| Literature DB >> 33917124 |
Laura Nicolle1, Jens Casper2, Melanie Willimann3, Céline M A Journot1, Pascal Detampel2, Tomaž Einfalt2, Hiu Man Grisch-Chan3, Beat Thöny3, Sandrine Gerber-Lemaire1, Jörg Huwyler2.
Abstract
There is an increasing interest in cationicEntities:
Keywords: DNA condensation; chitosan; gene delivery vector; polyethylenimine copolymer
Mesh:
Substances:
Year: 2021 PMID: 33917124 PMCID: PMC8067803 DOI: 10.3390/ijms22083828
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1Screening cascade of depolymerized chitosan (dCS)–PEI–based delivery vectors. Identification of a lead candidate was guided by defined chemical properties of the polymer, the indicated physicochemical characteristics of the polyplexes to be met, and biological performance in vitro (i.e., transfection efficiency and cytotoxicity) using the hepatic HuH–7 cell line. Following synthesis, the resulting polymer was chemically identified by 1H NMR and tested for covalent bonding by 2D–diffusion ordered spectroscopy (DOSY) NMR. Only compounds with a solubility of >5 mg/mL were selected for further characterization. Colloidal stability was assessed after DNA complexation. In vitro performance was evaluated by using two reporter gene vectors (n.CAGLuc2 and n.CAG.GFP1). The lead candidate is characterized by favorable safety and transfection profiles in vitro allowing for in vivo evaluation of transfection efficiency.
Figure 2Synthesis of covalent dCS-PEI conjugates. (a) Structures of chitosan (CS, DD ≈ 80%), depolymerized chitosan (dCS, DD ≈ 80%), polyethylene glycol (PEG, 2 kDa), and branched (BPEI, 1.8 kDa) and linear (LPEI, 2.5 kDa) polyethylenimine. (b) Synthesis of dCS-Suc-BPEI and dCS-Suc-LPEI using a succinyl linker (Suc) and DMTMM as water-soluble coupling agent. (c) Synthetic pathways for sequential grafting of BPEI, LPEI, and H2N-PEG-SH on dCS-Suc. NSuc: Suc linked to amine groups. OPEG: PEG linked to hydroxyl groups. For detailed representation of the PEI conjugation sites to dCS-Suc, see supporting information, Figure S1.
Physicochemical properties of selected dCS-PEI derivatives and their precursors. Characteristics of the dCS backbone used, grafting degree of the succinyl linker or the polymer on dCS, and water solubility are displayed for each copolymer. Grafting degrees (GD) (%) of LPEI and BPEI are indicated at the end of the name of each functionalized polymer. Molecular weights of the dCS backbones were estimated by gel permeation chromatography (GPC) and GD were determined by 1H NMR. Nomenclature: cf. Figure 2.
| Polymer | Total Molecular Weight (Da) | Depolymerized Chitosan (dCS) | Succinate (Suc) | Polyethylenimine | Polyethylene Glycol (PEG) | Solubility 1 | ||||
|---|---|---|---|---|---|---|---|---|---|---|
| Mw (Da) | DD (%) | GD (%) | w% | GD (%) | w% | GD (%) | w% | |||
|
| ||||||||||
| 8300 | 8300 | 79 | - | - | - | - | - | - | 3 | |
| 2500 | - | - | - | - | - | - | - | - | 5 | |
| 1800 | - | - | - | - | - | - | - | - | >10 | |
|
| ||||||||||
| 19,100 | 7800 | 80 | 47 | 12 | 11 | 48 | - | - | >10 | |
| 16,900 | 6200 | 80 | 54 | 12 | 13 | 51 | - | - | 7.5 | |
| 75,300 | 9000 | 80 | 44 | 3 | 67 | 85 | - | - | >10 | |
| 43,500 | 7800 | 80 | 47 | 5 | 11 | 21 | 26 | 56 | >10 | |
|
| ||||||||||
| 16,800 | 5700 | 80 | 51 | 10 | 11 | 56 | - | - | >10 | |
| 23,800 | 7800 | 80 | 47 | 10 | 11 | 56 | - | - | >10 | |
| 28,600 | 8300 | 79 | 63 | 11 | 14 | 60 | - | - | >10 | |
| 48,300 | 7800 | 85 | 44 | 4 | 22 | 53 | 14 | 27 | >10 | |
1 The dCS-Suc-PEI copolymers were reconstituted in purified water and supported with HCl, when required, to a minimum pH of 4. 2 dCS-Suc-LPEI-11a is the result of a non-centrifuged solution whereas dCS-Suc-LPEI-11b represents the supernatant of a centrifuged solution of dCS-Suc-LPEI. Every other copolymer detailed in this table is the result of freeze-dried supernatant obtained after centrifugation (post-dialysis).
