Lung matrix deposition of normal and alkylated plasma fibronectin: response to postsurgical sepsis

T P Brien1, P P Reddy, P A Vincent

  • 1Department of Physiology and Cell Biology, Albany Medical College, New York 12208, USA.

Insights

N-ethylmaleimide (NEM)-treated human plasma fibronectin (HFn) loses its ability to incorporate into lung extracellular matrix (ECM) in vivo. This modification retains phagocytosis stimulation but alters ECM deposition patterns, especially during bacteremia.

Area of Science:

  • Biochemistry
  • Immunology
  • Pulmonary Medicine

Background:

  • Plasma fibronectin (Fn) plays a dual role in the lung, aiding in debris clearance by macrophages and integrating into the lung extracellular matrix (ECM).
  • Understanding Fn's ECM incorporation is crucial for comprehending lung tissue repair and inflammatory responses.

Purpose of the Study:

  • To investigate whether N-ethylmaleimide (NEM)-treated human plasma fibronectin (HFn) retains its capacity for in vivo lung ECM incorporation.
  • To assess if NEM-treated HFn (NEM-HFn) maintains its ability to stimulate phagocytosis and bind to fibrin.

Main Methods:

  • Dual-label immunofluorescence was employed to compare the lung deposition of normal HFn and NEM-HFn in sheep models.
  • Sheep models included nonbacteremic (post-surgical) and bacteremic (infused with Pseudomonas aeruginosa) conditions.
  • Serial lung biopsies were analyzed to track the in vivo localization and deposition patterns of HFn and NEM-HFn.

Main Results:

  • NEM-HFn showed significantly reduced deposition in the lung interstitial matrix of nonbacteremic sheep compared to normal HFn.
  • In bacteremic sheep, both HFn and NEM-HFn exhibited enhanced lung deposition, but with distinct patterns.
  • Normal HFn displayed diffuse, fibrillar ECM incorporation, while NEM-HFn showed focal, punctate deposition, often associated with fibrin binding and inflammatory cells.

Conclusions:

  • Treatment of plasma fibronectin with N-ethylmaleimide significantly limits its fibrillar incorporation into the lung interstitial ECM in vivo.
  • NEM modification preserves phagocytosis-stimulating and fibrin-binding properties of fibronectin.
  • The findings highlight the specific structural alterations induced by NEM treatment affecting fibronectin's ECM integration.

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