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The hepatitis B virus is one of the most common causes of virus-related chronic liver disease and remains a major global health problem affecting 296 million people worldwide. Despite an available and highly effective vaccination, hepatitis B infections lead to an annual mortality rate of approximately 0.8 million people. The global prevalence is heterogeneously distributed and reflects a high infections and chronicity, particularly in low-income countries, due to a lack of vaccination strategies, underdiagnosis and low treatment rates. A complete cure remains undiscovered to this day. Based on their genetic makeup, the virus is categorized into nine genotypes with a genetic difference of more than 8% within the sequence. In addition to their geographical distribution, hepatitis B virus genotypes also differ in terms of their clinical outcome, pathogenesis and treatment response.
The viral protein HBx is known to interact with several cellular signaling pathways and is thereby accounted as the driving force in the development of hepatitis B virus-associated pathogenesis and progression of hepatocellular carcinoma. In particular, HBx interacts with mitochondria and induces profound alterations in the mitochondrial morphology and function with a severe impact on the liver’s physiology and with an emerging role in liver-related disease progression.
This study aims to investigate the genotype-related impact of HBx with regard to their interaction with cellular signaling pathways. A particular focus was placed on mitochondria-dependent interactions and signaling pathways in order to broaden the understanding of the genetic diversity of the genotypes.
Differences between genotypes of HBx were examined and compared through in vitro experiments based on a cell culture-based system. Plasmid DNA encoding the HBx protein of the different genotypes was transiently transfected into Huh7 or HepG2 cells and examined for molecular and protein-biochemical effects on the host cell, usually 72 hours after transfection. This study focused on the most common genotypes A, B, C, D, E and G worldwide.
Based on initial kinome profiling analyses, it was found that HBx differs greatly within their genetic variants and suggests different effects on overall cell function and in particular on mitochondrial kinases. Furthermore, confocal laser scanning microscopy reveals profound HBx-mediated changes in the mitochondrial network structure, however with major differences among the different genotypes. In particular, HBx of genotypes A and G causes enormous fragmentation of mitochondrial structures, accompanied by emergent changes in mitochondrial function. Due to an increased interaction with the voltage-dependent anion channel 3, a significant loss of mitochondrial membrane potential was also observed, together with an increased radial oxygen stress level and an induction of central mitochondria-dependent inflammatory mediators. In contrast, the contribution of HBx-genotype B and E reveals only moderate effects in these regards. Using a pH-sensitive reporter system, HBx genotypes which previously indicated a strong distribution in the mitochondrial morphology and function, also showed an elevated mitophagy through the PINK1/Parkin-mediated pathway. This study provides direct evidence that HBx-mediated changes in host cell signaling pathways, especially in mitochondrial-associated pathways, fundamentally dependent on the different genotypes. In addition, the results also indicate an important role of HBx in the process of genotype-dependent liver pathogenesis and provide insight into the underlying cellular mechanisms and signaling pathways.