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Development of Multiwell-Plate Methods Using Pure Cultures of Methanogens To Identify New Inhibitors for Suppressing Ruminant Methane Emissions

机译:多孔板方法的发展,利用产甲烷菌的纯培养物来鉴定抑制反刍甲烷排放的新抑制剂

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Hydrogenotrophic methanogens typically require strictly anaerobic culturing conditions in glass tubes with overpressures of H2 and CO2 that are both time-consuming and costly. To increase the throughput for screening chemical compound libraries, 96-well microtiter plate methods for the growth of a marine (environmental) methanogen Methanococcus maripaludis strain S2 and the rumen methanogen Methanobrevibacter species AbM4 were developed. A number of key parameters (inoculum size, reducing agents for medium preparation, assay duration, inhibitor solvents, and culture volume) were optimized to achieve robust and reproducible growth in a high-throughput microtiter plate format. The method was validated using published methanogen inhibitors and statistically assessed for sensitivity and reproducibility. The Sigma-Aldrich LOPAC library containing 1,280 pharmacologically active compounds and an in-house natural product library (120 compounds) were screened against M. maripaludis as a proof of utility. This screen identified a number of bioactive compounds, and MIC values were confirmed for some of them against M. maripaludis and M. AbM4. The developed method provides a significant increase in throughput for screening compound libraries and can now be used to screen larger compound libraries to discover novel methanogen-specific inhibitors for the mitigation of ruminant methane emissions.IMPORTANCE Methane emissions from ruminants are a significant contributor to global greenhouse gas emissions, and new technologies are required to control emissions in the agriculture technology (agritech) sector. The discovery of small-molecule inhibitors of methanogens using high-throughput phenotypic (growth) screening against compound libraries (synthetic and natural products) is an attractive avenue. However, phenotypic inhibitor screening is currently hindered by our inability to grow methanogens in a high-throughput format. We have developed, optimized, and validated a high-throughput 96-well microtiter plate assay for growing environmental and rumen methanogens. Using this platform, we identified several new inhibitors of methanogen growth, demonstrating the utility of this approach to fast track the development of methanogen-specific inhibitors for controlling ruminant methane emissions.
机译:氢营养型产甲烷菌通常需要在玻璃管中进行严格的厌氧培养条件,而H2和CO2超压既费时又昂贵。为了提高筛选化合物文库的通量,开发了用于生长海洋(环境)产甲烷菌马氏甲烷球菌S2和瘤胃产甲烷菌甲烷弧菌属菌种AbM4的96孔微量滴定板方法。优化了许多关键参数(接种物大小,用于培养基制备的还原剂,测定时间,抑制剂溶剂和培养物体积),以实现高通量微量滴定板形式的稳健且可重现的生长。该方法已使用已发表的产甲烷菌抑制剂进行了验证,并在统计学上评估了灵敏度和可重复性。筛选了含有maripaludis的Sigma-Aldrich LOPAC文库,其中包含1,280种药理活性化合物和内部天然产物文库(120种化合物),以证明其实用性。此筛选确定了许多生物活性化合物,并确认了其中一些对马氏念珠菌和M. AbM4的MIC值。该开发的方法显着提高了筛选化合物库的通量,现在可用于筛选更大的化合物库以发现新型的产甲烷菌特异性抑制剂,从而减轻反刍动物甲烷的排放。温室气体排放,需要新技术来控制农业技术(agritech)部门的排放。利用针对化合物库(合成和天然产物)的高通量表型(生长)筛选发现产甲烷菌的小分子抑制剂是一个诱人的途径。但是,目前我们无法以高通量形式生长产甲烷菌而阻碍了表型抑制剂的筛选。我们已经开发,优化和验证了用于生长环境和瘤胃产甲烷菌的高通量96孔微量滴定板检测方法。使用该平台,我们确定了几种新的产甲烷菌抑制剂,证明了该方法可用于快速追踪用于控制反刍动物甲烷排放的产甲烷菌特异性抑制剂的开发。

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