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水杨酸刺激通常共生酶甘露醇脱氢酶的分泌:可能是针对甘露醇分泌真菌病原体的防御机制。

Salicylic acid stimulates secretion of the normally symplastic enzyme mannitol dehydrogenase: a possible defense against mannitol-secreting fungal pathogens.

机构信息

Department of Horticultural Science, North Carolina State University, Raleigh, NC 27695-7609, USA.

出版信息

Planta. 2009 Nov;230(6):1093-103. doi: 10.1007/s00425-009-1006-3. Epub 2009 Sep 1.

DOI:10.1007/s00425-009-1006-3
PMID:19727802
Abstract

The sugar alcohol mannitol is an important carbohydrate with well-documented roles in both metabolism and osmoprotection in many plants and fungi. In addition to these traditionally recognized roles, mannitol is reported to be an antioxidant and as such may play a role in host-pathogen interactions. Current research suggests that pathogenic fungi can secrete mannitol into the apoplast to suppress reactive oxygen-mediated host defenses. Immunoelectron microscopy, immunoblot, and biochemical data reported here show that the normally symplastic plant enzyme, mannitol dehydrogenase (MTD), is secreted into the apoplast after treatment with the endogenous inducer of plant defense responses salicylic acid (SA). In contrast, a cytoplasmic marker protein, hexokinase, remained cytoplasmic after SA-treatment. Secreted MTD retained activity after export to the apoplast. Given that MTD converts mannitol to the sugar mannose, MTD secretion may be an important component of plant defense against mannitol-secreting fungal pathogens such as Alternaria. After SA treatment, MTD was not detected in the Golgi apparatus, and its SA-induced secretion was resistant to brefeldin A, an inhibitor of Golgi-mediated protein transport. Together with the absence of a known extracellular targeting sequence on the MTD protein, these data suggest that a plant's response to pathogen challenge may include secretion of selected defensive proteins by as yet uncharacterized, non-Golgi mechanisms.

摘要

糖醇甘露醇是一种重要的碳水化合物,在许多植物和真菌的代谢和渗透保护中具有明确的作用。除了这些传统上公认的作用外,甘露醇还被报道为一种抗氧化剂,因此可能在宿主-病原体相互作用中发挥作用。目前的研究表明,致病真菌可以将甘露醇分泌到质外体中,以抑制活性氧介导的宿主防御。本文报道的免疫电子显微镜、免疫印迹和生化数据表明,正常存在于质体中的植物酶甘露醇脱氢酶(MTD)在用内源植物防御反应诱导剂水杨酸(SA)处理后被分泌到质外体中。相比之下,细胞质标记蛋白己糖激酶在 SA 处理后仍留在细胞质中。分泌的 MTD 在输出到质外体后仍保持活性。鉴于 MTD 将甘露醇转化为糖甘露糖,MTD 的分泌可能是植物抵御甘露醇分泌真菌病原体(如链格孢菌)的重要组成部分。在 SA 处理后,MTD 未在高尔基体中检测到,并且其 SA 诱导的分泌对布雷菲德菌素 A(一种抑制高尔基体介导的蛋白质运输的抑制剂)具有抗性。再加上 MTD 蛋白上没有已知的细胞外靶向序列,这些数据表明,植物对病原体挑战的反应可能包括通过尚未确定的、非高尔基体机制分泌选定的防御蛋白。

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本文引用的文献

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