Human-induced pluripotent stem cell-derived macrophages and their immunological function in response to tuberculosis

Danping Hong1,2, Jiongyan Ding1,2, Ouyang Li1,2

  • 1College of Life Science, Zhejiang Sci-tech University, 928 Second Avenue, Xiasha Higher Education Zone, Hangzhou, China.

Abstract

Insights

Human induced pluripotent stem cell-derived macrophages (hiPS-Mφ) effectively respond to tuberculosis infection, mimicking responses of traditional macrophages. This research provides a new model for studying rare diseases and tuberculosis pathogenesis.

Area of Science:

  • Stem cell biology
  • Immunology
  • Infectious diseases

Background:

  • Induced pluripotent stem cells (iPS) offer a standardized method for generating macrophages (Mφ).
  • Macrophages are crucial in disease pathogenesis, especially tuberculosis.
  • Limited information exists on human iPS-derived macrophages (hiPS-Mφ) response to tuberculosis.

Purpose of the Study:

  • To establish and characterize hiPS-Mφ.
  • To investigate the response of hiPS-Mφ to Bacillus Calmette-Guérin (BCG) infection.
  • To compare hiPS-Mφ response to BCG with a human monocyte cell line (THP-1-Mφ).

Main Methods:

  • hiPS-Mφ generated via embryoid body formation using feeder-free culture.
  • Characterization included morphology, staining (Giemsa, α-NAE), phagocytosis, and surface phenotype (CD14, CD11b, CD40, CD68, MHC-II).
  • Response to BCG infection assessed via apoptosis (Annexin V-FITC), nitric oxide (NO) production, TNF-α expression, Caspase-3 activity, and Bcl-2 expression.

Main Results:

  • hiPS-Mφ exhibited macrophage-like morphology, phenotype, and function, comparable to THP-1-Mφ.
  • BCG infection induced significant apoptosis (37.77%) in hiPS-Mφ, similar to THP-1-Mφ (37.1%).
  • BCG infection increased NO production and TNF-α expression, elevated Caspase-3 activity, and decreased Bcl-2 expression in hiPS-Mφ.

Conclusions:

  • hiPS-Mφ demonstrate immunological function against BCG infection through apoptosis and inflammatory mediator production.
  • These findings establish hiPS-Mφ as a viable model for studying tuberculosis and potentially rare diseases.
  • This research addresses limitations in primary cell availability for disease-specific research.

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