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首页> 外文期刊>Applied and Environmental Microbiology >Biotransformation and detoxification of T-2 toxin by soil and freshwater bacteria.
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Biotransformation and detoxification of T-2 toxin by soil and freshwater bacteria.

机译:土壤和淡水细菌对T-2毒素的生物转化和解毒作用。

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Bacterial communities isolated from 17 of 20 samples of soils and waters with widely diverse geographical origins utilized T-2 toxin as a sole source of carbon and energy for growth. These isolates readily detoxified T-2 toxin as assessed by a Rhodotorula rubra bioassay. The major degradation pathway of T-2 toxin in the majority of isolates involved side chain cleavage of acetyl moieties to produce HT-2 toxin and T-2 triol. A minor degradation pathway of T-2 toxin that involved conversion to neosolaniol and thence to 4-deacetyl neosolaniol was also detected. Some bacterial communities had the capacity to further degrade the T-2 triol or 4-deacetyl neosolaniol to T-2 tetraol. Two communities, TS4 and KS10, degraded the trichothecene nucleus within 24 to 48 h. These bacterial communities comprised 9 distinct species each. Community KS10 contained 3 primary transformers which were able to cleave acetate from T-2 toxin but which could not assimilate the side chain products, whereas community TS4 contained 3 primary transformers which were able to grow on the cleavage products, acetate and isovalerate. A third community, AS1, was much simpler in structure and contained only two bacterial species, one of which transformed T-2 toxin to T-2 triol in monoculture. In all cases, the complete communities were more active against T-2 toxin in terms of rates of degradation than any single bacterial component. Cometabolic interactions between species is suggested as a significant factor in T-2 toxin degradation.
机译:从地理分布广泛的20个土壤和水样中分离出17个细菌群落,利用T-2毒素作为唯一的碳和能源增长来源。这些分离株很容易解毒的T-2毒素,通过红景天生物测定法评估。在大多数分离物中,T-2毒素的主要降解途径涉及乙酰基部分的侧链裂解,从而产生HT-2毒素和T-2三醇。还检测到了T-2毒素的次要降解途径,该途径涉及向新松香酚的转化,并因此转化为4-脱乙酰新松香酚。一些细菌群落具有将T-2三醇或4-脱乙酰新松香酚进一步降解为T-2四醇的能力。 TS4和KS10这两个群落在24至48小时内降解了天花粉核。这些细菌群落各包含9个不同的物种。社区KS10包含3个初级转化子,它们能够从T-2毒素中切割乙酸,但不能吸收侧链产物,而社区TS4包含3个初级转化子,它们能够在裂解产物上生长,乙酸盐和异戊酸酯。第三个群落,AS1,结构简单得多,仅包含两种细菌,其中一种在单培养中将T-2毒素转化为T-2三醇。在所有情况下,就降解速率而言,完整的群落对T-2毒素的活性均高于任何单一细菌组分。物种之间的新陈代谢相互作用被认为是T-2毒素降解的重要因素。

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