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Identification and characterization of tomato (Solanum lycopersicum) proteins involved in resistance to insect herbivores.

机译:番茄(Solanum lycopersicum)蛋白的鉴定和鉴定涉及对昆虫食草动物的抗性。

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摘要

In response to wounding or herbivore attack, plants synthesize proteins that negatively affect the growth and development of arthropod herbivores. Many of these proteins are induced in plant tissue in response to herbivory and, following ingestion by the herbivore, target processes involved in insect digestive physiology. The objective of this thesis research is to identify and characterize plant proteins that impair the ability of insect herbivores to obtain nutrients from host tissue. To address this objective, liquid chromatography-tandem mass spectrometry (LC-MS/MS) was used to identify proteins in tomato ( Solanum lycopersicum L.) that are excreted in the insect feces (frass). This approach is based on the premise that plant anti-insect proteins are stable during passage of food through the insect digestive system, and therefore enriched in the frass. The results establish the utility of insect feces as a source of material for proteomic-based discovery of defensive proteins that target insect digestive processes. Comparative proteomic analysis of frass from three tomato-reared insect species, including lepidopteran ( Manduca sexta and Trichoplusia ni) and coleopteran (Leptinotarsa decemlineata) herbivores, provided evidence that the lepidopteran insects digest bulk tomato leaf protein more efficiently than the coleopteran insect. This study also identified a subset of tomato leaf proteins that are highly stable in the digestive tract of all three insect species. Including in this subset were proteins previously shown to have a role in defense against insect attack. These findings are consistent with the hypothesis that plant anti-insect proteins are inherently stable in the insect digestive track.;One of the most abundant tomato proteins excreted in the frass from all three insects was a jasmonate-inducible isoform of threonine deaminase (TD2) that converts threonine (Thr) to alpha-ketobutyrate and ammonium. TD2 and other plant TDs contain a C-terminal regulatory domain that, upon binding isoleucine (Ile), feedback inhibits the N-terminal catalytic domain. Following ingestion of tomato foliage by lepidopteran insects, the regulatory domain of TD2 is removed by a chymotrypsin-like protease of insect origin. This processed form of TD2 efficiently degrades Thr in the presence of Ile, thereby starving the insect of an essential nutrient. The increased growth rate of Spodoptera exigua larvae on transgenic tomato lines silenced for TD2 expression showed that this enzyme serves a role in anti-insect defense. Tomato contains a second TD isoform (TD1) that catalyzes the committed step in the biosynthesis of Ile. Based on the comparison of the expression pattern and biochemical properties of TD1 and TD2, it is concluded that the two TD isoforms have evolved specialized functions in plant primary metabolism and anti-insect defense, respectively.
机译:响应受伤或食草动物的攻击,植物合成对节肢动物食草动物的生长和发育产生负面影响的蛋白质。这些蛋白质中的许多蛋白质是对草食动物的反应而在植物组织中诱导的,并且在被草食动物摄取后,成为昆虫消化生理学的靶标过程。本文研究的目的是鉴定和表征削弱昆虫食草动物从宿主组织中获取营养的能力的植物蛋白。为了实现这一目标,液相色谱-串联质谱法(LC-MS / MS)用于鉴定番茄(Solanum lycopersicum L.)中从昆虫粪便(frass)中排泄的蛋白质。这种方法基于这样的前提,即植物抗虫蛋白在食物通过昆虫消化系统的过程中是稳定的,因此富含苦味素。该结果确立了昆虫粪便作为基于蛋白质组学的防御蛋白的基础,该防御蛋白靶向昆虫的消化过程。比较蛋白质组学分析来自三种番茄饲养的昆虫物种的鳞茎,包括鳞翅目(Septatarta sexta and Trichoplusia ni)和鞘翅目(Leptinotarsa decemlineata)食草动物,这些证据表明鳞翅目昆虫比鳞翅目昆虫更有效地消化大量番茄叶蛋白。这项研究还确定了在所有三种昆虫的消化道中高度稳定的番茄叶蛋白子集。包括在该子集中的蛋白质以前被证明在防御昆虫攻击中具有作用。这些发现与植物抗昆虫蛋白在昆虫消化道内固有地稳定的假设相一致。所有三种昆虫从酒渣中分泌的最丰富的番茄蛋白之一是苏氨酸脱氨酶(TD2)的茉莉酸酯诱导型。将苏氨酸(Thr)转化为α-酮丁酸和铵。 TD2和其他植物TD包含一个C端调节域,该域在结合异亮氨酸(Ile)后会抑制N端催化域。鳞翅目昆虫摄取番茄的叶子后,TD2的调节域被昆虫来源的胰凝乳蛋白酶样蛋白酶去除。在Ile的存在下,这种经过加工的TD2形式可以有效地降解Thr,从而使昆虫无法获得必需的营养。在TD2表达沉默的转基因番茄品系上,斜纹夜蛾幼虫的生长速率增加表明该酶在抗昆虫防御中起作用。番茄含有第二种TD同工型(TD1),可催化Ile生物合成中的重要步骤。通过比较TD1和TD2的表达模式和生化特性,可以得出结论,这两种TD同工型分别在植物的初级代谢和抗昆虫防御方面发挥了特殊作用。

著录项

  • 作者

    Gonzales-Vigil, Eliana.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Biology Molecular.;Biology Plant Physiology.;Biology Entomology.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 236 p.
  • 总页数 236
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:38:24

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