Gilles Gregory J, Hines Kelly M, Manfre Alicia J, Marcotte William R
Department of Genetics and Biochemistry, 100 Jordan Hall, Clemson University, Clemson, SC 29634, USA.
Plant Physiol Biochem. 2007 Jun-Jul;45(6-7):389-99. doi: 10.1016/j.plaphy.2007.03.027. Epub 2007 Apr 5.
Late embryogenesis abundant (LEA) proteins have been repeatedly implicated in the acquisition of desiccation tolerance in angiosperm seed embryos. However, the mechanism(s) by which protection occurs is not well understood. While the Group 1 LEA proteins are predicted to be largely unordered in solution, there is strong evidence that upon drying these proteins undergo a structural transition that leads to an increase in alpha-helical content. Several studies also suggest there is a direct interaction between Group 1 LEA proteins and other molecules in the cytoplasm that may be critical for the establishment of desiccation tolerance during embryo maturation. We have produced a recombinant Group 1 LEA protein and show that it is capable of protecting the enzyme lactate dehydrogenase from the deleterious effects of drying. We have also evaluated the ability of various altered recombinant Group 1 LEA proteins to protect in the same assay. Our results suggest that the highly conserved 20 amino acid Group 1 LEA signature motif is not required for protection in our in vitro assay. However, introduction of two juxtaposed proline residues into an N-terminal helical domain predicted to exist in the hydrated structure significantly compromises the ability of the recombinant protein to provide protection from drying. These results suggest that the N-terminal domain of Group 1 LEA proteins may be important for proper folding during dehydration.
晚期胚胎发生丰富(LEA)蛋白多次被认为与被子植物种子胚获得耐旱性有关。然而,其保护机制尚未得到充分理解。虽然预测第1组LEA蛋白在溶液中大多无序,但有强有力的证据表明,干燥时这些蛋白会发生结构转变,导致α-螺旋含量增加。多项研究还表明,第1组LEA蛋白与细胞质中的其他分子之间存在直接相互作用,这可能对胚胎成熟过程中耐旱性的建立至关重要。我们制备了一种重组第1组LEA蛋白,并表明它能够保护乳酸脱氢酶免受干燥的有害影响。我们还在同一实验中评估了各种经过改变的重组第1组LEA蛋白的保护能力。我们的结果表明,在我们的体外实验中,高度保守的20个氨基酸的第1组LEA特征基序并非保护所必需。然而,将两个相邻的脯氨酸残基引入预计存在于水合结构中的N端螺旋结构域,会显著损害重组蛋白提供抗干燥保护的能力。这些结果表明,第1组LEA蛋白的N端结构域可能对脱水过程中的正确折叠很重要。