Research map: Highly expressed ACSF2 contributes to butyrate utilization in the rumen epithelium

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  1. Energy contributions of volatile fatty acids from the gastrointestinal tract in various species · E. N. Bergman · 1990 · 2769 citations · Cited by this paper
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  19. Development and physiology of the rumen and the lower gut: Targets for improving gut health · M.A. Steele · 2016 · 308 citations · Cited by this paper
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  21. Functional organization of the bovine rumen epithelium · Christopher James Graham · 2004 · 236 citations · Cited by this paper
  22. Fatty acid activation · Paul A. Watkins · 1997 · 222 citations · Cited by this paper
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  24. Butyrate enhances CPT1A activity to promote fatty acid oxidation and iTreg differentiation · Fengqi Hao · 2021 · 186 citations · Cited by this paper
  25. Hyperketonemia-Ketogenesis and Ketone Body Metabolism · E. N. Bergman · 1971 · 152 citations · Cited by this paper
  26. Wings, Horns, and Butterfly Eyespots: How Do Complex Traits Evolve? · Antónia Monteiro · 2009 · 146 citations · Cited by this paper
  27. Developmental changes in ketogenic enzyme gene expression during sheep rumen development1 · Michelle A. Lane · 2002 · 127 citations · Cited by this paper
  28. Enhancer evolution and the origins of morphological novelty · Mark Rebeiz · 2017 · 126 citations · Cited by this paper
  29. DeepMito: accurate prediction of protein sub-mitochondrial localization using convolutional neural networks · Castrense Savojardo · 2019 · 122 citations · Cited by this paper
  30. The effects of feeding procedure on closure of the oesophageal groove in young sheep · E. R. Ørskov · 1970 · 83 citations · Cited by this paper
  31. Activation of volatile fatty acids in bovine liver and rumen epithelium. Evidence for control by autoregulation · R. W. Ash · 1973 · 74 citations · Cited by this paper
  32. ACSF2 and lysine lactylation contribute to renal tubule injury in diabetes · Jingfang Chen · 2024 · 71 citations · Cited by this paper
  33. Absorption and metabolism of short‐chain fatty acids in ruminants · Niels Bastian Kristensen · 1998 · 61 citations · Cited by this paper
  34. Regulation of Volatile Fatty Acid Uptake by Mitochondrial Acyl CoA Synthetases of Bovine Liver · Catherine A. Ricks · 1981 · 54 citations · Cited by this paper
  35. Fasting-induced HMGCS2 expression in the kidney does not contribute to circulating ketones · Andrea H. Venable · 2022 · 47 citations · Cited by this paper
  36. Physiological adaptations of ruminants and their potential relevance for production systems · Marcus Clauß · 2017 · 46 citations · Cited by this paper
  37. Single-cell transcriptomic landscape of the sheep rumen provides insights into physiological programming development and adaptation of digestive strategies · Yuan Yuan · 2022 · 46 citations · Cited by this paper
  38. ACSS3 in brown fat drives propionate catabolism and its deficiency leads to autophagy and systemic metabolic dysfunction · Zhihao Jia · 2022 · 45 citations · Cited by this paper
  39. Utilization of volatile fatty acids in ruminants. III. Comparison of mitochondrial acyl coenzyme A synthetase activity and substrate specificity in different tissues · Robert Merold. Cook · 1969 · 43 citations · Cited by this paper

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