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1.
AAPS PharmSciTech ; 25(5): 101, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38714629

ABSTRACT

BACKGROUND: Niacin, an established therapeutic for dyslipidemia, is hindered by its propensity to induce significant cutaneous flushing when administered orally in its unmodified state, thereby constraining its clinical utility. OBJECTIVE: This study aimed to fabricate, characterize, and assess the in-vitro and in-vivo effectiveness of niacin-loaded polymeric films (NLPFs) comprised of carboxymethyl tamarind seed polysaccharide. The primary objective was to mitigate the flushing-related side effects associated with oral niacin administration. METHODS: NLPFs were synthesized using the solvent casting method and subsequently subjected to characterization, including assessments of tensile strength, moisture uptake, thickness, and folding endurance. Surface characteristics were analyzed using a surface profiler and scanning electron microscopy (SEM). Potential interactions between niacin and the polysaccharide core were investigated through X-ray diffraction experiments (XRD) and Fourier transform infrared spectroscopy (FTIR). The viscoelastic properties of the films were explored using a Rheometer. In-vitro assessments included drug release studies, swelling behavior assays, and antioxidant assays. In-vivo efficacy was evaluated through skin permeation assays, skin irritation assays, and histopathological analyses. RESULTS: NLPFs exhibited a smooth texture with favorable tensile strength and moisture absorption capabilities. Niacin demonstrated interaction with the polysaccharide core, rendering the films amorphous. The films displayed slow and sustained drug release, exceptional antioxidant properties, optimal swelling behavior, and viscoelastic characteristics. Furthermore, the films exhibited biocompatibility and non-toxicity towards skin cells. CONCLUSION: NLPFs emerged as promising carrier systems for the therapeutic transdermal delivery of niacin, effectively mitigating its flushing-associated adverse effects.


Subject(s)
Administration, Cutaneous , Drug Liberation , Niacin , Polysaccharides , Rats, Wistar , Skin Absorption , Skin , Animals , Rats , Niacin/administration & dosage , Niacin/chemistry , Niacin/pharmacology , Polysaccharides/chemistry , Polysaccharides/administration & dosage , Polysaccharides/pharmacology , Skin/metabolism , Skin/drug effects , Skin Absorption/drug effects , Flushing/chemically induced , Tensile Strength , Male , Drug Delivery Systems/methods , Tamarindus/chemistry , Polymers/chemistry
2.
Carbohydr Polym ; 338: 122197, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38763711

ABSTRACT

Transdermal rotigotine (RTG) therapy is prescribed to manage Parkinson's disease (Neupro® patch). However, its use is suffered from application site reactions. Herein, drug nanocrystalline suspension (NS)-loaded hydrogel (NS-HG) employing polysaccharides simultaneously as suspending agent and hydrogel matrix was constructed for transdermal delivery, with alleviated skin irritation. RTG-loaded NS-HG was prepared using a bead-milling technique, employing sodium carboxylmethyl cellulose (Na.CMC) as nano-suspending agent (molecular weight 90,000 g/mol) and hydrogel matrix (700,000 g/mol), respectively. NS-HG was embodied as follows: drug loading: ≤100 mg/mL; shape: rectangular crystalline; crystal size: <286.7 nm; zeta potential: -61 mV; viscosity: <2.16 Pa·s; and dissolution rate: >90 % within 15 min. Nuclear magnetic resonance analysis revealed that the anionic polymers bind to RTG nanocrystals via charge interaction, affording uniform dispersion in the matrix. Rodent transdermal absorption of RTG from NS-HG was comparable to that from microemulsions, and proportional to drug loading. Moreover, NS-HG was skin-friendly; erythema and epidermal swelling were absent after repeated application. Further, NS-HG was chemically stable; >95 % of the drug was preserved up to 4 weeks under long term (25 °C/RH60%), accelerated (40 °C/RH75%), and stress (50 °C) storage conditions. Therefore, this novel cellulose derivative-based nanoformulation presents a promising approach for effective transdermal RTG delivery with improved tolerability.


Subject(s)
Administration, Cutaneous , Carboxymethylcellulose Sodium , Hydrogels , Nanoparticles , Skin , Tetrahydronaphthalenes , Thiophenes , Thiophenes/chemistry , Thiophenes/administration & dosage , Animals , Hydrogels/chemistry , Nanoparticles/chemistry , Carboxymethylcellulose Sodium/chemistry , Tetrahydronaphthalenes/chemistry , Tetrahydronaphthalenes/administration & dosage , Skin/drug effects , Skin/metabolism , Male , Skin Absorption/drug effects , Rats , Mice , Drug Carriers/chemistry , Rats, Sprague-Dawley , Drug Liberation
3.
Biol Pharm Bull ; 47(5): 997-999, 2024.
Article in English | MEDLINE | ID: mdl-38777759

ABSTRACT

Patch tests are often used in safety evaluations to identify the substance causing skin irritation, but the same substance can sometimes give positive or negative results depending on the test conditions. Here, we investigated differences in the skin penetration of two test compounds under different application conditions. We studied the effects of the anionic surfactant sodium dodecyl sulfate (SDS) and the nonionic surfactant polysorbate 80 (PS) on skin penetration of the preservatives methylisothiazolinone (MT) and methylchloroisothiazolinone (MCT), which are used in cosmetics such as shampoos. The skin permeation of MT was enhanced by SDS but was unchanged by PS. Skin impedance decreased in the presence of SDS whereas PS had the same effect as the control aqueous solution, suggesting that SDS reduction of the barrier function of skin affects the permeation of MT, a hydrophilic drug. Application of a mixture of MCT and MT in the presence of SDS did not affect the skin permeation of MCT whereas the permeation of MT was enhanced by SDS, indicating that the skin permeation of MCT is less affected by SDS than is MT. Thus, attention should be paid to the possible effect of co-solutes, especially hydrophilic drugs.


