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Biomedical subjects

D Ganderton

Publications and source records attributed to D Ganderton.

At least 19 recordsLinked to original sources

Modulite: a simple solution to a difficult problem.

The development of HFA-based pMDIs has proved difficult due to differences in the physico-chemical properties of CFC and HFA propellants. However, the development of solution formulations instead of suspensions has provided a way to formulate products whose cloud characteristics can be modulated in a controlled manner by permitting different formulation and device hardware variables. The new approach has proved successful in formulating several different drugs including steroids and has now been applied to developing a formoterol Modulite solution formulation characterized by good chemical stability, delivery performance, and clinical results.

Aerosol Propellants↗

The formulation and evaluation of a CFC-free budesonide pressurised metered dose inhaler.

Although dry powder inhalers are well established for the delivery of corticosteroids, the pressurised metered dose inhaler remains the preferred and most cost effective presentation. To design an HFA solution formulation which matched marketed CFC products (Pulmicort and Desonac DA) two elements of the Chiesi Modulite system, the addition of a non-volatile component and the actuator orifice diameter, were varied. These variables, which were shown by in vitro tests to influence the fine particle dose and its mean particle size in different ways, could be permuted to give an aerosol cloud with size characteristics very close to the comparator products. The likelihood that this would confer clinical equivalence is reinforced by a pharmacokinetic analysis which showed that the chosen HFA solution formula gave similar systemic absorption from the lung as Pulmicort. The equivalence in aerosol characteristics was sustained when the pressurised metered dose inhalers (pMDIs) were used with spacers. The Chiesi Jet and the AstraZeneca Nebuhaler, when used with their respective pMDIs, reduced likely oropharyngeal deposition to the same extent and gave a similar increase in the fine particle dose.

Administration, Inhalation↗

Modulite: a means of designing the aerosols generated by pressurized metered dose inhalers.

Although popular, the pressurized metered dose inhaler generates coarse, fast moving clouds so that the fraction reaching the lung is small. These shortcomings can be redressed by Modulite which permutes the following variables: the non-volatile components of a solution formula, the actuator orifice geometry, the volume of the metered solution and the vapour pressure of the propellants. This permits the design of aerosols with chosen particle size and plume speed. This facilitates co-ordination of dose generation with inspiration, reduces oropharyngeal deposition and provides a mechanism for targeting drug delivery to different parts of the lung. These principles are exemplified by designing an HFA-propelled beclometasone dipropionate product which closely matches existing products which use chlorofluorocarbons.

Aerosol Propellants↗

Modulation of aerosol clouds produced by pressurised inhalation aerosols.

The inclusion of non-volatile components such as glycerol or polyethylene glycol in hydrofluoralkane (HFA) solution formulations for pressurised metered dose inhalers (pMDIs), greatly increases the particle size of the aerosol. Cloud characteristics can be further modulated by permuting this factor with the choice of propellant and the dimensions of the actuator, to give a chosen fine particle dose and particle diameter. This principle has been used to design solutions which closely match the performance of chlorofluorocarbon based suspension formulations containing beclomethasone dipropionate, budesonide and ipratropium bromide as assessed for pharmaceutical equivalence using the Andersen Cascade impactor.

Aerosols↗

Assessing lung deposition of inhaled medications. Consensus statement from a workshop of the British Association for Lung Research, held at the Institute of Biology, London, U.K. on 17 April 1998.

In vitro measurements of aerosol fine particle fraction (FPF) using particle-sizing apparatus (e.g. the twin impinger, multi-stage liquid impingers, cascade impactors) have a key role to play in the development of new pharmaceutical products and in quality control. However, use of in vitro methodology to attempt to predict lung deposition in vivo is of limited value due, in part, to the inability of current apparatus to mimic upper and lower airway anatomy satisfactorily. Estimates of FPF based on cut-off points ranging from 5-7 microns generally overestimate lung deposition as measured in vivo by gamma scintigraphy. We recommend that: 1. multistage apparatus (minimum five stages) be used to characterize particle size distribution adequately, over the range 0.5-5.0 microns; 2. where possible, measurements should be made at a range of rates and profiles of flow reflecting those likely to be generated using the inhalation device in clinical practice (including use by young and elderly patients with varying degrees of airflow obstruction); 3. encouragement should be given to the further development, standardization, and validation of apparatus with a 'throat' which more closely resembles the human oropharynx and larynx. Pharmacokinetic methods can give a good estimate of total, but not regional, lung deposition, with drugs which are either not absorbed via the gastrointestinal tract, or whose absorption can be blocked by co-administration of charcoal, thus avoiding confounding by absorption of drug substance deposited in the oropharynx and subsequently swallowed. Techniques which rely on evaluation of a timed fractional output of drug substance in the urine are susceptible to the inherent variability of rate of absorption across the respiratory epithelium. We recommend that consideration should be given to the further refinement and validation of PK methods which would more clearly identify the fractional dose deposited in the lung. Lung-imaging methodology, e.g. gamma scintigraphy, employing formulations radiolabelled with gamma-ray-emitting radionuclides such as 99mTc, can measure total lung deposition and oropharyngeal deposition, provided that the radiolabelling process is appropriately validated and suitable corrections are made for attenuation of gamma rays by body tissues. An estimate of regional lung deposition can be made by drawing 'regions of interest' on the scintigraphic image; the precision of this measure is limited by the two-dimensional (2-D) nature of most images which mean that there is an overlay of structures of interest (alveoli, small and large airways), which is most marked centrally. Three-dimensional (3-D) imaging techniques (e.g. single photon emission computed tomography, SPECT, and positron emission tomography, PET) have the potential to give more detailed data on regional lung deposition, but are currently more expensive, employ higher radiation doses, and are less well validated than 2-D (planar) imaging. We consider that, of the available imaging modalities, planar gamma scintigraphy represents current best practice for the assessment of lung deposition from inhaler devices where regional differences may be important. The methodology should be optimized by the adoption of generally accepted standards for radiolabelling, imaging, attenuation correction, and interpretation. It is important that deposition in all sites (device, oropharynx, lungs, stomach) should be quantified. Consideration should be given to refining the concept of regions of interest to coincide more closely with anatomical lung structures. Statistical methods to compare the size distributions of drug and radiolabel in validation experiments should be developed. In the longer term it is envisaged that three-dimensional imaging may play a more important part in evaluating lung deposition; an optimal three-dimensional anatomical model of lung zones of interest needs to be developed.

