4.7 Article

Stable and Highly Efficient Antibody-Nanoparticles Conjugation

期刊

BIOCONJUGATE CHEMISTRY
卷 32, 期 6, 页码 1146-1155

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.bioconjchem.1c00192

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资金

  1. Australian Research Council Research Hub for Integrated Device for End-user Analysis at Low-levels [IH150100028]
  2. ARC Discovery Early Career Researcher Award Scheme [DE180100669]
  3. Australia China Science and Research Fund Joint Research Centre for Point-of-Care Testing [ACSRF658277, SQ2017YFGH001190]
  4. National Health and Medical Research Council (NHMRC) Dementia Research Fellowship [APP1101258]
  5. UTS International Research Scholarship

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The chain length of poly(oligo(ethylene glycol) methyl ether acrylate) (POEGMEA) affects the colloidal stability and antibody-conjugation efficiency of nanoparticles. Short POEGMEA chains cannot effectively stabilize the nanoparticles, while long chains hinder efficient conjugation to antibodies. Specifically, the polymer containing 13 OEGMEA units shows the highest binding efficiency for antibody molecules.
Functional ligands and polymers have frequently been used to yield target-specific bio-nanoconjugates. Herein, we provide a systematic insight into the effect of the chain length of poly(oligo (ethylene glycol) methyl ether acrylate) (POEGMEA) containing polyethylene glycol on the colloidal stability and antibody-conjugation efficiency of nanoparticles. We employed Reversible Addition-Fragmentation Chain Transfer (RAFT) to design diblock copolymers composed of 7 monoacryloxyethyl phosphate (MAEP) units and 6, 13, 35, or 55 OEGMEA units. We find that when the POEGMEA chain is short, the polymer cannot effectively stabilize the nanoparticles, and when the POEGMEA chain is long, the nanoparticles cannot be efficiently conjugated to antibody. In other words, the majority of the carboxylic groups in larger POEGMEA chains are inaccessible to further chemical modification. We demonstrate that the polymer containing 13 OEGMEA units can effectively bind up to 64% of the antibody molecules, while the binding efficiency drops to 50% and 0% for the polymer containing 35 and 55 OEGMEA units. Moreover, flow cytometry assay statistically shows that about 9% of the coupled antibody retained its activity to recognize B220 biomarkers on the B cells. This work suggests a library of stabile, specific, and bioactive lanthanide-doped nanoconjugates for flow cytometry and mass cytometry application.

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