Figure 3NMR characterization of dCS-Suc-LPEI-14. (a) 1H NMR spectrum in D2O and (b) in D2O/acetic acid-d4. (c) Determination of the covalent bonding of dCS-Suc-LPEI-14 by 2D-DOSY NMR in D2O/acetic acid-d4. For details on analyses and assignments, cf. Supporting information S-11.
Colloidal stability and in vitro performance of DNA complexed dCS-PEI vectors. DNA loading degree is defined by the c/p value (ratio polymer/DNA; %w/w). Polyplex stability is determined by gel retardation assay. The optimized colloidal stability defines the c/p ratio for their further use in vitro. A polydispersity index (PDI) value equal or below 0.2 is considered to be monodisperse. The in vitro gene expression was determined in the hepatocellular carcinoma cell line HuH-7 using two reporter nanovector-DNA (n.CAGLuc2 and n.CAG.GFP1). Cytotoxicity effects were assessed using a cell viability assay (MTS assay). As a result, dCS-Suc-LPEI-11b was selected as lead candidate. Values are means ± SD, n 3. Nomenclature: cf. Figure 2.
| Polymers | Polyplex Stability (c/p Ratio) | Optimized Colloidal Stability | ζ-Potential (mV) | Hydrodynamic | PDI | Luc x GFP | MTS |
|---|---|---|---|---|---|---|---|
|
| |||||||
| 32 | 32 | 22 | 68 | 0.23 | 1 | 111 | |
| 32 | 32 | 28 | 48 | 0.17 | 2103 | 25 | |
| 16 | 16 | 21 | 91 | 0.09 | 3415 | 43 | |
|
| |||||||
| 1 | 2 | 19 | 68 | 0.22 | 415 | 81 | |
| 0.5 | 4 | 16 | 62 | 0.22 | 1174 | 81 | |
| 0.5 | 1 | 24 | 79 ± 1 | 0.21 | 3488 | 63 | |
| 1 | 2 | 13 | 121 | 0.21 | 0 | 91 | |
|
| |||||||
| 1 | 1 | 17 | 74 | 0.25 | 3076 | 97 | |
| 2 | 2 | 23 | 87 | 0.16 | 71,567 ± 1592 | 101 | |
| 2 | 2 | 18 | 85 | 0.17 | 0 | 91 |
Figure 4In vitro gene expression and toxicity pattern of the lead candidate. Experiments were conducted using two reporter gene nanovector-DNA (n.CAGLuc2 and n.CAG.GFP1). (a) Left Panel: Untreated control cells. Nuclei were stained with Hoechst 33,342 (Blue). Middle Panels: Expression of GFP in HuH-7 cells 48 h after transfection with free DNA and dCS. Right panel: Expression of GFP in HuH-7 cells 48 h after transfection with lead candidate dCS-Suc-LPEI-14. Scale bar: 20 μm. (b–d) In vitro evaluation of HuH-7 cells at c/p ratios 0 (free DNA), 0.5, 2, and 8: (b) quantitative assessment of luciferase expression as a function of c/p ratios. Gene expression of luciferase is based on luciferin conversion. (c) Delivery of luciferase reporter genes as determined by quantitative polymerase-chain reaction (qPCR). (d) Evaluation of late apoptotic and necrotic cells 48 h after incubation with dCS-Suc-LPEI-14. Values are means ± SD, n 3.
Figure 5In vivo assessment of dCS-Suc-LPEI-14 upon retrograde intrabiliary infusion into wild-type mice. (a) Luciferase expression levels up to three days post retrograde intrabiliary infusion of 1 µg nanovector-DNA encapsulated with a c/p ratio of 2 (dCS-Suc-LPEI-14) and 1.1 (in vivo-jetPEI). Animals were pretreated without (n = 6) or with dexamethasone (n = 5) for in vivo-jetPEI, and without (n = 2) or with dexamethasone (n = 5) for dCS-Suc-LPEI-14. Note that mice injected without dexamethasone showed signs of jaundice and severe cases had to be euthanized (and were therefore not screened for IVIS). (b) Detection of liver-associated bioluminescence in mice three days post intrabiliary infusion (1 µg DNA/dCS-Suc-LPEI-14 + dexamethasone). (c,d) Serum markers for hepatotoxicity, including alkaline phosphatase (ALP), alanine transaminase (ALT), total bilirubin, and direct bilirubin. Statistical differences by Student’s two tailed t-test: * = p < 0.05, ** = p < 0.01, *** = p < 0.001. Dashed line: background = untreated mice. Values are means ± SD, n 3.