RUMINANT NUTRITION SYMPOSIUM: Role of fermentation acid absorption in the regulation of ruminal pH12
Симпозиум по питанию жвачных: роль абсорбции продуктов ферментации в регуляции рН рубца
2010-10-16
SCID: 54.1/eq4vmg3z
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acetate-bicarbonate exchangemonocarboxylate transporter (MCT1)ruminal pH regulationshort-chain fatty acid absorptionsodium-proton exchanger (NHE)
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Abstract (AI)
Highly fermentable diets are rapidly converted to organic acids [i.e., short-chain fatty acids (SCFA) and lactic acid] within the rumen. The resulting release of protons can constitute a challenge to the ruminal ecosystem and animal health. Health disturbances, resulting from acidogenic diets, are classified as subacute and acute acidosis based on the degree of ruminal pH depression. Although increased acid production is a nutritionally desired effect of increased concentrate feeding, the accumulation of protons in the rumen is not. Consequently, mechanisms of proton removal and their quantitative importance are of major interest. Saliva buffers (i.e., bicarbonate, phosphate) have long been identified as important mechanisms for ruminal proton removal. An even larger proportion of protons appears to be removed from the rumen by SCFA absorption across the ruminal epithelium, making efficiency of SCFA absorption a key determinant for the individual susceptibility to subacute ruminal acidosis. Proceeding initially from a model of exclusively diffusional absorption of fermentation acids, several protein-dependent mechanisms have been discovered over the last 2 decades. Although the molecular identity of these proteins is mostly uncertain, apical acetate absorption is mediated, to a major degree, via acetate-bicarbonate exchange in addition to another nitrate-sensitive, bicarbonate-independent transport mechanism and lipophilic diffusion. Propionate and butyrate also show partially bicarbonate-dependent transport modes. Basolateral efflux of SCFA and their metabolites has to be mediated primarily by proteins and probably involves the monocarboxylate transporter (MCT1) and anion channels. Although the ruminal epithelium removes a large fraction of protons from the rumen, it also recycles protons to the rumen via apical sodium-proton exchanger, NHE. The latter is stimulated by ruminal SCFA absorption and salivary Na(+) secretion and protects epithelial integrity. Finally, SCFA absorption also accelerates urea transport into the rumen, which via ammonium recycling, may remove protons from rumen to the blood. Ammonium absorption into the blood is also stimulated by luminal SCFA. It is suggested that the interacting transport processes for SCFA, urea, and ammonia represent evolutionary adaptations of ruminants to actively coordinate energy fermentation, protein assimilation, and pH regulation in the rumen.
Key Findings
1
Apical acetate absorption is largely mediated by acetate-bicarbonate exchange, plus a nitrate-sensitive, bicarbonate-independent transport mechanism and lipophilic diffusion.
2
Basolateral efflux of SCFA and their metabolites is protein-mediated, likely involving monocarboxylate transporter (MCT1) and anion channels.
3
Propionate and butyrate absorption include partially bicarbonate-dependent transport modes rather than purely passive diffusion.
4
Ruminal epithelium recycles protons to the lumen via apical sodium-proton exchanger (NHE), which is stimulated by SCFA absorption and salivary Na+ secretion and helps protect epithelial integrity.
5
SCFA absorption accelerates urea transport into the rumen and stimulates ammonium absorption into blood, enabling proton removal via ammonium recycling and coordinating fermentation, protein assimilation, and pH regulation.
6
SCFA absorption across the ruminal epithelium removes a larger proportion of ruminal protons than salivary buffering, making absorption efficiency key to susceptibility to subacute ruminal acidosis.
Research Object
Fermentation acid (SCFA and lactic acid) absorption across the ruminal epithelium in ruminant animals
Research Subject
Mechanisms and quantitative role of fermentation acid absorption and associated transport processes (acetate-bicarbonate exchange, other protein-mediated transporters, MCT1, anion channels, NHE, urea/ammonium transport) in regulating ruminal pH and susceptibility to subacute/acute ruminal acidosis
Publication Details
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2010-10-16
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