Literature DB >> 28816233

Shikonin induces glioma cell necroptosis in vitro by ROS overproduction and promoting RIP1/RIP3 necrosome formation.

Bin Lu1,2, Xu Gong3, Zong-Qi Wang1,2, Ye Ding1,2, Chen Wang1,2, Tian-Fei Luo2,4, Mei-Hua Piao5, Fan-Kai Meng6, Guang-Fan Chi7, Yi-Nan Luo1, Peng-Fei Ge1,2.   

Abstract

Necroptosis is a type of programmed necrosis regulated by receptor interacting protein kinase 1 (RIP1) and RIP3. Necroptosis is found to be accompanied by an overproduction of reactive oxygen species (ROS), but the role of ROS in regulation of necroptosis remains elusive. In this study, we investigated how shikonin, a necroptosis inducer for cancer cells, regulated the signaling leading to necroptosis in glinoma cells in vitro. Treatment with shikonin (2-10 μmol/L) dose-dependently triggered necrosis and induced overproduction of intracellular ROS in rat C6 and human SHG-44, U87 and U251 glioma cell lines. Moreover, shikonin treatment dose-dependently upregulated the levels of RIP1 and RIP3 and reinforced their interaction in the glioma cells. Pretreatment with the specific RIP1 inhibitor Nec-1 (100 μmol/L) or the specific RIP3 inhibitor GSK-872 (5 μmol/L) not only prevented shikonin-induced glioma cell necrosis but also significantly mitigated the levels of intracellular ROS and mitochondrial superoxide. Mitigation of ROS with MnTBAP (40 μmol/L), which was a cleaner of mitochondrial superoxide, attenuated shikonin-induced glioma cell necrosis, whereas increasing ROS levels with rotenone, which improved the mitochondrial generation of superoxide, significantly augmented shikonin-caused glioma cell necrosis. Furthermore, pretreatment with MnTBAP prevented the shikonin-induced upregulation of RIP1 and RIP3 expression and their interaction while pretreatment with rotenone reinforced these effects. These findings suggest that ROS is not only an executioner of shikonin-induced glioma cell necrosis but also a regulator of RIP1 and RIP3 expression and necrosome assembly.

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Year:  2017        PMID: 28816233      PMCID: PMC5672068          DOI: 10.1038/aps.2017.112

Source DB:  PubMed          Journal:  Acta Pharmacol Sin        ISSN: 1671-4083            Impact factor:   6.150


  39 in total

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Authors:  Xingshun Xu; Chu C Chua; Jiming Kong; Richard M Kostrzewa; Udayasankar Kumaraguru; Ronald C Hamdy; Balvin H L Chua
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3.  5-Benzylglycinyl-amiloride kills proliferating and nonproliferating malignant glioma cells through caspase-independent necroptosis mediated by apoptosis-inducing factor.

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4.  Phosphorylation-driven assembly of the RIP1-RIP3 complex regulates programmed necrosis and virus-induced inflammation.

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5.  Necroptosis is associated with low procaspase-8 and active RIPK1 and -3 in human glioma cells.

Authors:  Sara Melo-Lima; Maria Celeste Lopes; Faustino Mollinedo
Journal:  Oncoscience       Date:  2014-10-22

Review 6.  Cancer therapy in the necroptosis era.

Authors:  Z Su; Z Yang; L Xie; J P DeWitt; Y Chen
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Authors:  Yingying Zhang; Sheng Sean Su; Shubo Zhao; Zhentao Yang; Chuan-Qi Zhong; Xin Chen; Qixu Cai; Zhang-Hua Yang; Deli Huang; Rui Wu; Jiahuai Han
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  26 in total

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Journal:  RSC Med Chem       Date:  2021-11-11

Review 2.  The regulation of necroptosis and perspectives for the development of new drugs preventing ischemic/reperfusion of cardiac injury.

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3.  Shikonin inhibited glycolysis and sensitized cisplatin treatment in non-small cell lung cancer cells via the exosomal pyruvate kinase M2 pathway.

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Review 5.  RIPK3 signaling and its role in the pathogenesis of cancers.

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Review 6.  Naturally occurring anti-cancer compounds: shining from Chinese herbal medicine.

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Review 7.  RIPK3: A New Player in Renal Fibrosis.

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8.  Flow cytometric detection of hyper-polarized mitochondria in regulated and accidental cell death processes.

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9.  Anti-tumor activity of Shikonin against afatinib resistant non-small cell lung cancer via negative regulation of PI3K/Akt signaling pathway.

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Journal:  Biosci Rep       Date:  2018-12-11       Impact factor: 3.840

10.  Rutin Ameliorates Cadmium-Induced Necroptosis in the Chicken Liver via Inhibiting Oxidative Stress and MAPK/NF-κB Pathway.

Authors:  Lili Liu; Liangyou Zhao; Yuan Liu; Xiaoli Yu; Xinyuan Qiao
Journal:  Biol Trace Elem Res       Date:  2021-06-06       Impact factor: 3.738

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