Subject(s)
Polysorbates , Skin Absorption , Skin , Sodium Dodecyl Sulfate , Surface-Active Agents , Thiazoles , Thiazoles/pharmacokinetics , Surface-Active Agents/pharmacology , Skin Absorption/drug effects , Polysorbates/pharmacology , Skin/metabolism , Skin/drug effects , Animals , Preservatives, Pharmaceutical , Swine , Cosmetics/pharmacokinetics , Electric Impedance , Permeability/drug effects
4.
Int J Nanomedicine ; 19: 4061-4079, 2024.
Article in English | MEDLINE | ID: mdl-38736651

ABSTRACT

Purpose: Transdermal Drug Delivery System (TDDS) offers a promising alternative for delivering poorly soluble drugs, challenged by the stratum corneum's barrier effect, which restricts the pool of drug candidates suitable for TDDS. This study aims to establish a delivery platform specifically for highly lipophilic drugs requiring high doses (log P > 5, dose > 10 mg/kg/d), to improve their intradermal delivery and enhance solubility. Methods: Cannabidiol (CBD, log P = 5.91) served as the model drug. A CBD nanosuspension (CBD-NS) was prepared using a bottom-up method. The particle size, polydispersity index (PDI), zeta potential, and concentration of the CBD-NS were characterized. Subsequently, CBD-NS was incorporated into dissolving microneedles (DMNs) through a one-step manufacturing process. The intradermal dissolution abilities, physicochemical properties, mechanical strength, insertion depth, and release behavior of the DMNs were evaluated. Sprague-Dawley (SD) rats were utilized to assess the efficacy of the DMN patch in treating knee synovitis and to analyze its skin permeation kinetics and pharmacokinetic performance. Results: The CBD-NS, stabilized with Tween 80, exhibited a particle size of 166.83 ± 3.33 nm, a PDI of 0.21 ± 0.07, and a concentration of 46.11 ± 0.52 mg/mL. The DMN loaded with CBD-NS demonstrated favorable intradermal dissolution and mechanical properties. It effectively increased the delivery of CBD into the skin, extended the action's duration in vivo, and enhanced bioavailability. CBD-NS DMN exhibited superior therapeutic efficacy and safety in a rat model of knee synovitis, significantly inhibiting TNF-α and IL-1ß compared with the methotrexate subcutaneous injection method. Conclusion: NS technology effectively enhances the solubility of the poorly soluble drug CBD, while DMN facilitates penetration, extends the duration of action in vivo, and improves bioavailability. Furthermore, CBD has shown promising therapeutic outcomes in treating knee synovitis. This innovative drug delivery system is expected to offer a more efficient solution for the administration of highly lipophilic drugs akin to CBD, thereby facilitating high-dose administration.


Subject(s)
Administration, Cutaneous , Cannabidiol , Needles , Particle Size , Rats, Sprague-Dawley , Skin Absorption , Suspensions , Animals , Cannabidiol/pharmacokinetics , Cannabidiol/administration & dosage , Cannabidiol/chemistry , Skin Absorption/drug effects , Rats , Suspensions/chemistry , Male , Skin/metabolism , Skin/drug effects , Solubility , Drug Delivery Systems/methods , Transdermal Patch , Nanoparticles/chemistry , Microinjections/methods , Microinjections/instrumentation
5.
Pak J Pharm Sci ; 37(1): 95-105, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38741405

ABSTRACT

Hydrophilic drugs could be incorporated into the skin surface by manes of Lipogel. This study aimed to prepare miconazole lipogel with natural ingredients to enhance drug permeability using dimethyl Sulfoxide (DMSO). The miconazole lipogels, A1 (without DMSO) and A2 (with DMSO) were formulated and evaluated for organoleptic evaluation, pH, viscosity, stability studies, freeze-thawing, drug release profile and drug permeation enhancement. Results had stated that prepared lipogel's pH falls within the acceptable range required for topical delivery (4 to 6) while both formulations show good results in organoleptic evaluation. The A2 formulation containing DMSO shows better permeation of miconazole (84.76%) on the artificial skin membrane as compared to A1 lipogel formulation (50.64%). In in-vitro drug release studies, A2 for-mulation showed 87.48% drug release while A1 showed just 60.1% drug release from lipogel. Stability studies were performed on model formulations under environmental conditions and both showed good spreadibility, stable pH, free of grittiness and good consistency in formulation. The results concluded that A2 formulation containing DMSO shows better results as compared to DMSO-free drug lipogel.


Subject(s)
Dimethyl Sulfoxide , Drug Liberation , Gels , Miconazole , Permeability , Miconazole/administration & dosage , Miconazole/chemistry , Miconazole/pharmacokinetics , Dimethyl Sulfoxide/chemistry , Viscosity , Drug Stability , Hydrogen-Ion Concentration , Skin Absorption/drug effects , Chemistry, Pharmaceutical , Drug Compounding , Antifungal Agents/administration & dosage , Antifungal Agents/chemistry , Antifungal Agents/pharmacokinetics , Administration, Cutaneous
6.
Curr Pharm Des ; 30(7): 489-518, 2024.
Article in English | MEDLINE | ID: mdl-38757691

ABSTRACT

Topical drug delivery holds immense significance in dermatological treatments due to its non-invasive nature and direct application to the target site. Organogels, a promising class of topical drug delivery systems, have acquired substantial attention for enhancing drug delivery efficiency. This review article aims to explore the advantages of organogels, including enhanced drug solubility, controlled release, improved skin penetration, non-greasy formulations, and ease of application. The mechanism of organogel permeation into the skin is discussed, along with formulation strategies, which encompass the selection of gelling agents, cogelling agents, and additives while considering the influence of temperature and pH on gel formation. Various types of organogelators and organogels and their properties, such as viscoelasticity, non-birefringence, thermal stability, and optical clarity, are presented. Moreover, the biomedical applications of organogels in targeting skin cancer, anti-inflammatory drug delivery, and antifungal drug delivery are discussed. Characterization parameters, biocompatibility, safety considerations, and future directions in optimizing skin permeation, ensuring long-term stability, addressing regulatory challenges, and exploring potential combination therapies are thoroughly examined. Overall, this review highlights the immense potential of organogels in redefining topical drug delivery and their significant impact on the field of dermatological treatments, thus paving the way for exciting prospects in the domain.


