[an error occurred while processing this directive]
en

Detection and sequence analysis of an imperfect stem-loop structure in cis activating gene element from SV40PolyA

Expand
  • 1. Department of Genetics, Hebei Key Lab of Laboratory Animal, Hebei Medical University, Shijiazhuang 050017, China 2. Department of Biochemistry and Molecular Biology, Medical College, Henan University, Kaifeng 475004, China 3. Department of Respiratory Medicine, The First Hospital of Hebei Medical University, Shijiazhuang 050031, China

Received date: 2010-09-06

  Revised date: 2010-10-29

  Online published: 2011-04-25

Abstract

Our previous studies showed that tandem Alu repeats inhibited GFP gene expression when they were inserted into the downstream of GFP gene in pEGFP-C1 vector and HeLa cells were then transfected transiently. The sequence named 2F2R (second 60 bp from the 5′ end of SV40PolyA antisense strand) eliminated the repression of GFP gene expression induced by Alu repeats when 2F2R was inserted between GFP and Alu repeats. In this study the deletion of 2F2R DNA showed that 45R (45 bp in 2F2R 5′end), 30R (30 bp in 2F2R 5′ end) and 22R (22 bp in 2F2R 5′ end) activated GFP gene expression, and the activating actions of the double tandem sequences were stronger than those of their corresponding single sequences. Secloop (22 bp near the center in 2F2R) and Poly4 (30 bp in 2F2R 3′ end) sequences did not activate GFP gene expression. The activating action of 30R-Poly4 sequence formed by ligating 30R with Poly4 by 9 bp was lower than that of 2F2R. The linking base number between two 22R sequences did not influence the GFP gene expression obviously. Sequence 22R (5′-GTGAAAAAAATGCTTTATTTGT-3′) contains an imperfect palindrome sequence and may form an imperfect stem-loop structure including a 3nt loop, 3 bp first stem, 2nt bulge, and 3bp second stem. The mutations changing stem-loop structure of 22R influenced the GFP gene activation significantly and neither the excessively stable nor excessively unstable stem-loop structures were in favour of GFP gene activation, which suggested that the suitably imperfect stem-loop structures had something with gene activation.

Cite this article

WANG Gong-Gang, MA Huan, LI Zhu, ZHANG Ban, JING Xiang-Yang, ZHANG Yuan, LV Tie-Jun . Detection and sequence analysis of an imperfect stem-loop structure in cis activating gene element from SV40PolyA[J]. Hereditas(Beijing), 2011 , 33(4) : 337 -346 . DOI: 10.3724/SP.J.1005.2011.00337

References

[1] Costa FF. Non-coding RNAs, epigenetics and complexity. Gene, 2008, 410(1): 9-17.
[2] Polak P, Domany E. Alu elements contain many binding sites for transcription factors and may play a role in regulation of developmental processes. BMC Genomics, 2006, 7: 133. DOI: 10.1186/1471-2164-7-133.
[3] Ebihara M, Ohba H, Ohno SI, Yoshikawa T. Genomic or-ganization and promoter analysis of the human nicotinic acetylcholine receptor α6 subunit (CHNRA6) gene: Alu and other elements direct transcriptional re-pression. Gene, 2002, 298(1): 101-108.
[4] Andreassi C, Riccio A. To localize or not to localize: mRNA fate is in 3' UTR ends. Trends Cell Biol, 2009, 19(9): 465-474.
[5] Mao JY, Li CY, Zhang YY, Li YH, Zhao YY. Human with-no-lysine kinase-4 3' -UTR acting as the enhancer and being targeted by miR-296. Int J Biochem Cell Biol, 2010, 42(9): 1536-1543.
[6] Dai X, Greizerstein MB, Nadas-Chinni K and Rothman-Denes LB. Supercoil-induced extrusion of a regulatory DNA hairpin. Proc Natl Acad Sci USA, 1997, 94(6): 2174-2179.
[7] Yu L, Markoff L. The topology of bulges in the long stem of the flavivirus 3' stem-loop is a major determinant of RNA replication competence. J Virol, 2005, 79(4): 2309-2324.
[8] Rosskopf JJ, Upton JH 3rd, Rodarte L, Romero TA, Leung MY, Taufer M, Johnson KL. A 3’terminal stem-loop structure in Nodamura virus RNA 2 forms an es-sential cis-acting signal for RNA replication. Virus Res, 2010, 150(1-2): 12-21.
[9] Lu ZJ, Zhai Y, Wang XF, Song SX. DNA sequence comp-position on human X chromosome differing from that on chromosomes 6, 7, 8, 10, 11 and 12. Acta Genet Sin, 2003, 30(11): 1051-1060.
[10] Wang XF, Wang XY, Liu J, Feng JJ, Mu WL, Shi XJ, Yang QQ, Duan XC, Xie Y, Lu ZJ. Alu tandem sequences inhibit GFP gene expression by triggering chro-matin wrapping. Gene Genomics, 2009, 31(3): 209-215.
[11] Yin K, Wang XF, Ma H, Xie Y, Feng JJ, Yang QQ, Lü ZJ. Impact of copy number of distinct SV40PolyA segments on expression of a GFP reporter gene. Sci China Life Sci, 2010, 53(5): 606-612.
[12] Wang XF, Jin X, Wang XY, Liu J, Feng JJ, Yang QQ, Mu WL, Shi XJ, Lu ZJ. Effects of L1-ORF2 fragments on green fluorescent protein gene expression. Genet Mol Biol, 2009, 32(4): 688-696.
[13] 段肖翠, 靳霞, 谢英, 焦宁, 刘静, 王晓燕, 吕占军. L1-ORF2不同片段对报告基因表达产生不同影响. 遗传, 2009, 31(1): 50-56.
[14] Xu ZL, Mizuguchi H, Ishii-Watabe A, Uchida E, Mayumi T, Hayakawa T. Optimization of transcriptional regulatory elements for constructing plasmid vectors. Gene, 2001, 272(1-2): 149-156.
[15] Nickens DG, Hardy RW. Structural and functional analyses of stem-loop 1 of the Sindbis virus genome. Vi-rology, 2008, 370(1): 158-172.
[16] Li LC , Kang H, Liu PH, Makkinje N, Williamson ST, Leibowitz JL, Giedroc DP. Structural lability in stem-loop 1 drives a 5' UTR-3' UTR interaction in coronavirus rep-lication. J Mol Biol, 2008, 377(3): 790-803.
Outlines

/