Ectromelia virus suppresses expression of cathepsins and cystatins in conventional dendritic cells to efficiently

Magdalena Bossowska-Nowicka1, Matylda B Mielcarska1, Marta Romaniewicz2

  • 1Division of Immunology, Department of Preclinical Sciences, Faculty of Veterinary Medicine, Warsaw University of Life Sciences - SGGW, Ciszewskiego 8, 02-786, Warsaw, Poland.

BMC Microbiology
|May 12, 2019
PubMed
Abstract

Insights

Ectromelia virus (ECTV) infection suppresses cathepsins and cystatins in dendritic cells (DCs), impairing their antigen processing ability. This viral strategy helps ECTV evade immune responses and replicate effectively within host cells.

Area of Science:

  • Immunology
  • Virology
  • Cell Biology

Background:

  • Cathepsins are essential endosomal proteases for antigen processing and presentation by dendritic cells (DCs).
  • Cystatins are endogenous inhibitors that regulate cathepsin activity.
  • Poxviruses, like ectromelia virus (ECTV), can productively infect DCs and employ immune evasion strategies.

Purpose of the Study:

  • To investigate the impact of ECTV infection on cathepsin and cystatin levels and function in murine conventional DCs (cDCs).
  • To understand how ECTV manipulates host cell proteases for viral replication and immune evasion.

Main Methods:

  • Analysis of cathepsin and cystatin mRNA and protein levels in ECTV-infected JAWS II DCs and primary bone marrow-derived DCs.
  • Assay of cathepsin activity in infected cells.
  • Assessment of antigen uptake and processing by infected cDCs.
  • Microscopic examination of cathepsin and cystatin localization relative to viral replication centers.
  • Silencing of cathepsin genes using siRNA to assess their role in viral replication.

Main Results:

  • ECTV infection down-regulated mRNA and protein expression of cathepsin B, L, S, and cystatin B, C in DCs.
  • Cathepsin B, L, S activity was diminished in ECTV-infected cells, particularly at later infection stages.
  • ECTV-infected DCs showed impaired endocytosis and processing of soluble antigens.
  • Cathepsin L and cystatin B co-localized with viral replication centers in infected cDCs.
  • Silencing cathepsins B, L, or S increased viral yield in ECTV-infected cDCs.

Conclusions:

  • ECTV infection suppresses cathepsins and cystatins in cDCs, altering their distribution and impairing DC function.
  • This suppression represents a viral strategy to escape host immune responses and promote viral replication.
  • Understanding these mechanisms is crucial for developing strategies against poxvirus infections.

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