Subject(s)
Drug Delivery Systems , Gels , Gels/chemistry , Humans , Administration, Topical , Animals , Administration, Cutaneous , Skin Absorption/drug effects
7.
Langmuir ; 40(21): 11011-11022, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38739267

ABSTRACT

Surfactant-free microemulsions (SFMEs) exhibited remarkable advantages and potential, attributed to their similarity to traditional surfactant-based microemulsions and the absence of surfactants. Herein, a novel SFME was developed utilizing cosmetically approved materials, such as short-chain alcohol as an amphi-solvent, triethyl citrate (TEC) as the nonpolar phase, and water as the polar phase. 1,2-Pentanediol (PtDO)/TEC/water combination can form the largest monophasic zone, accounting for ∼74% of the total phase diagram area, due to an optimal hydrophilic (water)-lipophilic (TEC) balance. Comparable to surfactant-based microemulsion, PtDO/TEC/water SFME can also be categorized into three types: water-in-oil, discontinuous, and oil-in-water. As TEC or water is increased, or PtDO is decreased, the nanoaggregates in PtDO/TEC/water SFME grow from <5 nm to tens of nanometers. The addition of α-arbutin (ABN) does not disrupt PtDO/TEC/water SFME, but rather enhances its formation, resulting in a larger monophasic area and consistent size (2.8-3.8 nm) through participating in interface assembly. Furthermore, ABN-loaded PtDO/TEC/water SFME exhibits remarkable resistance to dilution, exceptional stability, and minimal irritation. Notably, PtDO/TEC/water SFME significantly boosts ABN's solubility in water by 2 times, its percutaneous penetration rate by 3-4 times, and enables a slow-release DPPH• radical scavenging effect. This SFME serves as a safe and cosmetically suitable nanoplatform for the delivery of bioactive substances.


Subject(s)
Arbutin , Emulsions , Water , Emulsions/chemistry , Water/chemistry , Arbutin/chemistry , Arbutin/pharmacokinetics , Animals , Surface-Active Agents/chemistry , Skin Absorption/drug effects , Administration, Cutaneous , Cosmetics/chemistry , Citrates/chemistry
8.
Int J Nanomedicine ; 19: 4321-4337, 2024.
Article in English | MEDLINE | ID: mdl-38770103

ABSTRACT

Purpose: Cannabidiol (CBD) is a promising therapeutic drug with low addictive potential and a favorable safety profile. However, CBD did face certain challenges, including poor solubility in water and low oral bioavailability. To harness the potential of CBD by combining it with a transdermal drug delivery system (TDDS). This innovative approach sought to develop a transdermal patch dosage form with micellar vesicular nanocarriers to enhance the bioavailability of CBD, leading to improved therapeutic outcomes. Methods: A skin-penetrating micellar vesicular nanocarriers, prepared using nano emulsion method, cannabidiol loaded transdermal nanocarriers-12 (CTD-12) was presented with a small particle size, high encapsulation efficiency, and a drug-loaded ratio for CBD. The skin permeation ability used Strat-M™ membrane with a transdermal diffusion system to evaluate the CTD and patch of CTD-12 (PCTD-12) within 24 hrs. PCTD-12 was used in a preliminary pharmacokinetic study in rats to demonstrate the potential of the developed transdermal nanocarrier drug patch for future applications. Results: In the transdermal application of CTD-12, the relative bioavailability of the formulation was 3.68 ± 0.17-fold greater than in the free CBD application. Moreover, PCTD-12 indicated 2.46 ± 0.18-fold higher relative bioavailability comparing with free CBD patch in the ex vivo evaluation. Most importantly, in the pharmacokinetics of PCTD-12, the relative bioavailability of PCTD-12 was 9.47 ± 0.88-fold higher than in the oral application. Conclusion: CTD-12, a transdermal nanocarrier, represents a promising approach for CBD delivery, suggesting its potential as an effective transdermal dosage form.


Subject(s)
Administration, Cutaneous , Biological Availability , Cannabidiol , Drug Carriers , Nanoparticles , Skin Absorption , Transdermal Patch , Cannabidiol/pharmacokinetics , Cannabidiol/chemistry , Cannabidiol/administration & dosage , Animals , Skin Absorption/drug effects , Drug Carriers/chemistry , Drug Carriers/pharmacokinetics , Male , Nanoparticles/chemistry , Rats , Rats, Sprague-Dawley , Particle Size , Skin/metabolism , Skin/drug effects , Micelles
9.
Mol Pharm ; 21(5): 2512-2533, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38602861

