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Published on: January 30, 2012
Charge-Engineered Polyglycerol Nanodiamonds for Enhanced Intestinal Retention and NV Spin Imaging in Caenorhabditis
Kazuki Kinjo1, Fumiya Kamada1, Yumiko Taki1
1Department of Chemistry, Graduate School of Environmental, Life, Natural Science and Technology, Okayama University, Okayama700-8530, Japan.
Abstract:
Surface condition critically influences the biological labeling and performance of nanodiamond (ND) quantum sensors hosting nitrogen-vacancy (NV) spins. Polyglycerol (PG) grafting improves colloidal stability and suppresses nonspecific biomolecular adsorption; however, it can also reduce intestinal retention, making sufficient ND loading a key challenge for in vivo optically detected magnetic resonance (ODMR) imaging. Here, we introduce PG-grafted NDs with different terminal groups, -COOH, OSO3Na, and NH2, to investigate charge-dependent biocompatibility for whole-intestinal ODMR imaging in Caenorhabditis elegans (C. elegans). Positively charged ND-PG-NH2 exhibits the highest intestinal retention in C. elegans without detectable toxicity while maintaining bright fluorescence and stable NV spin signals. Combined with an adaptive masking algorithm to remove halo artifacts resulting from strong fluorescence, this labeling strategy enables reliable two-dimensional in vivo spin-active fluorescence imaging over the entire worm body. These findings identify surface-charge engineering of ND-PG-NH2 as a practical strategy for establishing bright and biocompatible workflows for quantum-sensor-based bioimaging.
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