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Silke Mohl

Publications and source records attributed to Silke Mohl.

3 recordsLinked to original sources

NIR spectroscopy-a non-destructive analytical tool for protein quantification within lipid implants.

Lipid implants have been proposed as promising sustained release devices for the parenteral application of pharmaceutical proteins. Near infrared spectroscopy (NIRS) has been reported in the literature to be a non-destructive tool for drug quantification within controlled release matrix systems based on poly-(lactic-co-glycolic) acid (PLGA). The objective of this study was to evaluate the potential application of NIRS for protein content determination within lipid matrices containing stabilizing and release modifying additives. Bovine serum albumin (BSA) and rh-interferon alpha-2a (IFN alpha-2a) were initially lyophilized with trehalose and then blended with tristearin (matrix material) and optionally with polyethylene glygol 6000 (PEG, release modifier). Implants were prepared by compression. NIR transmittance spectra were measured on a NIRTab spectrometer. Partial least squares regression (PLSR) calibration models were developed to predict protein content in implants from the NIRS results. Additional samples were measured after performing release studies. It could be shown that NIRS allowed protein quantification in complex matrix systems with good accuracy after implant manufacture and during release studies [e.g., standard error of prediction (SEP) between 57 microg-176 microg]. In addition, small protein amounts down to 70 microg of incorporated protein per implant could be determined, thus demonstrating the low detection limit of NIRS.

Calibration↗

Continuous release of Rh-interferon (alpha-2a from triglyceride implants: storage stability of the dosage forms.

Tristearin implants containing polyethylene glycol 6000 (PEG) were shown to be a promising platform for the delivery of pharmaceutical proteins for periods up to 1 month. The objective of this study was to investigate the storage stability of the lipid devices, as long-term storage stability ensuring acceptable shelf-life can be considered the most important parameter for commercially viable sustained-release dosage forms. Rh-Interferon alpha-2a was stabilized by a lyophilization process using either trehalose or hydroxypropyl-beta-cyclodextrin as stabilizer. Tristearin implants containing the lyophilized protein material and 10% PEG were stored over 3 months and 6 months, both at 4 degrees C and room temperature, before release studies were initiated. Data from stored implants demonstrated trehalose not to be effective to provide full protein stabilization during long-term storage of the lipid matrices, this was apparent from both the reduced total drug level liberated and the release of aggregated specimen compared to the situation immediately after implant manufacture. In contrast, hydroxypropyl-beta-cyclodextrin (HP-beta-CD) exhibited a high potential for protein stabilization within the matrices during both storage and release. Generally, 95% of the incorporated protein was delivered continuously within 1 month in monomeric form, even after 6 months' storage of the implants at room temperature.

2-Hydroxypropyl-beta-cyclodextrin↗

Continuous release of rh-interferon alpha-2a from triglyceride matrices.

The use of biodegradable polymeric matrices as controlled release systems is known to be associated with various drawbacks. The objective of this study was to develop an alternative delivery system based on triglycerides, thereby aiming for sustained continuous protein release. Tristearin implants containing lyophilised rh-interferon alpha-2a (IFN-alpha) and varying amounts of polyethylene glycol 6000 (PEG) were prepared by compression. Release studies exhibited that more than 90% of the incorporated IFN-alpha can be liberated in a continuous way over 1 month from systems containing 10% PEG. Integrating hydroxypropyl-beta-cyclodextrin (HP-beta-CD) into the matrices proved to stabilise IFN-alpha and led to a higher and faster protein release due to solubilising effects. The protein was released in virtually monomeric form. Scanning electron microscopy (SEM) and mercurial porosimetry revealed the matrices forming an interconnected pore network.

Delayed-Action Preparations↗