Pansare Swapnil K, Patel Sajal Manubhai
Department of Formulation Sciences, MedImmune, One MedImmune Way, Gaithersburg, Maryland, 20878, USA.
AAPS PharmSciTech. 2016 Aug;17(4):805-19. doi: 10.1208/s12249-016-0551-x. Epub 2016 May 18.
Glass transition temperature is a unique thermal characteristic of amorphous systems and is associated with changes in physical properties such as heat capacity, viscosity, electrical resistance, and molecular mobility. Glass transition temperature for amorphous solids is referred as (T g), whereas for maximally freeze concentrated solution, the notation is (T g'). This article is focused on the factors affecting determination of T g' for application to lyophilization process design and frozen storage stability. Also, this review provides a perspective on use of various types of solutes in protein formulation and their effect on T g'. Although various analytical techniques are used for determination of T g' based on the changes in physical properties associated with glass transition, the differential scanning calorimetry (DSC) is the most commonly used technique. In this article, an overview of DSC technique is provided along with brief discussion on the alternate analytical techniques for T g' determination. Additionally, challenges associated with T g' determination, using DSC for protein formulations, are discussed. The purpose of this review is to provide a practical industry perspective on determination of T g' for protein formulations as it relates to design and development of lyophilization process and/or for frozen storage; however, a comprehensive review of glass transition temperature (T g, T g'), in general, is outside the scope of this work.
玻璃化转变温度是无定形体系独特的热特性,与诸如热容、粘度、电阻和分子流动性等物理性质的变化相关。无定形固体的玻璃化转变温度记为(Tg),而对于最大冷冻浓缩溶液,其符号为(Tg')。本文重点关注影响Tg'测定的因素,以应用于冻干工艺设计和冷冻储存稳定性。此外,本综述还探讨了蛋白质制剂中各种溶质的使用及其对Tg'的影响。虽然基于与玻璃化转变相关的物理性质变化,有多种分析技术用于测定Tg',但差示扫描量热法(DSC)是最常用的技术。本文提供了DSC技术的概述,并简要讨论了用于测定Tg'的其他分析技术。此外,还讨论了使用DSC测定蛋白质制剂的Tg'时所面临的挑战。本综述的目的是从实际行业角度出发,探讨蛋白质制剂Tg'的测定与冻干工艺设计和开发以及冷冻储存之间的关系;然而,对玻璃化转变温度(Tg、Tg')的全面综述总体上超出了本文的范围。