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James, L. P.

Publications and source records attributed to James, L. P..

2 recordsLinked to original sources

Blocking mitochondrial alanine and pyruvate metabolism in hepatocytes worsens acetaminophen-induced liver injury in mice

Pyruvate is a critical intermediary metabolite in gluconeogenesis, lipogenesis, as well as NADH production. As a result, there is growing interest in targeting the mitochondrial pyruvate carrier (MPC) complex in liver and metabolic diseases. However, recent in vitro data indicate that MPC inhibition diverts glutamine/glutamate away from glutathione synthesis and toward glutaminolysis to compensate for loss of pyruvate oxidation, possibly sensitizing cells to oxidative insult. Here, we explored this using the clinically relevant acetaminophen (APAP) overdose model of acute liver injury, which is driven by oxidative stress. We report that MPC inhibition does indeed sensitize the liver to APAP-induced injury in vivo, but only with concomitant loss of alanine aminotransferase 2 (ALT2). Pharmacologic and genetic manipulation of neither MPC2 nor ALT2 alone affected APAP toxicity, but liver-specific double knockout (DKO) of these proteins significantly worsened the liver damage. Further investigation confirmed that DKO impaired glutathione synthesis and increased urea cycle flux, consistent with increased glutaminolysis. Furthermore, APAP toxicity was exacerbated by inhibition of both the MPC and ALT in vitro. Thus, increased glutaminolysis and susceptibility to oxidative stress requires loss of both the MPC and ALT2 in vivo and exacerbates them in vitro. Finally, induction of ALT2 reduced APAP-induced injury.

pharmacology and toxicology↗

Exogenous phosphatidic acid reduces acetaminophen-induced liver injury in mice by activating the interleukin-6-Hsp70 axis through inter-organ crosstalk

We previously demonstrated that endogenous phosphatidic acid (PA) promotes liver regeneration after acetaminophen (APAP) hepatotoxicity in mice. Based on that, we hypothesized that exogenous PA is also beneficial. To test that, we treated mice with a toxic APAP dose at 0 h, followed by PA or vehicle at multiple timepoints. We then collected blood and liver at 6, 24, and 52 h. Post-treatment with PA protected against liver injury at 6 h, and the combination of PA and N-acetyl-cysteine (NAC) further reduced injury compared to NAC alone. Interestingly, PA had no effect on major early mechanisms of APAP toxicity, including APAP bioactivation, oxidative stress, JNK activation, and mitochondrial damage. However, transcriptomics revealed that PA activated interleukin-6 (IL-6) signaling in the liver, and IL-6 was increased in serum from PA-treated mice. Furthermore, PA did not protect against APAP in IL-6-deficient mice. In addition, IL-6 expression increased 18-fold in adipose tissue after PA, indicating that adipose tissue is a likely source of the increased IL-6 due to PA treatment. Surprisingly, however, exogenous PA did not alter regeneration, despite the widely accepted role of IL-6 in liver repair. These data reinforce the protective role of IL-6 in APAP hepatotoxicity, provide new insight into the role of IL-6 in liver regeneration, and indicate that exogenous PA or PA derivatives may one day be a useful adjunct treatment for APAP overdose with NAC.

pharmacology and toxicology↗