Cite

Ahmadi H, Ramezani M, Yazdian-Robati R, Behnam B, Razavi Azarkhiavi K, Hashem Nia A, Mokhtarzadeh A, Matbou Riahi M, Razavi BM, Abnous K. Acute toxicity of functionalized single wall carbon nanotubes: A biochemical, histopathologic and proteomics approach. Chem Biol Interact 275, 196–209, 2017.10.1016/j.cbi.2017.08.00428807745 Search in Google Scholar

Aragon MJ, Topper L, Tyler CR, Sanchez B, Zychowski K, Young T, Herbert G, Hall P, Erdely A, Eye T, Bishop L, Saunders SA, Muldoon PP, Ottens AK, Campen MJ. Serum-borne bioactivity caused by pulmonary multi-walled carbon nanotubes induces neuroinflammation via blood-brain barrier impairment. Proc Natl Acad Sci USA 114, E1968–E1976, 2017.10.1073/pnas.1616070114534754128223486 Search in Google Scholar

Auf G, Jabouille A, Delugin M, Guerit S, Pineau R, North S, Platonova N, Maitre M, Favereaux A, Vajkoczy P, Seno M, Bikfalvi A, Minchenko D, Minchenko O, Moenner M. High epiregulin expression in human U87 glioma cells relies on IRE1a and promotes autocrine growth through EGF receptor. BMC Cancer 13, 597, 2013.10.1186/1471-2407-13-597387867024330607 Search in Google Scholar

Avitabile E, Bedognetti D, Ciofani G, Bianco A, Delogu LG. How can nanotechnology help the fight against breast cancer? Nanoscale 10, 11719–11731, 2018.10.1039/C8NR02796J29917035 Search in Google Scholar

Backes C, Behera RK, Bianco A, Casiraghi C, Doan H, Criado A, Galembeck F, Goldie S, Gravagnuolo AM, Hou HL, Kamali AR, Kostarelos K, Kumar V, Lee WH, Martsinovich N, Palermo V, Palma M, Pang J, Prato M, Samori P, Silvestri A, Singh S, Strano M, Wetzl C. Biomedical applications: general discussion. Faraday Discuss 227, 245–258, 2021.10.1039/D1FD90003J33877208 Search in Google Scholar

Boran H, Ulutas G. Genotoxic effects and gene expression changes in larval zebrafish after exposure to ZnCl2 and ZnO nanoparticles. Dis Aquat Org 117, 205–214, 2016.10.3354/dao0294326758654 Search in Google Scholar

Cao Y, Long J, Liu L, He T, Jiang L, Zhao C, Li Z. A review of endoplasmic reticulum (ER) stress and nanoparticle (NP) exposure. Life Sci 186, 33–42, 2017.10.1016/j.lfs.2017.08.00328782531 Search in Google Scholar

Cao Y, Han Q, Li J, Jia Y, Zhang R, Shi H. P4HA2 contributes to cervical cancer progression via inducing epithelialmesenchymal transition. J Cancer 11, 2788–2799, 2020.10.7150/jca.38401708625132226497 Search in Google Scholar

Cellot G, Franceschi Biagioni A, Ballerini L. Nanomedicine and graphene-based materials: advanced technologies for potential treatments of diseases in the developing nervous system. Pediatr Res 2021, Sep 3. doi: 10.1038/s41390-021-01681-6. Online ahead of print.34480086 Open DOISearch in Google Scholar

Chakravarthi BV, Pathi SS, Goswami MT, Cieslik M, Zheng H, Nallasivam S, Arekapudi SR, Jing X, Siddiqui J, Athanikar J, Carskadon SL, Lonigro RJ, Kunju LP, Chinnaiyan AM, Palanisamy N, Varambally S. The miR-124-prolyl hydroxylase P4HA1-MMP1 axis plays a critical role in prostate cancer progression. Oncotarget 5, 6654–6669. 2014.10.18632/oncotarget.2208419615425115393 Search in Google Scholar

ChangYC, ChangTJ, LeeWJ, Chuang LM. The relationship of visfatin/pre-B-cell colony-enhancing factor/nicotin-amide phosphoribosyltransferase in adipose tissue with inflammation, insulin resistance, and plasma lipids. Metab Clin Exp 59, 93–99, 2010.10.1016/j.metabol.2009.07.01119765775 Search in Google Scholar

Chen L, Li J, Chen Z, Gu Z, Yan L, Zhao F, Zhang A. Toxicological evaluation of graphene-family nanomaterials. J Nanosci Nanotechnol 20, 1993–2006, 2020.10.1166/jnn.2020.1736431492205 Search in Google Scholar

