Open Access
DNA origami-based single-molecule force spectroscopy elucidates RNA Polymerase III pre-initiation complex stability
Kevin Kramm
1
,
Tim Schröder
2
,
Jerome Gouge
3
,
Andrés M Vera
2
,
Kapil Gupta
4
,
Florian B Heiss
5
,
Tim Liedl
6
,
Christoph Engel
5
,
Imre Berger
4
,
Alessandro Vannini
3, 7
,
Philip Tinnefeld
2
,
Dina Grohmann
1, 5
3
Division of Structural Biology, The Institute of Cancer Research, London, UK
|
4
7
Human Technopole Foundation, Centre of Structural Biology, Milan, Italy
|
Publication type: Journal Article
Publication date: 2020-06-05
scimago Q1
wos Q1
SJR: 4.761
CiteScore: 23.4
Impact factor: 15.7
ISSN: 20411723
PubMed ID:
32504003
General Chemistry
General Biochemistry, Genetics and Molecular Biology
General Physics and Astronomy
Abstract
The TATA-binding protein (TBP) and a transcription factor (TF) IIB-like factor are important constituents of all eukaryotic initiation complexes. The reason for the emergence and strict requirement of the additional initiation factor Bdp1 in the RNA polymerase (RNAP) III system, however, remained elusive. A poorly studied aspect in this context is the effect of DNA strain arising from DNA compaction and transcriptional activity on initiation complex formation. We made use of a DNA origami-based force clamp to follow the assembly of human initiation complexes in the RNAP II and RNAP III systems at the single-molecule level under piconewton forces. We demonstrate that TBP-DNA complexes are force-sensitive and TFIIB is sufficient to stabilise TBP on a strained promoter. In contrast, Bdp1 is the pivotal component that ensures stable anchoring of initiation factors, and thus the polymerase itself, in the RNAP III system. Thereby, we offer an explanation for the crucial role of Bdp1 for the high transcriptional output of RNAP III. TATA-binding protein (TBP) and a transcription factor (TF) IIB-like factor are important constituents of all eukaryotic initiation complexes. Here, the authors use a DNA origami-based force clamp to investigate the assembly dynamics of human initiation complexes in the RNAP II and RNAP III systems at the single-molecule level under pico newton forces.
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48
Total citations:
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Citations from 2024:
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(29.79%)
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GOST
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Kramm K. et al. DNA origami-based single-molecule force spectroscopy elucidates RNA Polymerase III pre-initiation complex stability // Nature Communications. 2020. Vol. 11. No. 1. 2828
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Kramm K., Schröder T., Gouge J., Vera A. M., Gupta K., Heiss F. B., Liedl T., Engel C., Berger I., Vannini A., Tinnefeld P., Grohmann D. DNA origami-based single-molecule force spectroscopy elucidates RNA Polymerase III pre-initiation complex stability // Nature Communications. 2020. Vol. 11. No. 1. 2828
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TY - JOUR
DO - 10.1038/s41467-020-16702-x
UR - https://doi.org/10.1038/s41467-020-16702-x
TI - DNA origami-based single-molecule force spectroscopy elucidates RNA Polymerase III pre-initiation complex stability
T2 - Nature Communications
AU - Kramm, Kevin
AU - Schröder, Tim
AU - Gouge, Jerome
AU - Vera, Andrés M
AU - Gupta, Kapil
AU - Heiss, Florian B
AU - Liedl, Tim
AU - Engel, Christoph
AU - Berger, Imre
AU - Vannini, Alessandro
AU - Tinnefeld, Philip
AU - Grohmann, Dina
PY - 2020
DA - 2020/06/05
PB - Springer Nature
IS - 1
VL - 11
PMID - 32504003
SN - 2041-1723
ER -
Cite this
BibTex (up to 50 authors)
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@article{2020_Kramm,
author = {Kevin Kramm and Tim Schröder and Jerome Gouge and Andrés M Vera and Kapil Gupta and Florian B Heiss and Tim Liedl and Christoph Engel and Imre Berger and Alessandro Vannini and Philip Tinnefeld and Dina Grohmann},
title = {DNA origami-based single-molecule force spectroscopy elucidates RNA Polymerase III pre-initiation complex stability},
journal = {Nature Communications},
year = {2020},
volume = {11},
publisher = {Springer Nature},
month = {jun},
url = {https://doi.org/10.1038/s41467-020-16702-x},
number = {1},
pages = {2828},
doi = {10.1038/s41467-020-16702-x}
}