Administration, Inhalation↗

Targeted delivery of inhaled drugs: current challenges and future goals.

Past success of topical delivery to the lung stems more from the therapeutic nature of drugs used rather than the delivery device. Both the pressurized metered dose inhaler (pMDI) and the dry powder inhaler (DPI) are inefficient, placing a small fraction of the dose at the site of action. Most of the drug deposits in the mouth and is swallowed. Modifications to the pMDI may redress this by improving the coordination of dose generation and inspiration, or by the use of spacers. The DPI can be improved by the use of special excipients. Nevertheless, fundamental weaknesses that limit improvements in targeting drugs to the lung remain. Ideally, a stationary or slow-moving cloud of a selected particle size distribution should be generated at the source by the device. The rate of cloud generation should be such that a patient can accommodate it during a slow inspiration. Many new devices are in development, harnessing one or more of these principles. Respimat (Boehringer Ingelheim, Ingelheim am Rhein, Germany), a soft mist inhaler, shows particular promise. It generates a fine slow-moving cloud over a period exceeding 1 second and incorporates many design features to win patient acceptance.

Administration, Inhalation↗

The effect of flow rate on drug delivery from the Pulvinal, a high-resistance dry powder inhaler.

Dry powder inhalers vary widely in their resistance to flow. When the resistance is high, airway resistance can be neglected and inspiration rates will be determined primarily by the device. Provided that the patient can generate adequate flow rates to aerosolize the dose, variability of emitted dose and fine particle dose should be reduced. For in vitro simulation, these concepts are explored using a Pulvinal device. In conditions likely to be encountered in patient use, the emitted dose showed little dependence (80-102 micrograms) as the flow rate increased from 28 to 63 L/min. The fine particle dose was more sensitive, increasing by a factor of 1.6 from 22 to 35 micrograms. These variations are less than those observed with the Turbohaler, a device of intermediate resistance and very much lower than those observed with the Rotahaler, a low-resistance device.

Bronchodilator Agents↗

General factors influencing drug delivery to the lung.

The first devices to be developed for the delivery of bronchodilators and corticosteroids for the treatment of asthma were the pressurised metered dose inhalers (pMDIs). While pMDIs are viewed as patient friendly, they are associated with some serious disadvantages, such as considerable oropharyngeal deposition (due to the speed of delivery of the dose) and poor patient co-ordination of inhalation and activation. This has resulted in the development of alternative systems, such as the dry powder inhaler (DPI). However, DPIs also have problems, as there are difficulties in handling, measuring and metering fine particles. New devices, such as the Easi-breathe and Diskus inhalers, are now being introduced to overcome some of these problems. The ideal device is one that will produce a large proportion of respirable particles in the emitted dose. It must also deliver precise and uniform doses of drug to the patient. Further innovations are required to achieve these goals.

Administration, Inhalation↗

A clinically relevant modification to existing inhaler therapy.

A modified formulation of inhaled salbutamol and a new inhaler device were studied in a group of 11 moderate-to-severe asthmatic patients. Changes in airway calibre (FEV1, Vmax30) were measured before and after inhalation of the new formulation, and compared with changes following inhalation of conventional salbutamol. A standard Rotahaler was used as a reference for the new inhaler. The study was conducted as a two-part randomized, double-blind cross-over trial. We found a significantly greater bronchodilatation of the larger airways using the modified drug in the Rotahaler. The new inhaler did not show any superiority over the Rotahaler, contrary to expectations from in vitro work. A slightly shorter model may better reflect the in vitro results. The study has implications for inhalation therapy in general.

Adult↗

Current innovations in drug delivery.

It is almost twenty years since the attention of the pharmaceutical industry was focussed on an alternative strategy--improving existing medicines by better control of the site, duration and intensity of the drugs they contain. Whilst site specificity remains a major objective for future medicines, progress has mainly come from devices which modulate the duration and intensity of drug action. In their most advanced form, they will deliver their contents in response to a physiological or pathological demand such as a diabetic's glucose level. However, practical devices have been limited to passive dosage forms which either speed up or slow down the rate of systemic absorption in a controlled manner. Oral, rectal, percutaneous and parenteral routes have been energetically explored and several products have been successfully marketed. Oral administration has dominated invention. Future advances will embrace the concepts of variable or pulsed release in order to meet particular therapeutic criteria. Equally important will be the extension of transit time in order to increase the uptake of some poorly absorbed drugs, or to extend dosage intervals to twenty-four hours. Attempts to more closely approach constant release rates at the end of the release period, to devise efficient formulae which carry drug loadings in excess of eighty per cent, or to invent formulae which, whilst retaining precision, are cheaper and more easily manufactured are less innovative aspects of this important field. The commercial success of percutaneous presentation of glyceryl trinitrate has prompted further refinement of this principle and guidelines for exploitation are now clearer. The development of acceptable penetration enhancers remains an important element in extending this principle to a wide range of drugs.(ABSTRACT TRUNCATED AT 250 WORDS)

Administration, Cutaneous↗