4.6 Article

Biofilm Roughness Determines Cryptosporidium parvum Retention in Environmental Biofilms

Journal

APPLIED AND ENVIRONMENTAL MICROBIOLOGY
Volume 78, Issue 12, Pages 4187-4193

Publisher

AMER SOC MICROBIOLOGY
DOI: 10.1128/AEM.08026-11

Keywords

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Funding

  1. National Science Foundation [0545687]
  2. Directorate For Engineering
  3. Div Of Chem, Bioeng, Env, & Transp Sys [0545687] Funding Source: National Science Foundation

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The genus Cryptosporidium is a group of waterborne protozoan parasites that have been implicated in significant outbreaks of gastrointestinal infections throughout the world. Biofilms trap these pathogens and can contaminate water supplies through subsequent release. Biofilm microbial assemblages were collected seasonally from three streams in eastern Pennsylvania and used to grow biofilms in laboratory microcosms. Daily oocyst counts in the influx and efflux flow allowed the calculation of daily oocyst retention in the biofilm. Following the removal of oocysts from the influx water, oocyst attachment to the biofilm declined to an equilibrium state within 5 days that was sustained for at least 25 days. Varying the oocyst loading rate for the system showed that biofilm retention could be saturated, suggesting that discrete binding sites determined the maximum number of oocysts retained. Oocyst retention varied seasonally but was consistent across all three sites; however, seasonal oocyst retention was not consistent across years at the same site. No correlation between oocyst attachment and any measured water quality parameter was found. However, oocyst retention was strongly correlated with biofilm surface roughness and roughness varied among seasons and across years. We hypothesize that biofilm roughness and oocyst retention are dependent on environmentally driven changes in the biofilm community rather than directly on water quality conditions. It is important to understand oocyst transport dynamics to reduce risks of human infection. Better understanding of factors controlling biofilm retention of oocysts should improve our understanding of oocyst transport at different scales.

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