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Biology subjects

Byrnes, K.

Publications and source records attributed to Byrnes, K..

2 recordsLinked to original sources

Induction of TFEB promotes Kupffer cell survival and reduces lipid accumulation and inflammation in MASLD

Kupffer cells (KCs) are the tissue-resident macrophage of the liver where they serve a critical role in maintaining liver tissue homeostasis and as a filter for circulation. The composition of liver macrophages changes during metabolic dysfunction-associated liver disease (MASLD), with the loss of resident KCs being a hallmark of disease progression. The mechanism(s) and consequences of KC death in metabolic liver disease have yet to be defined. Transcription factor EB (TFEB) is a master regulator of lysosome function and lipid metabolism which has been shown to protect macrophages from lipid stress in atherosclerosis. We hypothesized that TFEB would improve KC fitness in MASLD. To investigate this possibility, we created a transgenic mice in which TFEB was induced specifically in KCs. We found that TFEB induction protected KCs from cell death in two mouse models of MASLD. KC preservation through TFEB induction reduced liver steatosis via a mechanism that was dependent on macrophage lysosomal lipolysis and mitochondrial fatty acid oxidation. The protection from cell death in TFEB KCs was the result of reduced oxidative stress and ferroptosis through a mechanism that involved enhanced NADPH levels. Together, we provide evidence that TFEB promotes KC fitness during MASLD and orchestrates beneficial effects on liver pathology, thus providing potential targets to develop cell-specific therapeutics.

immunology↗

Impaired hepatic autophagy exacerbates xenobiotics induced liver injury

Xenobiotics can activate the hepatic survival pathway, but it is not clear how impaired hepatic survival pathways may affect xenobiotic-induced liver injury. We investigated the role of hepatic autophagy, a cellular survival pathway, in cholestatic liver injury driven by a xenobiotic. Here we demonstrate that DDC diet impaired autophagic flux, resulting in the accumulation of p62-Ub-intrahyaline bodies (IHBs) but not the Mallory Denk-Bodies (MDBs). Impaired autophagic flux was linked to a deregulated hepatic protein-chaperonin system and a significant decline in Rab family proteins. In addition, we demonstrate that heterozygous deletion of Atg7, a key autophagy gene, aggravated the p62-Ub-IHB accumulation and cholestatic liver injury. Moreover, we showed that p62-Ub-IHB accumulation did not activate the proteostasis-related ER stress signaling pathway, but rather activated the NRF2 pathway and suppressed the FXR nuclear receptor, resulting in cholestatic liver injury. Conclusion: Impaired autophagy exacerbates xenobiotic-induced cholestatic liver injury. Promotion of autophagy may represent a new therapeutic approach for xenobiotic-induced liver injury.

pharmacology and toxicology↗