Cui G, Wu J, Lin J, Liu W, Chen P, Yu M, Zhou D, Yao G. Graphene-based nanomaterials for breast cancer treatment: promising therapeutic strategies. J Nanobiotechnology 19, 211, 2021.10.1186/s12951-021-00902-8828166434266419 Search in Google Scholar

Dash BS, Jose G, Lu YJ, Chen JP. Functionalized reduced graphene oxide as a versatile tool for cancer therapy. Int J Mol Sci 22, 2989, 2021.10.3390/ijms22062989800083733804239 Search in Google Scholar

Eldawud R, Wagner A, Dong C, Stueckle TA, Rojanasakul Y, Dinu CZ. Carbon nanotubes physicochemical properties influence the overall cellular behavior and fate. NanoImpact 9, 72–84, 2018.10.1016/j.impact.2017.10.006675395631544167 Search in Google Scholar

Ema M, Gamo M, Honda K. A review of toxicity studies on graphene-based nanomaterials in laboratory animals. Regul Toxicol Pharmacol 85, 7–24, 2017.10.1016/j.yrtph.2017.01.01128161457 Search in Google Scholar

Fadeel B, Bussy C, Merino S, Vazquez E, Flahaut E, Mouchet F, Evariste L, Gauthier L, Koivisto AJ, Vogel U, Martín C, Delogu LG, Buerki-Thurnherr T, Wick P, Beloin-Saint-Pierre D, Hischier R, Pelin M, Candotto Carniel F, Tretiach M, Cesca F, Benfenati F, Scaini D, Ballerini L, Kostarelos K, Prato M, Bianco A. Safety assessment of graphene-based materials: focus on human health and the environment. ACS Nano 12, 10582–10620, 2018.10.1021/acsnano.8b0475830387986 Search in Google Scholar

Francis A, Devasena T. Toxicity of carbon nanotubes: a review. Toxicol Ind Health 34, 200–210, 2018.10.1177/074823371774747229506458 Search in Google Scholar

Gasparrini M, Mazzola F, Cuccioloni M, Sorci L, Audrito V, Zamporlini F, Fortunato C, Amici A, Cianci M, Deaglio S, Angeletti M, Raffaelli N. Molecular insights into the interaction between human nicotinamide phosphoribosyltransferase and Toll-like receptor 4. J Biol Chem 298, 101669, 2022.10.1016/j.jbc.2022.101669889208535120922 Search in Google Scholar

Goldewski J., Lenart J, Salinska E. MicroRNA in brain pathology: Neurodegeneration the other side of the brain cancer. Non-coding RNA 5, 20, 2019.10.3390/ncrna5010020646866030813461 Search in Google Scholar

Hu H, Li L, Guo Q, Zong H, Yan Y, Yin Y, Wang Y, Oh Y, Feng Y, Wu Q, Gu N. RNA sequencing analysis shows that titanium dioxide nanoparticles induce endoplasmic reticulum stress, which has a central role in mediating plasma glucose in mice. Nanotoxicology 12, 341–356, 2018.10.1080/17435390.2018.144656029510645 Search in Google Scholar

Jhanwar-Uniyal M. BRCA1 in cancer, cell cycle and genomic stability. Front Biosci 8, s1107–1117, 2003.10.2741/113112957814 Search in Google Scholar

Jia PP, Sun T, Junaid M, Yang L, Ma YB, Cui ZS, Wei DP, Shi HF, Pei DS. Nanotoxicity of different sizes of graphene (G) and graphene oxide (GO) in vitro and in vivo. Environ Pollut 247, 595–606, 2019.10.1016/j.envpol.2019.01.07230708322 Search in Google Scholar

Jiang L, Zhang X, Geradts J, Wei Q, Hochwald S, Xu H, Huang H. Expression of tetraspanins NET-6 and CD151 in breast cancer as a potential tumor biomarker. Clin Exp Med 19, 377–384, 2019.10.1007/s10238-019-00554-x31004251 Search in Google Scholar

Jiang T, Amadei, CA, Gou N, Lin Y, Lan J, Vecitis CD, Gu AZ. Toxicity of single-walled carbon nanotubes (SWCNTs): effect of lengths, functional groups and electronic structures revealed by a quantitative toxicogenomics assay. Environ Sci Nano 7, 1348–1364, 2020.10.1039/D0EN00230E785365633537148 Search in Google Scholar

Kavosi A, Noei SHG, Madani S, Khalighfard S, Khodayari H, Mirzaei M, Kalhari MR, Yavarian M, Alizadeh AM, Falahati M. The toxicity and therapeutic effects of single- and multi-wall carbon nanotubes on mice breast cancer. Sci. Reports 8, 8375, 2018.10.1038/s41598-018-26790-x597672629849103 Search in Google Scholar

