Search PubMed⌕ Search

Biomedical subjects

B W Barry

Publications and source records attributed to B W Barry.

At least 37 records · Page 2Linked to original sources

The 'Iceman': molecular structure of 5200-year-old skin characterised by Raman spectroscopy and electron microscopy.

The molecular state of about 5200-year-old skin from the so-called 'Iceman' (Similaun man or Otzi) has been characterised using Fourier transform Raman spectroscopy, and has been compared with that of contemporary man. Contemporary skin was also freeze-dried (to mimic the conditions under which the ancient skin was preserved) and its molecular structure was compared with that of Iceman skin. The results showed that the proteinaceous moiety of the ancient skin had degraded considerably and, although olefinic bonds had probably oxidised, the lipoidal component was largely unaltered. Electron microscopical comparisons of Iceman and contemporary skin showed that the gross structure of Iceman skin had survived essentially intact for five millennia.

Animals↗

Terpene penetration enhancers in propylene glycol/water co-solvent systems: effectiveness and mechanism of action.

The effects of propylene glycol/water co-solvent systems and terpene penetration enhancers (1,8-cineole, menthone, (+)-limonene and nerolidol) on the absorption rate of the model hydrophilic permeant, 5-fluorouracil, were investigated using excised human skin. Similar fluxes for 5-fluorouracil were obtained from saturated enhancer-free co-solvent systems. Co-application of each terpene with the drug, both at saturation, in propylene glycol co-solvent systems increased drug flux significantly. Terpene activity depended on the propylene glycol content in the vehicles. Maximum fluxes were obtained from formulations containing the terpenes in 80% propylene glycol systems (highest concentration used), which when normalized to the flux from the pure vehicles yielded enhancement ratios of about 24, 21, 4 and 18, with 1,8-cineole, menthone, (+)-limonene and nerolidol, respectively. Combining the permeation studies with differential scanning calorimetry (DSC) and partitioning experiments revealed that increased lipid disruption is probably an important mechanism involved in the enhancing ability of formulations containing 1,8-cineole, menthone and nerolidol. This was clearly demonstrated by applying thermodynamic principles to interpret DSC results. This approach has indicated that these terpenes are probably able to disrupt stratum corneum lipids at physiological temperature as manifested by reductions in the entropy changes associated with the lipid-related transitions, particularly T2, the first major lipid transition. Additionally, increased drug partitioning contributed to the effect of the high propylene glycol content formulations. (+)-Limonene, as interpreted from DSC results, produced a freezing point-depression effect on stratum corneum lipids, suggesting little interaction with lipids at skin temperature; its small enhancement effect may involve phase separation of the oil in stratum corneum lipids. Terpenes in co-solvent systems such as propylene glycol/water at appropriate propylene glycol content might thus be useful vehicles for the delivery of drugs from topical formulations.

Antineoplastic Agents↗

Comparison of Fourier transform Raman spectra of mammalian and reptilian skin.

Human skin offers potential advantages for the administration of therapeutic agents for both local and systemic use. However, in studies of transdermal drug delivery, problems with the supply, storage, and use of human tissue have encouraged workers to seek alternative animal materials to model drug diffusion across human skin. We obtained Fourier transform Raman spectra from mammalian (human and pig) and reptilian (snake) skins, and considered structural dissimilarities in the light of differences observed in the diffusion of drugs across the tissues.

Animals↗

Wide-angle X-ray diffraction of human stratum corneum: effects of hydration and terpene enhancer treatment.

