Hand Steven C, Menze Michael A
Division of Cellular, Developmental and Integrative Biology, Department of Biological Sciences, Louisiana State University, Baton Rouge, LA, 70803, USA,
Planta. 2015 Aug;242(2):379-88. doi: 10.1007/s00425-015-2281-9. Epub 2015 Mar 26.
We have evaluated the endogenous expression and molecular properties of selected Group 3 LEA proteins from Artemia franciscana , and the capacity of selected Groups 1 and 3 proteins transfected into various desiccation-sensitive cell lines to improve tolerance to drying. Organisms inhabiting both aquatic and terrestrial ecosystems frequently are confronted with the problem of water loss for multiple reasons--exposure to hypersalinity, evaporative water loss, and restriction of intracellular water due to freezing of extracellular fluids. Seasonal desiccation can become severe and lead to the production of tolerant propagules and entry into the state of anhydrobiosis at various stages of the life cycle. Such is the case for gastrula-stage embryos of the brine shrimp, Artemia franciscana. Physiological and biochemical responses to desiccation are central for survival and are multifaceted. This review will evaluate the impact of multiple late embryogenesis abundant proteins originating from A. franciscana, together with the non-reducing sugar trehalose, on prevention of desiccation damage at multiple levels of biological organization. Survivorship of desiccation-sensitive cells during water stress can be improved by use of the above protective agents, coupled to metabolic preconditioning and rapid cell drying. However, obtaining long-term stability of cells in the dried state at room temperature has not been accomplished and will require continued efforts on both the physicochemical and biological fronts.
我们评估了卤虫(Artemia franciscana)中选定的第3组胚胎发育晚期丰富(LEA)蛋白的内源性表达和分子特性,以及转染到各种对干燥敏感的细胞系中的选定第1组和第3组蛋白提高耐干燥性的能力。生活在水生和陆地生态系统中的生物经常因多种原因面临水分流失的问题——暴露于高盐度、蒸发失水以及由于细胞外液冻结导致的细胞内水分受限。季节性干燥可能会变得很严重,并导致在生命周期的各个阶段产生耐受性繁殖体并进入脱水休眠状态。卤虫(Artemia franciscana)原肠胚期胚胎就是这种情况。对干燥的生理和生化反应是生存的核心,并且是多方面的。本综述将评估源自卤虫的多种胚胎发育晚期丰富蛋白以及非还原糖海藻糖在生物组织的多个层面上对预防干燥损伤的影响。通过使用上述保护剂,结合代谢预处理和快速细胞干燥,可以提高水分胁迫期间对干燥敏感细胞的存活率。然而,尚未实现细胞在室温下干燥状态的长期稳定性,这需要在物理化学和生物学方面继续努力。