ABSTRACT

Parkinson's disease (PD) is a debilitating neurodegenerative disease primarily impacting neurons responsible for dopamine production within the brain. Pramipexole (PRA) is a dopamine agonist that is currently available in tablet form. However, individuals with PD commonly encounter difficulties with swallowing and gastrointestinal motility, making oral formulations less preferable. Microneedle (MN) patches represent innovative transdermal drug delivery devices capable of enhancing skin permeability through the creation of microconduits on the surface of the skin. MNs effectively reduce the barrier function of skin and facilitate the permeation of drugs. The work described here focuses on the development of polymeric MN systems designed to enhance the transdermal delivery of PRA. PRA was formulated into both dissolving MNs (DMNs) and directly compressed tablets (DCTs) to be used in conjunction with hydrogel-forming MNs (HFMNs). In vivo investigations using a Sprague-Dawley rat model examined, for the first time, if it was beneficial to prolong the application of DMNs and HFMNs beyond 24 h. Half of the patches in the MN cohorts were left in place for 24 h, whereas the other half remained in place for 5 days. Throughout the entire 5 day study, PRA plasma levels were monitored for all cohorts. This study confirmed the successful delivery of PRA from DMNs (Cmax = 511.00 ± 277.24 ng/mL, Tmax = 4 h) and HFMNs (Cmax = 328.30 ± 98.04 ng/mL, Tmax = 24 h). Notably, both types of MNs achieved sustained PRA plasma levels over a 5 day period. In contrast, following oral administration, PRA remained detectable in plasma for only 48 h, achieving a Cmax of 159.32 ± 113.43 ng/mL at 2 h. The HFMN that remained in place for 5 days demonstrated the most promising performance among all investigated formulations. Although in the early stages of development, the findings reported here offer a hopeful alternative to orally administered PRA. The sustained plasma profile observed here has the potential to reduce the frequency of PRA administration, potentially enhancing patient compliance and ultimately improving their quality of life. This work provides substantial evidence advocating the development of polymeric MN-mediated drug delivery systems to include sustained plasma levels of hydrophilic pharmaceuticals.


Subject(s)
Administration, Cutaneous , Drug Delivery Systems , Needles , Parkinson Disease , Pramipexole , Rats, Sprague-Dawley , Pramipexole/administration & dosage , Pramipexole/pharmacokinetics , Animals , Rats , Parkinson Disease/drug therapy , Drug Delivery Systems/methods , Male , Skin Absorption/drug effects , Skin/metabolism , Skin/drug effects , Antiparkinson Agents/administration & dosage , Antiparkinson Agents/pharmacokinetics , Dopamine Agonists/administration & dosage , Dopamine Agonists/pharmacokinetics , Hydrogels/chemistry
10.
Drug Dev Res ; 85(3): e22191, 2024 May.
Article in English | MEDLINE | ID: mdl-38685610

ABSTRACT

Psoriasis is a chronic inflammatory and proliferative skin disease that causes pathological skin changes and has a substantial impact on the quality of patient life. Apremilast was approved by the US Food and Drug Administration as an oral medication for psoriasis and is beneficial in mild to moderate conditions for chronic usage. However, 5%-7% of withdrawals were reported due to severe side effects. To address the issue, a localized drug delivery strategy via the topical route may be a viable approach. However, poor physicochemical properties make it vulnerable to passing through the skin, requiring a specialized drug delivery system to demonstrate its full potential via a topical route like lecithin organogel. The formulation was optimized by screening the suitable lecithin type and non-polar solvents based on the gel formation ability of lecithin and the solubility of apremilast in the solvent. The pseudo-ternary diagram was used to optimize the water content required to form the gel. The optimized gel was found to be shear thinning characterized for rheological parameters, in-vitro diffusion studies, and in-vitro skin distribution studies. Preclinical studies in Imiquimod-induced mice showed a better reduction in severity index, cytokine levels, and epidermal hyperplasia from the lecithin organogel group compared to the apremilast oral administration and marketed standard topical gel group. Based on these results, lecithin organogel can be considered a promising approach to deliver molecules like apremilast by topical route in psoriatic-like conditions.


Subject(s)
Drug Delivery Systems , Gels , Lecithins , Psoriasis , Thalidomide , Thalidomide/analogs & derivatives , Psoriasis/drug therapy , Lecithins/chemistry , Animals , Mice , Thalidomide/administration & dosage , Thalidomide/chemistry , Thalidomide/pharmacokinetics , Skin Absorption/drug effects , Skin/metabolism , Skin/drug effects , Administration, Cutaneous , Administration, Topical , Anti-Inflammatory Agents, Non-Steroidal/administration & dosage , Anti-Inflammatory Agents, Non-Steroidal/chemistry , Anti-Inflammatory Agents, Non-Steroidal/pharmacokinetics , Drug Evaluation, Preclinical , Imiquimod/administration & dosage , Male
11.
ACS Appl Bio Mater ; 7(5): 2899-2910, 2024 May 20.
Article in English | MEDLINE | ID: mdl-38607995

ABSTRACT

Acne vulgaris is one of the most prevalent skin disorders; it affects up to 85% of adolescents and often persists into adulthood. Topical 5-aminolevulinic acid (ALA)-based photodynamic therapy (PDT) provides an alternative treatment for acne; however, its efficacy is greatly undermined by the limited skin permeability of ALA. Herein, biocompatible ionic liquids (ILs) based on aliphatic acid/choline were employed to enhance the dermal delivery of ALA, thereby improving the efficacy of PDT. In addition to the one-step delivery of ALA by utilizing ILs as carriers, a two-step strategy of pretreating the skin with blank ILs, followed by the administration of free ALA, was employed to test the IL-facilitated dermal delivery of ALA in vitro. The cumulative permeation of ALA through the excised rat skin after IL pretreatment was significantly greater than that in the untreated group, the 20% dimethyl sulfoxide (DMSO) penetration enhancer group, and the one-step group. The penetration efficiency was influenced by formulation and treatment factors, including the type of IL, pretreatment duration, water content in the ILs, and concentration of ALA. In rats, IL pretreatment facilitated faster, greater, and deeper ALA-induced protoporphyrin IX (PpIX) accumulation. Moreover, the IL pretreatment regimen significantly improved the efficacy of ALA-based PDT against acne vulgaris in a rat ear model. The model IL choline citrate ([Ch]3[Cit]1) had a moderate effect on the skin barrier. Trans-epidermal water loss could be recovered 1 h after IL treatment, but no irritation to the rat skin was detected after 7 days of consecutive treatment. It was concluded that biocompatible IL pretreatment enhances the penetration of ALA and thus facilitates the transformation of PpIX and improves the efficacy of PDT against acne vulgaris.