Wide-angle X-ray-diffraction experiments were used to investigate the molecular organization of barrier components of human stratum corneum. Diffraction lines related to the side-by-side lipid packing arrangements in the intercellular bilayers were identified as were patterns arising from secondary protein structures in intracellular keratin. Reflections were also identified which may be produced by proteins in the corneocyte envelopes. The effects of hydration on stratum corneum structure were monitored using 0, 20-40, 40-60, 60-80 and approximately 300% hydrated samples. The packing arrangements in the intercellular lipid bilayers remained the same over the entire hydration range, as did keratin structures. A new diffraction ring, attributable to liquid water, was produced by 300% hydrated samples with a repeat spacing of 0.35 to 0.30-0.29 nm. The effects of three terpene enhancers, (+)-limonene, nerolidol and 1,8-cineole, on stratum corneum structure were monitored. Treatment with each of the terpenes produced additional reflections which were attributed to the presence of the respective liquid enhancers within the stratum corneum. (+)-Limonene produced an additional reflection at 0.503-0.489 nm, nerolidol, an additional reflection at 0.486-0.471 nm and 1,8-cineole, an intense reflection at 0.583-0.578 nm. Reflections characteristic of gel-phase lipids and crystalline lipids also remained after all terpene treatments. These results provide no clear evidence of lipid bilayer disruption by the terpenes and suggest that areas of liquid terpene exist within the stratum corneum. The mechanisms underlying propylene glycol synergy with terpene enhancers were investigated. Treatment of stratum corneum with each terpene mixed with propylene glycol gave rise to two additional reflections. One reflection, always positioned at 0.452-0.448 nm, had been observed in control studies following propylene glycol treatment and may have been associated with bilayer structures disrupted by propylene glycol or altered keratin structures. The second reflection was developed by the respective terpene enhancer. For example, treatment with a 1,8-cineole/propylene glycol mixture produced reflections at 0.457-0.451 nm (propylene glycol-disrupted lipids or altered keratin) and 0.591-0.578 nm (liquid 1,8-cineole). Since the reflection at 0.452-0.448 nm was unaffected by co-application of propylene glycol with terpene enhancers, this study offers no evidence to support the theory that propylene glycol synergy with the terpenes occurs through enhanced lipid disruption.

Adult↗

Sesquiterpene components of volatile oils as skin penetration enhancers for the hydrophilic permeant 5-fluorouracil.

Twelve sesquiterpene compounds, derived from natural volatile oils, were investigated as putative skin penetration enhancers for human skin. Pretreatment of epidermal membranes with sesquiterpene oils, or solid sesquiterpenes saturated in dimethyl isosorbide, increased the rate of absorption of the model hydrophilic permeant, 5-fluorouracil (5-FU). Enhancers with polar functional groups were generally more potent than pure hydrocarbons. Furthermore, enhancers with the least bunched structures were the most active. The largest effect was observed following pretreatment with nerolidol, which increased pseudo-steady-state 5-FU flux over 20-fold. Molecular modelling suggested that terpenes with structures suitable for alignment within lipid lamellae were the most potent enhancers. Sesquiterpene enhancers had long durations of action implying that they did not wash out of the skin easily. This study attempted to improve enhancer clearance by replacing the aqueous donor and receptor phases by ethanol:water (1:1) solutions. Ethanol increased the permeability coefficient for 5-FU 13-fold, demonstrating that, in aqueous solution, it is a moderately potent penetration enhancer. Sesquiterpene and ethanol enhancement effects were approximately additive. Sesquiterpene effects were almost fully maintained for at least 4.5 days following pretreatment, illustrating poor reversibility. Stratum corneum/water drug partitioning studies suggested that an important mechanism of action of the enhancers was to increase the apparent drug diffusivity in the stratum corneum. Increases in drug partitioning into the entire stratum corneum following enhancer pretreatment were relatively small. Diffusivity increases were directly related to overall rises in permeability. This study has shown that sesquiterpene compounds, which are of low toxicity and cutaneous irritancy, can promote 5-FU absorption across human skin. Sesquiterpene compounds, therefore, show promise as clinically-acceptable skin penetration enhancers.

Aged↗

A critical comparison of some Raman spectroscopic techniques for studies of human stratum corneum.

This study evaluates a variety of techniques and sampling conditions for Raman spectroscopic investigations of human stratum corneum. Using a Fourier-transform Raman system and samples of stratum corneum in vitro, we demonstrated minimal inter- and intracadaver variations in molecular vibrations. We have also shown Raman spectroscopy to be relatively insensitive to the hydration state of human stratum corneum, indicating that the technique should be valuable for monitoring the transdermal delivery of drugs from aqueous solutions. The stability of human stratum corneum to near-infrared laser excitation was verified by spectral collection for approximately 1 hr. We have also compared FT-Raman spectra from human stratum corneum in vitro and in vivo. Of the different types of Raman instruments used in this study (visible-light excitation microprobe, visible-light excitation macroscopic sampling, and Fourier-transform Raman), the FT-Raman system provided good-quality spectra with high sample throughput, but systems using visible-light excitation should provide unique information for use in specialist applications.

