Targeting the ABC transporter ABCB5 sensitizes glioblastoma to temozolomide-induced apoptosis through a cell-cycle checkpoint regulation mechanism is a research paper published in Journal of Biological Chemistry (2020). On theSindex it has a DataRank of 0. It has been cited 45 times.
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U.S. Department of Veterans Affairs
Grant: 1I01BX000516
U.S. Department of Veterans Affairs
Grant: 1I01RX000989
DOD | United States Army | MEDCOM | CDMRP | DOD Peer Reviewed Cancer Research Program
Grant: W81XWH-17–1-0217
HHS | NIH | National Cancer Institute
Grant: R01CA113796
HHS | NIH | National Cancer Institute
Grant: R01CA158467
HHS | NIH | National Cancer Institute
Grant: R01CA138231
HHS | NIH | National Eye Institute
Grant: 1RO1EY025794
HHS | NIH | National Eye Institute
Grant: R24EY028767
HHS | National Institutes of Health
Grant: T32 EB016652–05
BLRD VA
Grant: I01 BX000516
NIBIB NIH HHS
Grant: T32 EB016652
RRD VA
Grant: I01 RX000989
NEI NIH HHS
Grant: R01 EY025794
LEO Foundation
Grant: LF-OC-19-000256
MeSH Terms
Keywords
Additional file 1 of Metabolic reprogramming of poly(morpho)nuclear giant cells determines glioblastoma recovery from doxorubicin-induced stress
Additional file 1 of Metabolic reprogramming of poly(morpho)nuclear giant cells determines glioblastoma recovery from doxorubicin-induced stress
Additional file 2 of Metabolic reprogramming of poly(morpho)nuclear giant cells determines glioblastoma recovery from doxorubicin-induced stress
Additional file 2 of Metabolic reprogramming of poly(morpho)nuclear giant cells determines glioblastoma recovery from doxorubicin-induced stress