An In Vitro Nutritional Evaluation of Mixed Silages of Drought-Impaired Grass and Sugar Beet Pulp With or Without Silage Inoculants

. 2025 May ; 109 (3) : 766-776. [epub] 20250106

Jazyk angličtina Země Německo Médium print-electronic

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid39763052

Grantová podpora
This study was supported by the Austrian Federal Ministry of Agriculture, Forestry, Regions and Water Management (Grant 101623).

Increasing droughts adversely affect grasslands, diminishing the availability and quality of forages for ruminants. We have recently shown that mixed ensiling of drought-impaired grass (DIG) with sugar beet pulp (SBP) improved the conservation and feed value of silage. The application of silage additives may further improve the ruminal degradability, which may thereby shape the fermentation and microbiome in the rumen when those silages are tested as part of dairy diets. Therefore, we performed a long-term in vitro nutritional evaluation of diets containing 50% (DM basis) of mixed silages from DIG and SBP, ensiled either with no additive (T_CON) or with anaerobic fungi culture supernatant (25% in DM; T_AF), mixed ruminal fluid (10% in DM; T_RF) or lactic acid bacteria (1% in FM; T_LAB). The data showed a high degradability of all diets (e.g., > 70% for organic matter), though without differences in nutrient degradabilities among treatments (p > 0.05). Fermentation characteristics, such as ruminal pH, short-chain fatty acid profile, and gas production were only marginally affected by the treatments. Isobutyric acid proportion was higher in T_CON than in T_AF (p = 0.01), whereas isovaleric acid proportion was lower in T_LAB than in T_RF (p = 0.01). The analysis of the bacterial community revealed similar diversity and structure across all treatments in both the liquid and solid fraction. Noteworthy, Lactobacillus was among the predominant genera in the liquid fraction, which may have derived from the mixed silages. In conclusion, mixed silages from DIG and SBP as part of a 50% concentrate diet showed high ruminal degradability, but no beneficial impact by the tested silage additives was observed. Hence, under these conditions, their application appears not justified. Our results warrant further in vivo verification, whereby it would be of interest to determine the impact of the applied silage additives in forage-based diets (e.g., > 50% silage in diet DM) in future research.

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Anderson, M. J. 2001. “A New Method for Non‐Parametric Multivariate Analysis of Variance.” Austral Ecology 26: 32–46.

Bolyen, E. , Rideout J. R., Dillon M. R., et al. 2019. “Reproducible, Interactive, Scalable and Extensible Microbiome Data Science Using Qiime 2.” Nature Biotechnology 37: 852–857. PubMed PMC

Callahan, B. J. , McMurdie P. J., Rosen M. J., Han A. W., Johnson A. J. A., and Holmes S. P.. 2016. “DADA2: High‐Resolution Sample Inference From Illumina Amplicon Data.” Nature Methods 13: 581–583. PubMed PMC

Carro, M. D. , and Miller E. L.. 1999. “Effect of Supplementing a Fibre Basal Diet With Different Nitrogen Forms on Ruminal Fermentation and Microbial Growth in an In Vitro Semi‐Continuous Culture System (Rusitec).” British Journal of Nutrition 82: 149–157. PubMed

Catunda, K. L. M. , Churchill A. C., Zhang H., Power S. A., and Moore B. D.. 2022. “Short‐Term Drought Is a Stronger Driver of Plant Morphology and Nutritional Composition Than Warming in Two Common Pasture Species.” Journal of Agronomy and Crop Science 208: 841–852.

Ciríaco da Silva, E. , Bandeira de Albuquerque M., Dias de Azevedo Neto A., and Dias da Silva Junior C.. 2013. “Drought and Its Consequences to Plants—From Individual to Ecosystem.” In Responses of Organisms to Water Stress, edited by Akıncı S., Ch. 2. Rijeka, Croatia: IntechOpen.

Czerkawski, J. W. , and Breckenridge G.. 1977. “Design and Development of a Long‐Term Rumen Simulation Technique (Rusitec).” British Journal of Nutrition 38: 371–384. PubMed

Davis, N. M. , Proctor D. M., Holmes S. P., Relman D. A., and Callahan B. J.. 2018. “Simple Statistical Identification and Removal of Contaminant Sequences in Marker‐Gene and Metagenomics Data.” Microbiome 6: 226. PubMed PMC

Ellis, J. L. , Bannink A., Hindrichsen I. K., et al. 2016. “The Effect of Lactic Acid Bacteria Included as a Probiotic or Silage Inoculant on in Vitro Rumen Digestibility, Total Gas and Methane Production.” Animal Feed Science and Technology 211: 61–74.

