Unfolded Protein Response Signaling in Liver Disorders: A 2023 Updated Review

Int J Mol Sci. 2023 Sep 14;24(18):14066. doi: 10.3390/ijms241814066.

Abstract

Endoplasmic reticulum (ER) is the site for synthesis and folding of secreted and transmembrane proteins. Disturbance in the functioning of ER leads to the accumulation of unfolded and misfolded proteins, which finally activate the unfolded protein response (UPR) signaling. The three branches of UPR-IRE1 (Inositol requiring enzyme 1), PERK (Protein kinase RNA-activated (PKR)-like ER kinase), and ATF6 (Activating transcription factor 6)-modulate the gene expression pattern through increased expression of chaperones and restore ER homeostasis by enhancing ER protein folding capacity. The liver is a central organ which performs a variety of functions which help in maintaining the overall well-being of our body. The liver plays many roles in cellular physiology, blood homeostasis, and detoxification, and is the main site at which protein synthesis occurs. Disturbance in ER homeostasis is triggered by calcium level imbalance, change in redox status, viral infection, and so on. ER dysfunction and subsequent UPR signaling participate in various hepatic disorders like metabolic (dysfunction) associated fatty liver disease, liver cancer, viral hepatitis, and cholestasis. The exact role of ER stress and UPR signaling in various liver diseases is not fully understood and needs further investigation. Targeting UPR signaling with drugs is the subject of intensive research for therapeutic use in liver diseases. The present review summarizes the role of UPR signaling in liver disorders and describes why UPR regulators are promising therapeutic targets.

Keywords: endoplasmic reticulum; hepatocellular carcinoma; liver disorders; non-alcoholic fatty liver disease; unfolded protein response.

Publication types

  • Review

MeSH terms

  • Endoplasmic Reticulum Stress
  • Humans
  • Liver Neoplasms*
  • Molecular Chaperones / metabolism
  • Signal Transduction
  • Unfolded Protein Response*

Substances

  • Molecular Chaperones