| Literature DB >> 28771172 |
Akihiko Ono1,2, Sayami Ito3,4, Shun Sakagami5,6, Hideo Asada7, Mio Saito8, Ying-Shu Quan9, Fumio Kamiyama10, Sachiko Hirobe11, Naoki Okada12,13,14.
Abstract
Microneedle (MN) patches are promising for transcutaneous vaccination because they enable vaccine antigens to physically penetrate the stratum corneum via low-invasive skin puncturing, and to be effectively delivered to antigen-presenting cells in the skin. In second-generation MN patches, the dissolving MNs release the loaded vaccine antigen into the skin. To shorten skin application time for clinical practice, this study aims to develop novel faster-dissolving MNs. We designed two types of MNs made from a single thickening agent, carboxymethylcellulose (CMC) or hyaluronan (HN). Both CMC-MN and HN-MN completely dissolved in rat skin after a 5-min application. In pre-clinical studies, both MNs could demonstrably increase antigen-specific IgG levels after vaccination and prolong antigen deposition compared with conventional injections, and deliver antigens into resected human dermal tissue. In clinical research, we demonstrated that both MNs could reliably and safely puncture human skin without any significant skin irritation from transepidermal water loss measurements and ICDRG (International Contact Dermatitis Research Group) evaluation results.Entities:
Keywords: carboxymethylcellulose; clinical research; faster-dissolving microneedle; hyaluronan; microneedle failure force; microneedle-dissolution kinetics in the skin; transcutaneous vaccine
Year: 2017 PMID: 28771172 PMCID: PMC5620568 DOI: 10.3390/pharmaceutics9030027
Source DB: PubMed Journal: Pharmaceutics ISSN: 1999-4923 Impact factor: 6.321
Scoring of patch test in accordance with ICDRG.
| Score | Reactions |
|---|---|
| − | Negative reaction |
| +? | Doubtful reaction; faint erythema only |
| + | Weak (non-vesicular) positive reaction; erythema, infiltration and possibly papules |
| ++ | Strong (vesicular) positive reaction; erythema, infiltration, papules, vesicles |
| +++ | Extreme positive reaction; bullous reaction |
| IR | Irritant reaction |
Figure 1Pharmaceutical characteristics of novel faster-dissolving MN patches. Data of MN failure forces are expressed as mean ± SD of results from four measurements.
Figure 2MN-dissolution kinetics of faster-dissolving MNs after patch applications to rat skin. Placebo CMC-MN and HN-MN patches were applied to the back skin of Wistar rats for 1, 2, 5, or 10 min. After removal of MN patches, the remaining MNs on each CMC-MN and HN-MN patch were photographed using a stereoscopic microscope.
Figure 3Time course of antigen deposition at the skin administration site after F-OVA administration to rats via an MN patch or ID injection. (A) Representative in vivo fluorescence imaging for antigen deposition from three rats for each group, transcutaneous administration of CMC-MN and HN-MN patches, and ID injection; (B) Time course profiles of the residual fluorescence intensity at the administration site after F-OVA-loaded MN patch applications or ID injection. The residual fluorescence intensity at the administration site was defined as % of the initial fluorescence intensity at 0 h. Data are expressed as mean ± SEM of results from three rats.
Figure 4OVA-specific antibody titers induced by TCI using OVA-loaded, faster-dissolving MN patches. OVA (10 μg)-loaded faster-dissolving MN patches were applied to the back skin of Wistar rats for 10 min or 4 h three times at two-week intervals. As controls, each OVA solution in the same dose (10 μg/50 μL) and in the tenfold dose (100 μg/50 μL) was subcutaneously administered three times at two-week intervals. Sera collected from these rats were assayed for the IgG titer specific for OVA by ELISA. Data are expressed as mean ± SEM of results from four or six rats. ∗ p < 0.05 vs. SCI (10 μg), ∗∗ p < 0.01 vs. SCI (10 μg).
Figure 5Antigen delivery images, dissolution of MNs, skin puncturability and safety using faster-dissolving MN patches on human skin. (A) F-OVA-loaded MN patches were applied to the resected human dermal tissues. In the fluorescence images, the area between the top line and the middle line represents the stratum corneum, the area between the middle line and the bottom line represents the living epidermis, and the dermis is located under the bottom line. Green and blue fluorescence indicate F-OVA and nucleus (DAPI), respectively; (B) Placebo CMC-MN and HN-MN patches were each applied to the skin of upper outer arm of 19 healthy volunteers (14 male and five female) for the indicated times. After removal of MN patches, the remaining MNs on each CMC-MN and HN-MN patch were photographed using a stereoscopic microscope; (C) After MN patch applications of 30 min, TEWL at the application site was measured immediately after MN patch removal. Data are expressed as mean ± SD of results from three measurements; (D) Skin irritation caused by application of MN patches was assessed in accordance with the ICDRG score. Each plot expresses the score of an individual subject. Four photographs show the site judged as +? “doubtful reaction; faint erythema only.”