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Improved localization precision via restricting confined biomolecule stochastic motion in single-molecule localization microscopy.

Authors :
Ni, Jielei
Cao, Bo
Niu, Gang
Chen, Danni
Liang, Guotao
Xia, Tingying
Li, Heng
Xu, Chen
Wang, Jingyu
Zhang, Wanlong
Zhang, Yilin
Yuan, Xiaocong
Ni, Yanxiang
Source :
Nanophotonics (21928606); Jan2022, Vol. 11 Issue 1, p53-65, 13p
Publication Year :
2022

Abstract

Single-molecule localization microscopy (SMLM) plays an irreplaceable role in biological studies, in which nanometer-sized biomolecules are hardly to be resolved due to diffraction limit unless being stochastically activated and accurately located by SMLM. For biological samples preimmobilized for SMLM, most biomolecules are cross-linked and constrained at their immobilizing sites but still expected to undergo confined stochastic motion in regard to their nanometer sizes. However, few lines of direct evidence have been reported about the detectability and influence of confined biomolecule stochastic motion on localization precision in SMLM. Here, we access the potential stochastic motion for each immobilized single biomolecule by calculating the displacements between any two of its localizations at different frames during sequential imaging of Alexa Fluor-647-conjugated oligonucleotides. For most molecules, localization displacements are remarkably larger at random frame intervals than at shortest intervals even after sample drift correction, increase with interval times and then saturate, showing that biomolecule stochastic motion is detected and confined around the immobilizing sizes in SMLM. Moreover, localization precision is inversely proportional to confined biomolecule stochastic motion, whereas it can be deteriorated or improved by enlarging the biomolecules or adding a post-crosslinking step, respectively. Consistently, post-crosslinking of cell samples sparsely stained for tubulin proteins results in a better localization precision. Overall, this study reveals that confined stochastic motion of immobilized biomolecules worsens localization precision in SMLM, and improved localization precision can be achieved via restricting such a motion. [ABSTRACT FROM AUTHOR]

Subjects

Subjects :
MICROSCOPY
TUBULINS
BIOMOLECULES

Details

Language :
English
ISSN :
21928606
Volume :
11
Issue :
1
Database :
Complementary Index
Journal :
Nanophotonics (21928606)
Publication Type :
Academic Journal
Accession number :
154109909
Full Text :
https://doi.org/10.1515/nanoph-2021-0481