Substrate stiffness regulates the recurrent glioblastoma cell morphology and aggressiveness

被引:14
作者
Acharekar, Anagha [1 ,2 ]
Bachal, Ketaki [3 ]
Shirke, Pallavi [3 ]
Thorat, Rahul [5 ]
Banerjee, Archisman [1 ,2 ]
Gardi, Nilesh [2 ,4 ]
Majumder, Abhijit [3 ]
Dutt, Shilpee [1 ,2 ]
机构
[1] Adv Ctr Treatment Res & Educ Canc, Tata Mem Ctr, Shilpee Dutt Lab, Navi Mumbai 410210, India
[2] Homi Bhabha Natl Inst, Training Sch Complex, Mumbai 400085, India
[3] Indian Inst Technol, Dept Chem Engn, M Lab, Mumbai 400076, India
[4] Tata Mem Hosp, Tata Mem Ctr, Dept Med Oncol, Navi Mumbai 410210, Maharashtra, India
[5] Tata Mem Ctr TMC, Adv Ctr Treatment Res & Educ Canc ACTREC, Lab Anim Facil, Mumbai, India
关键词
Glioblastoma; recurrence; Extracellular matrix; substrate stiffness; Mechanosignaling; Resection GBM model; EXTRACELLULAR-MATRIX; EGFR; GLIOMA; MECHANICS; SURVIVAL; GROWTH; CLASSIFICATION; TEMOZOLOMIDE; ORGANIZATION; INHIBITION;
D O I
10.1016/j.matbio.2022.12.002
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Recurrent glioblastoma is highly aggressive with currently no specific treatment regime. Therefore, to identify novel therapeutic targets for recurrent GBM, we used a cellular model developed in our lab from commercially available cell line U87MG and patient-derived cultures that allows the comparison between radiation naive (Parent) and recurrent GBM cells generated after parent cells are exposed to lethal dose of radiation. Total RNA-seq of parent and recurrent population revealed significant upregulation of cell-ECM interactions path-way in the recurrent population. These results led us to hypothesize that the physical microenvironment con-tributes to the aggressiveness of recurrent GBM. To verify this, we cultured parent and recurrent GBM cells on collagen-coated polyacrylamide gels mimicking the stiffness of normal brain (Young's modulus E = 0.5kPa) or tumorigenic brain (E = 10kPa) and tissue culture plastic dishes (E >> 1 GPa). We found that compared to parent cells, recurrent cells showed higher proliferation, invasion, migration, and resistance to EGFR inhibitor. Using orthotopic GBM mouse model and resection model, we demonstrate that recurrent cells cultured on 0.5kPa had higher in vivo tumorigenicity and recurrent disease progression than parent cells, whereas these differences were insignificant when parent and recurrent cells were cultured on plastic sub-strates. Furthermore, recurrent cells on 0.5kPa showed high expression of ECM proteins like Collagen, MMP2 and MMP9. These proteins were also significantly upregulated in recurrent patient biopsies. Addition-ally, the brain of mice injected with recurrent cells grown on 0.5kPa showed higher Young's moduli suggesting the ability of these cells to make the surrounding ECM stiffer. Total RNA-seq of parent and recurrent cells grown on plastic and 0.5kpa identified PLEKHA7 significantly upregulated specifically in recurrent cells grown on 0.5 kPa substrate. PLEKHA7 was also found to be high in recurrent GBM patient biopsies. Accordingly, PLEKHA7 knockdown reduced invasion and survival of recurrent GBM cells. Together, these data provide an in vitro model system that captures the observed in vivo and clinical behavior of recurrent GBM by mimicking mechanical microenvironment and identifies PLEKHA7 as a novel potential target for recurrent GBM.
引用
收藏
页码:107 / 127
页数:21
相关论文
共 68 条
[1]  
Afra D, 2002, LANCET, V359, P1011
[2]   Glioblastoma multiforme: Pathogenesis and treatment [J].
Alifieris, Constantinos ;
Trafalis, Dimitrios T. .
PHARMACOLOGY & THERAPEUTICS, 2015, 152 :63-82
[3]   A tension-mediated glycocalyx-integrin feedback loop promotes mesenchymal-like glioblastoma [J].
Barnes, J. Matthew ;
Kaushik, Shelly ;
Bainer, Russell O. ;
Sa, Jason K. ;
Woods, Elliot C. ;
Kai, FuiBoon ;
Przybyla, Laralynne ;
Lee, Mijeong ;
Lee, Hye Won ;
Tung, Jason C. ;
Maller, Ori ;
Barrett, Alexander S. ;
Lu, Kan V. ;
Lakins, Jonathon N. ;
Hansen, Kirk C. ;
Obernier, Kirsten ;
Alvarez-Buylla, Arturo ;
Bergers, Gabriele ;
Phillips, Joanna J. ;
Nam, Do-Hyun ;
Bertozzi, Carolyn R. ;
Weaver, Valerie M. .
NATURE CELL BIOLOGY, 2018, 20 (10) :1203-+
[4]   Tissue mechanics regulate brain development, homeostasis and disease [J].
Barnes, J. Matthew ;
Przybyla, Laralynne ;
Weaver, Valerie M. .
JOURNAL OF CELL SCIENCE, 2017, 130 (01) :71-82
[5]   Recurrent Glioblastoma: From Molecular Landscape to New Treatment Perspectives [J].
Birzu, Cristina ;
French, Pim ;
Caccese, Mario ;
Cerretti, Giulia ;
Idbaih, Ahmed ;
Zagonel, Vittorina ;
Lombardi, Giuseppe .
CANCERS, 2021, 13 (01) :1-29
[6]   Traction fields, moments, and strain energy that cells exert on their surroundings [J].
Butler, JP ;
Tolic-Norrelykke, IM ;
Fabry, B ;
Fredberg, JJ .
AMERICAN JOURNAL OF PHYSIOLOGY-CELL PHYSIOLOGY, 2002, 282 (03) :C595-C605
[7]   A comprehensive profile of recurrent glioblastoma [J].
Campos, B. ;
Olsen, L. R. ;
Urup, T. ;
Poulsen, H. S. .
ONCOGENE, 2016, 35 (45) :5819-5825
[8]   Prognostic value of epidermal growth factor receptor amplification and EGFRvIII in glioblastoma: meta-analysis [J].
Chen, J. -R. ;
Xu, H. -Z. ;
Yao, Y. ;
Qin, Z. -Y. .
ACTA NEUROLOGICA SCANDINAVICA, 2015, 132 (05) :310-322
[9]   Function of Akt/PKB signaling to cell motility, invasion and the tumor stroma in cancer [J].
Chin, Y. Rebecca ;
Toker, Alex .
CELLULAR SIGNALLING, 2009, 21 (04) :470-476
[10]  
Dyson K., 2017, Mechanical characterization of human brain tumors from patients and comparison to potential surgical phantoms, P1