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Life Science > Functional Genomics & RNAi > MISSION® esiRNA
siRNA

MISSION® esiRNA

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MISSION esiRNA provides RNAi researchers with a proven, cost-effective, and simple way to perform RNAi screens. MISSION esiRNA are available for the genome-scale human libraries, custom libraries, and human and mouse individual genes.

MISSION esiRNA: RNAi Screening made easy! 

MISSION esiRNA offers the following benefits:

  • A single super-pool of MISSION esiRNA for each gene target 
  • Go through primary screens quickly, and cost-effectively 
  • Efficient gene silencing
  • Average >70% knockdown with esiRNA
  • Lower off-target effects
  • Lower cost for large RNAi screening studies
  • Every MISSION esiRNA is guaranteed
MISSION® esiRNA Technical Overview Cover
esiRNA Technical Overview

(921 Kb PDF)


MISSION esiRNA are available to meet all of your RNAi screening needs:
  • MISSION esiRNA human genome scale libraries, covering more than 15,000 gene targets
  • MISSION esiRNA human kinase library with more than 500 gene targets
  • Custom MISSION esiRNA libraries (20 µg), for 10 to >1000 gene targets
  • Individual human and mouse MISSION esiRNA (20 µg or 50 µg), for 1 to 10 gene targets


Available MISSION esiRNA Products:

  • 1 μg (~100 pmol) human esiRNA libraries
  • 2.5 μg (~ 250 pmol) human esiRNA libraries
  • 20 μg (~2 nmol) individual human and mouse esiRNA
  • 50 μg (~5 nmol) individual human and mouse esiRNA
  • MISSION esiRNA are provided in 96- or 384-well plates

Controls

  • Negative controls: we recommend RLUC, FLUC, and eGFP MISSION esiRNAs
  • Positive control: we recommend eg5 (KIF11) MISSION esiRNA as a positive control (strong mitotic arrest/viability phenotype)
  • MISSION esiRNA targeting eGFP can also be used as a positive control for knockdown in cells expressing eGFP
  • New! Validated human MISSION esiRNA—Many common gene targets, including LAMIN A, PLK4, and AURKB, have been validated for >70% mRNA knockdown. Validated MISSION esiRNA are suitable for transfection optimization and as positive controls

    Gene name esiRNA ID
    ANAPC1 HU-02999-1
    ANAPC10 HU-10880-1
    ANAPC5 HU-06969-1
    AURKB HU-00147-1
    c14orf10 HU-14398-1
    CENPA HU-09808-1
    CEP192 HU-02671-1
    CETN2 HU-13703-1
    ch-TOG HU-07822-1
    CLASP1 HU-02894-1
    CP110 HU-00726-1
     
    Gene name esiRNA ID
    DCTN2 HU-08658-1
    H3F3A HU-12709-1
    INCENP HU-00189-1
    KIF11 HU-01993-1
    KIF23 HU-06612-1
    LMNA HU-06379-1
    MAD2L1 HU-07461-1
    NEK2 HU-10995-1
    NUMA HU-05914-1
    NUP37 HU-04801-1
    PLK4 HU-00169-1
     
    Gene name esiRNA ID
    RAD21 HU-10891-1
    RCD-8 HU-09443-1
    SEC13L1 HU-15213-1
    SEH1L HU-04916-1
    SUV39H2 HU-09365-1
    TACC3 HU-06320-1
    TUBG1 HU-05641-1
    TUBGCP3 HU-07329-1
    TPX2 HU-09301-1
    ETN3 HU-04058-1

  • Details on validation


MISSION esiRNA inquiries and ordering

For ordering information or quotation requests for individual, custom and whole genome libraries of MISSION esiRNA, submit a request, and a customer service representative will contact you shortly.

MISSION esiRNA ordering information and quotation requests 


Validating your MISSION esiRNA hits is easy – find multiple MISSION siRNA and MISSION shRNA, as well as antibodies and small molecules for every gene with Sigma’s Your Favorite Gene search engine:

YFG Powered by Ingenuity


How are MISSION esiRNAs prepared?

esiRNA or Endoribonuclease-prepared siRNAs are pools of siRNAs resulting from cleavage of long double-stranded RNA (dsRNA) with Escherichia coli RNase III. Please see Figure 1.


