Human milk oligosaccharide conjugated dendritic polyglycerols as mucus-mimetic barriers for bacterial inhibition

Abstract Mucin glycoproteins play a vital role in body’s defense system yet remain underexplored due to their structural complexity and tendency to crosslink. Animal-derived mucins feature non-human glycosylation whilst synthetic mucin-mimetics often lack the structural diversity found in natural glycosylation. We report on a synthetic mucin-mimetic that employs carbohydrates derived from human milk presenting diverse and complex carbohydrates. We functionalized dendritic polyglycerol (dPG) with human milk oligosaccharides (HMOs) and redox-sensitive crosslinking domains to replicate mucus. Two molecular weight variations of dendritic polyglycerol conjugates were prepared (MW = 10 kDa and 550 kDa) and interconnected via disulfide bond with polyethylene glycol dithiol linker (PEG-2SH). The resultant hydrogels resemble mucus and demonstrate tunable viscoelastic properties. At 4-5% w/v, these properties are analogous to those observed in healthy human sputum. dPG-HMOs demonstrate inhibitory activity against Pseudomonas aeruginosa . dPG-HMO hydrogels enhance the natural ability of HMOs to inhibit biofilm formation showing that these conjugate materials have potential as a topical antiseptic or bioactive gel.

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Publication Details

Journal
Communications Materials
Published
2026-09-28
DOI
https://doi.org/10.1038/s43246-026-01374-9
Primary Topic
Glycosylation and Glycoproteins Research
Type
article
Field-Weighted Citation Impact
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Human milk oligosaccharide conjugated dendritic polyglycerols as mucus-mimetic barriers for bacterial inhibition

Ehsan Mohammadifar, Kevin Pagel, Peng Tang, Kai Ludwig et al.
Communications Materials
Glycosylation and Glycoproteins Research
article

Human milk oligosaccharide conjugated dendritic polyglycerols as mucus-mimetic barriers for bacterial inhibition

Ehsan Mohammadifar, Kevin Pagel, Peng Tang, Kai Ludwig, Boonya Thongrom, Rainer Haag, Raju Bej, Vlada Baikenova, Gaël M. Vos, Marc Safferthal, Yina Jiang, Sumit Singha Modak, Mayanka Jhamvar, Tanja Lange
article en

Abstract

Abstract Mucin glycoproteins play a vital role in body’s defense system yet remain underexplored due to their structural complexity and tendency to crosslink. Animal-derived mucins feature non-human glycosylation whilst synthetic mucin-mimetics often lack the structural diversity found in natural glycosylation. We report on a synthetic mucin-mimetic that employs carbohydrates derived from human milk presenting diverse and complex carbohydrates. We functionalized dendritic polyglycerol (dPG) with human milk oligosaccharides (HMOs) and redox-sensitive crosslinking domains to replicate mucus. Two molecular weight variations of dendritic polyglycerol conjugates were prepared (MW = 10 kDa and 550 kDa) and interconnected via disulfide bond with polyethylene glycol dithiol linker (PEG-2SH). The resultant hydrogels resemble mucus and demonstrate tunable viscoelastic properties. At 4-5% w/v, these properties are analogous to those observed in healthy human sputum. dPG-HMOs demonstrate inhibitory activity against Pseudomonas aeruginosa . dPG-HMO hydrogels enhance the natural ability of HMOs to inhibit biofilm formation showing that these conjugate materials have potential as a topical antiseptic or bioactive gel.

Communications Materials
Indian Institute of Technology Guwahati (IN), Fritz Haber Institute of the Max Planck Society (DE), Freie Universität Berlin (DE)
Openalex Percentile: Top 19%
Glycosylation and Glycoproteins Research
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