Integrative in silico and in vitro transcriptomics analysis revealed new lncRNAs related to intrinsic apoptotic genes in colorectal cancer

被引:13
作者
Akbari, Fatemeh [1 ]
Peymani, Maryam [1 ]
Salehzadeh, Ali [2 ]
Ghaedi, Kamran [3 ]
机构
[1] Islamic Azad Univ, Shahrekord Branch, Fac Basic Sci, Dept Biol, Shahrekord, Iran
[2] Islamic Azad Univ, Rasht Branch, Dept Biol, Rasht, Iran
[3] Univ Isfahan, Fac Biol Sci & Technol, Dept Cell & Mol Biol & Microbiol, Esfahan, Iran
关键词
Colorectal cancer; Apoptosis; lncRNAs; Meta-analysis; RNA sequence; FAMILY;
D O I
10.1186/s12935-020-01633-w
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
BackgroundPathogenesis of colorectal cancer (CRC) is connected to deregulation of apoptosis while the effect of lncRNAs, as critical regulatory molecules, on this pathway is not clear well. The present study aimed to identify differential expression of genes and their related lncRNAs which are significantly associated with intrinsic apoptotic pathway in CRC.MethodsThe connection between CRC and apoptosis was investigated by literature reviews and the genes were enriched by using Enrichr. At the next step, differential expression of enriched genes were evaluated between normal and tumor populations in data sets and were downloaded from GEO. Then, meta-analysis and probe re-annotation were performed. For lncRNAs selection through the highest expression correlation with each of candidate genes, mRNA-lncRNA interaction of screened genes and all of lncRNAs were visualized using Cytoscape. Identified differential expression genes and lncRNAs were validated using TCGA-COAD and the obtained data were confirmed by in vitro studies in the presence of Ag@Glu-TSC nanoparticle as an apoptotic inducer. Cytotoxicity and apoptosis induction effect of Ag@Glu-TSC on Caco-2 cells was determined via MTT and Annexin V/PI, respectively. The expression of genes and lncRNAs were assayed in presence of mentioned nanoparticle. Finally, the expression level of desired genes and lncRNAs were proven in CRC tissues compared to adjacent normal tissues.ResultsAfter detection of 48 genes associated with intrinsic apoptosis in CRC according to literature, Enrichr screened 12 common genes involved in this pathway. Among them, 6 genes including BCL2, BCL2L11, BAD, CASP7, CASP9, and CYCS expression reduced in tumor tissue compared to normal according to meta-analysis studies and RNA-seq TCGA data. Afterwards, association of 8 lncRNAs comprising CDKN2B-AS1, LOC102724156, HAGLR, ABCC13, LOC101929340, LINC00675, FAM120AOS, PDCD4-AS1 with more than 5 candidate genes were identified. In vitro studies revealed that four selected lncRNAs including, CDKN2B-AS1, LOC102724156, HAGLR and FAM120AOS were significantly increased in the presence of in optimum concentration of Ag@Glu/TSC and decreased in tumor tissues versus adjacent normal tissues.ConclusionThis study developed a new data mining method to screen differentially expressed lncRNAs which are involved in regulation of intrinsic apoptosis pathway in CRC quickly using published gene expression profiling microarrays. Moreover, we could validate a number of these regulators in the cellular and laboratory disease models.
引用
收藏
页数:16
相关论文
共 41 条
[1]   Three-dimensional structure of the apoptosome: Implications for assembly, procaspase-9 binding, and activation [J].
Acehan, D ;
Jiang, XJ ;
Morgan, DG ;
Heuser, JE ;
Wang, XD ;
Akey, CW .
MOLECULAR CELL, 2002, 9 (02) :423-432
[2]   High Positive Correlations between ANRIL and p16-CDKN2A/p15-CDKN2B/p14-ARF Gene Cluster Overexpression in Multi-Tumor Types Suggest Deregulated Activation of an ANRIL-ARF Bidirectional Promoter [J].
