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HMIEL, Benjamin; PETRENKO, V. V.; DYONISIUS, M. N. Preindustrial 14CH4 indicates greater anthropogenic fossil CH4 emissions. Nature. 2020-02-20, roč. 578, čís. 7795, s. 409–412. Dostupné online [cit. 2025-11-25]. ISSN0028-0836. doi:10.1038/s41586-020-1991-8. (anglicky)
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KORT, Eric A.; FRANKENBERG, Christian; COSTIGAN, Keeley R. Four corners: The largest US methane anomaly viewed from space. Geophysical Research Letters. 2014-10-16, roč. 41, čís. 19, s. 6898–6903. Dostupné online [cit. 2025-11-25]. ISSN0094-8276. doi:10.1002/2014GL061503. (anglicky)
CHENG, Chin-Hsien; REDFERN, Simon A. T. Impact of interannual and multidecadal trends on methane-climate feedbacks and sensitivity. Nature Communications. 2022-06-23, roč. 13, čís. 1. Dostupné online [cit. 2025-11-25]. ISSN2041-1723. doi:10.1038/s41467-022-31345-w. PMID35739128. (anglicky)
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ZHANG, Yuzhong; GAUTAM, Ritesh; PANDEY, Sudhanshu. Quantifying methane emissions from the largest oil-producing basin in the United States from space. Science Advances. 2020-04-24, roč. 6, čís. 17. Dostupné online [cit. 2025-11-25]. ISSN2375-2548. doi:10.1126/sciadv.aaz5120. PMID32494644. (anglicky)
HOWARTH, Robert W. Ideas and perspectives: is shale gas a major driver of recent increase in global atmospheric methane?. Biogeosciences. 2019-08-14, roč. 16, čís. 15, s. 3033–3046. Dostupné online [cit. 2025-11-25]. ISSN1726-4189. doi:10.5194/bg-16-3033-2019. (anglicky)
REN, Xinrong; HALL, Dolly L.; VINCIGUERRA, Timothy. Methane Emissions from the Marcellus Shale in Southwestern Pennsylvania and Northern West Virginia Based on Airborne Measurements. Journal of Geophysical Research: Atmospheres. 2019-02-16, roč. 124, čís. 3, s. 1862–1878. Dostupné online [cit. 2025-11-25]. ISSN2169-897X. doi:10.1029/2018JD029690. (anglicky)
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KAMRA, D.N.; AGARWAL, N.; SAKTHIVEL, P.C. Garlic as a rumen modifier for eco-friendly and economic livestock production. Journal of Applied Animal Research. 2012-06, roč. 40, čís. 2, s. 90–96. Dostupné online [cit. 2025-11-25]. ISSN0971-2119. doi:10.1080/09712119.2011.607764. (anglicky)
MAIA, Margarida R. G.; FONSECA, António J. M.; OLIVEIRA, Hugo M. The Potential Role of Seaweeds in the Natural Manipulation of Rumen Fermentation and Methane Production. Scientific Reports. 2016-08-30, roč. 6, čís. 1. Dostupné online [cit. 2025-11-25]. ISSN2045-2322. doi:10.1038/srep32321. (anglicky)
KINLEY, Robert D.; DE NYS, Rocky; VUCKO, Matthew J. The red macroalgae Asparagopsis taxiformis is a potent natural antimethanogenic that reduces methane production during in vitro fermentation with rumen fluid. Animal Production Science. 2016, roč. 56, čís. 3, s. 282. Dostupné online [cit. 2025-11-25]. ISSN1836-0939. doi:10.1071/AN15576. (anglicky)
ROQUE, Breanna M.; VENEGAS, Marielena; KINLEY, Robert D. Red seaweed (Asparagopsis taxiformis) supplementation reduces enteric methane by over 80 percent in beef steers. PLOS ONE. 2021-03-17, roč. 16, čís. 3, s. e0247820. Dostupné online [cit. 2025-11-25]. ISSN1932-6203. doi:10.1371/journal.pone.0247820. (anglicky)
BACA-GONZÁLEZ, Victoria; ASENSIO-CALAVIA, Patricia; GONZÁLEZ-ACOSTA, Sergio. Are Vaccines the Solution for Methane Emissions from Ruminants? A Systematic Review. Vaccines. 2020-08-20, roč. 8, čís. 3, s. 460. Dostupné online [cit. 2025-11-25]. ISSN2076-393X. doi:10.3390/vaccines8030460. PMID32825375. (anglicky)