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Published on: June 1, 2012
Transdermal delivery of gentamicin using dissolving microneedle arrays for potential treatment of neonatal sepsis
Patricia González-Vázquez1, Eneko Larrañeta1, Maelíosa T C McCrudden1
1Queen's University Belfast, School of Pharmacy, Medical Biology Centre, 97 Lisburn Road, Belfast BT9 7BL, Northern Ireland, United Kingdom.
Insights
This study introduces dissolving microneedle arrays for transdermal gentamicin delivery, offering a simplified method to treat neonatal infections in low-resource settings. This innovation could improve access to essential antibiotic treatment for infants with serious bacterial infections.
Area of Science:
- Biomedical Engineering
- Pharmaceutical Sciences
- Pediatrics
Background:
- Neonatal infections are a major cause of infant mortality, particularly in resource-limited areas.
- Current World Health Organization guidelines recommend intramuscular gentamicin for possible serious bacterial infections (PSBI) when hospitalization is not feasible.
- Existing gentamicin formulations require complex administration, increasing the risk of user error and limiting access.
Purpose of the Study:
- To develop a simplified, transdermal drug delivery system for gentamicin using dissolving polymeric microneedles (MN).
- To evaluate the feasibility and efficacy of MN arrays for delivering gentamicin to treat PSBI in neonates.
Main Methods:
- Developed dissolving polymeric MN arrays incorporating gentamicin (GEN) using sodium hyaluronate and poly(vinylpyrrolidone).
- Assessed mechanical properties and skin penetration depth of MN arrays.
- Evaluated in vitro drug release using a Franz Cell setup.
- Tested in vivo pharmacokinetics of different GEN doses delivered via MN arrays in an animal model.
Main Results:
- MN arrays demonstrated mechanical strength and successful skin penetration.
- In vitro studies showed consistent GEN release over 6 hours.
- In vivo animal studies indicated dose-dependent plasma gentamicin levels (2–5 μg/mL) achieved within 1–6 hours post-application.
Conclusions:
- Dissolving polymeric microneedle arrays are a promising technology for transdermal gentamicin delivery.
- This novel approach has the potential to simplify antibiotic administration and improve treatment access for neonatal infections in low-resource settings.
Abstract:
Neonatal infections are a leading cause of childhood mortality in low-resource settings. World Health Organization guidelines for outpatient treatment of possible serious bacterial infection (PSBI) in neonates and young infants when referral for hospital treatment is not feasible include intramuscular gentamicin (GEN) and oral amoxicillin. GEN is supplied as an aqueous solution of gentamicin sulphate in vials or ampoules and requires health care workers to be trained in dose calculation or selection of an appropriate dose based on the patient's weight band and to have access to safe injection supplies and appropriate sharps disposal. A simplified formulation, packaging, and delivery method to treat PSBI in low-resource settings could decrease user error and expand access to lifesaving outpatient antibiotic treatment for infants with severe infection during the neonatal period. We developed dissolving polymeric microneedles (MN) arrays to deliver GEN transdermally. MN arrays were produced from aqueous blends containing 30% (w/w) of GEN and two polymers approved by the US Food and Drug Administration: sodium hyaluronate and poly(vinylpyrrolidone). The arrays (19×19 needles and 500μm height) were mechanically strong and were able to penetrate a skin simulant to a depth of 378μm. The MN arrays were tested in vitro using a Franz Cell setup delivering approximately 4.45mg of GEN over 6h. Finally, three different doses (low, medium, and high) of GEN delivered by MN arrays were tested in an animal model. Maximum plasma levels of GEN were dose-dependent and ranged between 2 and 5μg/mL. The time required to reach these levels post-MN array application ranged between 1 and 6h. This work demonstrated the potential of dissolving MN arrays to deliver GEN transdermally at therapeutic levels in vivo.
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