Cancer statistics, 2019.
CA Cancer J Clin. 2019; 69: 7-34View in Article Scopus (9225) PubMed Crossref Google ScholarLi QK Pavlovich CP Zhang H Kinsinger CR Chan DW.Challenges and opportunities in the proteomic characterization of clear cell renal cell carcinoma (ccRCC): a critical step towards the personalized care of renal cancers.
Semin Cancer Biol. 2019; 55: 8-15View in Article Scopus (19) PubMed Crossref Google ScholarHou W Ji ZGeneration of autochthonous mouse models of clear cell renal cell carcinoma: mouse models of renal cell carcinoma.
Exp Mol Med. 2018; 50: 30-39View in Article Scopus (4) Crossref Google ScholarSong E Song WT Ren MH Xing L Ni WJ Li YX Gong MC Zhao MB Ma X Zhang X An RIdentification of potential crucial genes associated with carcinogenesis of clear cell renal cell carcinoma.
J Cell Biochem. 2018; 119: 5163-5174View in Article Scopus (27) PubMed Crossref Google ScholarLjungberg B Bensalah K Canfield S Dabestani S Hofmann F Hora M Kuczyk MA Lam T Marconi L Merseburger AS Mulders P Powles T Staehler M Volpe A Bex A.EAU guidelines on renal cell carcinoma: 2014 update.
Eur Urol. 2015; 67: 913-924View in Article Scopus (1527) PubMed Abstract Full Text Full Text PDF Google ScholarFu RJ He W Wang XB Li L Zhao HB Liu XY Pang Z Chen GQ Huang L Zhao KW.DNMT1-maintained hypermethylation of Kruppel-like factor 5 involves in the progression of clear cell renal cell carcinoma.
Cell Death Dis. 2017; 8: e2952View in Article Scopus (10) PubMed Crossref Google ScholarWu TK Wei CW Pan YR Hsu RJ Wu CY Yu YL.The uremic toxin p-cresyl sulfate induces proliferation and migration of clear cell renal cell carcinoma via microRNA-21/HIF-1alpha axis signals.
Sci Rep. 2019; 9: 3207-3216View in Article Scopus (4) PubMed Crossref Google ScholarFu Q Xu L Wang YW Jiang Q Liu Z Zhang JY Zhou Q Zeng H Tong SY Wang T Qi YY Hu BY Fu HC Xie HY Zhou L Chang Y Zhu Y Dai B Zhang WJ Xu JJ.Tumor-associated macrophage-derived Interleukin-23 interlinks kidney cancer glutamine addiction with immune evasion.
Eur Urol. 2019; 75: 752-763View in Article Scopus (41) PubMed Abstract Full Text Full Text PDF Google ScholarNishida J Miyazono K Ehata S.Decreased TGFBR3/betaglycan expression enhances the metastatic abilities of renal cell carcinoma cells through TGF-beta-dependent and -independent mechanisms.
Oncogene. 2018; 37: 2197-2212View in Article Scopus (23) PubMed Crossref Google ScholarMajer W Kluzek K Bluyssen H Wesoły J.Potential approaches and recent advances in biomarker discovery in clear-cell renal cell carcinoma.
J Cancer. 2015; 6: 1105-1113View in Article PubMed Crossref Google ScholarRydzanicz M Wrzesinski T Bluyssen HA Wesoly J.Genomics and epigenomics of clear cell renal cell carcinoma: recent developments and potential applications.
Cancer Lett. 2013; 341: 111-126View in Article PubMed Crossref Google ScholarGuan LY Tan JF Li H Jin XF.Biomarker identification in clear cell renal cell carcinoma based on miRNA-seq and digital gene expression-seq data.
Gene. 2018; 647: 205-212View in Article Scopus (13) PubMed Crossref Google ScholarMuller S Nowak K.Exploring the miRNA-mRNA regulatory network in clear cell renal cell carcinomas by next-generation sequencing expression profiles.
Biomed Res Int. 2014; 2014948408View in Article Scopus (33) PubMed Crossref Google ScholarJing ZF Bi JB Li ZL Liu XK Li J Zhu YY Zhang XT Zhang Z Li ZH Kong CZ.miR-19 promotes the proliferation of clear cell renal cell carcinoma by targeting the FRK-PTEN axis.
Onco Targets Ther. 2019; 12: 2713-2727View in Article Scopus (13) PubMed Crossref Google ScholarWang W Hu WT Wang Y Yang J Yue ZJ.MicroRNA-508 is downregulated in clear cell renal cell carcinoma and targets ZEB1 to suppress cell proliferation and invasion.
Exp Ther Med. 2019; 17: 3814-3822View in Article PubMed Google ScholarDong D Mu ZY Wei N Sun ML Wang W Xin N Shao Y Zhao CH.Long non-coding RNA ZFAS1 promotes proliferation and metastasis of clear cell renal cell carcinoma via targeting miR-10a/SKA1 pathway.