Epidermis↗

Skin absorption enhancers.

When we try to maximize drug flux through the skin, we usually meet major difficulties because of the impervious nature of the stratum corneum. A popular solution incorporates penetration enhancers into transdermal products. Such materials ideally possess the sole property of reversibly reducing the barrier resistance of the horny layer, allowing the drug to reach the living tissues at a greater rate. This article considers examples of accelerant action that support a general concept explaining enhancer activity in human skin. The core of the proposal is that enhancers usually work by one or more of three main mechanisms: alteration of the lipid or protein domains of the stratum corneum or increase in tissue partitioning of a drug, a coenhancer, water, or any combination of these three chemicals. We may usefully refer to the overall hypothesis as the lipid-protein-partitioning (LPP) concept.

Administration, Cutaneous↗

Terpenes and the lipid-protein-partitioning theory of skin penetration enhancement.

A series of terpenes has been assessed as skin penetration enhancers towards the model polar penetrant 5-fluorouracil (5-FU). Cyclic terpenes were selected from the chemical classes of hydrocarbons (e.g., alpha-pinene), alcohols (e.g., alpha-terpineol), ketones (e.g., carvone), and oxides (e.g., 1.8-cineole, ascaridole). Permeation experiments were performed on excised human epidermal membranes and the terpenes varied in their activities; alpha-pinene only doubled the permeability coefficient of aqueous 5-FU, whereas 1.8-cineole caused a near 95-fold increase. Essential oils, e.g., chenopodium (70% ascaridole), were less effective than the corresponding isolated terpenes, 5-FU is less soluble in the terpenes than in water, and the terpenes did not exert their action by increasing partitioning of the drug into the membranes as illustrated by stratum corneum:water partitioning studies. The penetration enhancers increased drug diffusivity through the membranes, an effect which correlated empirically with the enhancer activities. The principal mode of action of these accelerants may be described by the lipid-protein-partitioning theory: the terpenes interacted with intercellular stratum corneum lipids to increase diffusivity, and the accelerant effects were not due to partitioning phenomena. Keratin interaction was assumed negligible.

Adult↗

Shed snake skin and hairless mouse skin as model membranes for human skin during permeation studies.

Difficulties in obtaining and using human skin have tempted many workers to employ animal membranes for percutaneous absorption studies. We have investigated the suitability of two species of snake (Elaphe obsoleta, Python molurus) for this purpose and compared our in vitro experimental results for human skin and for hairless mouse, a currently popular model. The effects of long-term hydration on the membranes were investigated over 8 d using tritiated water as a model permeant. The initial permeability coefficients of all the membranes were similar (0.74-2.2 X 10(-3) cm 2h-1). Although the human and squamate skins did not change significantly over the test period, the permeability of hairless mouse skin increased 37 times. The actions of typical enhancers on the permeabilities of the membranes to a model penetrant 5-fluorouracil (5-FU) were tested using 3% Azone in Tween 20/saline, propylene glycol (PG), 2% Azone in PG, and 5% oleic acid in PG. While the data from snake membranes tended to underestimate the enhancer effects, those from hairless mouse skin greatly overestimated the changes. None of the membranes was a completely reliable model for assessing human percutaneous absorption as modified by accelerants. Pretreatment with acetone did not significantly change the permeability of human or squamate skins to 5-FU, although that of hairless mouse increased twentyfold. An overall conclusion is that, wherever possible, human skin should be used in absorption studies and not hairless mouse or snake skin; otherwise, misleading results may be obtained.

Acetone↗

Limitations of hairless mouse skin as a model for in vitro permeation studies through human skin: hydration damage.

