Freeze-drying of tert-butanol/water cosolvent systems: a case report on formation of a friable freeze-dried powder of tobramycin sulfate.

A case study is presented in which a tert-butanol (TBA)/water cosolvent system was found to be a useful means of producing freeze-dried tobramycin sulfate that readily forms a loose powder upon agitation in a specialized application in which a critical quality attribute is the ability to pour the sterile powder from the vial. Both formulation and processing variables are important in achieving acceptable physical properties of the cake as well as minimizing residual TBA levels. Liquid/liquid phase separation was observed above critical concentrations of both drug and TBA, resulting in a two-layered lyophilized cake with unacceptable appearance, physical properties, and residual TBA levels. However, the choice of tobramycin sulfate and TBA concentrations in the single-phase region of the phase diagram resulted in a lyophilized solid that can readily be poured from vials. Crystallization of TBA before drying is critical to achieving adequately low residual TBA levels, and this is reflected in the effect of thermal history of freezing on residual TBA levels, where rapid freezing results in incomplete crystallization of TBA and relatively high levels of residual solvent. Annealing at a temperature above T'(g) of the system after an initial freezing step significantly reduces the level of residual TBA. Secondary drying, even at increased temperature and for extended times, is not an effective method of reducing residual TBA levels.

[1]  P. Deluca,et al.  The Effect of Tertiary Butyl Alcohol on the Resistance of the Dry Product Layer During Primary Drying , 1995, Pharmaceutical Research.

[2]  P. Deluca,et al.  Thermal Analysis of the Tertiary Butyl Alcohol-Water System and Its Implications on Freeze-Drying , 1995, Pharmaceutical Research.

[3]  R. Suryanarayanan,et al.  Solid-State Properties of Tobramycin , 1991, Pharmaceutical Research.

[4]  J. Dawson,et al.  The use of vancomycin and tobramycin in acrylic bone cement: biomechanical effects and elution kinetics for use in joint arthroplasty. , 1999, The Journal of arthroplasty.

[5]  P. Davidson,et al.  Protein inactivation in amorphous sucrose and trehalose matrices: effects of phase separation and crystallization. , 1998, Biochimica et biophysica acta.

[6]  S. Wittaya-areekul,et al.  Freeze-drying of tert-butyl alcohol/water cosolvent systems: effects of formulation and process variables on residual solvents. , 1998, Journal of pharmaceutical sciences.

[7]  J. Carpenter,et al.  Manipulation of Lyophilization‐Induced Phase Separation: Implications For Pharmaceutical Proteins , 1997, Biotechnology progress.

[8]  J. Carpenter,et al.  Effects of phase separating systems on lyophilized hemoglobin. , 1996, Journal of pharmaceutical sciences.

[9]  H. Lüdemann,et al.  The Pressure Dependence of the Phase Diagram t-Butanol/Water , 1985 .

[10]  J. B. Ott,et al.  (Solid + liquid) phase equilibria and solid-hydrate formation in water + methyl, + ethyl, + isopropyl, and + tertiary butyl alcohols , 1979 .

[11]  M. Karel,et al.  EFFECTS OF PROCESS VARIABLES ON RETENTION OF VOLATILES IN FREEZE‐DRYING , 1970 .