Biomed Pharmacother. 2019; 111: 917-925View in Article Scopus (29) PubMed Crossref Google ScholarQu Y Xiao HB Xiao W Xiong ZY Hu WJ Gao YY Ru ZY Wang C Bao L Wang K Ruan HL Song ZS Chen K Zhang XP Yang HM.Upregulation of MIAT regulates LOXL2 expression by competitively binding MiR-29c in clear cell renal cell carcinoma.
Cell Physiol Biochem. 2018; 48: 1075-1087View in Article Scopus (31) PubMed Crossref Google ScholarYang T Zhou H Liu PJ Yan LB Yao WM Chen K Zeng J Li H Hu JH Xu H Ye ZQ.lncRNA PVT1 and its splicing variant function as competing endogenous RNA to regulate clear cell renal cell carcinoma progression.
Oncotarget. 2017; 8: 85353-85367View in Article Scopus (37) PubMed Crossref Google ScholarDong X Kong C Liu XK Bi JB Li ZH Li ZL Zhu YY Zhang Z.GAS5 functions as a ceRNA to regulate hZIP1 expression by sponging miR-223 in clear cell renal cell carcinoma.
Am J Cancer Res. 2018; 8: 1414-1426View in Article PubMed Google ScholarWang Y Yang ZY Chen YH Li F Shen H Yu Y Huang HY Shen ZY.A novel functional polymorphism of GSTM3 reduces clear cell renal cell carcinoma risk through enhancing its expression by interfering miR-556 binding.
J Cell Mol Med. 2018; 22: 3005-3015View in Article Scopus (4) PubMed Crossref Google ScholarKowalczyk AE Krazinski BE Godlewski J Grzegrzolka J Kiewisz J Kwiatkowski P et al.SATB1 is down-regulated in clear cell renal cell carcinoma and correlates with miR-21-5p overexpression and poor prognosis.
Cancer Genom Proteom. 2016; 13: 209-217View in Article PubMed Google ScholarYang K Lu XF Luo PC Zhang J.Identification of six potentially long noncoding RNAs as biomarkers involved competitive endogenous RNA in clear cell renal cell carcinoma.
Biomed Res Int. 2018; 20189303486View in Article Scopus (17) PubMed Crossref Google ScholarWang JW Zhang CY He WY Gou X.Construction and comprehensive analysis of dysregulated long non-coding RNA-associated competing endogenous RNA network in clear cell renal cell carcinoma.
J Cell Biochem. 2019; 120: 2576-2593View in Article Scopus (19) Crossref Google ScholarLiu C Zhang YH Deng Q Li Y Huang T Zhou S Cai YD.Cancer-related triplets of mRNA-lncRNA-miRNA revealed by integrative network in uterine corpus endometrial carcinoma.
Biomed Res Int. 2017; 20173859582View in Article PubMed Google ScholarWang JB Liu FH Chen JH Ge HT Mu LY Bao HB Lin ZG.Identifying survival-associated modules from the dysregulated triplet network in glioblastoma multiforme.
J Cancer Res Clin Oncol. 2017; 143: 661-671View in Article Scopus (18) PubMed Crossref Google ScholarRobinson MD McCarthy DJ Smyth GK.edgeR: a Bioconductor package for differential expression analysis of digital gene expression data.
Bioinformatics. 2010; 26: 139-140View in Article Scopus (14595) PubMed Crossref Google ScholarLangfelder P Horvath S.WGCNA: an R package for weighted correlation network analysis.
BMC Bioinform. 2008; 9: 559View in Article Scopus (6191) PubMed Crossref Google ScholarWang PC Li J Zhao W Shang CY Jiang X Wang YL Zhou BG Bao FS Qiao HQ.A novel LncRNA-miRNA-mRNA triple network identifies LncRNA RP11-363E7.4 as an important regulator of miRNA and gene expression in gastric cancer.
Cell Physiol Biochem. 2018; 47: 1025-1041View in Article Scopus (20) PubMed Crossref Google ScholarSong C Zhang J Liu Y Pan H Qi HP Cao YG Zhao JM Li S Guo J Sun HL Li CQ.Construction and analysis of cardiac hypertrophy-associated lncRNA-mRNA network based on competitive endogenous RNA reveal functional lncRNAs in cardiac hypertrophy.
Oncotarget. 2016; 7: 10827-10840View in Article Scopus (10) PubMed Crossref Google ScholarHarrington DP Fleming TRJB.A class of rank test procedures for censored survival data.
Biometrika. 1982; 69: 553-566View in Article Scopus (714) Crossref Google ScholarJi H Tian D Zhang B Zhang YY Yan DL Wu SH.Overexpression of miR-155 in clear-cell renal cell carcinoma and its oncogenic effect through targeting FOXO3a.
Exp Ther Med. 2017; 13: 2286-2292View in Article Scopus (26) PubMed
留言 (0)