| Literature DB >> 27354797 |
Cátia Df Lopes1, Hugo Oliveira2, Inês Estevão2, Liliana Raquel Pires2, Ana Paula Pêgo3.
Abstract
A major challenge in neuronal gene therapy is to achieve safe, efficient, and minimally invasive transgene delivery to neurons. In this study, we report the use of a nonviral neurotropicEntities:
Keywords: gene therapy; neuron-targeted; nonviral vector; peripheral neurons
Mesh:
Substances:
Year: 2016 PMID: 27354797 PMCID: PMC4907712 DOI: 10.2147/IJN.S104374
Source DB: PubMed Journal: Int J Nanomedicine ISSN: 1176-9114
Figure 1PEISH-based nanoparticle characterization.
Notes: (A) Scheme of nanoparticle synthesis. Modified from Oliveira H, Fernandez R, Pires LR, et al; Targeted gene delivery into peripheral sensorial neurons mediated by self-assembled vectors composed of poly(ethylene imine) and tetanus toxin fragment c; J Control Release; 143; 350–358; Elsevier; Copyright © 2010.5 (B) Physicochemical characterization of PEISH-based nanoparticles at N/P ratio of 3 (n=3, mean ± SD). (C) TEM photo micrographs of sodium phosphotungstate counterstained PEISH-HC nanoparticles (a) and HC-quantum dots functionalized nanoparticles (b).
Abbreviations: PEISH, thiolated poly(ethylene imine); Pdi, polydispersity index; N/P, moles of primary amine groups (N) of poly(ethylene imine) to moles of DNA phosphate groups (P); SD, standard deviation; TEM, transmission electron microscopy; HC, carboxylic fragment of tetanus toxin.
Figure 2Reporter gene expression in neuronal tissues.
Notes: Relative GFP gene expression in neuronal tissues was evaluated at 3 (A) and 5 days (B) post-administration of PEI-based nanoparticles in the left footpad. (C) Statistical data characterization (n=5). (D) GFP protein expression in lumbar DRGs from animals treated with PEISH (c, d) or PEISH-HC nanoparticles (a, b) at 5 days post-administration. (E) Transfection efficiency of lumbar L4 and L5 DRG neurons mediated by PEISH-HC nanoparticles at day 5 post-administration. Mean ± SD. (A and B) The GFP mRNA expression levels were normalized by GAPDH mRNA expression levels in each tissue sample and represented as relative to the GFP expression in naked pDNA control group. We considered the sciatic nerves, VR, and L4–L5 DRG as neuronal tissue. Each dot represents one animal. **Denotes P<0.01; lines represent the geometric mean. (D) #Indicates a GFP positive cell; ¤indicates a GFP negative cell. Scale bars =100 µm (a, c) or 25 µm (b, d).
Abbreviations: PEI, poly(ethylene imine); PEISH, thiolated poly(ethylene imine); GAPDH, glyceraldehyde 3-phosphate dehydrogenase; pDNA, plasmid DNA; VR, ventral roots; DRG, dorsal root ganglia; SD, standard deviation; CI, confidence interval; HC, carboxylic fragment of tetanus toxin.
Figure 3Reporter gene expression in non-neuronal tissues.
Notes: Firstly, GFP mRNA expression profile was qualitatively evaluated in non-neuronal tissues at 3 (A) and 5 (B) days post-administration. Relative GFP gene expression in paw (C) and lymph nodes (D) at 3 and 5 days post-administration of PEI-based nanoparticles in the left footpad. (A and B) For each tissue, over the columns, the number of animals expressing GFP mRNA in relation to the total number of animals evaluated is indicated (ie, 1/5 indicates one animal expressing GFP mRNA in a total of five animals analyzed at the same time point). (C and D) *Denotes P<0.05; lines represent the geometric mean.
Abbreviations: pDNA, plasmid DNA; PEI, poly(ethylene imine); PEISH, thiolated poly(ethylene imine); HC, carboxylic fragment of tetanus toxin.
Figure 4Inflammatory response in the injection site.
Notes: Representative images of footpad subcutaneous tissue at 3 days (A, D, and G, scale bars =100 µm) and 5 days (B, E, and H, scale bars =100 µm; and C, F, and I, scale bars =20 µm) post-administration of naked pDNA (A–C), PEISH nanoparticles (D–F) or PEISH-HC nanoparticles (G–I). Arrowheads indicate the presence of infiltrating inflammatory cells.
Abbreviations: pDNA, plasmid DNA; PEISH, thiolated poly(ethylene imine); HC, carboxylic fragment of tetanus toxin.