Local Activation of the Alternative Pathway of Complement System in Mycotic Keratitis Patient Tear

Mohammed Razeeth Shait Mohammed1, Sandhya Krishnan1, Rabbind Singh Amrathlal2

  • 1Department of Proteomics, Aravind Medical Research Foundation, Dr. G. Venkataswamy Eye Research Institute, Aravind Eye Care System, Madurai, India.

Insights

Tear proteins, including complement system components, are present in patients with fungal keratitis. This study confirms the functional alternate complement pathway in tears, suggesting early infection activation and potential pathogen immune evasion.

Area of Science:

  • Ophthalmology
  • Immunology
  • Mycology

Background:

  • Mycotic keratitis is primarily caused by Aspergillus flavus and Fusarium solani in tropical regions.
  • Tear proteins are crucial for the innate immune response against fungal eye infections.

Purpose of the Study:

  • To investigate the presence and function of the alternate complement pathway in the tear film of mycotic keratitis patients.
  • To understand the host-pathogen interaction at the molecular level during fungal keratitis.

Main Methods:

  • Analysis of tear proteins from patients and controls using mass spectrometry.
  • In vitro binding assays of complement proteins (C3b, CFH) to fungal spores.
  • Functional assessment of the alternate complement pathway via hemolytic assays.

Main Results:

  • Complement proteins C3 and CFH were detected in the tears of patients but not controls.
  • Fungal spores were shown to bind C3b and CFH, facilitating complement complex formation.
  • Mass spectrometry confirmed the presence of alternate pathway proteins and membrane attack complex inhibitors (vitronectin, clusterin) in patient tears.
  • Functional assays demonstrated an active alternate complement pathway in patient tears.

Conclusions:

  • The alternate complement pathway is activated early during fungal keratitis.
  • The presence of negative regulators suggests the host attempts to control complement activity.
  • Fungal pathogens may evade the host complement system during infection.