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New Concepts in the Evaluation of Biodegradation/Persistence of Chemical Substances Using a Microbial Inoculum

机译:利用微生物接种物评估化学物质的生物降解/持久性的新概念

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摘要

The European REACH Regulation (Registration, Evaluation, Authorization of CHemical substances) implies, among other things, the evaluation of the biodegradability of chemical substances produced by industry. A large set of test methods is available including detailed information on the appropriate conditions for testing. However, the inoculum used for these tests constitutes a “black box.” If biodegradation is achievable from the growth of a small group of specific microbial species with the substance as the only carbon source, the result of the test depends largely on the cell density of this group at “time zero.” If these species are relatively rare in an inoculum that is normally used, the likelihood of inoculating a test with sufficient specific cells becomes a matter of probability. Normally this probability increases with total cell density and with the diversity of species in the inoculum. Furthermore the history of the inoculum, e.g., a possible pre-exposure to the test substance or similar substances will have a significant influence on the probability. A high probability can be expected for substances that are widely used and regularly released into the environment, whereas a low probability can be expected for new xenobiotic substances that have not yet been released into the environment. Be that as it may, once the inoculum sample contains sufficient specific degraders, the performance of the biodegradation will follow a typical S shaped growth curve which depends on the specific growth rate under laboratory conditions, the so called F/M ratio (ratio between food and biomass) and the more or less toxic recalcitrant, but possible, metabolites. Normally regulators require the evaluation of the growth curve using a simple approach such as half-time. Unfortunately probability and biodegradation half-time are very often confused. As the half-time values reflect laboratory conditions which are quite different from environmental conditions (after a substance is released), these values should not be used to quantify and predict environmental behavior. The probability value could be of much greater benefit for predictions under realistic conditions. The main issue in the evaluation of probability is that the result is not based on a single inoculum from an environmental sample, but on a variety of samples. These samples can be representative of regional or local areas, climate regions, water types, and history, e.g., pristine or polluted. The above concept has provided us with a new approach, namely “Probabio.” With this approach, persistence is not only regarded as a simple intrinsic property of a substance, but also as the capability of various environmental samples to degrade a substance under realistic exposure conditions and F/M ratio.
机译:欧洲REACH法规(化学物质的注册,评估,授权)除其他外,还意味着对工业生产的化学物质的生物降解性进行评估。提供了大量的测试方法,包括有关适当测试条件的详细信息。但是,用于这些测试的接种物构成了“黑匣子”。如果从一小群特定微生物物种的生长中,以该物质为唯一碳源可以实现生物降解,那么测试的结果将很大程度上取决于该组在“零时”的细胞密度。如果这些物种在通常使用的接种物中相对较少,那么用足够的特定细胞接种测试的可能性就成为概率问题。通常,这种可能性随总细胞密度和接种物中物种的多样性而增加。此外,接种物的病史,例如可能对试验物质或类似物质的预接触将对概率产生重大影响。对于被广泛使用并定期释放到环境中的物质,可能会出现高可能性,而对于尚未释放到环境中的新的异种物质,则可能会发生可能性低。可能的是,一旦接种物样品包含足够的特定降解剂,生物降解的性能将遵循典型的S形生长曲线,该曲线取决于实验室条件下的特定生长速率,即所谓的F / M比(食物与食物之间的比率)。和生物质)和或多或少有毒的顽固性代谢物(但可能是代谢物)。通常,监管机构要求使用简单的方法(例如半场)评估增长曲线。不幸的是,半衰期的概率和生物降解常常被混淆。半衰期值反映的是与环境条件(释放物质后)完全不同的实验室条件,因此不应将这些值用于量化和预测环境行为。对于现实条件下的预测,概率值可能具有更大的优势。概率评估中的主要问题是结果不是基于环境样本中的单个接种物,而是基于各种样本。这些样品可以代表区域或局部地区,气候区域,水类型和历史,例如原始的或污染的。以上概念为我们提供了一种新的方法,即“ Probabio”。使用这种方法,持久性不仅被视为物质的简单内在属性,而且还被视为各种环境样品在实际暴露条件和F / M比下降解物质的能力。

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