Hairless mouse skin currently provides a popular model membrane for studies in human percutaneous absorption. Although some similarities between the two skin types have been demonstrated, the effects of prolonged hydration on hairless mouse skin have not previously been rigorously examined. We have measured in vitro the effects of hydration at 31 degrees C on the permeabilities of hairless mouse skin and human abdominal and scalp skin to a model polar compound (water) and a lipid material (hexanol). The permeability of hairless mouse skin rose dramatically, especially to water (fiftyfold increase), whereas the human skin was more stable. We also compared the effects of stripping the stratum corneum with the effects of 8-d hydration for hairless mouse and human abdominal skin. Hydration of hairless mouse skin was as effective as tape-stripping in eliminating the stratum corneum barrier, whereas stripping human skin was far more damaging than hydration, suggesting that prolonged hydration mechanically disrupted mouse skin but not human skin. Histological examination of fresh and hydrated tissues confirmed this suggestion. We therefore recommend that hairless mouse skin is not used as a model for human tissue during in vitro permeation studies under conditions of long-term hydration, i.e., greater than three days.

Animals↗

Hairless mouse skin is limited as a model for assessing the effects of penetration enhancers in human skin.

The permeability coefficient of 5-fluorouracil through human abdominal and hairless mouse skins was used as an indicator of the relative effects of 12-h pretreatment of the skins with either penetration-enhancer mixtures [including laurocapram (Azone), decylmethylsulfoxide, oleic acid, and propylene glycol] or saline (control). After treatment with saline, fluxes of 5-fluorouracil through the two skin types were similar, but the mouse skin showed exaggerated responses to all the penetration-enhancer formulations. There was no consistent relationship between enchancer effects on the two skin types, and we conclude that the hairless mouse model should not be used to predict the effects of penetration enhancers in human skin. After treatment with saline, hairless mouse skin sharply increased in permeability after approximately 50 h hydration, suggesting that the stratum corneum had started to disrupt, whereas the flux through human skin remained unchanged.

Animals↗

Action of penetration enhancers on human skin as assessed by the permeation of model drugs 5-fluorouracil and estradiol. I. Infinite dose technique.

We have conducted permeation studies to assess the effectiveness of accelerants Azone, oleic acid (OA), decylmethyl sulfoxide (DCMS) and propylene glycol (PG) in promoting the absorption through human skin of model drugs 5-fluorouracil (5FU) and estradiol (ES). Drug permeation from saturated aqueous solutions was monitored before and after accelerant treatment (applied in aqueous and PG vehicles). With ES, the study was repeated with 50% ethanol/water as donor and receptor phases instead of water. Two percent Azone in PG promoted 5FU absorption by almost 100-fold, but 3% Azone with 0.1% Tween 20 in normal saline demonstrated only an eightfold effect. Five percent OA in PG was moderately successful, but 4% aqueous DCMS enhanced 5FU permeation 35-fold initially, but rapidly fell to fourfold. PG itself was ineffective. The accelerants were much less effective in promoting ES absorption; only 5% OA in PG enhanced steroid permeation by more than tenfold, but this fell with time to threefold due to washout of accelerant (ethanol/water system). The experimental conditions utilized fully hydrated stratum corneum with permeants in saturated solutions; under these already optimized conditions for permeation, accelerants were only marginally effective in enhancing the delivery of the relatively non-polar drug ES. Polar drug delivery, as exemplified by 5FU, could still be increased markedly. Azone was considerably more effective when used in conjunction with PG compared to an aqueous vehicle; thus PG itself may play an accelerating role. The 5FU results indicated that Azone and OA remained in the tissue for a long period, but DCMS was rapidly removed by washout.

Administration, Cutaneous↗

Effect of penetration enhancers on the permeation of mannitol, hydrocortisone and progesterone through human skin.

