| Literature DB >> 34051803 |
Ruirui Xu1, Pingping Hu1, Yuwen Li2, Anran Tian1, Jun Li1, Chuanlong Zhu3.
Abstract
BACKGROUND: Hepatitis B virus (HBV) is a DNA virus belonging to the Hepadnaviridae family that has limited tissue and species specificity. Due to the persistence of HBV covalently closed circular DNA (cccDNA) in host cells after HBV infection, current antiviral drugs cannot eradicate HBV. Therefore, the development of an active cell culture system supporting HBV infection has become the key to studying HBV and developing effective therapeutic drugs. MAIN BODY: This review summarizes the significant research achievements in HBV cell culture systems in vitro, including embryonic hepatocytes and primary hepatocytes, which support the virus infection process most similar to that in the body and various liver tumor cells. The discovery of the bile-acid pump sodium-taurocholate co-transporting polypeptide (NTCP) as the receptor of HBV has advanced our understanding of HBV biology. Subsequently, various liver cancer cells overexpressing NTCP that support HBV infection have been established, opening a new door for studying HBV infection. The fact that induced pluripotent stem cells that differentiate into hepatocyte-like cells support HBV infection provides a novel idea for the establishment of an HBV cell culture system.Entities:
Keywords: 3D cell culture system; Cell culture; HBV; NTCP; Virus-host interactions
Mesh:
Year: 2021 PMID: 34051803 PMCID: PMC8164799 DOI: 10.1186/s12985-021-01580-6
Source DB: PubMed Journal: Virol J ISSN: 1743-422X Impact factor: 4.099
Fig. 1Schematic diagram of HBV entry into HepG2-NTCP cell mediated by NTCP. HBV interacts with the heparan sulfate proteoglycan on the cell surface and binds to the specific receptor NTCP which were overexpressed on the HepG2-NTCP cell, and then enters it. For detailed information, see the text. HSPG: heparan sulfate proteoglycan; NTCP: Na+-taurocholate co-transporting polypeptide; cccDNA: covalently closed circular DNA.
Summary of HBV in vitro hepatocyte culture models
| Classification | Cell line | Advantages | Shortcomings | HBV infection rate and |
|---|---|---|---|---|
| HBV replication cell lines | (1) HepG2.2.15 cells | cccDNA accumulation Stable and continuous HBV gene expression and replication | Low viral replication level Antigen expression instability Virions are produced from the integrated DNA | Screening and evaluation of antiviral drugs, etc. [ |
| (2) HepAD38 (EF9,EFS19) cells | Cells differentiate quickly Produce high titers of viral particles cccDNA accumulation Hepatoma cells stably expressing HBV from a Tet-on/Tet-off system | Incomplete viral life cycle Virions are produced from the integrated DNA | Screening and evaluation of antiviral drugs, etc. A potential source for tissue culture derived virions [ | |
| (3) Ad-HBV1.3-systems | No species barrier Efficient expression of HBV HBV expression and mutation can be controlled Direct observation of transfection and infection efficiency (integrated green fluorescent protein gene) | Missing HBV natural infection stage | Used to establish animal models of acute hepatitis B infection [ | |
| (4) HBV baculovirus system | Easy detection of riboprotein-bound HBV DNA High HBV replication level Formation of infectious viruses and a detectable intracellular cccDNA pool | Nonreceptor-mediated entry Gene transfer is restricted to certain species Missing HBV natural infection stage | Quantify the effect of antiviral agents on nuclear HBV DNA Used for studying the resistance of HBV to nucleoside analogs [ | |
| Cell lines that can be infected with HBV | (1) Human fetal hepatocytes | Phenotypically and biologically functionally close to primary adult human hepatocytes | Low infection efficiency Short infection time Limited availability Large donor-donor variations | HBV infection rate12%-90% [ Coculturing with hepatic non-parenchymal cells and subsequent addition of 2% DMSO leads to the formation of hepatocyte islands with prolonged phenotypic maintenance [ The early events in viral entry into cells as well as viral replication [ |
| (2) Adult human hepatocytes | The gold standard host cell to HBV infection experiments Closest to the physiological characteristics of hepatocytes Close to the natural process of infection | Limited life cycle Unpassable culture Phenotypically unstable Rapidly lose permissiveness for HBV infection Large donor-donor variations | HBV infection rate 20%-100% [ Used for studying the process of HBV infection [ Studying on apoptosis [ Preparation of 3D primary hepatocyte culture system for analyses of liver diseases, drug metabolism, and toxicity [ | |
| (3) Co-culture system | Test the utility of various direct-acting antivirals (DAAs) and putative host-targeting antivirals (HTAs); Assessing preclinically the efficacy of other entry inhibitors and possibly (vaccine-induced) neutralizing antibodies; | Wide variability between donors in terms of HBV permissiveness | Inflammation and drug-Induced Hepatotoxicity [ | |
| (4) Primary Tupaia hepatocytes | The only species susceptible for HBV infection besides humans and chimpanzees | Expensive | HBV infection rate >70% [ Used for HBV specific receptor identification [ | |
| (5) HepaRG cells | Preserve the specific functional properties of hepatocytes Support the complete HBV life cycle Produce HBV cccDNA | Strict culture conditions Low infection efficiency | HBV infection rate <30% [ HBV molecular mechanism and screening, evaluation of anti-HBV drugs; cccDNA spread etc. [ Drug metabolism and toxicity [ | |
| (6) | Biological characteristics similar to those of normal liver cells Support the complete life cycle of the virus Complete natural immune system | Complicated operation | HBV infection rate 25% [ Drug hepatotoxicity screening [ The life cycle of HBV virus and virus-induced hepatic dysfunction [ | |
| (7) NTCP overexpressing hepatoma cell lines | Support the complete life cycle of the virus Flexibility and easy handling | Low susceptibility to serum-derived HBV The multiplicity of infection (MOI) needed to achieve infection is extremely high No substantial viral spreading following infection | HBV infection rate 50% [ Large-scale screening of antiviral drugs for targeting NTCP [ |