Literature DB >> 21878493

Importance of PKCδ signaling in fractionated-radiation-induced expansion of glioma-initiating cells and resistance to cancer treatment.

Min-Jung Kim1, Rae-Kwon Kim, Chang-Hwan Yoon, Sungkwan An, Sang-Gu Hwang, Yongjoon Suh, Myung-Jin Park, Hee Young Chung, In Gyu Kim, Su-Jae Lee.   

Abstract

Brain tumors frequently recur or progress as focal masses after treatment with ionizing radiation. However, the mechanisms underlying the repopulation of tumor cells after radiation have remained unclear. In this study, we show that cellular signaling from Abelson murine leukemia viral oncogene homolog (Abl) to protein kinase Cδ (PKCδ) is crucial for fractionated-radiation-induced expansion of glioma-initiating cell populations and acquisition of resistance to anticancer treatments. Treatment of human glioma cells with fractionated radiation increased Abl and PKCδ activity, expanded the CD133-positive (CD133(+)) cell population that possesses tumor-initiating potential and induced expression of glioma stem cell markers and self-renewal-related proteins. Moreover, cells treated with fractionated radiation were resistant to anticancer treatments. Small interfering RNA (siRNA)-mediated knockdown of PKCδ expression blocked fractionated-radiation-induced CD133(+) cell expansion and suppressed expression of glioma stem cell markers and self-renewal-related proteins. It also suppressed resistance of glioma cells to anticancer treatments. Similarly, knockdown of Abl led to a decrease in CD133(+) cell populations and restored chemotherapeutic sensitivity. It also attenuated fractionated-radiation-induced PKCδ activation, suggesting that Abl acts upstream of PKCδ. Collectively, these data indicate that fractionated radiation induces an increase in the glioma-initiating cell population, decreases cellular sensitivity to cancer treatment and implicates activation of Abl-PKCδ signaling in both events. These findings provide insights that might prove pivotal in the context of ionising-radiation-based therapeutic interventions for brain tumors.

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Year:  2011        PMID: 21878493     DOI: 10.1242/jcs.080119

Source DB:  PubMed          Journal:  J Cell Sci        ISSN: 0021-9533            Impact factor:   5.285


  19 in total

1.  Dying tumor cells stimulate proliferation of living tumor cells via caspase-dependent protein kinase Cδ activation in pancreatic ductal adenocarcinoma.

Authors:  Jin Cheng; Ling Tian; Jingjing Ma; Yanping Gong; Zhengxiang Zhang; Zhiwei Chen; Bing Xu; Hui Xiong; Chuanyuan Li; Qian Huang
Journal:  Mol Oncol       Date:  2014-08-07       Impact factor: 6.603

Review 2.  K+ channel signaling in irradiated tumor cells.

Authors:  Benjamin Stegen; Lukas Klumpp; Milan Misovic; Lena Edalat; Marita Eckert; Dominik Klumpp; Peter Ruth; Stephan M Huber
Journal:  Eur Biophys J       Date:  2016-05-10       Impact factor: 1.733

3.  PNJ scaffolds promote microenvironmental regulation of glioblastoma stem-like cell enrichment and radioresistance.

Authors:  John M Heffernan; James B McNamara; Brent L Vernon; Shwetal Mehta; Rachael W Sirianni
Journal:  Biomater Sci       Date:  2022-02-01       Impact factor: 6.843

4.  Proinvasive extracellular matrix remodeling in tumor microenvironment in response to radiation.

Authors:  Ki-Chun Yoo; Yongjoon Suh; Yoojeong An; Hae-June Lee; Ye Ji Jeong; Nizam Uddin; Yan-Hong Cui; Tae-Hoon Roh; Jin-Kyoung Shim; Jong Hee Chang; Jong Bae Park; Min-Jung Kim; In-Gyu Kim; Seok-Gu Kang; Su-Jae Lee
Journal:  Oncogene       Date:  2018-03-21       Impact factor: 9.867

5.  Acute and fractionated irradiation differentially modulate glioma stem cell division kinetics.

Authors:  Xuefeng Gao; J Tyson McDonald; Lynn Hlatky; Heiko Enderling
Journal:  Cancer Res       Date:  2012-12-26       Impact factor: 12.701

Review 6.  Ion Transport and Radioresistance.

Authors:  Bastian Roth; Stephan M Huber
Journal:  Rev Physiol Biochem Pharmacol       Date:  2022       Impact factor: 5.545

7.  uPAR and cathepsin B knockdown inhibits radiation-induced PKC integrated integrin signaling to the cytoskeleton of glioma-initiating cells.

Authors:  Kiranmai Alapati; Sreelatha Gopinath; Rama Rao Malla; Venkata Ramesh Dasari; Jasti S Rao
Journal:  Int J Oncol       Date:  2012-05-24       Impact factor: 5.650

8.  Unveiling stem cell kinetics: prime time for integrating experimental and computational models.

Authors:  Heiko Enderling
Journal:  Front Oncol       Date:  2013-11-28       Impact factor: 6.244

9.  Ionizing Radiation Induces Resistant Glioblastoma Stem-Like Cells by Promoting Autophagy via the Wnt/β-Catenin Pathway.

Authors:  Cheng-Yu Tsai; Huey-Jiun Ko; Chi-Ying F Huang; Ching-Yi Lin; Shean-Jaw Chiou; Yu-Feng Su; Ann-Shung Lieu; Joon-Khim Loh; Aij-Lie Kwan; Tsung-Hsien Chuang; Yi-Ren Hong
Journal:  Life (Basel)       Date:  2021-05-18

10.  An overview of therapeutic approaches to brain tumor stem cells.

Authors:  Alireza Khoshnevisan
Journal:  Med J Islam Repub Iran       Date:  2012-02
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