Described here is a protocol for characterizing modules of biologically synergistic miRNAs and their assembly into short transgenes, which allows simultaneous overexpression for gene therapy applications.
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Method Article
Described here is a protocol for characterizing modules of biologically synergistic miRNAs and their assembly into short transgenes, which allows simultaneous overexpression for gene therapy applications.
The biological relevance of microRNAs (miRNAs) in health and disease significantly relies on specific combinations of many simultaneously deregulated miRNAs rather than the action of a single miRNA. The characterization of these specific miRNAs modules is a fundamental step in maximizing their use in therapy. This is extremely relevant because their combinatorial attributes can be practically exploited. Described here is a method to define a specific miRNA signature relevant to the control of oncogenic chromatin repressors in glioblastoma. The approach first defines a general group of miRNAs that are deregulated in tumors in comparison to normal tissue. The analysis is further refined by differential culture conditions, underscoring a subgroup of miRNAs that are co-expressed simultaneously during specific cellular states. Finally, the miRNAs that satisfy these filters are combined into an artificial polycistronic transgenes, which is based on a scaffold of naturally existing miRNA clusters genes, then used for overexpression of these miRNA modules into receiving cells.
miRNAs offer an unmatched opportunity for the development of a broad gene therapy approach to many diseases1,2,3, including cancer4,5. This is based on several unique features of these biological molecules, including their small size6, simple biogenesis7, and natural tendency to function in association8. Many diseases are characterized by specific miRNA expression patterns, which often converge on the regulation of complex biological functions9. The purpose of this method is first to define a strategy to identify groups of miRNAs that are synergistically relevant for specific cellular functions. Consequently, it provides a strategy for the re-establishment of such miRNA combinations in downstream studies and applications.
This method allows for functional analysis of multiple miRNAs at once, leveraging on their simultaneous targeting of a large number of mRNAs, thus recapitulating the complex landscapes of diseases. This approach has been recently employed to define a group of three miRNAs that 1) are simultaneously downregulated in brain cancer and 2) show a strong co-expression pattern during neural differentiation as well as in response to genotoxic stress by radiation or a DNA alkylating agent. The combinatorial re-expression of this module of three miRNAs by the clustering method described below results in profound interference with the biology of cancer cells and can be easily used as a gene therapy strategy for preclinical studies10. This protocol may be of particular interest to those involved in miRNA research and its translational applications.
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1. Characterization of Functionally Associated miRNAs in Glioblastoma
2. Assembly of miRNA Modules into a Polycistronic Transgenic Cluster
3. Obtaining Transgenes by DNA Synthesis
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This method allowed characterization of a module of three miRNAs that are consistently downregulated in brain tumors, which are co-expressed specifically during neuronal differentiation (Figure 1) and involved in the tumor survival response after therapy (Figure 2). This is accomplished by regulating a complex oncogenic chromatin repressive pathway. This co-expression pattern suggested a strong synergistic activity among these th...
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This protocol is based on the notion that rather than functioning in isolation, miRNAs are biologically relevant by working in groups, and these groups are transcriptionally determined by specific cellular contexts26. To justify this approach from a translational perspective, a follow-up protocol that allows recreation of this multi-miRNA pattern in cells/tissues is introduced. This is possible by taking advantage of the relatively simple biogenesis of miRNAs, whereby the recognition of the charac...
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The authors report no conflicts of interest.
The authors wish to thank the members of the Harvey Cushing Neuro Oncology Laboratory for support and constructive criticism. This work was supported by NINDS grants K12NS80223 and K08NS101091 to P. P.
