| Literature DB >> 28191432 |
Deepak B Thimiri Govinda Raj1, Niamat Ali Khan2.
Abstract
This article discusses the use of nanotechnology for subcellular compartment isolation and its application towards subcellular omics. This technology review significantly contributes to our understanding on use of nanotechnology for subcellular systems biology. Here we elaborate nanobiotechnology approach of using superparamagnetic nanoparticles (SPMNPs) optimized with different surface coatings for subcellular organelle isolation. Using pulse-chase approach, we review that SPMNPs interacted differently with the cell depending on its surface functionalization. The article focuses on the use of functionalized-SPMNPs as a nanobiotechnology tool to isolate high quality (both purity and yield) plasma membranes and endosomes or lysosomes. Such nanobiotechnology tool can be applied in generating subcellular compartment inventories. As a future perspective, this strategy could be applied in areas such as immunology, cancer and stem cell research.Entities:
Keywords: Nanobiotechnology; Nanoparticles; Subcellular proteomics; Systems biology
Year: 2016 PMID: 28191432 PMCID: PMC5271163 DOI: 10.1186/s40580-016-0082-x
Source DB: PubMed Journal: Nano Converg ISSN: 2196-5404
List of subcellular organelles and their functions
| Subcellular Organelles | Isolation techniques |
|---|---|
| Cell wall | Gradient centrifugation |
| Chloroplast | Gradient centrifugation antibody based pull-down assay, SPMNPS: Tag-anti-tag; Antibody conjugated; Biotin-streptavidin |
| Cilia and flagella | Gradient centrifugation Antibody based pull-down assay; Tag-anti-tag; Antibody conjugated; Biotin-streptavidin |
| Cytoplasm | Gradient centrifugation antibody based pull-down assay; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin tagged SPMNPs |
| Cytoskeleton | Gradient centrifugation antibody based pull-down assay; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin SPMNPs |
| Early endosomes | Gradient centrifugation SPMNP isolation assay antibody based pull-down assay; Biotin-streptavidin tagged SPMNPs; antibody-SPMNPs; Negatively charged lipid-SPMNPs |
| Endoplasmic reticulum (ER)—rough or smooth | Gradient centrifugation antibody based pull-down assay; Tag-anti-tag; Antibody conjugated; Biotin-streptavidin tagged SPMNPs |
| Golgi apparatus | Gradient centrifugation antibody based pull-down assay; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin tagged SPMNPs |
| Late endosomes | Gradient centrifugation SPMNP isolation assay; Biotin-streptavidin; antibody-SPMNPs; Negatively charged SPMNPs |
| Multi-vesicular bodies | Gradient centrifugation SPMNP isolation assay; antibody based pull-down assay; Biotin-streptavidin; antibody-SPMNPs |
| Nucleus | Gradient centrifugation antibody based pull-down assay; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin |
| Peroxisomes | Gradient centrifugation antibody based pull-down assay; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin tagged SPMNPs |
| Phagosomes | Gradient centrifugation SPMNP isolation assay Antibody based pull-down assay; Biotin-streptavidin; antibody SPMNPs |
| Lysosomes | Gradient centrifugation SPMNP isolation assay Antibody based pull-down assay; Biotin-streptavidin tagged SPMNPs; antibody |
| Plasma Membrane or Cell Membrane | Gradient centrifugation; Cationic silica beads; SPMNP isolation; antibody conjugated; Biotin-Streptavidin; lectin–SPMNPs |
| Ribosomes | Gradient centrifugation; pull -down assay; anti-S10/anti–EF-Tu-SPMNPs; Biotin-streptavidin; antibody- SPMNPs |
| Lipid rafts | Gradient centrifugation antibody based pull-down assay; Tag-antitagged-SPMNPs; Biotin-streptavidin; protein conjugated magnetic isolation |
| Secretory granules or vesicles | Gradient centrifugation antibody based pull-down assay; Tag-antitagged SPMNPs; Biotin-streptavidin-SPMNPs |
| Synaptosomes | Gradient centrifugation antibody based pull-down assay; Tag-anti-tag SPMNPs; Antibody conjugated; Biotin-streptavidin SPMNPs |
| Vacuoles | Gradient centrifugation; antibody based pull-down assay; antibody conjugated magnetic nanoparticles |
| Mitochondria | Gradient centrifugation; pull-down assay; antibody conjugated SPMNPs; Tag-anti-tagged; Antibody conjugated; Biotin-streptavidin; Anti-TOM22 antibody tagged SPMNPs |
Comparison of existing technologies for plasma membrane isolation
| Isolation methodologies | Advantages | Disadvantages |
|---|---|---|
| Density Gradient Centrifugation | Conventional method that can be used to isolate plasma membrane along with other subcellular compartments | Low yield and low purity |
| Cationic silica based isolation | Classical method used to isolate cell membrane layers with high purity | Low yield |
| Cell Surface biotinylation based pull-down assay | Generic method that targets cell surface lysine residue | Can isolate only available membrane layer i:e only 50 % of cell surface of adherent cells growing on a petri dish |
| Antibody conjugated magnetic nanoparticle based pulldown assay | Can be used to pull down proteins after post-fractionation | Isolates only available membrane layer (only 50 % surface of adherent cells on a petri dish |
| SPMNPs based plasma membrane isolation; | A novel strategy that is generic for any kind of cell systems | Technology has not be established for tissue cell membrane isolation and in vivo experiments |
Comparison of existing technologies for endosomes and lysosome isolation
| Isolation methodologies | Advantages | Disadvantages |
|---|---|---|
| Density gradient centrifugation; | Conventional method that can be used to isolate endosomes and lysosomes along other subcellular compartments | Low yield |
| Antibody based pull-down assay | Can be used to pull down proteins after post-fractionation | Limited applicability for certain endocytosis uptake |
| SPMNPs based isolation; | A novel strategy that is generic for any kind of cell systems with reasonable purity and yield | Technology has not be established for isolation of vesicles form tissue cells and in vivo experiments |
Fig. 1Subcellular compartments and specific purification methodology
Fig. 2Endocytosis pathway
Fig. 3Manufacturing of water-soluble superparamagnetic nanoparticles
Fig. 4Nanoparticle-cell interaction
Fig. 5Bioconjugation strategy for nanoparticle
Fig. 6Step by step approach toward subcellular compartmental proteomics
Fig. 7Pulse-chase methodology
Fig. 8Strategy towards Plasma Membrane isolation
Fig. 9Strategy towards endosomal isolation