Open Access
Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide
Arif Md. Rashedul Kabir
1
,
Tasrina Munmun
2
,
Tomohiko HAYASHI
3
,
Satoshi Yasuda
4, 5
,
Atsushi P Kimura
1, 6
,
Masahiro Kinoshita
3, 4, 5
,
Takeshi Murata
4, 5
,
Kazuki SADA
1, 2
,
Akira Kakugo
1, 2
2
Тип публикации: Journal Article
Дата публикации: 2022-01-24
scimago Q1
wos Q2
БС1
SJR: 0.773
CiteScore: 7.1
Impact factor: 4.3
ISSN: 24701343
PubMed ID:
35128287
General Chemistry
General Chemical Engineering
Краткое описание
The biomolecular motor protein kinesin and its associated filamentous protein microtubule have been finding important nanotechnological applications in the recent years. Rigidity of the microtubules, which are propelled by kinesin motors in an in vitro gliding assay, is an important metric that determines the success of utilization of microtubules and kinesins in various applications, such as transportation, sensing, sorting, molecular robotics, etc. Therefore, regulating the rigidity of kinesin-propelled microtubules has been critical. In this work, we report a simple strategy to regulate the rigidity of kinesin-propelled microtubules in an in vitro gliding assay. We demonstrate that rigidity of the microtubules, propelled by kinesins in an in vitro gliding assay, can be modulated simply by using the natural osmolyte trimethylamine N-oxide (TMAO). By varying the concentration of TMAO in the gliding assay, the rigidity of microtubules can be modulated over a wide range. Based on this strategy, we are able to reduce the persistence length of microtubules, a measure of microtubule rigidity, ∼8 fold by using TMAO at the concentration of 1.5 M. Furthermore, we found that the decreased rigidity of the kinesin-propelled microtubules can be restored upon elimination of TMAO from the in vitro gliding assay. Alteration in the rigidity of microtubules is accounted for by the non-uniformity of the force applied by kinesins along the microtubules in the presence of TMAO. This work offers a facile strategy to reversibly regulate the rigidity of kinesin-propelled microtubules in situ, which would widen the applications of the biomolecular motor kinesin and its associated protein microtubule in various fields.
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Rashedul Kabir A. M. et al. Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide // ACS Omega. 2022. Vol. 7. No. 4. pp. 3796-3803.
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Rashedul Kabir A. M., Munmun T., HAYASHI T., Yasuda S., Kimura A. P., Kinoshita M., Murata T., SADA K., Kakugo A. Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide // ACS Omega. 2022. Vol. 7. No. 4. pp. 3796-3803.
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TY - JOUR
DO - 10.1021/acsomega.1c06699
UR - https://doi.org/10.1021/acsomega.1c06699
TI - Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide
T2 - ACS Omega
AU - Rashedul Kabir, Arif Md.
AU - Munmun, Tasrina
AU - HAYASHI, Tomohiko
AU - Yasuda, Satoshi
AU - Kimura, Atsushi P
AU - Kinoshita, Masahiro
AU - Murata, Takeshi
AU - SADA, Kazuki
AU - Kakugo, Akira
PY - 2022
DA - 2022/01/24
PB - American Chemical Society (ACS)
SP - 3796-3803
IS - 4
VL - 7
PMID - 35128287
SN - 2470-1343
ER -
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@article{2022_Rashedul Kabir,
author = {Arif Md. Rashedul Kabir and Tasrina Munmun and Tomohiko HAYASHI and Satoshi Yasuda and Atsushi P Kimura and Masahiro Kinoshita and Takeshi Murata and Kazuki SADA and Akira Kakugo},
title = {Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide},
journal = {ACS Omega},
year = {2022},
volume = {7},
publisher = {American Chemical Society (ACS)},
month = {jan},
url = {https://doi.org/10.1021/acsomega.1c06699},
number = {4},
pages = {3796--3803},
doi = {10.1021/acsomega.1c06699}
}
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Rashedul Kabir, Arif Md., et al. “Controlling the Rigidity of Kinesin-Propelled Microtubules in an In Vitro Gliding Assay Using the Deep-Sea Osmolyte Trimethylamine N-Oxide.” ACS Omega, vol. 7, no. 4, Jan. 2022, pp. 3796-3803. https://doi.org/10.1021/acsomega.1c06699.