Li P, Dong M, Wang Z. Downregulation of TSPAN13 by miR-369-3p inhibits cell proliferation in papillary thyroid cancer (PTC). Bosn J Basic Med Sci 19, 146–154, 2019.10.17305/bjbms.2018.2865653539130114378 Search in Google Scholar

Li J, Zeng H, Zeng Z, Zeng Y, Xie T. Promising graphene-based nanomaterials and their biomedical applications and potential risks: A comprehensive review. ACS Biomater Sci Eng 7, 5363–5396, 2021.10.1021/acsbiomaterials.1c0087534747591 Search in Google Scholar

Lin Y, Wu Z. MicroRNA-128 inhibits proliferation and invasion of glioma cells by targeting COX-2. Gene 658, 63–69, 2018.10.1016/j.gene.2018.03.02029524580 Search in Google Scholar

Ma Q, Zhang L, Pearce WJ. MicroRNAs in brain development and cerebrovascular pathophysiology. Am J Physiol Cell Physiol 317, C3–C19, 2019.10.1152/ajpcell.00022.2019668975230840494 Search in Google Scholar

Malhotra N, Villaflores OB, Audira G, Siregar P, Lee JS, Ger TR, Hsiao CD. Toxicity studies on graphene-based nano-materials in aquatic organisms: current understanding. Molecules 25, 3618, 2020.10.3390/molecules25163618746527732784859 Search in Google Scholar

Maurel M, Chevet E. Endoplasmic reticulum stress signaling: the microRNA connection. Am J Physiol Cell Physiol 304, C1117–C1126, 2013.10.1152/ajpcell.00061.201323515532 Search in Google Scholar

Mendonça MC, Soares ES, de Jesus MB, Ceragioli HJ, Ferreira MS, Catharino RR, da Cruz-Höfling MA. Reduced graphene oxide induces transient blood-brain barrier opening: an in vivo study. J Nanobiotechnology 13, 78, 2015.10.1186/s12951-015-0143-z462829626518450 Search in Google Scholar

Minchenko OH, Tsymbal DO, Minchenko DO, Hnatiuk OS, Prylutskyy YI, Prylutska SV, Tsierkezos NG, Ritter U. Single-walled carbon nanotubes affect the expression of genes associated with immune response in normal human astrocytes. Toxicology in Vitro 52, 122–130, 2018.10.1016/j.tiv.2018.06.01129906516 Search in Google Scholar

Minchenko DO, Tsymbal DO, Luzina OY, Riabovol OO, Danilovskyi SV, Minchenko OH. Silencing of NAMPT leads to up-regulation of insulin receptor substrate 1 gene expression in U87 glioma cells. Endocr Reg 54, 31–42, 2020.10.2478/enr-2020-000532597148 Search in Google Scholar

Oh MJ, Yi SJ, Kim HS, Kim JH, Jeong YH, van Agthoven T, Jhun BH. Functional roles of BCAR3 in the signaling pathways of insulin leading to DNA synthesis, membrane ruffling and GLUT4 translocation. Biochem Biophys Res Commun 441, 911–916; 2013.10.1016/j.bbrc.2013.10.16124216110 Search in Google Scholar

Ou L, Song B, Liang H, Liu J, Feng X, Deng B, Sun T, Shao L. Toxicity of graphene-family nanoparticles: a general review of the origins and mechanisms. Particle Fibre Toxicol 13, 57, 2016.10.1186/s12989-016-0168-y508866227799056 Search in Google Scholar

Pan Z, Zhu Q, You W, Shen C, Hu W, Chen X. Silencing of Mig-7 expression inhibits in-vitro invasiveness and vasculogenic mimicry of human glioma U87 cells. Neuroreport 30, 1135–1142, 2019.10.1097/WNR.000000000000131731688418 Search in Google Scholar

Qi Y, Li H, Lv J, Qi W, Shen L, Liu S, Ding A, Wang G, Sun L, Qiu W. Expression and function of transmembrane 4 superfamily proteins in digestive system cancers. Cancer Cell International 20, 314, 2020.10.1186/s12935-020-01353-1736465832694936 Search in Google Scholar

Ravinder D, Rampogu S, Dharmapuri G, Pasha A, Lee KW, Pawar SC. Inhibition of DDX3 and COX-2 by forskolin and evaluation of anti-proliferative, pro-apoptotic effects on cervical cancer cells: molecular modelling and in vitro approaches. Med Oncol 39, 61, 2022.10.1007/s12032-022-01658-335478276 Search in Google Scholar

