bioRxiv Science⌕ Search

Biology subjects

Kawashima, K.

Publications and source records attributed to Kawashima, K..

2 recordsLinked to original sources

Recent codon preference reversals in the Drosophila melanogaster lineage

We employ fine-scale population genetic analyses to reveal dynamics among interacting forces that act at synonymous sites and introns among closely related Drosophila species. Synonymous codon usage bias has proven to be well-suited for population genetic inference. Under major codon preference, translationally superior "major" codons confer fitness benefits relative to their less efficiently and/or accurately decoded synonymous counterparts. Our codon family and lineage-specific analyses expand on previous findings in the Drosophila simulans lineage; patterns in naturally occurring polymorphism demonstrate fixation biases toward GC-ending codons that are consistent in direction, but heterogeneous in magnitude, among synonymous families. These forces are generally stronger than fixation biases in intron sequences. In contrast, population genetic analyses reveal unexpected evidence of codon preference reversals in the Drosophila melanogaster lineage. Codon family-specific polymorphism patterns support reduced efficacy of natural selection in most synonymous families but indicate reversals of favored states in the four codon families encoded by NAY. Accelerated synonymous fixations in favor of NAT and greater differences for both allele frequencies and fixation rates among X-linked, relative to autosomal, loci bolster support for fitness effect reversals. The specificity of preference reversals to codons whose cognate tRNAs undergo wobble position queuosine modification is intriguing. However, our analyses reveal prevalent dinucleotide preferences for ApT over ApC that act in opposition to GC favoring forces in both coding and intron regions. We present evidence that changes in the relative efficacy of translational selection and dinucleotide preference underlie apparent codon preference reversals.

evolutionary biology↗

Interferon signaling suppresses the unfolded protein response and induces cell death in hepatocyte accumulating hepatitis B surface antigen

Virus infection, such as hepatitis B virus (HBV), often causes endoplasmic reticulum (ER) stress. The unfolded protein response (UPR) is counteractive machinery to ER stress, and the failure of UPR to cope with ER stress results in cell death. Mechanisms that regulate the balance between ER stress and UPR in HBV infection is poorly understood. Type 1 and type 2 interferons have been implicated in hepatic flares during chronic HBV infection. Here, we examined the interplay between ER stress, UPR, and IFNs using transgenic mice that express hepatitis B surface antigen (HBsAg) (HBs-Tg mice) and humanized-liver chimeric mice infected with HBV. IFN causes severe and moderate liver injury in HBs-Tg mice and HBV infected chimeric mice, respectively. The degree of liver injury is directly correlated with HBsAg levels in the liver, and reduction of HBsAg in the transgenic mice alleviates IFN mediated liver injury. Analyses of total gene expression and UPR biomarkers protein expression in the liver revealed that UPR is induced in HBs-Tg mice and HBV infected chimeric mice, indicating that HBsAg accumulation causes ER stress. Notably, IFN administration transiently suppressed UPR biomarkers before liver injury without affecting intrahepatic HBsAg levels. Furthermore, UPR upregulation by glucose-regulated protein 78 (GRP78) suppression or low dose tunicamycin alleviated IFN mediated liver injury. These results suggest that IFN induces ER stress-associated cell death by reducing UPR. IFN{gamma} uses the same mechanism to exert cytotoxicity to HBsAg accumulating hepatocytes. Collectively, our data reveal a previously unknown mechanism by which IFNs selectively induce cell death in virus-infected cells. This study also identifies UPR as a potential target for regulating ER stress-associated cell death. Author summaryHepatitis B virus (HBV) causes acute and chronic infections that kill over 600,000 people every year from severe hepatitis, liver cirrhosis, and cancer. Mechanisms of chronic liver injury remain largely unknown. Both type 1 and type 2 interferons (IFNs) have been implicated in hepatic flares during chronic HBV infection, although HBV per se is a poor IFN inducer. In addition, while IFN, a type 1 IFN, used to be the first-line treatment for chronic hepatitis B (CHB) patients, adverse side effects, including hepatic flares, severely limit their therapeutic effectiveness. These clinical observations suggest a pathogenic role of IFNs in HBV infection. Here, we demonstrate that IFN-1s cause severe and moderate hepatitis in transgenic mice expressing hepatitis B surface antigen (HBs-Tg mice) and human hepatocyte chimeric mice infected with HBV, respectively. HBsAg accumulation appears to cause ER stress because a counteractive response to ER stress, namely, unfolded protein response (UPR), was induced in both HBs-Tg mice and HBV infected chimeric mice. Our results indicate that IFN-1s suppress UPR before causing liver injury. UPR was also suppressed by IFN{gamma}. Induction of UPR in HBs-Tg mice before treatment with IFN and IFN{gamma} significantly alleviated liver injury. We suggest that IFNs exert cytotoxicity to ER stress accumulating cells by suppressing UPR.

microbiology↗