Cell surface GRP78: a potential mechanism of therapeutic resistant tumors

被引:18
作者
Amaresan, Rajalakshmi [1 ]
Gopal, Udhayakumar [2 ]
机构
[1] Auxilium Coll, Dept Zool, Vellore 632006, Tamil Nadu, India
[2] Univ Mississippi Med Ctr, Dept Neurosurg, Jackson, MS 39216 USA
关键词
CS-GRP78; Chemoresitance; Radioresistance; Drug resistance; ER-stress; C38 monoclonal antibody; anti-GRP78; autoantibody; UNFOLDED PROTEIN RESPONSE; BREAST-CANCER CELLS; ENDOPLASMIC-RETICULUM STRESS; MONOCLONAL-ANTIBODY; MULTIPLE-MYELOMA; DRUG-RESISTANCE; TARGETING GRP78; TERMINAL DOMAIN; UP-REGULATION; EXPRESSION;
D O I
10.1186/s12935-023-02931-9
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
GRP78 is a protein that acts as a chaperone within the endoplasmic reticulum (ER) and has multiple functions. It is induced by stress and abets cells from survival. Despite, multiple Stress conditions like ER, chronic psychological and nutritional stress, hypoxia, chemotherapy, radiation therapy, and drug resistance induce cell surface GRP78 (CS-GRP78) expression in cancer cells. Further, CS-GRP78 is associated with increased malignancy and resistance to anti-cancer therapies and is considered a high-value druggable target. Recent preclinical research suggests that targeting CS-GRP78 with anti-GRP78 monoclonal antibodies (Mab) in combination with other agents may be effective in reversing the failure of chemotherapy, radiotherapy, or targeted therapies and increasing the efficacy of solid tumors treatment. This article will review recent evidence on the role of CS-GRP78 in developing resistance to anti-cancer treatments and the potential benefits of combining anti-GRP78 Mab with other cancer therapies for specific patient populations. Furthermore, our limited understanding of how CS-GRP78 regulated in human studies is a major drawback for designing effective CS-GRP78-targeted therapies. Hence, more research is still warranted to translate these potential therapies into clinical applications.
引用
收藏
页数:13
相关论文
共 114 条
[31]   Cell surface GRP78 promotes tumor cell histone acetylation through metabolic reprogramming: a mechanism which modulates the Warburg effect [J].
Gopal, Udhayakumar ;
Pizzo, Salvatore V. .
ONCOTARGET, 2017, 8 (64) :107947-107963
[32]   Activated α2-Macroglobulin Regulates Transcriptional Activation of c-MYC Target Genes through Cell Surface GRP78 Protein [J].
Gopal, Udhayakumar ;
Gonzalez-Gronow, Mario ;
Pizzo, Salvatore Vincent .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2016, 291 (20) :10904-10915
[33]   Colon cancer cells expressing cell surface GRP78 as a marker for reduced tumorigenicity [J].
Hardy, Britta ;
Raiter, Annat ;
Yakimov, Maxim ;
Vilkin, Alexander ;
Niv, Yaron .
CELLULAR ONCOLOGY, 2012, 35 (05) :345-354
[34]   Viruses, endoplasmic reticulum stress, and interferon responses [J].
He, B .
CELL DEATH AND DIFFERENTIATION, 2006, 13 (03) :393-403
[35]   Aberrant mucin assembly in mice causes endoplasmic reticulum stress and spontaneous inflammation resembling ulcerative colitis [J].
Heazlewood, Chad K. ;
Cook, Matthew C. ;
Eri, Rajaraman ;
Price, Gareth R. ;
Tauro, Sharyn B. ;
Taupin, Douglas ;
Thornton, David J. ;
Png, Chin Wen ;
Crockford, Tanya L. ;
Cornall, Richard J. ;
Adams, Rachel ;
Kato, Masato ;
Nelms, Keats A. ;
Hong, Nancy A. ;
Florin, Timothy H. J. ;
Goodnow, Christopher C. ;
McGuckin, Michael A. .
PLOS MEDICINE, 2008, 5 (03) :440-460
[36]   CAR T cells redirected to cell surface GRP78 display robust anti-acute myeloid leukemia activity and do not target hematopoietic progenitor cells [J].
Hebbar, Nikhil ;
Epperly, Rebecca ;
Vaidya, Abishek ;
Thanekar, Unmesha ;
Moore, Sarah E. ;
Umeda, Masayuki ;
Ma, Jing ;
Patil, Sagar L. ;
Langfitt, Deanna ;
Huang, Sujuan ;
Cheng, Cheng ;
Klco, Jeffery M. ;
Gottschalk, Stephen ;
Velasquez, M. Paulina .
NATURE COMMUNICATIONS, 2022, 13 (01)
[37]   Endoplasmic Reticulum Stress-Activated Transcription Factor ATF6α Requires the Disulfide Isomerase PDIA5 To Modulate Chemoresistance [J].
Higa, Arisa ;
Taouji, Said ;
Lhomond, Stephanie ;
Jensen, Devon ;
Fernandez-Zapico, Martin E. ;
Simpson, Jeremy C. ;
Pasquet, Jean-Max ;
Schekman, Randy ;
Chevet, Eric .
MOLECULAR AND CELLULAR BIOLOGY, 2014, 34 (10) :1839-1849
[38]   Targeting oral cancer stemness and chemoresistance by isoliquiritigenin-mediated GRP78 regulation [J].
Hu, Fang-Wei ;
Yu, Cheng-Chia ;
Hsieh, Pei-Ling ;
Liao, Yi-Wen ;
Lu, Ming-Yi ;
Chu, Pei-Ming .
ONCOTARGET, 2017, 8 (55) :93912-93923
[39]   Identification of Doxorubicin as an Inhibitor of the IRE1α-XBP1 Axis of the Unfolded Protein Response [J].
Jiang, Dadi ;
Lynch, Connor ;
Medeiros, Bruno C. ;
Liedtke, Michaela ;
Bam, Rakesh ;
Tam, Arvin B. ;
Yang, Zhifen ;
Alagappan, Muthuraman ;
Abidi, Parveen ;
Le, Quynh-Thu ;
Giaccia, Amato J. ;
Denko, Nicholas C. ;
Niwa, Maho ;
Koong, Albert C. .
SCIENTIFIC REPORTS, 2016, 6
[40]   A peptide derived from phage display library exhibits anti-tumor activity by targeting GRP78 in gastric cancer multidrug resistance cells [J].
Kang, Jianqin ;
Zhao, Guohong ;
Lin, Tao ;
Tang, Shanhong ;
Xu, Guanghui ;
Hu, Sijun ;
Bi, Qian ;
Guo, Changcun ;
Sun, Li ;
Han, Shuang ;
Xu, Qian ;
Nie, Yongzhan ;
Wang, Biaoluo ;
Liang, Shuhui ;
Ding, Jie ;
Wu, Kaichun .
CANCER LETTERS, 2013, 339 (02) :247-259