| Literature DB >> 30765836 |
Isabel Gessner1, Xiaojie Yu2,3, Christian Jüngst4, Annika Klimpel5, Lingyu Wang2,3, Thomas Fischer1, Ines Neundorf5, Astrid C Schauss4, Margarete Odenthal2,3,6, Sanjay Mathur7.
Abstract
MicroRNAs (miRNAs) are small non-coding nucleotides playing a crucial role in posttranscriptional expression and regulation of target genes in nearly all kinds of cells. In this study, we demonstrate a reliable and efficient capture and purification of miRNAs and intracellular proteins using magnetic nanoparticles functionalized with antisense oligonucleotides. For this purpose, a tumor suppressor miRNA (miR-198), deregulated in several human cancer types, was chosen as the model oligonucleotide. Magnetite nanoparticles carrying the complementary sequence of miR-198 (miR-198 antisense) on their surface were delivered into cells and subsequently used for the extracellular transport of miRNA and proteins. The successful capture of miR-198 was demonstrated by isolating RNA from magnetic nanoparticles followed by real-time PCR quantification. Our experimental data showed that antisense-coated particles captured 5-fold higher amounts of miR-198 when compared to the control nanoparticles. Moreover, several proteins that could play a significant role in miR-198 biogenesis were found attached to miR-198 conjugated nanoparticles and analyzed by mass spectrometry. Our findings demonstrate that a purpose-driven vectorization of magnetic nanobeads with target-specific recognition ligands is highly efficient in selectively transporting miRNA and disease-relevant proteins out of cells and could become a reliable and useful tool for future diagnostic, therapeutic and analytical applications.Entities:
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Year: 2019 PMID: 30765836 PMCID: PMC6375918 DOI: 10.1038/s41598-019-39575-7
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.996
Figure 1Schematic outline of the synthesis of miR-198 antisense functionalized magnetic beads and their use for the selective capturing of miR-198 and associated proteins out of liver cancer cells: (i) Nanoparticle synthesis and surface modification is followed by (ii) their cellular uptake and (iii) the selective capturing of miR-198. (iv) Upon cell lysis and magnetic separation, (v) quantification of miR-198 capturing efficiency and identification of attached proteins via mass spectrometry can be performed.
Figure 2(A) TEM image of cube-shaped magnetite nanoparticles prepared through a thermal decomposition with oleic acid as surface active ligand. (B) High resolution TEM of cube-shaped magnetite nanoparticles, inset shows the electron diffraction pattern of a single crystal. (C) XRD of oleate-capped magnetic beads compared to cubic magnetite (JCPDS file no C19-0629). The small inset demonstrates that as-prepared particles can be easily separated out of a solvent via a magnet. (D) TEM image of SiO2 coated magnetite NPs. (E) Oleate-capped magnetite NPs turn from hydrophobic to hydrophilic after the surface modification with SiO2. (F) IR spectra of (a) oleate-capped magnetic beads and (b) silica coated magnetic beads. (G) Photographs of dispersions of Fe3O4@SiO2 core-shell nanoparticles in distilled water, PBS and cell culture medium containing 10% serum proteins. (H) UV-vis measurement of Fe3O4@SiO2-miR-198 antisense-Tye563 construct (black). A linear fit was performed to underline the scattering of the particles (green).
Figure 3Cellular uptake of miR-198 antisense functionalized magnetic beads into Huh7 cells. Images were taken before and after 1, 6 and 24 hours incubation time followed by cell staining and fixation. The scale bar in all images refers to 25 µm.
Figure 4(A) Quantitative cellular uptake of functionalized magnetic beads into Huh7 cells after 1, 6 and 24 h incubation time, respectively. (B) Relative levels of miR-198 captured by scramble coated versus miR-198 antisense coated nanoparticles. miR-198 levels were determined by real time PCR, after their capturing through miR-198 antisense and scramble functionalized magnetic beads.
List of proteins which could be eluted from miR-198 antisense conjugated beads, identified by mass spectrometry.
| Gene | Encoding protein | Gene | Encoding protein |
|---|---|---|---|
| RPL37A | Ribosomal protein L37a | BAG2 | BCL2 associated athanogene 2 |
| NDUFA4 | Mitochondrial complex associated | ZNF444 | Zinc finger protein 444 |
| TOMM20 | Translocase of outer mitochondrial membrane 20 | SRRT | Serrate, RNA effector molecule homolog |
| AKR1D1 | Aldo-keto reductase family 1 member D1 | EIF3A | Eukaryotic translation initiation factor 3 subunit A |
| HABP4 | Hyaluronan binding protein 4 | SPATS2L | SPATS2-like protein |
| ZNF207 | Zinc finger protein 207 | DNAJB1 | DnaJ homolog subfamily B member 1 |
| TARDBP | TAR DNA binding protein | MCM5 | DNA helicase;DNA replication licensing factor MCM5 |
| PEBP1 | Phosphatidylethanolamine binding protein 1 | PCOLCE2 | Procollagen C-endopeptidase enhancer 2 |
| SORD | Sorbitol dehydrogenase | CALR | Calreticulin |
| VAPA | Vesicle-associated membrane protein, associated protein A | EHD3 | EH domain-containing protein 3 |
| MAPRE2 | Microtubule associated protein RP/EB family member 2 | MCM3 | DNA replication licensing factor MCM3 |
| SPATS2L | Spermatogenesis associated serine rich 2 like | NSUN5 | Probable 28S rRNA (cytosine-C(5))-methyltransferase |
| DNAJB1 | DnaJ heat shock protein family (Hsp40) member B1 | EIF4G2 | Eukaryotic translation initiation factor 4 gamma 2 |
| MCM5 | Minichromosome maintenance complex Pomponent 5 | CKAP5 | Cytoskeleton-associated protein 5 |
| PCOLCE2 | procollagen C-endopeptidase enhancer 2 | TJP2 | Tight junction protein ZO-2 |
| RBM12B | Germinal-center associated nuclear protein | HSDL2 | Hydroxysteroid dehydrogenase-like protein 2 |
| RPSA | Ribosomal protein SA |
Figure 5Cellular pathways in which eluted proteins from miR-198 antisense conjugated beads are involved. The higher the P-value, the higher the number of proteins involved in this pathway.
Figure 6The versatile potential applications of RNA functionalized magnetic beads, as prepared in this work.