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Kang, B. M.

Publications and source records attributed to Kang, B. M..

2 recordsLinked to original sources

Human fibrosarcoma cells selected for very-high doxorubicin resistance, acquire trabectedin and eribulin cross-resistance, remain sensitive to recombinant methioninase, and have increased c-MYC expression

Doxorubicin is first-line chemotherapy for soft tissue sarcoma; however, the development of drug resistance limits its efficacy. The purpose of the present study was to select very-high doxorubicin-resistant (VHDR) HT1080 fibrosarcoma cells, determine cross-resistance to second-line chemotherapy drugs, determine maintenance of sensitivity to recombinant methioninase (r-METase) alone and in combination with doxorubicin, and measure the level of c-MYC expression. VHDR-HT1080 cells were generated by cultivating HT-1080 cells in a series of step-wise progressively higher concentrations of doxorubicin, ranging from 8 nM to 15 {micro}M, an 1875-fold increase, over a five-month period. The WST-8 reagent was used to assess cell viability. Four groups of in vitro drug-sensitivity tests were conducted, which involved both parental HT1080 and VHDR-HT1080 cells: 1) doxorubicin alone; 2) rMETase alone; 3) a combination of doxorubicin and rMETase; and 4) untreated control. The cross-resistance of VHDR-HT1080 cells to eribulin, trabectedin, gemcitabine and docetaxel was determined. The c-MYC levels in HT1080 and VHDR-HT1080 cells were measured using Western blotting. Doxorubicin had an IC50 of 3.3 {micro}M against HT1080 cells and 38.2 {micro}M against VHDR-HT1080 cells an 11.6-fold increase. The rMETase IC50 value for HT1080 was 0.75 U/ml and 0.59 U/ml for VHDR-HT1080. rMETase sensitized VHDR-HT1080 cells to doxorubicin. VHDR-HT1080 cells were cross-resistant to trabectedin 8.9-fold and cross-resistant to eribulin 1.87-fold compared to parental HT1080 cells. c-MYC expression was 8.4 times higher in VHDR-HT1080 cells compared to HT-1080 cells. The present results suggest rMETase may be used as a future clinical strategy to overcome super-doxorubicin resistance in soft tissue sarcoma.

cancer biology↗

Analysis of spike protein variants evolved in a novel mouse model of persistent SARS-CoV-2 infection

SARS-CoV-2 mutation rates have increased over time, resulting in the emergence of several variants of concern. Persistent infection is assumed to be involved in the evolution of the variants; however, there is currently no animal model to recapitulate persistent infection. We established a novel model of persistent infection using xenografts of Calu-3 human lung cancer cells in immunocompromised mice. After infection with wild-type SARS-CoV-2, viruses were found in the tumor tissues for up to 30 days and acquired various mutations, predominantly in the spike (S) protein, some of which increased while others fluctuated for 30 days. Three isolated viral clones with defined mutations produced higher virus titers than the wild-type virus in Calu-3 cells without cytotoxic effects. In K18-hACE2 mice, the variants were less lethal than the wild-type virus. Infection with each variant induced production of cross-reactive antibodies to the receptor binding domain of wild-type S protein and provided protective immunity against subsequent challenge with wild-type virus. These results suggest that most of the SARS-CoV-2 variants acquired mutations promoting host adaptation in the Calu-3 xenograft mice. This model can be used in the future to further study persistent SARS-CoV-2 infection.

microbiology↗