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Fermentation acids inhibit amino acid deamination by Clostridium sporogenes MD1 via a mechanism involving a decline in intracellular glutamate rather than protonmotive force

机译:发酵酸通过蛋白质孢子酰基MD1抑制氨基酸脱氨基,通过涉及细胞内谷氨酸细胞内谷氨酸的下降而不是质子发作力

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Fermentation acids inhibited the growth and ammonia production of the amino-acid-fermenting bacterium Clostridium sporogenes MD1, but only when the pH was acidic. Such inhibition was traditionally explained by the ability of fermentation acids to act as uncouplers and decrease protonmotive force (Δp), but C. sporogenes MD1 grows even if the Δp is very low. Cell suspensions incubated with additional sodium chloride produced ammonia as rapidly at pH?5.0 as at pH?7.0, but cells incubated with additional sodium lactate were sensitive to even small decreases in extracellular pH. Similar results were obtained if the sodium lactate was replaced by sodium acetate or propionate. When extracellular pH declined, ΔpH increased even if sodium lactate was present. The cells accumulated intracellular lactate anion when the pH was acidic, and intracellular glutamate declined. Because amino acid deamination is linked to a transamination reaction involving glutamate dehydrogenase, the decrease in ammonia production could be explained by the decrease in intracellular glutamate. This latter hypothesis was consistent with the observation that extracellular glutamate addition restored amino acid deamination even though glutamate alone did not allow for the generation of ammonia.
机译:发酵酸抑制氨基酸发酵细菌梭菌孢菌素MD1的生长和氨产生,但仅当pH是酸性时。传统上通过发酵酸作为脱偶偶联的能力和减少原子发电(ΔP)的能力来解释这种抑制,但是C.宏指原MD1即使ΔP非常低。将细胞悬浮液与额外的氯化钠一起孵育,如在pH·7.0的pH·5.0时迅速地产生氨,但与另外的乳酸钠孵育的细胞对细胞外pH的甚至小降低均敏感。如果乳酸钠由乙酸钠或丙酸盐代替,则获得了类似的结果。当细胞外pH下降时,即使存在乳酸钠,Δph也增加。当pH是酸性时,细胞累积细胞内乳酸阴离子,并且细胞内谷氨酸下降。因为氨基酸脱氨基与涉及谷氨酸脱氢酶的缩醛反应连接,所以可以通过细胞内谷氨酸的降低来解释氨产量的降低。后一种假设与观察结果一致,即即使单独的谷氨酸单独谷氨酸不允许产生氨基酸酯的细胞外谷氨酸添加恢复氨基酸脱氨基。

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