Ion Exchange Biomaterials to Capture Daptomycin and Prevent Resistance Evolution in Off-Target Bacterial Populations

Shang-Lin Yeh1, Naveen Narasimhalu1, Landon G Vom Steeg2

  • 1Department of Chemical Engineering, The Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Insights

Cholestyramine, an ion exchange biomaterial, removes daptomycin (DAP) from the gut by electrostatic adsorption. This mechanism prevents DAP resistance evolution in gut bacteria, offering new therapeutic strategies.

Area of Science:

  • Biomaterials Science
  • Pharmacology
  • Microbiology

Background:

  • Daptomycin (DAP) is a critical antibiotic for multidrug-resistant Gram-positive infections.
  • DAP's biliary excretion leads to gastrointestinal (GI) presence, promoting resistance in off-target bacteria like Enterococcus faecium.
  • Previous studies showed cholestyramine prevents DAP resistance enrichment in mice.

Purpose of the Study:

  • To investigate the interfacial interactions between ion exchange biomaterials (IXB) and daptomycin (DAP).
  • To elucidate the molecular and colloidal mechanisms of DAP removal from the GI tract by IXB.
  • To explore optimizing cholestyramine therapy for preventing DAP resistance.

Main Methods:

  • Measured IXB-mediated DAP capture in controlled pH/electrolyte solutions.
  • Assessed DAP removal in simulated intestinal fluid (SIF).
  • Analyzed adsorption dynamics using unsteady-state diffusion-adsorption mass balance.

Main Results:

  • IXB electrostatically adsorbs anionic DAP via a time-dependent, diffusion-controlled process.
  • Adsorption dynamics are accurately described by unsteady-state diffusion-adsorption mass balance.
  • Maximum DAP removal capacity exceeds stoichiometric ratios due to DAP self-assembly.

Conclusions:

  • The study reveals the electrostatic adsorption mechanism of DAP by IXB.
  • Findings support optimizing cholestyramine as an adjuvant therapy to prevent DAP resistance.
  • This research may guide the design of novel biomaterials for targeted antibiotic removal.