Development and Characterization of In Situ Gelling Nasal Cilostazol Spanlastics
Разработка и характеристика назальных спанластиков на основе циластазола с гелеобразованием in situ
2025-01-22
SCID: 54.1/w6tccsyd
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BBB-PAMPA permeabilityCilostazol-loaded spanlasticsIn situ gelling formulationsMucoadhesive nasal gelsNose-to-brain delivery
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Abstract (AI)
Cilostazol (CIL), a BCS class II antiplatelet aggregation and vasodilator agent, is used for cerebrovascular diseases to minimize blood–brain barrier dysfunction, white matter-lesion formation, and motor deficits. The current work aimed to develop and optimize cilostazol-loaded spanlastics (CIL-SPA) for nose-to-brain delivery to overcome the low solubility and absorption, the first pass-metabolism, and the adverse effects. The optimal CIL-SPA formulation was loaded into Phytagel® (SPA-PG), Poloxamer-407 (SPA-P407), and chitosan (SPA-CS) gel bases and characterized in terms of colloidal properties, encapsulation efficiency (EE%), mucoadhesive properties, and biopharmaceutical aspects. The developed in situ gelling formulations showed a <300 nm average hydrodynamic diameter, <0.5 polydispersity index, and >|±30| mV zeta potential with a high EE% (>99%). All formulations met the droplet size-distribution criteria of nasal requirements (<200 µm), and all formulations showed adequate mucoadhesion properties. Both the BBB-PAMPA and horizontal permeability study through an artificial membrane revealed that all formulations had higher CIL flux and cumulative permeability at in vitro nose-to-brain conditions compared to the initial CIL. The in vitro drug-release study showed that all formulations released ca. 100% of CIL after 2 h. Therefore, the developed formulations could be promising for improving the low bioavailability of CIL through nose-to-brain delivery.
Key Findings
1
All in situ gelling formulations produced higher cilostazol flux and cumulative permeability than free cilostazol under in vitro nose-to-brain conditions.
2
An optimized cilostazol-loaded spanlastic system was developed for nose-to-brain delivery to address cilostazol’s low solubility, absorption, and first-pass metabolism.
3
Approximately 100% of cilostazol was released from each formulation within 2 hours, indicating potential to improve cilostazol bioavailability through nasal delivery.
4
In situ gels based on Phytagel®, Poloxamer-407, and chitosan exhibited hydrodynamic diameters below 300 nm, polydispersity indices below 0.5, and zeta potentials exceeding |±30| mV.
5
The formulations achieved encapsulation efficiencies above 99%, nasal-compatible droplet sizes below 200 µm, and adequate mucoadhesive properties.
Research Object
cilostazol-loaded spanlastics incorporated into in situ nasal gel bases for nose-to-brain delivery
Research Subject
the formulations’ colloidal properties, encapsulation efficiency, mucoadhesion, drug release, and nose-to-brain permeability
Publication Details
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2025-01-22
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