Quantum relaxometry for detecting biomolecular interactions with single NV centers

M Min Li Q Qi Zhang X Xi Kong (Department of Physics, National Laboratory of Solid State Microstructures) S Sheng Zhao (College of Materials Science and Technology) B Bin-Bin Pan (State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry) Z Ziting Sun (School of Physical Sciences) P Pei Yu (Smart Hybrid Materials Laboratory (SHMs), Chemistry Program, Physical Science and Engineering Division) Z Zhecheng Wang M Mengqi Wang W Wentao Ji F Fei Kong (School of Physical Sciences) G Guanglei Cheng (School of Physical Sciences) S Si Wu Y Ya Wang S Sanyou Chen (School of Physical Sciences) X Xun-Cheng Su (State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry) F Fazhan Shi

Abstract

The investigation of biomolecular interactions at the single-molecule level has emerged as a pivotal research area in life science, particularly through optical, mechanical, and electrochemical approaches. Spins existing widely in biological systems offer a unique degree of freedom for detecting such interactions. However, most previous studies have been largely confined to ensemble-level detection in the spin degree. Here, we developed a molecular interaction analysis method approaching single-molecule level based on relaxometry using the quantum sensor, nitrogen-vacancy (NV) center in diamond. Experiments utilized an optimized diamond surface functionalized with a polyethylenimine nanogel layer, achieving ∼ 10 nm average protein distance and mitigating interfacial steric hindrance. Then we measured the strong interaction between streptavidin and spin-labeled biotin complexes, as well as the weak interaction between bovine serum albumin and biotin complexes, at both the micrometer scale and nanoscale. For the micrometer-scale measurements using ensemble NV centers, we reexamined the often-neglected fast relaxation component and proposed a relaxation rate evaluation method, substantially enhancing the measurement sensitivity. Furthermore, we achieved nanoscale detection approaching single-molecule level using single NV centers. This methodology holds promise for applications in molecular screening, identification, and kinetic studies at the single-molecule level, offering critical insights into molecular function and activity mechanisms.

Article Details

Volume / Issue Vol. 122, Issue 35
Published September 02, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (17)

M

Min Li

Q

Qi Zhang

X

Xi Kong

Department of Physics, National Laboratory of Solid State Microstructures

S

Sheng Zhao

College of Materials Science and Technology

B

Bin-Bin Pan

State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry

Z

Ziting Sun

School of Physical Sciences

P

Pei Yu

Smart Hybrid Materials Laboratory (SHMs), Chemistry Program, Physical Science and Engineering Division

Z

Zhecheng Wang

M

Mengqi Wang

W

Wentao Ji

F

Fei Kong

School of Physical Sciences

G

Guanglei Cheng

School of Physical Sciences

S

Si Wu

Y

Ya Wang

S

Sanyou Chen

School of Physical Sciences

X

Xun-Cheng Su

State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry

F

Fazhan Shi