Mannitol, hydrocortisone and progesterone were selected as model penetrants to assess the mode of action of eight potential penetration enhancers in human skin. Their partition coefficients, octanol: water and stratum corneum: water were measured and correlated with their postulated routes of penetration through human skin. The results suggest that mannitol penetrated via a polar route, hydrocortisone by a mainly lipid route and progesterone via a lipid pathway but its penetration rate was probably affected by aqueous layers. From permeation studies through cadaver skin in which an in-vivo mimic method was used, it was concluded that the penetration enhancers fell into three main categories: solvents which enhanced permeation of polar and non-polar compounds e.g. 2-pyrrolidone, N-methylpyrrolidone, N-methylformamide and propylene glycol plus Azone; enhancers which preferentially affected the polar route e.g. propylene glycol plus decylmethylsulphoxide, and accelerants which mainly modified the non-polar route e.g. propylene glycol plus oleic acid, propylene glycol alone and, to a limited extent, water.

Acetone↗

Absorption through human skin of ibuprofen and flurbiprofen; effect of dose variation, deposited drug films, occlusion and the penetration enhancer N-methyl-2-pyrrolidone.

The penetration of ibuprofen and flurbiprofen, non-steroidal anti-inflammatory agents, was investigated from drug films deposited by acetone evaporation on cadaver skin in an open cell 'in-vivo mimic' design. Increased dosage did not produce a proportional increase in the permeation and maximizing the skin-drug contact did not increase penetration: both factors indicate that absorption from deposited drug films was dissolution rate-limited. Occlusion of the skin did not increase the dissolution rate of the deposited drug film, but did elevate the penetration of drug already present within the skin at the time of occlusion. The diffusion coefficients for both drugs were calculated by two methods, yielding 1.8 +/- 1.3 X 10(-11) cm2 s-1 and 1.0 +/- 0.56 X 10(-11) cm2 s-1 for ibuprofen and 1.9 +/- 0.59 X 10(-11) cm2 s-1 and 0.77 +/- 0.23 X 10(-11) cm2 s-1 for flurbiprofen. Increasing the acetone-skin contact time from 2 min to 2 h did not significantly alter the permeability of the skin. Absorption of flurbiprofen was similar from 10 and 100% saturated aqueous solutions, suggesting that the skin has a limited capacity for flurbiprofen transport beyond which further increase in drug penetration may be difficult. N-Methyl-2-pyrrolidone enhanced the penetration flux of ibuprofen sixteenfold and flurbiprofen, over threefold. The 'in-vivo mimic' design for permeation experiments has thus proved to be useful for evaluating the kinetics of topical therapy and the mechanism of action of potential penetration enhancers.

Acetone↗

Photon correlation spectroscopy of surface active cationic drugs.

Photon correlation spectroscopy (PCS) has been used to examine the aggregation in aqueous NaCl solution of a series of antidepressant and antihistamine drugs (hydrochlorides of imipramine, clomipramine, amitriptyline, butriptyline, protriptyline, doxepin, dothiepin, iprindole, diphenhydramine, bromodiphenhydramine, orphenadrine) propranolol hydrochloride and propantheline bromide. Critical micelle concentrations were measured by surface tension and PCS. Micellar sizes were investigated as functions of drug structure and drug and NaCl concentration. Generally, antidepressants formed the largest micelles. We propose that the antidepressants aggregate in a similar fashion to the phenothiazines by stacking with size increasing by addition of single monomers to stacks and by addition of more stacks to the aggregate.

Adrenergic beta-Antagonists↗

Correlation of thermodynamic activity and vapour diffusion through human skin for the model compound, benzyl alcohol.

This work tested the potential for predicting percutaneous absorption rates of a volatile penetrant from any vehicle by using thermodynamic activity measurements. Benzyl alcohol was chosen as a non-ideal, hydrogen bonding, volatile model penetrant. A manual headspace gas chromatography method measured benzyl alcohol vapour concentrations and thermodynamic activities above binary mixtures with vehicles: butanol, butyl acetate, isopropyl myristate, isophorone, toluene and propylene carbonate. Benzyl alcohol vapour diffusion through human, abdominal skin was also measured in-vitro for these mixtures. The benzyl alcohol vapour flux was linearly related to the activity, suggesting that percutaneous absorption is controlled by thermodynamic activity when the vehicle has no effect on the stratum corneum barrier.

Benzyl Alcohol↗