Analysis of gene expression profiles in HeLa cells in response to overexpression or siRNA-mediated depletion of NASP

被引:21
作者
Alekseev, Oleg M. [1 ]
Richardson, Richard T. [1 ]
Alekseev, Oleg [1 ]
O'Rand, Michael G. [1 ]
机构
[1] Univ N Carolina, Dept Cell & Dev Biol, Chapel Hill, NC 27599 USA
关键词
NUCLEOSOME ASSEMBLY PATHWAYS; OVARIAN-CANCER; PROTEIN; RECEPTOR; FAMILY; GROWTH; MODEL; MOUSE; P53; PROGRESSION;
D O I
10.1186/1477-7827-7-45
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background: NASP (Nuclear Autoantigenic Sperm Protein) is a linker histone chaperone required for normal cell division. Changes in NASP expression significantly affect cell growth and development; loss of gene function results in embryonic lethality. However, the mechanism by which NASP exerts its effects in the cell cycle is not understood. To understand the pathways and networks that may involve NASP function, we evaluated gene expression in HeLa cells in which NASP was either overexpressed or depleted by siRNA. Methods: Total RNA from HeLa cells overexpressing NASP or depleted of NASP by siRNA treatment was converted to cRNA with incorporation of Cy5-CTP (experimental samples), or Cy3-CTP (control samples). The labeled cRNA samples were hybridized to whole human genome microarrays (Agilent Technologies, Wilmington, Delaware, USA). Various gene expression analysis techniques were employed: Significance Analysis of Microarrays (SAM), Expression Analysis Systematic Explorer (EASE), and Ingenuity Pathways Analysis (IPA). Results: From approximately 36 thousand genes present in a total human genome microarray, we identified a set of 47 up-regulated and 7 down-regulated genes as a result of NASP overexpression. Similarly we identified a set of 56 up-regulated and 71 down-regulated genes as a result of NASP siRNA treatment. Gene ontology, molecular network and canonical pathway analysis of NASP overexpression demonstrated that the most significant changes were in proteins participating in organismal injury, immune response, and cellular growth and cancer pathways (major "hubs": TNF, FOS, EGR1, NF kappa B, IRF7, STAT1, IL6). Depletion of NASP elicited the changed expression of proteins involved in DNA replication, repair and development, followed by reproductive system disease, and cancer and cell cycle pathways (major "hubs": E2F8, TP53, FGF, FSH, FST, hCG, NF.B, TRAF6). Conclusion: This study has demonstrated that NASP belongs to a network of genes and gene functions that are critical for cell survival. We have confirmed the previously reported interactions between NASP and HSP90, HSP70, histone H1, histone H3, and TRAF6. Overexpression and depletion of NASP identified overlapping networks that included TNF as a core protein, confirming that both high and low levels of NASP are detrimental to cell cycle progression. Networks with cancer-related functions had the highest significance, however reproductive networks containing follistatin and FSH were also significantly affected, which confirmed NASP's important role in reproductive tissues. This study revealed that, despite some overlap, each response was associated with a unique gene signature and placed NASP in important cell regulatory networks.
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页数:17
相关论文
共 52 条
[1]   Role of p53 in sensing oxidative DNA damage in response to reactive oxygen species-generating agents [J].
Achanta, G ;
Huang, P .
CANCER RESEARCH, 2004, 64 (17) :6233-6239
[2]   Association of NASP with HSP90 in mouse spermatogenic cells - Stimulation of ATPase activity and transport of linker histones into nuclei [J].
Alekseev, OM ;
Widgren, EE ;
Richardson, RT ;
O'Rand, MG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2005, 280 (04) :2904-2911
[3]   Mass Spectrometry identification of NASP binding partners in HeLa cells [J].
Alekseev, OM ;
Richardson, RT ;
Pope, MR ;
O'Rand, MG .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2005, 61 (01) :1-5
[4]   Overexpression of the linker histone-binding protein tNASP affects progression through the cell cycle [J].
Alekseev, OM ;
Bencic, DC ;
Richardson, RT ;
Widgren, EE ;
O'Rand, MG .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2003, 278 (10) :8846-8852
[5]   A Thermodynamic Model for Nap1-Histone Interactions [J].
Andrews, Andrew J. ;
Downing, Gregory ;
Brown, Kitty ;
Park, Young-Jun ;
Luger, Karolin .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2008, 283 (47) :32412-32418
[6]   TP53 family members and human cancers [J].
Bénard, J ;
Douc-Rasy, S ;
Ahomadegbe, JC .
HUMAN MUTATION, 2003, 21 (03) :182-191
[7]   A network-based analysis of systemic inflammation in humans [J].
Calvano, SE ;
Xiao, WZ ;
Richards, DR ;
Felciano, RM ;
Baker, HV ;
Cho, RJ ;
Chen, RO ;
Brownstein, BH ;
Cobb, JP ;
Tschoeke, SK ;
Miller-Graziano, C ;
Moldawer, LL ;
Mindrinos, MN ;
Davis, RW ;
Tompkins, RG ;
Lowry, SF .
NATURE, 2005, 437 (7061) :1032-1037
[8]   Diagnostic markers of ovarian cancer by high-throughput antigen cloning and detection on arrays [J].
Chatterjee, M ;
Mohapatra, S ;
Ionan, A ;
Bawa, G ;
Ali-Fehmi, R ;
Wang, XJ ;
Nowak, J ;
Ye, B ;
Nahhas, FA ;
Lu, K ;
Witkin, SS ;
Fishman, D ;
Munkarah, A ;
Morris, R ;
Levin, NK ;
Shirley, NN ;
Tromp, G ;
Abrams, J ;
Draghici, S ;
Tainsky, MA .
CANCER RESEARCH, 2006, 66 (02) :1181-1190
[9]   Characterization of E2F8, a novel E2F-like cell-cycle regulated repressor of E2F-activated transcription [J].
Christensen, J ;
Cloos, P ;
Toftegaard, U ;
Klinkenberg, D ;
Bracken, AP ;
Trinh, E ;
Heeran, M ;
Di Stefano, L ;
Helin, K .
NUCLEIC ACIDS RESEARCH, 2005, 33 (17) :5458-5470
[10]  
Chu YW, 1999, CYTOMETRY, V36, P333, DOI 10.1002/(SICI)1097-0320(19990801)36:4<333::AID-CYTO8>3.0.CO