Analysis of ORP2-knockout hepatocytes uncovers a novel function in actin cytoskeletal regulation

Henriikka Kentala1, Annika Koponen1, Annukka M Kivelä1

  • 1Minerva Foundation Institute for Medical Research, Helsinki, Finland.

Insights

Oxysterol-binding protein homolog 2 (ORP2) regulates hepatocellular functions by impacting the actin cytoskeleton. ORP2 knockout cells exhibit defects in migration, adhesion, and proliferation, highlighting its novel role in lipid sensing and cell morphology.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Oxysterol-binding protein homolog 2 (ORP2) is known to be involved in lipid metabolism and steroid hormone production.
  • Its specific functions within hepatocytes, particularly concerning cellular dynamics, remain largely unexplored.

Purpose of the Study:

  • To investigate the role of ORP2 in hepatocytes by creating and analyzing ORP2-knockout (KO) cells.
  • To elucidate the impact of ORP2 deficiency on cellular functions, including transcriptome, morphology, migration, adhesion, and proliferation.

Main Methods:

  • CRISPR-Cas9 gene editing was used to generate ORP2-knockout HuH7 cells.
  • Transcriptome analysis via RNA sequencing and Ingenuity Pathway Analysis (IPA) were performed.
  • F-actin morphology, cell migration, adhesion, and proliferation assays were conducted. ORP2 interactome analysis was also performed.

Main Results:

  • ORP2 knockout resulted in significant changes in mRNA expression, affecting pathways related to cell movement, signaling, development, and morphology.
  • Abnormal F-actin morphology, impaired lamellipodia formation, reduced migration, adhesion, and proliferation were observed in ORP2-KO cells.
  • The study identified novel ORP2 interactors and highlighted RhoA signaling as a key affected pathway. Rescue experiments indicated the importance of the phosphoinositide binding site.

Conclusions:

  • ORP2 plays a critical role in regulating hepatocellular actin cytoskeleton dynamics.
  • ORP2 functions as a lipid-sensing regulator impacting cell migration, adhesion, and proliferation.
  • These findings reveal a novel function of ORP2 in maintaining hepatocellular integrity and function.

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