Partially crystalline systems in lyophilization: II. Withstanding collapse at high primary drying temperatures and impact on protein activity recovery

被引:37
作者
Chatterjee, K
Shalaev, EY
Suryanarayanan, R
机构
[1] Univ Minnesota, Coll Pharm, Minneapolis, MN 55455 USA
[2] Pfizer Groton Labs, Groton, CT USA
关键词
glycine; raffinose; trehalose; freeze drying; collapse; protein activity;
D O I
10.1002/jps.20304
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
In an accompanying article we have described the construction of the water-rich sections of raffinose-glycine-water and trehalose-glycine-water state diagrams. In this study, we use the information obtained from the state diagrams to identify the minimum weight fraction of the crystalline component in glycine-carbohydrate systems necessary to withstand collapse at high primary drying temperatures. We also determine the impact of primary drying, substantially above T'(g), on the recovery of lactate dehydrogenase (LDH) activity. Ambient and variable temperature X-ray powder diffractometry and differential scanning calorimetry were used to characterize the frozen and freeze-dried systems. Aqueous solutions with glycine to carbohydrate (raffinose pentahydrate or trehalose dihydrate) weight ratios ranging from 0.2 to 2.0 were freeze dried. The protein formulations contained 20 mM citrate buffer (pH 6.0) and LDH (20 mu g/mL). A glycine to anhydrous raffinose weight ratio > 1.18 and a glycine to anhydrous trehalose weight ratio >= 1.56 were necessary to withstand macroscopic collapse in the system, when the primary drying was carried out at a product temperature at least 10 degrees C above the T'(g). The recovery of LDH activity was almost complete in the reconstituted lyophile whether the primary drying was carried out above T'(g) (-10 degrees C) or below T'(g) (-32 degrees C). Thus, by judiciously combining crystalline and amorphous components, it was possible to primary dry at temperatures substantially above the T'(g). (c) 2005 Wiley-Liss, Inc. and the American Pharmacists Association.
引用
收藏
页码:809 / 820
页数:12
相关论文
共 15 条
[1]  
BERGMEYER HU, 1965, METHOD ENZYMAT AN, P574
[2]  
CARPENTER JF, 2002, PHARM BIOTECHNOLOGY, V13, P203
[3]   Partially crystalline systems in lyophilization: I. Use of ternary state diagrams to determine extent of crystallization of bulking agent [J].
Chatterjee, K ;
Shalaev, EY ;
Suryanarayanan, R .
JOURNAL OF PHARMACEUTICAL SCIENCES, 2005, 94 (04) :798-808
[4]   Crystalline and amorphous phases in the binary system water-raffinose [J].
Kajiwara, K ;
Franks, F .
JOURNAL OF THE CHEMICAL SOCIETY-FARADAY TRANSACTIONS, 1997, 93 (09) :1779-1783
[5]  
Kasraian K, 1998, Pharm Dev Technol, V3, P233, DOI 10.3109/10837459809028500
[6]   Protective mechanism of stabilizing excipients against dehydration in the freeze-drying of proteins [J].
Liao, YH ;
Brown, MB ;
Quader, A ;
Martin, GP .
PHARMACEUTICAL RESEARCH, 2002, 19 (12) :1854-1861
[7]   THE COLLAPSE TEMPERATURE IN FREEZE-DRYING - DEPENDENCE ON MEASUREMENT METHODOLOGY AND RATE OF WATER REMOVAL FROM THE GLASSY PHASE [J].
PIKAL, MJ ;
SHAH, S .
INTERNATIONAL JOURNAL OF PHARMACEUTICS, 1990, 62 (2-3) :165-186
[8]   Phase transitions of glycine in frozen aqueous solutions and during freeze-drying [J].
Pyne, A ;
Suryanarayanan, R .
PHARMACEUTICAL RESEARCH, 2001, 18 (10) :1448-1454
[9]   STUDY OF THE PHASE-DIAGRAM WATER FRACTION OF THE SYSTEM WATER GLYCINE SUCROSE BY DTA AND X-RAY-DIFFRACTION METHODS [J].
SHALAEV, EJ ;
MALAKHOV, DV ;
KANEV, AN ;
KOSYAKOV, VI ;
TUZIKOV, FV ;
VARAKSIN, NA ;
VAVILIN, VI .
THERMOCHIMICA ACTA, 1992, 196 (01) :213-220
[10]   Crystalline and amorphous phases in the ternary system water-sucrose-sodium chloride [J].
Shalaev, EY ;
Franks, F ;
Echlin, P .
JOURNAL OF PHYSICAL CHEMISTRY, 1996, 100 (04) :1144-1152