4.8 Article

Dissecting Multivalent Lectin-Carbohydrate Recognition Using Polyvalent Multifunctional Glycan-Quantum Dots

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 139, Issue 34, Pages 11833-11844

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.7b05104

Keywords

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Funding

  1. Wellcome Trust [097354/Z/11/Z]
  2. BBSRC [BB/M005666/1]
  3. University of Leeds
  4. EPSRC
  5. Khon Kaen University and its Faculty of Medicine
  6. BBSRC [BB/M005666/1] Funding Source: UKRI
  7. EPSRC [EP/M028143/1, EP/K039202/1] Funding Source: UKRI
  8. Biotechnology and Biological Sciences Research Council [BB/M005666/1] Funding Source: researchfish
  9. Engineering and Physical Sciences Research Council [EP/M028143/1, 1643181, EP/K039202/1] Funding Source: researchfish
  10. Wellcome Trust [097354/Z/11/Z] Funding Source: Wellcome Trust

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Multivalent protein carbohydrate interactions initiate the first contacts between virus/bacteria and target cells, which ultimately lead to infection. Understanding the structures, and binding modes involved is vital to the design of specific, potent multivalent inhibitors. However, the lack of structural information on such flexible, complex, and multimeric cell surface membrane proteins has often hampered such endeavors. Herein, we report that quantum dots (QDs) displayed with a dense array of mono-/disaccharides are powerful probes for multivalent protein glycan interactions. Using a pair of closely related tetrameric lectins, DC-SIGN and DC-SIGNR, which bind to the HIV and Ebola virus glycoproteins (EBOV-GP) to augment viral entry and infect target cells, we show that such QDs efficiently dissect the different DC-SIGN/R-glycan binding modes (tetra-/di-/monovalent) through a combination of multimodal readouts: Forster resonance energy transfer (FRET), hydrodynamic size measurement, and transmission electron microscopy imaging. We also report a new QD-FRET method for quantifying QD-DC-SIGN/R binding affinity, revealing that DC-SIGN binds to the QD >100-fold tighter than does DC-SIGNR. This result is consistent with DC-SIGN's higher trans-infection efficiency of some HIV strains over DC-SIGNR. Finally, we show that the QDs potently inhibit DC-SIGN-mediated enhancement of EBOV-GP-driven transduction of target cells with IC50 values down to 0.7 nM, matching well to their DC-SIGN binding constant (apparent K-d = 0.6 nM) measured by FRET. These results suggest that the glycan-QDs are powerful multifunctional probes for dissecting multivalent protein ligand recognition and predicting glyconanoparticle inhibition of virus infection at the cellular level.

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