Subject(s)
Acne Vulgaris , Aminolevulinic Acid , Ionic Liquids , Photochemotherapy , Photosensitizing Agents , Skin , Aminolevulinic Acid/pharmacology , Aminolevulinic Acid/chemistry , Animals , Ionic Liquids/chemistry , Ionic Liquids/pharmacology , Rats , Acne Vulgaris/drug therapy , Photosensitizing Agents/pharmacology , Photosensitizing Agents/chemistry , Skin/metabolism , Skin/drug effects , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Materials Testing , Particle Size , Rats, Sprague-Dawley , Skin Absorption/drug effects , Male
12.
Eur J Pharm Biopharm ; 199: 114303, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38657740

ABSTRACT

Dissolvable microneedles (DMNs), fabricated from biocompatible materials that dissolve in both water and skin have gained popularity in dermatology. However, limited research exists on their application in compromised skin conditions. This study compares the hyaluronic acid-based DMNs penetration, formation of microchannels, dissolution, and diffusion kinetics in intact, barrier-disrupted (tape stripped), and dry (acetone-treated) porcine ear skin ex vivo. After DMNs application, comprehensive investigations including dermoscopy, stereomicroscope, skin hydration, transepidermal water loss (TEWL), optical coherence tomography (OCT), reflectance confocal laser scanning microscopy (RCLSM), confocal Raman micro-spectroscopy (CRM), two-photon tomography combined with fluorescence lifetime imaging (TPT-FLIM), histology, and scanning electron microscopy (SEM) were conducted. The 400 µm long DMNs successfully penetrated the skin to depths of ≈200 µm for dry skin and ≈200-290 µm for barrier-disrupted skin. Although DMNs fully inserted into all skin conditions, their dissolution rates were high in barrier-disrupted and low in dry skin, as observed through stereomicroscopy and TPT-FLIM. The dissolved polymer exhibited a more significant expansion in barrier-disrupted skin compared to intact skin, with the smallest increase observed in dry skin. Elevated TEWL and reduced skin hydration levels were evident in barrier-disrupted and dry skins compared to intact skin. OCT and RCLSM revealed noticeable skin indentation and pronounced microchannel areas, particularly in barrier-disrupted and dry skin. Additional confirmation of DMN effects on the skin and substance dissolution was obtained through histology, SEM, and CRM techniques. This study highlights the impact of skin condition on DMN effectiveness, emphasizing the importance of considering dissolvability and dissolution rates of needle materials, primarily composed of hyaluronic acid, for optimizing DMN-based drug delivery.


Subject(s)
Administration, Cutaneous , Hyaluronic Acid , Needles , Skin Absorption , Skin , Solubility , Animals , Swine , Skin/metabolism , Skin/drug effects , Skin Absorption/drug effects , Skin Absorption/physiology , Hyaluronic Acid/chemistry , Hyaluronic Acid/administration & dosage , Drug Delivery Systems/methods , Tomography, Optical Coherence/methods , Microinjections/methods , Water Loss, Insensible/drug effects , Water Loss, Insensible/physiology , Biocompatible Materials/administration & dosage , Biocompatible Materials/chemistry
13.
Eur J Pharm Biopharm ; 199: 114304, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38663522

ABSTRACT

Carbidopa and levodopa remain the established therapeutic standard for managing Parkinson's disease. Nevertheless, their oral administration is hindered by rapid enzymatic degradation and gastrointestinal issues, limiting their efficacy, and necessitating alternative delivery methods. This work presents a novel strategy employing dissolving microarray patches (MAPs) loaded with carbidopa and levodopa, formulated with Tween® 80 to improve their transdermal delivery. The fabricated MAPs demonstrated an acceptable mechanical strength, resisting pressures equivalent to manual human thumb application (32 N) onto the skin. Additionally, these MAPs exhibited an insertion depth of up to 650 µm into excised neonatal porcine skin. Ex vivo dermatokinetic studies could achieve delivery efficiencies of approximately 53.35 % for levodopa and 40.14 % for carbidopa over 24 h, demonstrating their significant potential in drug delivery. Biocompatibility assessments conducted on human dermal fibroblast cells corroborated acceptable cytocompatibility, confirming the suitability of these MAPs for dermal application. In conclusion, dissolving MAPs incorporating carbidopa and levodopa represent a promising alternative for improving the therapeutic management of Parkinson's disease.


Subject(s)
Administration, Cutaneous , Antiparkinson Agents , Carbidopa , Levodopa , Parkinson Disease , Carbidopa/administration & dosage , Levodopa/administration & dosage , Parkinson Disease/drug therapy , Animals , Swine , Humans , Antiparkinson Agents/administration & dosage , Antiparkinson Agents/pharmacology , Transdermal Patch , Skin/metabolism , Skin/drug effects , Drug Delivery Systems/methods , Fibroblasts/drug effects , Fibroblasts/metabolism , Skin Absorption/drug effects , Drug Combinations
14.
J Phys Chem B ; 128(16): 3885-3897, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38622775

ABSTRACT

Very few drugs have the necessary physicochemical properties to cross the skin's main permeability barrier, the stratum corneum (SC), in sufficient amounts. Propylene glycol (PG) is a chemical penetration enhancer that could be included in topical formulations in order to overcome the barrier properties of the skin and facilitate the transport of drugs across it. Experiments have demonstrated that PG increases the mobility and disorder of SC lipids and may extract cholesterol from the SC, but little is known about the molecular mechanisms of drug permeation enhancement by PG. In this work, we have performed molecular dynamics (MD) simulations to investigate the molecular-level effects of PG on the structure and properties of model SC lipid bilayers. The model bilayers were simulated in the presence of PG concentrations over the range of 0-100% w/w PG, using both an all-atom and a united atom force field. PG was found to localize in the hydrophilic headgroup regions at the bilayer interface, to occupy the lipid-water hydrogen-bonding sites, and to slightly increase lipid tail disorder in a concentration-dependent manner. We showed with MD simulation that PG enhances the permeation of small molecules such as water by interacting with the bilayer interface; the results of our study may be used to guide the design of formulations for transdermal drug delivery with enhanced skin permeation, as well as topical formulations and cosmetic products.


