Intracellular manipulation and measurement with multipole magnetic tweezers
Xian Wang
1, 2
,
C. Ho
1
,
Y Tsatskis
3
,
Jia Yan Law
1
,
Z Zhang
1
,
M. Zhu
1, 4
,
C. Dai
1
,
F. Wang
5
,
M. Tan
6
,
S Hopyan
4, 7
,
H. McNeill
3, 8
,
Yu Sun
1, 2, 9
2
Institute of Biomaterials and Biomedical Engineering, Toronto, Ontario M5S 3G9, Canada.
|
3
Lunenfeld-Tanenbaum Research Institute, Mt. Sinai Hospital, Toronto, Ontario M5G 1X5, Canada.
|
5
HRG Central Institute of Robotics, HIT Robot Group, Harbin, Heilongjiang 150001, China.
|
7
Publication type: Journal Article
Publication date: 2019-03-13
scimago Q1
wos Q1
SJR: 5.940
CiteScore: 30.6
Impact factor: 27.5
ISSN: 24709476
PubMed ID:
33137746
Computer Science Applications
Mechanical Engineering
Artificial Intelligence
Control and Optimization
Abstract
A platform technology for magnetic manipulation and measurement substantially improves intracellular navigation and characterization. The capability to directly interrogate intracellular structures inside a single cell for measurement and manipulation is important for understanding subcellular and suborganelle activities, diagnosing diseases, and developing new therapeutic approaches. Compared with measurements of single cells, physical measurement and manipulation of subcellular structures and organelles remain underexplored. To improve intracellular physical measurement and manipulation, we have developed a multipole magnetic tweezers system for micromanipulation involving submicrometer position control and piconewton force control of a submicrometer magnetic bead inside a single cell for measurement in different locations (spatial) and different time points (temporal). The bead was three-dimensionally positioned in the cell using a generalized predictive controller that addresses the control challenge caused by the low bandwidth of visual feedback from high-resolution confocal imaging. The average positioning error was quantified to be 0.4 μm, slightly larger than the Brownian motion–imposed constraint (0.31 μm). The system is also capable of applying a force up to 60 pN with a resolution of 4 pN for a period of time longer than 30 min. The measurement results revealed that significantly higher stiffness exists in the nucleus’ major axis than in the minor axis. This stiffness polarity is likely attributed to the aligned actin filament. We also showed that the nucleus stiffens upon the application of an intracellularly applied force, which can be attributed to the response of structural protein lamin A/C and the intracellular stress fiber actin filaments.
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153
Total citations:
153
Citations from 2024:
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(32.03%)
Cite this
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Wang X. et al. Intracellular manipulation and measurement with multipole magnetic tweezers // Science Robotics. 2019. Vol. 4. No. 28.
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Wang X., Ho C., Tsatskis Y., Law J. Y., Zhang Z., Zhu M., Dai C., Wang F., Tan M., Hopyan S., McNeill H., Sun Yu. Intracellular manipulation and measurement with multipole magnetic tweezers // Science Robotics. 2019. Vol. 4. No. 28.
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RIS
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TY - JOUR
DO - 10.1126/scirobotics.aav6180
UR - https://doi.org/10.1126/scirobotics.aav6180
TI - Intracellular manipulation and measurement with multipole magnetic tweezers
T2 - Science Robotics
AU - Wang, Xian
AU - Ho, C.
AU - Tsatskis, Y
AU - Law, Jia Yan
AU - Zhang, Z
AU - Zhu, M.
AU - Dai, C.
AU - Wang, F.
AU - Tan, M.
AU - Hopyan, S
AU - McNeill, H.
AU - Sun, Yu
PY - 2019
DA - 2019/03/13
PB - American Association for the Advancement of Science (AAAS)
IS - 28
VL - 4
PMID - 33137746
SN - 2470-9476
ER -
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@article{2019_Wang,
author = {Xian Wang and C. Ho and Y Tsatskis and Jia Yan Law and Z Zhang and M. Zhu and C. Dai and F. Wang and M. Tan and S Hopyan and H. McNeill and Yu Sun},
title = {Intracellular manipulation and measurement with multipole magnetic tweezers},
journal = {Science Robotics},
year = {2019},
volume = {4},
publisher = {American Association for the Advancement of Science (AAAS)},
month = {mar},
url = {https://doi.org/10.1126/scirobotics.aav6180},
number = {28},
doi = {10.1126/scirobotics.aav6180}
}