Immune signal transduction in leishmaniasis from natural to artificial systems: role of feedback loop insertion

Milsee Mol1, Milind S Patole, Shailza Singh

  • 1National Centre for Cell Science, NCCS Complex, Ganeshkhind, Pune University Campus, Pune 411007, India.

Insights

Leishmaniasis immune signaling involves CD14-TLR, TNF, and EGFR pathways. A synthetic gene circuit with positive feedback enhances intercellular communication for synchronized immune responses and disease resolution.

Area of Science:

  • Immunology
  • Systems Biology
  • Computational Biology

Background:

  • Leishmaniasis involves modulated immune signals (CD14-TLR, TNF) potentially linked to the Epidermal Growth Factor Receptor (EGFR) pathway.
  • EGFR signaling is crucial for wound healing, and its crosstalk with immune pathways offers therapeutic targets.

Purpose of the Study:

  • To reconstruct and analyze the signaling network in leishmaniasis.
  • To investigate the role of crosstalk points between immune and EGFR pathways.
  • To explore the potential of a synthetic gene circuit for modulating immune cell communication.

Main Methods:

  • Network reconstruction incorporating a positive feedback loop.
  • Ordinary Differential Equation (ODE) based simulations using SimBiology in MATLAB.
  • Sensitivity analysis, network topology calculation (Cytoscape, adjacency matrix), and Principal Component Analysis (PCA).

Main Results:

  • Identified five key crosstalk points (NIK, IκB-NFκB, MKKs) with high flux and sensitivity.
  • PI3K within the EGFR pathway demonstrated high flux and sensitivity.
  • PCA revealed high scores for cytoplasmic ERK1/2, PI3K, Atk, STAT1/3, and nuclear JNK, with 20% of parameters being crucial.

Conclusions:

  • EGFR links to CD14-TLR and TNF via MAPK crosstalk points.
  • A synthetic gene circuit can control these pathways through upstream components like Ras and Raf.
  • Targeting PI3K in the EGFR pathway and utilizing gene circuits may promote disease resolution in leishmaniasis.
Abstract

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