Forzieri, G. , Feyen L., Rojas R., Flörke M., Wimmer F., and Bianchi A.. 2014. “Ensemble Projections of Future Streamflow Droughts in Europe.” Hydrology and Earth System Sciences 18: 85–108.

Gruber, T. , Fliegerová K., Terler G., Resch R., Zebeli Q., and Hartinger T.. 2024. “Mixed Ensiling of Drought‐Impaired Grass With Agro‐Industrial By‐Products and Silage Additives Improves the Nutritive Value and Shapes the Microbial Community of Silages.” Grass and Forage Science 79: 179–197.

Hartinger, T. , Edwards J. E., Gómez Expósito R., et al. 2019. “Differently Pre‐Treated Alfalfa Silages Affect the In Vitro Ruminal Microbiota Composition.” Frontiers in Microbiology 10: 2761. PubMed PMC

Hartinger, T. , Fliegerová K., and Zebeli Q.. 2022. “Suitability of Anaerobic Fungi Culture Supernatant or Mixed Ruminal Fluid as Novel Silage Additives.” Applied Microbiology and Biotechnology 106: 6819–6832. PubMed PMC

Hartinger, T. , Gruber T., Fliegerová K., Terler G., and Zebeli Q.. 2024. “Mixed Ensiling With By‐Products and Silage Additives Significantly Valorizes Drought‐Impaired Whole‐Crop Corn.” Animal Feed Science and Technology 309: 115899.

Hartinger, T. , and Zebeli Q.. 2021. “The Present Role and New Potentials of Anaerobic Fungi in Ruminant Nutrition.” Journal of Fungi 7: 200. PubMed PMC

Henderson, G. , Cox F., Ganesh S., et al. 2015. “Rumen Microbial Community Composition Varies With Diet and Host, But a Core Microbiome Is Found Across a Wide Geographical Range.” Scientific Reports 5: 14567. PubMed PMC

Hinds, A. A. , and Lowe L. E.. 1980. “Application of the Berthelot Reaction to the Determination of Ammonium‐N in Soil Extracts and Soil Digests.” Communications in Soil Science and Plant Analysis 11: 469–475.

Hornung, B. V. H. , Zwittink R. D., and Kuijper E. J.. 2019. “Issues and Current Standards of Controls in Microbiome Research.” FEMS Microbiology Ecology 95: fiz045. PubMed PMC

Humer, E. , Aditya S., Kaltenegger A., Klevenhusen F., Petri R. M., and Zebeli Q.. 2018. “Graded Substitution of Grains With Bakery By‐Products Modulates Ruminal Fermentation, Nutrient Degradation, and Microbial Community Composition In Vitro.” Journal of Dairy Science 101: 3085–3098. PubMed

Katoh, K. , Misawa K., Kuma K., and Miyata T.. 2002. “Mafft: A Novel Method for Rapid Multiple Sequence Alignment Based on Fast Fourier Transform.” Nucleic Acids Research 30: 3059–3066. PubMed PMC

Kenward, M. G. , and Roger J. H.. 1997. “Small Sample Inference for Fixed Effects From Restricted Maximum Likelihood.” Biometrics 53: 983–997. PubMed

Khiaosa‐ard, R. , Mahmood M., Mickdam E., Pacífico C., Meixner J., and Traintinger L.‐S.. 2023. “Winery By‐Products as a Feed Source With Functional Properties: Dose‐Response Effect of Grape Pomace, Grape Seed Meal, and Grape Seed Extract on Rumen Microbial Community and Their Fermentation Activity in RUSITEC.” Journal of Animal Science and Biotechnology 14: 92. PubMed PMC

Khiaosa‐ard, R. , Metzler‐Zebeli B. U., Ahmed S., et al. 2015. “Fortification of Dried Distillers Grains Plus Solubles With Grape Seed Meal in the Diet Modulates Methane Mitigation and Rumen Microbiota in Rusitec.” Journal of Dairy Science 98: 2611–2626. PubMed

