Ruminant Hayvan Yetiştiriciliği ve Çevre İlişkisi

Yazarlar

Ali Vaiz Garipoğlu

Özet

İnsanların dengeli ve yeterli beslenmesinde hayvansal gıdaların önemi bilimsel çalışmalarla ortaya konulmuştur. Ancak, bu gıdaların üretiminden sorumlu hayvansal üretim işletmelerinin bir başka deyişle hayvancılık faaliyetlerinin çevreyle ilişkisi en az hayvansal ürünlerin üretimi kadar önem kazanmaya başlamıştır. Hayvancılık faaliyetlerinin sürdürülebilirliğinin sağlanabilmesi açısından  hayvansal üretim-çevre ilişkisi büyük önem taşımaktadır. Bu gerçekten hareketle hayvansal üretim- çevre ilişkisi ile ilgili olarak çok sayıda bilimsel çalışma yapılmakta ve bu çalışmalardan elde edilen bilgiler sahaya aktarılmaktadır. İşte bu bölümde bu konuda yapılan çalışmalardan bir kısmı aktarılmaya çalışılmıştır.

Referanslar

U.S. Environmental Protection Agency. Overview of Greenhouse Gases. 2015. Available online:https://www.epa.gov/ghgemissions/overview-greenhouse-gases(accessed on 30 June 2022).https://www.epa.gov/ghgemissions/overview-greenhouse-gases

https://scienceinfo.com/greenhouse-gases-carbon-dioxide-and-methane/

Dillon JA, Stackhouse-Lawson KR, Thoma GJ, Gunter SA, Rotz CA. Current state of enteric methane and the carbon footprint of beef and dairy cattle in the United States. Anim. Front .2021;11, 57–68.

FAO, 2023. https://openknowledge.fao.org/items/bcd70cc0-02ac-4120-bcd4-e6775aa427b2

Kristiansen S, Painter J, Shea, M. Animal Agriculture and Climate Change in the US and UK Elite Media: Volume, Responsibilities, Causes and Solutions. Environ. Commun. 2021, 15, 153–172.

Bačėninaitė D, Džermeikaitė K, Antanaitis R. Global Warming and Dairy Cattle: How to Control and Reduce Methane Emission. Animals. 2022; 12(19):2687. https://doi.org/10.3390/ani12192687.

Abo-Sherif S, Sallam S, Allam AM, El-Adawy, M, Soltan Y. In Vitro Evaluation of Ruminal Fermentation andMethane Production inResponsetothe Addition of Modified Nano-Bentonite with or Without Saccharomyces cerevisiae to a Forage-Based Diet. Animals. 2025; 15: 2081. https:// doi.org/10.3390/ani15142081

Boadi D, Wittenberg KM, Scott SL, Burton D, Buckley K, Small JA. Ominski KH. Effect of low and high forage diet on enteric and manure pack greenhouse gas emissions from a feedlot. Canadian Journal of Animal Science. 2004; 84 (3): 445-453, DOI: https://di.org/10.4141/Ao3-079.

Moss AR, Jouany JP, Newbold J. Methane production by ruminants: its contribution to globalwarming. Annales de zootechnie EDP Scences. 2000. 49(3): 231-253. DOI: https://doi.org/10.1051/animres:2000119.

Gonzales-Chappe L, Daudet A, Firkins, J, Relling, AE, Pittaluga A.M. In vitro dose-response of bromoform stabilized in vegetable oil on rumen fermentation and methane production. In vitro dose-response of bromoform stabilized in vegetable oil on rumen fermentation and methane production. Animal Nutrition and Farm Systems. 2026. DOI: 10.3168/jdsc.2025-0988

Kim, KM, Baeg, CH, Ullah, W. et al. Synergistic effect of very long-chain fatty acid and α-linolenic acid treatments on enteric methane mitigation in the rumen. Appl Biol Chem.2025. 68, 93. https://doi.org/10.1186/s13765-025-01068-9

Yang Z, Zheng Y, Liu S, Xie T., Wang Q, Wang Z, Li S. Rumen metagenome reveals the mechanism of mitigation methane emissions by unsaturated fatty acid while maintaining the performance of dairy cows. Animal Nutrition.2024, 18,296-298.

Elhhandour MMY., Valleja LH, Salem AZM, Salem MZM, Camacho LM, Buendia G, Odango NE. Effects of Schizochytrium microalgae and sunflower oil as sources of unsaturated fatty acids for the sustainable mitigation of ruminal biogases methane and carbon dioxide. Journal of Cleaner Production. 2017, 168, 1389-1397.

Pedraza-Hernadez P, Elghandour MMMY, Khusro A, Camach-Diaz LM, Vallejo LH, Barbabosa-Pliego A, Salem AZM. Mitigation of ruminal biogases production from goats using Moringa oleifera extract and live yeast culture for a cleaner agriculture environment. Journal of Cleaner Production. 2019, 234, 779-786.

Camargo JA, Alonso A. Ecological and toxicological effects of inorganic nitrogen pollution in aquatic systems:a global assessment. Environmental İnternational. 2006. 32, 831-849.

Wang C Liu, Z, Wang D, Liu J, Liu H, Wu Z. Effect of dietary phosphorus content on milk production and phosphorus excretion in dairy cows. J. Anim. Sci. Biotechnol. 2014, 5, 23.

Bravo D, Sauvant D, Bogaert C, Meschy F. III. Quantitative aspects of phosphorus excretion in ruminants. Reprod. Nutr. Dev. 2003, 43, 285–300.

Kannan D, Viswanathan, K.;Edwin, SC.Phytate phosphorus level in feed ingredients and enzyme phytase activity in commercial preparations. Int. Vet. J. 2008, 85, 849–850.

van Keulen H, Aarts HFM, Habekotte B, van der Meer HG, Spiertz JHC. Soil-plant-animal relations in nutrient cycling:the case of dairy farming system ‘De Marke’. European Journal of Agronomy. 2000, 13, 245-261.

Sorensen P. Immobilisation, remineralisation and residual effects in subsequent crops of dairy cattle slurry nitrogen compared to mineral fertiliser nitrogen. Plant and Soil. 2004. 267, 1/2, 285-296.

Scholefield D. et al. A model to predict transformations and losses of nitrogen in UK pastures grazed by beef cattle. Plant and Soil. 1991, 132, 2, 165-177.

Eschenlauer SCP, McKAin N, Walker ND, McEwan NR, Newbold CJ, Wallace RJ. Ammonia production by numerical microorganisms and enumeration, isolation, and characterization of bacteria capable of growth on peptides and amno acids from the sheep rumen. Applied and Environmental Microbiology. 2002, 68, 4925-4931.

Chanu YM, Paul SS, Dey A, Andonissamy J. Deciphering Hyperammonia-Producing Bacteria (HAB) in the Rumen of Water Buffaloes (Bubalus bubalis) and Their Inhibition through Plant Extracts and Essential Oils. Microorganisms. 2024, 9;12(10):2040

Castillo AR, Kebreab E, Beever DE, France J. A review of efficiency of nitrogen utilisation in lactating dairy cows and its relationship with environmental pollution. Journal of Animal Feed Sciences. 2000. 9, 1-32.

Sayfalar

237-244

Yayınlanan

5 Ağustos 2026

Lisans

Lisans