TY - JOUR
T1 - Anticancer strategy targeting cell death regulators
T2 - Switching the mechanism of anticancer floxuridine-induced cell death from necrosis to apoptosis
AU - Sato, Akira
AU - Hiramoto, Akiko
AU - Kim, Hye Sook
AU - Wataya, Yusuke
N1 - Funding Information:
ATF3 Thisactivatingresearchtranscriptionwas funded factorby JSPS3 KAKENHI, grant number JP21790078, JP24790216, JP26460310, and FUdR JP17K08550. floxuridine Acknowledgments:GA geldanamycinWe thank Hikoya Hayatsu (Okayama University), Mitsuko Masutani (Nagasaki University), and HSP Sei-ichi Tanuma heat shock (Tokyo protein University of Science) for their helpful discussions.
Funding Information:
Funding: This research was funded by JSPS KAKENHI, grant number JP21790078, JP24790216, JP26460310,
Publisher Copyright:
© 2020 by the authors. Licensee MDPI, Basel, Switzerland.
PY - 2020/8/2
Y1 - 2020/8/2
N2 - Cell death can be broadly characterized as either necrosis or apoptosis, depending on the morphological and biochemical features of the cell itself. We have previously reported that the treatment of mouse mammary carcinoma FM3A cells with the anticancer drug floxuridine (FUdR) induces necrosis in the original clone F28-7 but apoptosis in the variant F28-7-A. We have identified regulators, including heat shock protein 90, lamin-B1, cytokeratin-19, and activating transcription factor 3, of cell death mechanisms by using comprehensive gene and protein expression analyses and a phenotype-screening approach. We also observed that the individual inhibition or knockdown of the identified regulators in F28-7 results in a shift from necrotic to apoptotic morphology. Furthermore, we investigated microRNA (miRNA, miR) expression profiles in sister cell strains F28-7 and F28-7-A using miRNA microarray analyses. We found that several unique miRNAs, miR-351-5p and miR-743a-3p, were expressed at higher levels in F28-7-A than in F28-7. Higher expression of these miRNAs in F28-7 induced by transfecting miR mimics resulted in a switch in the mode of cell death from necrosis to apoptosis. Our findings suggest that the identified cell death regulators may play key roles in the decision of cell death mechanism: necrosis or apoptosis.
AB - Cell death can be broadly characterized as either necrosis or apoptosis, depending on the morphological and biochemical features of the cell itself. We have previously reported that the treatment of mouse mammary carcinoma FM3A cells with the anticancer drug floxuridine (FUdR) induces necrosis in the original clone F28-7 but apoptosis in the variant F28-7-A. We have identified regulators, including heat shock protein 90, lamin-B1, cytokeratin-19, and activating transcription factor 3, of cell death mechanisms by using comprehensive gene and protein expression analyses and a phenotype-screening approach. We also observed that the individual inhibition or knockdown of the identified regulators in F28-7 results in a shift from necrotic to apoptotic morphology. Furthermore, we investigated microRNA (miRNA, miR) expression profiles in sister cell strains F28-7 and F28-7-A using miRNA microarray analyses. We found that several unique miRNAs, miR-351-5p and miR-743a-3p, were expressed at higher levels in F28-7-A than in F28-7. Higher expression of these miRNAs in F28-7 induced by transfecting miR mimics resulted in a switch in the mode of cell death from necrosis to apoptosis. Our findings suggest that the identified cell death regulators may play key roles in the decision of cell death mechanism: necrosis or apoptosis.
KW - Apoptosis
KW - Cell death regulator
KW - MicroRNA
KW - Necrosis
KW - Proteome analysis
KW - Transcriptome analysis
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U2 - 10.3390/ijms21165876
DO - 10.3390/ijms21165876
M3 - Review article
C2 - 32824286
AN - SCOPUS:85089605636
SN - 1661-6596
VL - 21
SP - 1
EP - 11
JO - International journal of molecular sciences
JF - International journal of molecular sciences
IS - 16
M1 - 5876
ER -