Functional characterization of the different oligomeric forms of human surfactant protein SP-D

Raquel Arroyo1, Mercedes Echaide2, Fernando Moreno-Herrero3

  • 1Department of Biochemistry, Faculty of Biology, Complutense University, Madrid, Spain; Research Institute "Hospital 12 de Octubre (imas12)", Madrid, Spain; Division of Neonatology and Pulmonary Biology, Perinatal Institute, Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229, USA.

Insights

Surfactant Protein D (SP-D) oligomeric forms exhibit varying immune functions. "Fuzzy balls" demonstrate the highest potency in binding and aggregating bacteria, outperforming hexamers and trimers.

Area of Science:

  • Immunology
  • Biochemistry
  • Structural Biology

Background:

  • Surfactant Protein D (SP-D) is a key component of the lung's innate immune system.
  • SP-D clears microorganisms through opsonization, aggregation, and direct killing.
  • SP-D exists in various oligomeric states, including trimers, hexamers, and "fuzzy balls".

Purpose of the Study:

  • To investigate functional differences between SP-D oligomeric forms.
  • To compare the lectin-dependent activity of recombinant human SP-D (rhSP-D) trimers, hexamers, and fuzzy balls.
  • To assess binding and aggregation capabilities against E. coli.

Main Methods:

  • Size exclusion chromatography was used to isolate SP-D oligomers.
  • Functional assays were performed on enriched fractions of trimers, hexamers, and fuzzy balls.
  • Binding and bacterial aggregation assays using E. coli were conducted.

Main Results:

  • "Fuzzy balls" showed the highest activity, with 2-fold greater binding and significant bacterial aggregation.
  • rhSP-D hexamers demonstrated efficient binding and aggregation (50-60%).
  • SP-D trimers bound bacteria but did not induce aggregation.

Conclusions:

  • SP-D potency in C-lectin dependent functions correlates with its oligomeric state.
  • "Fuzzy balls" are the most potent form for bacterial clearance mechanisms.
  • This study provides novel insights into the functional heterogeneity of SP-D oligomers.

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