciences, Foster City, CA, USA.

Vithika Suri (V)

Gilead Sciences, Foster City, CA, USA.

Torsten Trowe (T)

Gilead Sciences, Foster City, CA, USA.

Scott Turner (S)

Gilead Sciences, Foster City, CA, USA.

Patrick Marcellin (P)

Hôpital Beaujon, Clichy, France.

Maria Buti (M)

Hospital Universitario Valle Hebron, Barcelona, Spain.

Anuj Gaggar (A)

Gilead Sciences, Foster City, CA, USA.

Simon P Fletcher (SP)

Gilead Sciences, Foster City, CA, USA.

Lauri Diehl (L)

Gilead Sciences, Foster City, CA, USA.

Becket Feierbach (B)

Gilead Sciences, Foster City, CA, USA.

Scott Balsitis (S)

Gilead Sciences, Foster City, CA, USA.

Classifications MeSH