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1.
Front Pharmacol ; 14: 1149809, 2023.
Article in English | MEDLINE | ID: covidwho-2249060

ABSTRACT

Macroautophagy (hereafter referred to as autophagy), a highly conserved metabolic process, regulates cellular homeostasis by degrading dysfunctional cytosolic constituents and invading pathogens via the lysosomal system. In addition, autophagy selectively recycles specific organelles such as damaged mitochondria (via mitophagy), and lipid droplets (LDs; via lipophagy) or eliminates specialized intracellular pathogenic microorganisms such as hepatitis B virus (HBV) and coronaviruses (via virophagy). Selective autophagy, particularly mitophagy, plays a key role in the preservation of healthy liver physiology, and its dysfunction is connected to the pathogenesis of a wide variety of liver diseases. For example, lipophagy has emerged as a defensive mechanism against chronic liver diseases. There is a prominent role for mitophagy and lipophagy in hepatic pathologies including non-alcoholic fatty liver disease (NAFLD), hepatocellular carcinoma (HCC), and drug-induced liver injury. Moreover, these selective autophagy pathways including virophagy are being investigated in the context of viral hepatitis and, more recently, the coronavirus disease 2019 (COVID-19)-associated hepatic pathologies. The interplay between diverse types of selective autophagy and its impact on liver diseases is briefly addressed. Thus, modulating selective autophagy (e.g., mitophagy) would seem to be effective in improving liver diseases. Considering the prominence of selective autophagy in liver physiology, this review summarizes the current understanding of the molecular mechanisms and functions of selective autophagy (mainly mitophagy and lipophagy) in liver physiology and pathophysiology. This may help in finding therapeutic interventions targeting hepatic diseases via manipulation of selective autophagy.

2.
J Cell Sci ; 134(15)2021 Aug 01.
Article in English | MEDLINE | ID: covidwho-1374126

ABSTRACT

The existence of constantly evolving dynamic interactions between the host and the pathogen determines their fate in this continuous arms race. Hence, identifying the molecular basis of processes that reinforce host defensive strategies to eliminate intracellular pathogens is of utmost significance. Pathogenic intrusion activates autophagy and phagocytic pathways that culminate in the lysosome, a vital organelle responsible for pathogen clearance. The transcription factor TFEB plays a pivotal role in autophagy-lysosomal function. Although TFEB is an emerging transcription factor in the field of immune signaling pathways, its role in infectious diseases remains contentious. Recent evidence suggests that infection with certain bacterial and viral pathogens causes TFEB, which is normally located in the cytoplasm, to translocate to the nucleus. There, it activates the transcription of genes that trigger the autophagy-lysosomal and inflammatory pathways to target intracellular pathogens. It is known that some pathogens modulate TFEB to establish themselves inside the host; in some cases, pathogens restrict TFEB to the cytoplasm, whereas in others, functional TFEB fuels pathogen survival and replication. However, the key regulators and molecular mechanisms that decide the outcome of TFEB function during intracellular infection are not clear. In this Review, we attempt to dissect the complex functions of TFEB in host-pathogen interactions and explore the suitability of TFEB as a therapeutic target of clinical relevance.

3.
Elife ; 92020 12 15.
Article in English | MEDLINE | ID: covidwho-977809

ABSTRACT

Vaccines are powerful tools to develop immune memory to infectious diseases and prevent excess mortality. In older adults, however vaccines are generally less efficacious and the molecular mechanisms that underpin this remain largely unknown. Autophagy, a process known to prevent aging, is critical for the maintenance of immune memory in mice. Here, we show that autophagy is specifically induced in vaccine-induced antigen-specific CD8+ T cells in healthy human volunteers. In addition, reduced IFNγ secretion by RSV-induced T cells in older vaccinees correlates with low autophagy levels. We demonstrate that levels of the endogenous autophagy-inducing metabolite spermidine fall in human T cells with age. Spermidine supplementation in T cells from old donors recovers their autophagy level and function, similar to young donors' cells, in which spermidine biosynthesis has been inhibited. Finally, our data show that endogenous spermidine maintains autophagy via the translation factor eIF5A and transcription factor TFEB. In summary, we have provided evidence for the importance of autophagy in vaccine immunogenicity in older humans and uncovered two novel drug targets that may increase vaccination efficiency in the aging context.


Subject(s)
Aging/immunology , Autophagy/immunology , CD8-Positive T-Lymphocytes/immunology , Respiratory Syncytial Virus Vaccines/immunology , Spermidine/pharmacology , Adjuvants, Immunologic/pharmacology , Adult , Aged , Animals , Basic Helix-Loop-Helix Leucine Zipper Transcription Factors/metabolism , Cell Line, Tumor , Humans , Immunologic Memory/immunology , Interferon-gamma/blood , Jurkat Cells , Mice , Mice, Inbred C57BL , Mice, Knockout , Middle Aged , Peptide Initiation Factors/metabolism , RNA-Binding Proteins/metabolism , Respiratory Syncytial Viruses/immunology , Spermidine/blood , Vaccination , Young Adult
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