Lankiewicz, T. S. , Choudhary H., Gao Y., et al. 2023. “Lignin Deconstruction by Anaerobic Fungi.” Nature Microbiology 8: 596–610. PubMed PMC

Li, J. , Zhong H., Ramayo‐Caldas Y., et al. 2020. “A Catalog of Microbial Genes From the Bovine Rumen Unveils a Specialized and Diverse Biomass‐Degrading Environment.” GigaScience 9: 1–15. PubMed PMC

Mallick, H. , Rahnavard A., McIver L. J., et al. 2021. Multivariable Association Discovery in Population‐Scale Meta‐Omics Studies. BioRxiv Preprint. 10.1101/2021.01.20.427420. PubMed DOI PMC

McDougall, E. I. 1948. “Studies on Ruminant Saliva. 1. The Composition and Output of Sheep's Saliva.” Biochemical Journal 43: 99–109. PubMed PMC

Muck, R. E. , Nadeau E. M. G., McAllister T. A., Contreras‐Govea F. E., Santos M. C., and Kung L.. 2018. “Silage Review: Recent Advances and Future Uses of Silage Additives.” Journal of Dairy Science 101: 3980–4000. PubMed

Nocek, J. E. 1997. “Bovine Acidosis: Implications on Laminitis.” Journal of Dairy Science 80: 1005–1028. PubMed

Oliveros, J. C. 2015–2007. An Interactive Tool for Comparing Lists With Venn's Diagrams. https://bioinfogp.cnb.csic.es/tools/venny/index.html.

Price, M. N. , Dehal P. S., and Arkin A. P.. 2010. “Fasttree 2 ‐ Approximately Maximum‐Likelihood Trees for Large Alignments.” PLoS One 5: e9490. PubMed PMC

Quast, C. , Pruesse E., Yilmaz P., et al. 2012. “The Silva Ribosomal Rna Gene Database Project: Improved Data Processing and Web‐Based Tools.” Nucleic Acids Research 41: D590–D596. PubMed PMC

Rare, E. 1990. “Stress Physiology: The Functional Significance of the Accumulation of Nitrogen‐Containing Compounds.” Journal of Horticultural Science 65: 231–243.

Romanzin, A. , Braidot M., Beraldo P., and Spanghero M.. 2024. “Rumen Fermentation Parameters and Papillae Development in Simmental Growing Bulls With Divergent Residual Feed Intake.” Animal 18: 101149. PubMed

Soliva, C. R. , and Hess H. D.. 2007. “Measuring Methane Emission of Ruminants by In Vitro and In Vivo Techniques.” In Measuring Methane Production From Ruminants, 15–31. Dordrecht: Springer.

VDLUFA , 2012, VDLUFA‐Methodenbuch Bd. III Die chemische Untersuchung von Futtermitteln , 3. Aufl. VDLUFA‐Verlag, Darmstadt.

Weimer, P. J. 2015. “Redundancy, Resilience, and Host Specificity of the Ruminal Microbiota: Implications for Engineering Improved Ruminal Fermentations.” Frontiers in Microbiology 6: 296. PubMed PMC

Weisbjerg, M. , Koukolová V., and Lund P.. 2007. “Rate of NDF Degradation.” Journal of Animal and Feed Sciences 16: 151–155.

Yang, H. E. , Zotti C. A., McKinnon J. J., and McAllister T. A.. 2018. “Lactobacilli Are Prominent Members of the Microbiota Involved in the Ruminal Digestion of Barley and Corn.” Frontiers in Microbiology 9: 718. PubMed PMC

Zebeli, Q. , Aschenbach J. R., Tafaj M., Boguhn J., Ametaj B. N., and Drochner W.. 2012. “Invited Review: Role of Physically Effective Fiber and Estimation of Dietary Fiber Adequacy in High‐Producing Dairy Cattle.” Journal of Dairy Science 95: 1041–1056. PubMed

Zhang, R. , Liu J., Jiang L., and Mao S.. 2020. “Effect of High‐Concentrate Diets on Microbial Composition, Function, and the Vfas Formation Process in the Rumen of Dairy Cows.” Animal Feed Science and Technology 269: 114619.

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