Subject(s)
Lipid Bilayers , Molecular Dynamics Simulation , Propylene Glycol , Skin , Propylene Glycol/chemistry , Lipid Bilayers/chemistry , Lipid Bilayers/metabolism , Skin/metabolism , Skin/chemistry , Hydrogen Bonding , Skin Absorption/drug effects
15.
AAPS PharmSciTech ; 25(5): 90, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38649513

ABSTRACT

To formulate and optimize Ozenoxacin nano-emulsion using Quality by Design (QbD) concept by means of Box-Behnken Design (BBD) and converting it to a gel to form Ozenoxacin nano-emulgel followed by physico-chemical, in-vitro, ex-vivo and in-vivo evaluation. This study demonstrates the application of QbD methodology for the development and optimization of an effective topical nanoemulgel formulation for the treatment of Impetigo focusing on the selection of appropriate excipients, optimization of formulation and process variables, and characterization of critical quality attributes. BBD was used to study the effect of "% of oil, % of Smix and homogenization speed" on critical quality attributes "globule size and % entrapment efficiency" for the optimisation of Ozenoxacin Nano-emulsion. Ozenoxacin loaded nano-emulgel was characterized for "description, identification, pH, specific gravity, amplitude sweep, viscosity, assay, organic impurities, antimicrobial effectiveness testing, in-vitro release testing, ex-vivo permeation testing, skin retention and in-vivo anti-bacterial activity". In-vitro release and ex-vivo permeation, skin retention and in-vivo anti-bacterial activity were found to be significantly (p < 0.01) higher for the nano-emulgel formulation compared to the innovator formulation (OZANEX™). Antimicrobial effectiveness testing was performed and found that even at 70% label claim of benzoic acid is effective to inhibit microbial growth in the drug product. The systematic application of QbD principles facilitated the successful development and optimization of a Ozenoxacin Nano-Emulsion. Optimised Ozenoxacin Nano-Emulgel can be considered as an effective alternative and found to be stable at least for 6 months at 40 °C / 75% RH and 30 °C / 75% RH.


Subject(s)
Anti-Bacterial Agents , Emulsions , Impetigo , Quinolones , Animals , Impetigo/drug therapy , Mice , Quinolones/administration & dosage , Quinolones/chemistry , Quinolones/pharmacology , Quinolones/pharmacokinetics , Anti-Bacterial Agents/administration & dosage , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Emulsions/chemistry , Nanoparticles/chemistry , Gels/chemistry , Chemistry, Pharmaceutical/methods , Disease Models, Animal , Aminopyridines/administration & dosage , Aminopyridines/pharmacology , Aminopyridines/chemistry , Aminopyridines/pharmacokinetics , Excipients/chemistry , Skin/drug effects , Skin/metabolism , Microbial Sensitivity Tests/methods , Skin Absorption/drug effects , Administration, Topical , Viscosity , Drug Compounding/methods
16.
Int J Pharm ; 656: 124029, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38527566

ABSTRACT

α-Bisabolol (αBIS), a plant-derived compound with anti-inflammatory properties, is potentially a therapeutic agent for Atopic dermatitis. However, its poor water solubility and photoinstability limit its topical application. Therefore, the present study, aimed to develop cationic polymeric nanocapsules of αBIS to improve its skin delivery, photostability, and therapeutic efficacy. The αBIS-loaded nanocapsules were prepared using the solvent displacement technique. A Box-Behnken (BB) design was employed to statistically optimize formulation variables and αBIS-loaded nanocapsules characterized by particle size, surface charge and encapsulation efficiency. The optimal formulation was selected, and the spherical shape of the nanocapsules was confirmed by scanning electron microscopy (SEM). Furthermore, hydrogel containing αBIS-loaded nanocapsules was prepared by thickening of nanocapsule suspension with Carbopol 934 and evaluated for rheology, in vitro drug release and skin permeation. Furthermore, a mice model of atopic dermatitis was used to evaluate the anti-inflammatory potential of the hydrogels. The optimal formulation displayed a spherical morphology under scanning electron microscopy (SEM) with an optimum particle size of 133.00 nm, polydispersity index (PDI) of 0.12, high EE% of 93 %, and improved optical stability of αBIS in the prepared nanocapsules compared to the free drug. The nano-based hydrogels demonstrated non-Newtonian pseudoplastic behavior and an increased αBIS in vitro release profile without causing skin irritation in rabbits. Drug retention within the dermis and epidermis layers significantly surpassed that of drug-free hydrogel. Moreover, in vivo histopathological studies and myeloperoxidase (MPO) enzyme activity, revealed that hydrogel containing bisabolol nanocapsules exhibited The best anti-inflammatory effect. The results showed that hydrogels containing bisabolol nanocapsules markedly alleviated dermatitis-related inflammation and reduced skin thickness in Balb/c mice. Our findings support nanocapsules as an effective drug delivery system to enhance αBIS stability, bioavailability, and therapeutic efficacy in AD treatment.