Overview of MISSION® esiRNA Production Image
Figure 1: Overview of MISSION esiRNA Production. Note: This is for the production of an individual esiRNA (click image to enlarge).

Generation of PCR products

The template for in vitro transcription is generated by PCR amplification of the cDNA from the clone using primers specific for the vector backbone or target-specific primers appended with RNA-Polymerase promoter sequences. The PCR product is sequence verified. The amplified region is selected based on the highest possible number of highly effective siRNA based on the Deqor siRNA design program. MISSION esiRNA are designed to cover all known transcript variants of the target gene.

In vitro transcription and the production of long dsRNA

The PCR product generated from the cDNA is used for in vitro transcription reactions. The dsRNA is produced utilizing RNA Polymerases and the two single RNA strands are subsequently annealed before digestion.

Enzymatic digestion

The long dsRNA is enzymatically digested to short dsRNAs. This digestion produces complex pools of siRNA-like molecules.

Purification of digested dsRNA

The digestion is then purified to remove any remaining DNA template, unincorporated nucleotides, and dsRNAs longer than approximately 40 bp. This purification step results in MISSION esiRNAs with an average length of 21 bp.

MISSION esiRNAs

Since the starting material is cDNA, each MISSION esiRNA is guaranteed to target a real gene, no more wasted time on assays for “predicted” genes that do not actually exist.

MISSION esiRNA are a heterogeneous mixture of siRNAs that all target the same mRNA sequence. These multiple silencing triggers lead to highly specific and effective gene silencing.

Click here to view more information on specification details.

 

MISSION esiRNA — Proven RNAi screening tool

Theis, M. et al. Comparative profiling identifies C13orf3 as a component of the Ska complex required for mammalian cell division. EMBO J. 28, 1453-65 (2009). Abstract

Ding, L. et al. A Genome-Scale RNAi Screen for Oct4 Modulators Defines a Role of the Paf1 Complex for Embryonic Stem Cell Identity. Cell Stem Cell. 9, 403-15 (2009). Abstract

Kittler, R. et al. Genome-scale RNAi profiling of cell division in human tissue culture cells. Nat. Cell Biol. 9, 1401-12 (2007). Abstract

Kittler, R. et al. An endoribonuclease-prepared siRNA screen in human cells identifies genes essential for cell division. Nature 432, 1036-40 (2004). Abstract

Additional esiRNA Literature References

Stewart, G. S. et al. The RIDDLE syndrome protein mediates a ubiquitin-dependent signaling cascade at sites of DNA damage. Cell 136, 420-34 (2009). Abstract

Lawo, S. et al. HAUS, the 8-Subunit Human Augmin Complex, Regulates Centrosome and Spindle Integrity. Curr Biol., 19, 816-26 (2009). Abstract

Fazzio, T. G. et al. An RNAi screen of chromatin proteins identifies Tip60-p400 as a regulator of embryonic stem cell identity. Cell 2008 134, 162-74 (2008). Abstract

Konstantinova, I. et al. EphA-Ephrin-A-mediated beta cell communication regulates insulin secretion from pancreatic islets. Cell 129, 359-70 (2007). Abstract

Nikolova, G. et al. The vascular basement membrane: a niche for insulin gene expression and Beta cell proliferation. Dev Cell. 10, 397-405 (2006). Abstract

Kittler, R. et. al. RNA interference rescue by bacterial artificial chromosome transgenesis in mammalian tissue culture cells. Proc. Natl. Acad. Sci. U.S.A. 102, 2396-401 (2005). Abstract

Liu, W. Y. et al. Efficient RNA interference in zebrafish embryos using synthesized with SP6 RNA polymerase. Dev. Growth Differ. 47(5), 323-31 (2005).

Yang, D. et al. 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. 99, 9942-7 (2002).




Contact Us
For questions about the library, pricing and quotes or other concerns, please e-mail us at: RNAi@sial.com.


MISSION is a registered trademark of Sigma-Aldrich Biotechnology LP and Sigma-Aldrich Co. Label License.

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