Rudnytska OV, Khita OO, Minchenko DO, Tsymbal DO, Yefimova YV, Sliusar MY, Minchenko OH. The low doses of SWCNTs exhibit a genotoxic effect on the normal human astrocytes by disrupting the functional integrity of the genome. Curr Res Toxicol 2, 64–71, 2021.10.1016/j.crtox.2021.02.001832063334345851 Search in Google Scholar

Sasai K, Akagi T, Aoyanagi E, Tabu K, Kaneko S, Tanaka S. O6-methylguanine-DNA methyltransferase is down-regulated in transformed astrocyte cells: implications for anti-glioma therapies. Mol Cancer 6, 36, 2007.10.1186/1476-4598-6-36189278317547775 Search in Google Scholar

Scherzad A, Meyer T, Kleinsasser N, Hackenberg S. Molecular mechanisms of zinc oxide nanoparticle-induced genotoxicity short running title: genotoxicity of ZnO NPs. Materials 10, 1427, 2017.10.3390/ma10121427574436229240707 Search in Google Scholar

Simon M, Saez G, Muggiolu G, Lavenas M, Le Trequesser Q, Michelet C, Deves G, Barberet P, Chevet E, Dupuy D, Delville M-H, Seznec H. In situ quantification of diverse titanium dioxide nanoparticles unveils selective endoplasmic reticulum stress-dependent toxicity. Nanotoxicology 11, 134–145, 2017.10.1080/17435390.2017.127880328044465 Search in Google Scholar

Su S, Wang J, Qiu J, Martinez-Zaguilan R, Sennoune SR, Wang S. In vitro study of transportation of porphyrin immobilized graphene oxide through blood brain barrier. Mater Sci Eng C Mater Biol Appl 107, 110313, 2020.10.1016/j.msec.2019.11031331761227 Search in Google Scholar

Tahir DE, Rehman MS, Rehman MU. An overview of cancer genetics with focus on involvement of BRCA1/2 genes in breast carcinomas. J Pak Med Assoc 70, 1240–1247, 2020.10.5455/JPMA.2035132799280 Search in Google Scholar

Takaoka M, Miki Y. BRCA1 gene: function and deficiency. Int J Clin Oncol 23, 36–44, 2018.10.1007/s10147-017-1182-228884397 Search in Google Scholar

Wang T, Fu X, Jin T, Zhang L, Liu B, Wu Y, Xu F, Wang X, Ye K, Zhang W, Ye L. Aspirin targets P4HA2 through inhibiting NF-kappaB and LMCD1-AS1/let-7g to inhibit tumor growth and collagen deposition in hepato-cellular carcinoma. EBioMedicine 45, 168–180, 2019.10.1016/j.ebiom.2019.06.048664231931278071 Search in Google Scholar

Xu R, Yuan Z, Yang L, Li L, Li D, Lv C. Inhibition of NAMPT decreases cell growth and enhances susceptibility to oxidative stress. Oncol Rep 38, 1767–1773, 2017.10.3892/or.2017.579328714034 Search in Google Scholar

Yan H, Xue Z, Xie J, Dong Y, Ma Z, Sun X, Kebebe Borga D, Liu Z, Li J. Toxicity of carbon nanotubes as anti-tumor drug carriers. Int J Nanomedicine 14, 10179–10194, 2019.10.2147/IJN.S220087694663232021160 Search in Google Scholar

Yang M, Zhang M. Biodegradation of carbon nanotubes by macrophages. Front Mater 6, 225, 2019.10.3389/fmats.2019.00225 Search in Google Scholar

Yapijakis C. Regulatory role of microRNAs in brain development and function. Adv Exp Med Biol 1195, 237–247, 2020.10.1007/978-3-030-32633-3_3232468482 Search in Google Scholar

Zhang Z, Wang Y, Wang Y, Wang C, Shuai Y, Luo J, Liu R. BCAR3 promotes head and neck cancer growth and is associated with poor prognosis. Cell Death Discov 7, 316, 2021.10.1038/s41420-021-00714-7855128234707118 Search in Google Scholar

Zhou H, He Y, Li L, Wu C, Hu G. Overexpression of P4HA1 is correlated with poor survival and immune infiltrates in lung adenocarcinoma. Biomed Res Int 2020, 8024138, 2020.10.1155/2020/8024138770793933299876 Search in Google Scholar

Zhu Y, Shi C, Zeng L, Liu G, Jiang W, Zhang X, Chen S, Guo J, Jian X, Ouyang J, Xia J, Kuang C, Fan S, Wu X, Wu Y, Zhou W, Guan Y. High COX-2 expression in cancer-associated fibroblasts contributes to poor survival and promotes migration and invasiveness in nasopharyngeal carcinoma. Mol Carcinog 59, 265–280, 2020.10.1002/mc.23150702787831867776 Search in Google Scholar

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