Subject(s)
Anti-Inflammatory Agents , Dermatitis, Atopic , Drug Liberation , Hydrogels , Mice, Inbred BALB C , Monocyclic Sesquiterpenes , Nanocapsules , Animals , Hydrogels/chemistry , Hydrogels/administration & dosage , Nanocapsules/chemistry , Dermatitis, Atopic/drug therapy , Monocyclic Sesquiterpenes/administration & dosage , Anti-Inflammatory Agents/administration & dosage , Anti-Inflammatory Agents/chemistry , Anti-Inflammatory Agents/pharmacology , Skin Absorption/drug effects , Particle Size , Disease Models, Animal , Mice , Administration, Cutaneous , Male , Skin/drug effects , Skin/metabolism , Skin/pathology , Sesquiterpenes/administration & dosage , Sesquiterpenes/chemistry , Sesquiterpenes/pharmacology , Sesquiterpenes/pharmacokinetics , Female
17.
Drug Dev Ind Pharm ; 50(5): 410-419, 2024 May.
Article in English | MEDLINE | ID: mdl-38497274

ABSTRACT

OBJECTIVES: To develop and evaluate a novel human stratum corneum (SC) mimetic phospholipid vesicle-based permeation assay (PVPASC) model for in vitro permeation studies. SIGNIFICANCE: Due to the increasing restrictions on the use of human and animal skins, artificial skin models have attracted substantial interest in pharmaceuticals and cosmetic industries. In this study, a modified PVPASC model containing both SC lipids and proteins was developed. METHODS: The PVPASC model was optimized by altering the lipid composition and adding keratin in the formulation of large liposomes. The barrier properties were monitored by measuring the electrical resistance (ER) and permeability of Rhodamine B (RB). The modified PVPASC model was characterized in terms of the surface topography, solvent influence and storage stability. The permeation studies of the active components in Compound Nanxing Zhitong Plaster (CNZP) were performed to examine the capability of PVPASC in the application of skin penetration. RESULTS: The ER and Papp values of RB obtained from the optimized PVPASC model indicated a similar barrier property to porcine ear skin. Scanning electron microscope analysis demonstrated a mimic 'brick-and-mortar' structure. The PVPASC model can be stored for three weeks at -20 °C, and withstand the presence of different receptor medium for 24 h. The permeation studies of the active components demonstrated a good correlation (r2 = 0.9136) of Papp values between the drugs' permeation through the PVPASC model and porcine ear skin. CONCLUSION: Keratin contained composite phospholipid vesicle-based permeation assay models have been proven to be potential skin tools in topical/transdermal permeation studies.


Subject(s)
Permeability , Phospholipids , Skin Absorption , Humans , Phospholipids/chemistry , Skin Absorption/drug effects , Skin Absorption/physiology , Swine , Permeability/drug effects , Animals , Liposomes , Administration, Cutaneous , Epidermis/metabolism , Epidermis/drug effects , Skin/metabolism , Skin/drug effects , Skin, Artificial , Rhodamines/pharmacokinetics , Rhodamines/chemistry , Rhodamines/administration & dosage
18.
Mol Pharm ; 21(5): 2298-2314, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38527915

ABSTRACT

Hypertrophic scars (HS) still remain an urgent challenge in the medical community. Traditional Chinese medicine (TCM) has unique advantages in the treatment of HS. However, due to the natural barrier of the skin, it is difficult for the natural active components of TCM to more effectively penetrate the skin and exert therapeutic effects. Therefore, the development of an efficient drug delivery system to facilitate enhanced transdermal absorption of TCM becomes imperative for its clinical application. In this study, we designed a compound Salvia miltiorrhiza-Blumea balsamifera nanoemulsion gel (CSB-NEG) and investigated its therapeutic effects on rabbit HS models. The prescription of CSB-NEG was optimized by single-factor, pseudoternary phase diagram, and central composite design experiments. The results showed that the average particle size and PDI of the optimized CSB-NE were 46.0 ± 0.2 nm and 0.222 ± 0.004, respectively, and the encapsulation efficiency of total phenolic acid was 93.37 ± 2.56%. CSB-NEG demonstrated excellent stability and skin permeation in vitro and displayed a significantly enhanced ability to inhibit scar formation compared to the CSB physical mixture in vivo. After 3 weeks of CSB-NEG treatment, the scar appeared to be flat, pink, and flexible. Furthermore, this treatment also resulted in a decrease in the levels of the collagen I/III ratio and TGF-ß1 and Smad2 proteins while simultaneously promoting the growth and remodeling of microvessels. These findings suggest that CSB-NEG has the potential to effectively address the barrier properties of the skin and provide therapeutic benefits for HS, offering a new perspective for the prevention and treatment of HS.


Subject(s)
Cicatrix, Hypertrophic , Emulsions , Gels , Salvia miltiorrhiza , Skin Absorption , Rabbits , Animals , Cicatrix, Hypertrophic/drug therapy , Salvia miltiorrhiza/chemistry , Skin Absorption/drug effects , Emulsions/chemistry , Drugs, Chinese Herbal/chemistry , Drugs, Chinese Herbal/pharmacology , Disease Models, Animal , Skin/drug effects , Skin/pathology , Skin/metabolism , Administration, Cutaneous , Particle Size , Male , Nanoparticles/chemistry , Medicine, Chinese Traditional/methods , Ear/pathology , Drug Delivery Systems/methods
19.
J Cosmet Dermatol ; 23(6): 2240-2248, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38375987

ABSTRACT

BACKGROUND: To increase skin permeability, various transdermal delivery techniques have been developed. However, due to the stratum corneum as a skin barrier, transdermal delivery remains limited. AIMS: In this study, we evaluated efficacy and safety of arc-poration as a novel technique disrupting the stratum corneum. RESULTS: Optical images and histological analysis using reconstituted human skin and porcine skin showed that the treatment of arc-poration created micropores with an average diameter of approximately 100 µm only to the depth of the stratum corneum, but not viable epidermis. In addition, the Franz diffusion cell experiment using reconstituted human skin showed a remarkable increase in permeability following pretreatment with arc-poration. Clinical results clearly demonstrated the enhancement of the skin-improving effect of cosmetics by pretreatment of arc-poration in terms of gloss, hydration, flakiness, texture, tone, tone evenness, and pigmentation of skin, without causing abnormal skin responses. The concentration of ozone and nitrogen oxides generated by arc-poration was below the permissible value for the human body. CONCLUSIONS: Arc-poration can increase skin permeability by creating stratum corneum-specific micropores, which can enhance the skin-improving effect of cosmetics without adverse responses.


