Biofilm roughness determines Cryptosporidium parvum retention in environmental biofilms

E A Wolyniak DiCesare1, B R Hargreaves, K L Jellison

  • 1Department of Earth and Environmental Science, Lehigh University, Bethlehem, Pennsylvania, USA. Elizabeth.w.dicesare@gmail.com

Insights

Biofilms trap Cryptosporidium, a waterborne parasite causing gastrointestinal illness. Biofilm surface roughness, not water quality, influences oocyst retention, impacting water contamination risks.

Area of Science:

  • Environmental microbiology
  • Waterborne pathogen research
  • Parasitology

Background:

  • Cryptosporidium is a significant waterborne protozoan parasite responsible for global gastrointestinal infections.
  • Biofilms act as reservoirs for Cryptosporidium, potentially contaminating water supplies.

Purpose of the Study:

  • To investigate the factors influencing Cryptosporidium oocyst retention in stream biofilms.
  • To understand the dynamics of oocyst transport and its implications for water safety.

Main Methods:

  • Seasonal collection of biofilm microbial assemblages from Pennsylvania streams.
  • Laboratory microcosm experiments to quantify daily oocyst retention in biofilms.
  • Analysis of oocyst attachment, loading rates, and correlation with water quality and biofilm surface roughness.

Main Results:

  • Oocyst attachment reached equilibrium within 5 days and persisted for at least 25 days.
  • Biofilm retention capacity was saturable, indicating discrete binding sites.
  • Oocyst retention showed seasonal variation but was site-consistent; however, year-to-year consistency varied.
  • No correlation was found between oocyst attachment and water quality parameters.
  • Oocyst retention strongly correlated with biofilm surface roughness, which varied seasonally and annually.

Conclusions:

  • Biofilm surface roughness, influenced by environmental changes in the microbial community, is a key factor in Cryptosporidium oocyst retention.
  • Understanding these retention dynamics is crucial for assessing and mitigating the risk of human infection from contaminated water sources.