Plant Physiology & Functional Genomics Research Unit, Institute of Biotechnology, University of Sfax, 3038 Sfax, Tunisia.
Department of Molecular and Cellular Biology, University of Guelph, Guelph, ON N1G 2W1, Canada.
Phytochemistry. 2023 Sep;213:113783. doi: 10.1016/j.phytochem.2023.113783. Epub 2023 Jul 3.
Dehydrins form the group II LEA protein family and are known to play multiple roles in plant stress tolerance and enzyme protection. They harbor a variable number of conserved lysine rich motifs (K-segments) and may also contain three additional conserved motifs (Y-, F- and S-segments). In this work, we report the isolation and characterization of an FSK-type dehydrin from the halophytic species Atriplex halimus, which we designate as AhDHN1. In silico analysis of the protein sequence revealed that AhDHN1 contains large number of hydrophilic residues, and is predicted to be intrinsically disordered. In addition, it has an FSK architecture with one F-segment, one S-segment, and two K-segments. The expression analysis showed that the AhDHN1 transcript is induced by salt and water stress treatments in the leaves of Atriplex seedlings. Moreover, circular dichroism spectrum performed on recombinant AhDHN1 showed that the dehydrin lacks any secondary structure, confirming its intrinsic disorder nature. However, there is a gain of α-helicity in the presence of membrane-like SDS micelles. In vitro assays revealed that AhDHN1 is able to effectively protect enzymatic activity of the lactate dehydrogenase against cold, heat and dehydration stresses. Our findings strongly suggest that AhDHN1 can be involved in the adaptation mechanisms of halophytes to adverse environments.
脱水素属于第 II 组 LEA 蛋白家族,已知在植物的应激耐受和酶保护中发挥多种作用。它们含有数量可变的保守赖氨酸丰富基序(K 片段),并且可能还含有另外三个保守基序(Y-、F-和 S-片段)。在这项工作中,我们从盐生植物滨藜中分离并鉴定了一种 FSK 型脱水素,我们将其命名为 AhDHN1。蛋白质序列的计算机分析表明,AhDHN1 含有大量的亲水残基,预计是无序的。此外,它具有 FSK 结构,包含一个 F 片段、一个 S 片段和两个 K 片段。表达分析表明,AhDHN1 转录物在滨藜幼苗叶片中受到盐和水分胁迫处理的诱导。此外,对重组 AhDHN1 进行的圆二色光谱分析表明,该脱水素缺乏任何二级结构,证实了其无序的本质。然而,在类似于膜的 SDS 胶束存在下,它具有获得的α-螺旋结构。体外实验表明,AhDHN1 能够有效地保护乳酸脱氢酶的酶活性免受冷、热和脱水应激的影响。我们的研究结果强烈表明,AhDHN1 可能参与了盐生植物适应不利环境的适应机制。