Subject(s)
Administration, Cutaneous , Permeability , Skin Absorption , Humans , Swine , Skin Absorption/drug effects , Animals , Adult , Female , Skin/metabolism , Skin/drug effects , Epidermis/metabolism , Epidermis/drug effects , Cosmetics/administration & dosage , Cosmetics/pharmacokinetics , Cosmetics/chemistry , Young Adult
20.
J Cosmet Dermatol ; 22 Suppl 1: 15-27, 2023 Mar.
Article in English | MEDLINE | ID: mdl-36988469

ABSTRACT

BACKGROUND: Exosome research continues to flourish. Subsequent knowledge surrounding indications, dose-response, safety, efficacy, and the ability to combine exosome treatment as a "skin primer"-for biostimulation modalities such as calcium hydroxylapatite (CaHA), platelet-rich plasma (PRP), and platelet-rich fibrin matrix (PRFM) is growing rapidly. The objective of this study was to develop safe, reproducible methods of improving topical exosome absorption to enhance the quality of skin either by themselves, or in combination with injectable CaHA. METHODS: Under IRB Approval (International Cell Surgical Society: ICSS-2022-007), 40 patients were enrolled in this study. Twenty patients underwent facial biostimulatory dermal infusion alone, to determine if this method allowed adequate exosome absorption. Five patients underwent facial biostimulatory infusion followed immediately by Dilute CaHA injection (1:1 dilution) to the face. Five patients underwent exosome biostimulatory dermal infusion followed immediately by hyperdilute CaHA (dilution 1:4) injection to the neck. Five patients underwent Facial Dilute CaHA injection (1:1 dilution) alone, without dermal infusion. Five patients underwent neck hyperdilute CaHA injection (1:4 dilution) alone, without dermal infusion. All patients had pretreatment Quantificare 3-D photo-documentation and skin analysis (Quantificare, France). In all patients, the skin was first cleansed with a gentle glycolic acid facial wash (Gregory MD). To induce a "homing inflammatory environment" for the exosomes, sea salt exfoliation was performed (SaltFacial®, SaltMed, Cardiff, CA). A nitric oxide-generating serum (N101 Pneuma Nitric Oxide, Austin, TX) was then applied to act as an enhanced vehicle for absorption. A 3 MHz ultrasound (SaltFacial®, SaltMed, Cardiff, CA) was then utilized to further deepen the absorption of the nitric oxide serum. A topical emulsion containing equal volumes (1.0 cc containing 1 million) of exosomes (Kimera Labs, Miramar, FL), 25 units of botulinum toxin (Xeomin, Merz Aesthetics, Raleigh, NC) and hyaluronic acid (Belatero, Merz Aesthetics, Raleigh, NC) was mixed via back-and-forth propulsion in a 3-cc syringe. When adequately mixed, the emulsion was then applied to the treatment areas. The cavitating ultrasound was then used to aid in the absorption of the emulsion. The patients were then treated with high-intensity LED therapy (SaltFacial®, SaltMed, Cardiff, CA), utilizing the collagen restoration preset program of combination red (660 nm) near-infrared (930 nm) wavelength for 20 min. Post-treatment Quantificare analysis was performed at 15 and 30 days after treatment. RESULTS: Without exception, all dermal infusion alone and CaHA injection alone patients showed an improvement in the tone, quality, and texture of their skin. Quantificare results showed consistent improvement in wrinkles, pores, skin evenness, improved vascularity, and a reduction in oiliness and unwanted pigment. When employed as a skin primer prior to injections (CaHA), enhanced and more rapid results were seen. CONCLUSIONS: Biostimulatory dermal infusion can be achieved utilizing topical placental mesenchymal stem cell-derived exosomes. These exosomes can be used alone, or mixed with ancillary ingredients such as botulinum toxin, hyaluronic acid dermal filler, and CaHA to customize and personalize treatments based upon individual patient needs. Topical absorption is enhanced with sea salt exfoliation, a topical nitric oxide-generating serum, and 3 MHz cavitating ultrasound. Post-absorption activity is enhanced with high-intensity LED treatment. The addition of CaHA injections after the topical exosome "priming of the skin" yielded enhanced skin quality faster than exosomes or CaHA alone.


Subject(s)
Cosmetic Techniques , Dermatologic Agents , Durapatite , Exosomes , Skin Aging , Humans , Botulinum Toxins/administration & dosage , Durapatite/administration & dosage , Emulsions/administration & dosage , Exosomes/physiology , Hyaluronic Acid/administration & dosage , Nitric Oxide/administration & dosage , Placenta/cytology , Skin Aging/drug effects , Skin Aging/physiology , Infusions, Subcutaneous , Administration, Topical , Regeneration/drug effects , Regeneration/physiology , Skin/drug effects , Skin Physiological Phenomena/drug effects , Face , Neck , Solutions/administration & dosage , Skin Care/methods , Dermatologic Agents/administration & dosage , Photography , Cosmetics/administration & dosage , Skin Absorption/drug effects , Pharmaceutical Vehicles/administration & dosage , Ultrasonic Therapy , Low-Level Light Therapy/instrumentation , Low-Level Light Therapy/methods , Salts/administration & dosage , Mesenchymal Stem Cells/physiology , Combined Modality Therapy
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