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Prospects for reducing fumonisin contamination of maize through genetic modification.

机译:通过基因改造减少玉米伏马菌素污染的前景。

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摘要

Fumonisins (FB) are mycotoxins found in (italic)Fusarium verticillioides-infected maize grain worldwide. Attention has focused on FBs because of their widespread occurrence, acute toxicity to certain livestock, and their potential carcinogenicity. FBs are present at low levels in most field-grown maize but may spike to high levels depending on both the environment and genetics of the host plant. Among the strategies for reducing risk of FB contamination in maize supplied to the market, development and deployment of Fusarium ear mold-resistant maize germplasm is a high priority. Breeding for increased ear mold tolerance and reduced mycotoxin levels is being practiced today in both commercial and public programs, but the amount of resistance achievable may be limited due to complicated genetics and/or linkage to undesirable agronomic traits. Molecular markers can be employed to speed up the incorporation of chromosomal regions that have a quantitative effect on resistance (quantitative trait loci). Transgenic approaches to ear mold/mycotoxin resistance are now feasible as well. These potentially include genetically enhanced resistance to insect feeding, increased fungal resistance, and detoxification/prevention of mycotoxins in the grain. An example of the first of these approaches is already on the market, namely transgenic maize expressing Bacillus thuringiensis (Bt) toxin, targeted to the European corn borer. Some Bt maize hybrids have the potential to reduce FB levels in field-harvested grain, presumably through reduced feeding of Bt-susceptible insects in ear tissues. However, improved ear mold resistance per se is still an important goal, as the plant will still be vulnerable to noninsect routes of entry to (italic)Fusarium. A second approach, transgene-mediated control of the ability of Fusarium to infect and colonize the ear, could potentially be achieved through overexpression of specific antifungal proteins and metabolites, or enhancement of the plant's own defense systems in kernel tissues. This has not yet been accomplished in maize, although promising results have been obtained recently in other monocots versus other fungal and bacterial pathogens. Achieving reproducible and stable enhanced ear mold resistance under field conditions will be immensely challenging for biotechnologists. A third approach, transgene strategies aimed at preventing mycotoxin biosynthesis, or detoxifying mycotoxins in planta, could provide further protection for the grower in environments where FBs present a risk to the crop even when the maize is relatively resistant to Fusarium mold. In one example of such a strategy, enzymes that degrade FBs have been identified in a filamentous saprophytic fungus isolated from maize, and corresponding genes have been cloned and are currently being tested in transgenic maize.
机译:伏马菌素(FB)是真菌毒素,在世界范围内(斜体)感染了Verticillioides的玉米谷物中发现。由于FBs的广泛存在,对某些牲畜的急性毒性及其潜在的致癌性,因此将注意力集中在FBs上。在大多数田间种植的玉米中,FBs含量较低,但可能取决于寄主植物的环境和遗传因素而达到较高水平。在减少向市场供应的玉米中FB污染风险的策略中,开发和部署镰刀菌抗穗霉病玉米种质是当务之急。目前,在商业和公共项目中都在进行提高耳模耐受性和降低霉菌毒素水平的育种,但是由于复杂的遗传和/或与不良农艺性状的联系,可获得的抗性可能受到限制。可以使用分子标记来加速对抗性(定量性状基因座)具有定量作用的染色体区域的掺入。现在,针对耳霉菌/霉菌毒素抗性的转基因方法也是可行的。这些可能包括从基因上增强对昆虫摄食的抗性,增强的真菌抗性以及谷物中霉菌毒素的解毒/预防。这些方法中的第一种方法的一个例子已经在市场上出售,即针对欧洲玉米bore的表达苏云金芽孢杆菌毒素的转基因玉米。一些Bt玉米杂交种有可能降低田间收割谷物中的FB水平,大概是通过减少对耳组织中对Bt敏感的昆虫的摄食来实现的。然而,提高植物本身的抗霉菌性仍然是一个重要目标,因为该植物仍然容易受到非昆虫进入(斜体)F的侵害。第二种方法是转基因介导的镰刀菌感染和定殖在耳朵上的能力的控制,可以通过特定抗真菌蛋白和代谢产物的过表达或增强植物自身防御系统在核心组织中的表达来实现。尽管最近在其他单子叶植物与其他真菌和细菌病原体中获得了可喜的结果,但在玉米中尚未实现这一目标。对于生物技术人员而言,在野外条件下实现可再现且稳定的增强的耳模抵抗力将是巨大的挑战。第三种方法是旨在防止真菌毒素生物合成或使植物中的真菌毒素解毒的转基因策略,即使在玉米对镰刀霉菌相对抗性的情况下,FB仍对农作物构成风险,这种转基因策略可以为种植者提供进一步的保护。在这种策略的一个例子中,已经在从玉米分离的丝状腐生真菌中鉴定了降解FB的酶,并且已经克隆了相应的基因,目前正在转基因玉米中对其进行测试。

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