Alsibai, Kinan Drak ;
Vacher, Sophie ;
Meseure, Didier ;
Nicolas, Andre ;
Lae, Marick ;
Schnitzler, Anne ;
Chemlali, Walid ;
Cros, Jerome ;
Longchampt, Elisabeth ;
Cacheux, Wulfran ;
Pignot, Geraldine ;
Callens, Celine ;
Pasmant, Eric ;
Allory, Yves ;
Bieche, Ivan .
NON-CODING RNA, 2019, 5 (03)
[3]   The genomic landscape of small intestine neuroendocrine tumors [J].
Banck, Michaela S. ;
Kanwar, Rahul ;
Kulkarni, Amit A. ;
Boora, Ganesh K. ;
Metge, Franziska ;
Kipp, Benjamin R. ;
Zhang, Lizhi ;
Thorland, Erik C. ;
Minn, Kay T. ;
Tentu, Ramesh ;
Eckloff, Bruce W. ;
Wieben, Eric D. ;
Wu, Yanhong ;
Cunningham, Julie M. ;
Nagorney, David M. ;
Gilbert, Judith A. ;
Ames, Matthew M. ;
Beutler, Andreas S. .
JOURNAL OF CLINICAL INVESTIGATION, 2013, 123 (06) :2502-2508
[4]   Covalent bridging of surface functionalized Fe3O4 and YPO4:Eu nanostructures for simultaneous imaging and therapy [J].
Barick, K. C. ;
Sharma, Anusha ;
Shetake, Neena G. ;
Ningthoujam, R. S. ;
Vatsa, R. K. ;
Babu, P. D. ;
Pandey, B. N. ;
Hassan, P. A. .
DALTON TRANSACTIONS, 2015, 44 (33) :14686-14696
[5]   LncRNAs as Regulators of Autophagy and Drug Resistance in Colorectal Cancer [J].
Bermudez, Mercedes ;
Aguilar-Medina, Maribel ;
Lizarraga-Verdugo, Erik ;
Avendano-Felix, Mariana ;
Silva-Benitez, Erika ;
Lopez-Camarillo, Cesar ;
Ramos-Payan, Rosalio .
FRONTIERS IN ONCOLOGY, 2019, 9
[6]  
Bray F., 2018, CA-CANCER J CLIN, P68394
[7]   Long Noncoding RNA Expression Signatures of Colon Cancer Based on the ceRNA Network and Their Prognostic Value [J].
Cheng, Yang ;
Geng, Lanlan ;
Wang, Kunyuan ;
Sun, Jingjing ;
Xu, Wanfu ;
Gong, Sitang ;
Zhu, Yun .
DISEASE MARKERS, 2019, 2019
[8]  
Choudhury S, 2019, BIOINFORMATION, V15, P299, DOI [10.6026/97320630015299, 10.6026/97320630013299]
[9]   TCGAbiolinks: an R/Bioconductor package for integrative analysis of TCGA data [J].
Colaprico, Antonio ;
Silva, Tiago C. ;
Olsen, Catharina ;
Garofano, Luciano ;
Cava, Claudia ;
Garolini, Davide ;
Sabedot, Thais S. ;
Malta, Tathiane M. ;
Pagnotta, Stefano M. ;
Castiglioni, Isabella ;
Ceccarelli, Michele ;
Bontempi, Gianluca ;
Noushmehr, Houtan .
NUCLEIC ACIDS RESEARCH, 2016, 44 (08) :e71
[10]   Involvement of the mismatch repair system in temozolomide-induced apoptosis [J].
D'Atri, S ;
Tentori, L ;
Lacal, PM ;
Graziani, G ;
Pagani, E ;
Benincasa, E ;
Zambruno, G ;
Bonmassar, E ;
Jiricny, J .
MOLECULAR PHARMACOLOGY, 1998, 54 (02) :334-341