Abstract
RNA interference (RNAi), mediated by either long double-stranded RNA (dsRNA) or short interfering RNA (siRNA), has become a routine tool for transient knockdown of gene expression in a wide range of organisms. The antisense strand of the siRNA duplex (antisense siRNA) was recently shown to have substantial mRNA depleting activity of its own. Here, targeting human Tissue Factor mRNA in HaCaT cells, we perform a systematic comparison of the activity of antisense siRNA and double-strand siRNA, and find almost identical target position effects, appearance of mRNA cleavage fragments and tolerance for mutational and chemical backbone modifications. These observations, together with the demonstration that excess inactive double-strand siRNA blocks antisense siRNA activity, i.e. shows sequence-independent competition, indicate that the two types of effector molecules share the same RNAi pathway. Interest ingly, both FITC-tagged and 3'-deoxy antisense siRNA display severely limited activity, despite having practically wild-type activity in a siRNA duplex. Finally, we find that maximum depletion of target mRNA expression occurs significantly faster with antisense siRNA than with double-strand siRNA, suggesting that the former enters the RNAi pathway at a later stage than double-strand siRNA, thereby requiring less time to exert its activity.
MeSH Terms
Cell Line
Gene Expression Regulation
Humans
RNA Interference/physiology
RNA, Antisense/genetics,physiology
RNA, Double-Stranded/genetics,physiology
RNA, Messenger/genetics,metabolism
RNA, Small Interfering/genetics,physiology
Thromboplastin/genetics
Transfection
Chemicals
RNA, Antisense
RNA, Double-Stranded
RNA, Messenger
RNA, Small Interfering
Thromboplastin
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Holen Torgeir
The Biotechnology Centre of Oslo, University of Oslo, Gaustadalleen 21, N-0349 Oslo, Norway.
Amarzguioui Mohammed
Babaie Eshrat
Prydz Hans
References (27)
27 references, click to expand
-
RNA-dependent RNA polymerases, viruses, and RNA silencing.
Science. 2002 May 17;296(5571):1270-3
PMID: 12016304
-
Ancient pathways programmed by small RNAs.
Science. 2002 May 17;296(5571):1265-9
PMID: 12016303
-
Single-stranded antisense siRNAs guide target RNA cleavage in RNAi.
Cell. 2002 Sep 6;110(5):563-74
PMID: 12230974
-
A microRNA in a multiple-turnover RNAi enzyme complex.
Science. 2002 Sep 20;297(5589):2056-60
PMID: 12154197
-
Fragile X-related protein and VIG associate with the RNA interference machinery.
Genes Dev. 2002 Oct 1;16(19):2491-6
PMID: 12368260
-
A Drosophila fragile X protein interacts with components of RNAi and ribosomal proteins.
Genes Dev. 2002 Oct 1;16(19):2497-508
PMID: 12368261
-
Evidence that siRNAs function as guides, not primers, in the Drosophila and human RNAi pathways.
Mol Cell. 2002 Sep;10(3):537-48
PMID: 12408822
-
Small interfering RNA-mediated gene silencing in T lymphocytes.
J Immunol. 2002 Nov 15;169(10):5754-60
PMID: 12421955
-
Tolerance for mutations and chemical modifications in a siRNA.
Nucleic Acids Res. 2003 Jan 15;31(2):589-95
PMID: 12527766
-
Regulation of human tissue factor expression by mRNA turnover.
J Biol Chem. 1993 Jan 25;268(3):2154-9
PMID: 8420984
-
par-1, a gene required for establishing polarity in C. elegans embryos, encodes a putative Ser/Thr kinase that is asymmetrically distributed.
Cell. 1995 May 19;81(4):611-20
PMID: 7758115
-
Potent and specific genetic interference by double-stranded RNA in Caenorhabditis elegans.
Nature. 1998 Feb 19;391(6669):806-11
PMID: 9486653
-
Mut-7 of C. elegans, required for transposon silencing and RNA interference, is a homolog of Werner syndrome helicase and RNaseD.
Cell. 1999 Oct 15;99(2):133-41
PMID: 10535732
-
An RNA-directed nuclease mediates post-transcriptional gene silencing in Drosophila cells.
Nature. 2000 Mar 16;404(6775):293-6
PMID: 10749213
-
Secondary structure prediction and in vitro accessibility of mRNA as tools in the selection of target sites for ribozymes.
Nucleic Acids Res. 2000 Nov 1;28(21):4113-24
PMID: 11058107
-
RNA interference is mediated by 21- and 22-nucleotide RNAs.
Genes Dev. 2001 Jan 15;15(2):188-200
PMID: 11157775
-
The human cytochrome P450 1A1 mRNA is rapidly degraded in HepG2 cells.
Arch Biochem Biophys. 2000 Dec 15;384(2):311-8
PMID: 11368318
-
Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells.
Nature. 2001 May 24;411(6836):494-8
PMID: 11373684
-
Argonaute2, a link between genetic and biochemical analyses of RNAi.
Science. 2001 Aug 10;293(5532):1146-50
PMID: 11498593
-
Specific inhibition of gene expression by small double-stranded RNAs in invertebrate and vertebrate systems.
Proc Natl Acad Sci U S A. 2001 Aug 14;98(17):9742-7
PMID: 11481446
-
ATP requirements and small interfering RNA structure in the RNA interference pathway.
Cell. 2001 Nov 2;107(3):309-21
PMID: 11701122
-
microRNAs: tiny regulators with great potential.
Cell. 2001 Dec 28;107(7):823-6
PMID: 11779458
-
miRNPs: a novel class of ribonucleoproteins containing numerous microRNAs.
Genes Dev. 2002 Mar 15;16(6):720-8
PMID: 11914277
-
Varicella-zoster virus (VZV) mediates a delayed host shutoff independent of open reading frame (ORF) 17 expression.
Virus Genes. 2002;24(1):49-56
PMID: 11928988
-
Positional effects of short interfering RNAs targeting the human coagulation trigger Tissue Factor.
Nucleic Acids Res. 2002 Apr 15;30(8):1757-66
PMID: 11937629
-
RNA silencing: the genome's immune system.
Science. 2002 May 17;296(5571):1263-5
PMID: 12016302
-
Short RNA duplexes produced by hydrolysis with Escherichia coli RNase III mediate effective RNA interference in mammalian cells.
Proc Natl Acad Sci U S A. 2002 Jul 23;99(15):9942-7
PMID: 12096193