A Versatile Viral System for Expression and Depletion of Proteins in Mammalian Cells

Универсальная вирусная система для экспрессии и истощения белков в клетках млекопитающих
Paul Yaswen, Eric Campeau, Françis Rodier, Judith Campisi, Priscilla K. Cooper, Jill O. Fuss, Victoria E. Ruhl, Corey L. Smith, Brittany L. Rahmberg, Paul D. Kaufman
2009-08-05

Gateway technologylentiviral vectorsprotein depletionretroviral vectorsshRNA and miRNA
The ability to express or deplete proteins in living cells is crucial for the study of biological processes. Viral vectors are often useful to deliver DNA constructs to cells that are difficult to transfect by other methods. Lentiviruses have the additional advantage of being able to integrate into the genomes of non-dividing mammalian cells. However, existing viral expression systems generally require different vector backbones for expression of cDNA, small hairpin RNA (shRNA) or microRNA (miRNA) and provide limited drug selection markers. Furthermore, viral backbones are often recombinogenic in bacteria, complicating the generation and maintenance of desired clones. Here, we describe a collection of 59 vectors that comprise an integrated system for constitutive or inducible expression of cDNAs, shRNAs or miRNAs, and use a wide variety of drug selection markers. These vectors are based on the Gateway technology (Invitrogen) whereby the cDNA, shRNA or miRNA of interest is cloned into an Entry vector and then recombined into a Destination vector that carries the chosen viral backbone and drug selection marker. This recombination reaction generates the desired product with >95% efficiency and greatly reduces the frequency of unwanted recombination in bacteria. We generated Destination vectors for the production of both retroviruses and lentiviruses. Further, we characterized each vector for its viral titer production as well as its efficiency in expressing or depleting proteins of interest. We also generated multiple types of vectors for the production of fusion proteins and confirmed expression of each. We demonstrated the utility of these vectors in a variety of functional studies. First, we show that the FKBP12 Destabilization Domain system can be used to either express or deplete the protein of interest in mitotically-arrested cells. Also, we generate primary fibroblasts that can be induced to senesce in the presence or absence of DNA damage. Finally, we determined that both isoforms of the AT-Rich Interacting Domain 4B (ARID4B) protein could induce G1 arrest when overexpressed. As new technologies emerge, the vectors in this collection can be easily modified and adapted without the need for extensive recloning.
1
Each vector was characterized for viral titer and effectiveness in expressing or depleting target proteins; fusion-protein vectors were also generated and validated.
2
The Gateway-based system uses Entry-to-Destination recombination, producing desired viral constructs with greater than 95% efficiency while reducing unwanted bacterial recombination.
3
The study introduces 59 viral vectors supporting constitutive or inducible expression of cDNAs, shRNAs, and miRNAs in mammalian cells.
4
The system enabled functional studies including FKBP12-mediated protein regulation in mitotically arrested cells and inducible senescence of primary fibroblasts with or without DNA damage.
5
The vector collection includes retroviral and lentiviral backbones with diverse drug-selection markers, enabling delivery to dividing and non-dividing mammalian cells.

The integrated collection of retroviral and lentiviral vectors for expression or depletion of proteins in mammalian cells

The vectors’ efficiency and versatility for constitutive or inducible protein expression and depletion, including viral titer production, drug selection, fusion-protein expression, and application in functional studies

Publication Details
Publication Date
2009-08-05
Journal
Publisher
ISSN
Access Type
Author Information
Authors
Paul Yaswen
Eric Campeau
Françis Rodier
Judith Campisi
Priscilla K. Cooper
Jill O. Fuss
Victoria E. Ruhl
Corey L. Smith
Brittany L. Rahmberg
Paul D. Kaufman
Explore further
Open the scid.ai AI chat with a ready-made request: it will find papers on a similar topic and help build a literature review.
Find similar papers in the chat
Make a presentation
100%