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饲草和牧场研讨会:饲料生物降解:瘤胃微生物生态学的进展。

Forages and pastures symposium: forage biodegradation: advances in ruminal microbial ecology.

机构信息

Department of Animal and Dairy Science, University of Georgia, Athens, GA, USA.

Department Animal Science, Auburn University, Auburn, AL, USA.

出版信息

J Anim Sci. 2023 Jan 3;101. doi: 10.1093/jas/skad178.

Abstract

The rumen microbial ecosystem provides ruminants a selective advantage, the ability to utilize forages, allowing them to flourish worldwide in various environments. For many years, our understanding of the ruminal microbial ecosystem was limited to understanding the microbes (usually only laboratory-amenable bacteria) grown in pure culture, meaning that much of our understanding of ruminal function remained a "black box." However, the ruminal degradation of plant cell walls is performed by a consortium of bacteria, archaea, protozoa, and fungi that produces a wide variety of carbohydrate-active enzymes (CAZymes) that are responsible for the catabolism of cellulose, hemicellulose, and pectin. The past 15 years have seen the development and implementation of numerous next-generation sequencing (NGS) approaches (e.g., pyrosequencing, Illumina, and shotgun sequencing), which have contributed significantly to a greater level of insight regarding the microbial ecology of ruminants fed a variety of forages. There has also been an increase in the utilization of liquid chromatography and mass spectrometry that revolutionized transcriptomic approaches, and further improvements in the measurement of fermentation intermediates and end products have advanced with metabolomics. These advanced NGS techniques along with other analytic approaches, such as metaproteomics, have been utilized to elucidate the specific role of microbial CAZymes in forage degradation. Other methods have provided new insights into dynamic changes in the ruminal microbial population fed different diets and how these changes impact the assortment of products presented to the host animal. As more omics-based data has accumulated on forage-fed ruminants, the sequence of events that occur during fiber colonization by the microbial consortium has become more apparent, with fungal populations and fibrolytic bacterial populations working in conjunction, as well as expanding understanding of the individual microbial contributions to degradation of plant cell walls and polysaccharide components. In the future, the ability to predict microbial population and enzymatic activity and end products will be able to support the development of dynamic predictive models of rumen forage degradation and fermentation. Consequently, it is imperative to understand the rumen's microbial population better to improve fiber degradation in ruminants and, thus, stimulate more sustainable production systems.

摘要

瘤胃微生物生态系统为反刍动物提供了选择性优势,使它们能够利用饲料,在世界各地的各种环境中茁壮成长。多年来,我们对瘤胃微生物生态系统的理解仅限于了解在纯培养中生长的微生物(通常仅为实验室可培养的细菌),这意味着我们对瘤胃功能的许多理解仍然是一个“黑匣子”。然而,植物细胞壁在瘤胃中的降解是由细菌、古菌、原生动物和真菌组成的联合体完成的,它们产生了各种各样的碳水化合物活性酶(CAZymes),负责纤维素、半纤维素和果胶的分解代谢。在过去的 15 年中,出现了许多下一代测序(NGS)方法(例如焦磷酸测序、Illumina 和鸟枪法测序),这些方法为了解反刍动物在各种饲料喂养下的微生物生态学提供了更深入的见解。同时,液相色谱和质谱的应用也有所增加,这彻底改变了转录组学方法,而代谢组学的进一步改进则提高了发酵中间产物和终产物的测量水平。这些先进的 NGS 技术以及其他分析方法,如宏蛋白质组学,已被用于阐明微生物 CAZymes 在饲料降解中的特定作用。其他方法为研究不同日粮喂养的瘤胃微生物种群的动态变化以及这些变化如何影响宿主动物提供的产品种类提供了新的见解。随着基于组学的更多数据在以饲料喂养的反刍动物中积累,微生物联合体在纤维定殖过程中发生的一系列事件变得更加明显,真菌种群和纤维分解细菌种群协同作用,同时对单个微生物对植物细胞壁和多糖成分降解的贡献的理解也在不断扩展。在未来,预测微生物种群和酶活性以及终产物的能力将能够支持瘤胃饲料降解和发酵的动态预测模型的开发。因此,更好地了解瘤胃微生物种群对于提高反刍动物的纤维降解能力,从而刺激更可持续的生产系统至关重要。

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