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| Name | Company | Catalog Number | Comments |
|---|---|---|---|
| 0.4% low melting temperature agarose | IBI Scientific | IB70058 | |
| 0.45 µM sterile filter unit | Merck Millipore | SLH033RS | |
| 1.5 mL Microcentrifuge tube | Eppendorf | 22431081 | |
| 6-Well plates | Greiner Bio-One | 657160 | |
| Athymic mice (FoxN1 nu/nu) | Envigo | 069(nu)/070(nu/+) | |
| B-27 Supplement | Thermo Fisher Scientific | 12587010 | |
| Cell culture flask | Greiner Bio-One | 660175 | |
| Cell Scraper, 16cm | Sarstedt | 83.1832 | |
| Cesium 137 irradiator | JL Sheperd and Associates | Core Facility (Harvard Medical School) | |
| Chloroform | Sigma-Aldrich | 439142-4L | |
| DMEM, high glucose, pyruvate | Thermo Fisher Scientific | 11995040 | |
| Dulbecco’s phosphate-buffered saline | Gibco | 14190144 | |
| Eosin Y solution | Sigma-Aldrich | E4009 | |
| Fetal Bovine Serum | Sigma-Aldrich | F9665 | |
| Formalin solution | Sigma-Aldrich | HT501128 | |
| GlutaMAX Supplement | Thermo Fisher Scientific | 35050061 | |
| HEK-293 | American Type Culture Collecti | ATCC CRL-1573 | |
| Hematoxylin solution | Sigma-Aldrich | 1051750500 | |
| Human primary glioma stem-like cells (GBM62) | Provided by Dr. E. A. Chiocca (Brigham and Women’s Hospital, Boston, MA) | ||
| Human primary glioma stem-like cells (MGG4) | Provided by Dr. Hiroaki Wakimoto (Massachusetts General Hospital, Boston, MA) | ||
| Lentiviral vector pCDH-CMV-MCS-EF1-copGFP | System Biosciences | CD511B-1 | |
| Lipofectamine 2000 | Thermo Fisher Scientific | 11668019 | |
| Microcentrifuge refrigerated | Eppendorf | model no. 5424 R, cat. no.5404000138 | |
| Mounting medium | Thermo Fisher Scientific | 4112APG | |
| Nalgene High-Speed Polycarbonate Round Bottom Centrifuge Tubes | Thermo Fisher Scientific | 3117-0380PK | |
| NanoDrop | Thermo Fisher Scientific | 2000c | |
| Neural Progenitor cells (NPC) | Provided by Dr. Jakub Godlewski (Brigham and Women’s Hospital, Boston, MA) | ||
| Neurobasal Medium | Thermo Fisher Scientific | 21103049 | |
| Nikon eclipse Ti motorized fluorescent microscope system | Nikon, Japan | 14314 | |
| Opti-MEM | Thermo Fisher Scientific | 31985088 | |
| PCR tubes | Sigma-Aldrich | CLS6571-960EA | |
| Penicillin-Streptomycin | Thermo Fisher Scientific | 15140122 | |
| Petri-Dishes 94/16 | Greiner Bio-One | 632180 | |
| Poly-D-Lysine | Sigma- Aldrich | P4707 | |
| Recombinant Human EGF | PeproTech | AF-100-15 | |
| Recombinant Human FGF-basic | PeproTech | AF-100-18B | |
| Retinoic acid | Gibco | 12587-010 | |
| RNA Miniprep Kit | Direct-zol | R2050 | |
| S1000 Thermal Cycler | Bio-Rad | 1852196 | |
| Small Animal Image-Guided Micro Irradiator | Xstrahal Life Sciences, UK | Core facility (Dana-Farber Cancer Institute, Boston, MA) | |
| Sorvall WX+ Ultracentrifuge | Thermo Fisher Scientific | 75000100 | |
| StemPro Accutase | Thermo Fisher Scientific | A1110501 | |
| StepOne Real-Time PCR System | Applied Biosystems | 4376357 | |
| SterilGARD biosafety cabinet | The Baker Company | SG403A-HE | |
| Sucrose | Sigma-Aldrich | S9378 | |
| T98-G | American Type Culture Collecti | ATCC CRL-1690 | |
| TaqMan MicroRNA Reverse Transcription Kit | Thermo Fisher Scientific | 4366596 | |
| TaqMan Universal PCR Master Mix | Thermo Fisher Scientific | 4324018 | |
| Temozolomide | Tocris Bioscience | 2706 | |
| Tissue-Tek optimum cutting temperature | Fisher Scientific | NC9636948 | |
| TRIzol Reagent | Thermo Fisher Scientific | 15596026 | Lysis reagent |
| U251-MG | American Type Culture Collecti | ATCC HTB-17 | |
| U87-MG | American Type Culture Collecti | ATCC HTB-14 | |
| ViraPower Lentivector Expression system | Thermo Fisher Scientific | K4970-00 | |
| Water, HPLC grade | Fisher | W54 | |
| Xylene | Sigma-Aldrich | 534056 |
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