Single-molecule characterization of Sen1 translocation properties provides insights into eukaryotic factor-dependent transcription termination

Author:

Wang Shuang123ORCID,Han Zhong4,Strick Terence R35

Affiliation:

1. Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences , 100190  Beijing , China

2. Songshan Lake Materials Laboratory , 523808  Dongguan , Guangdong , China

3. Molecular Motors and Machines group, Ecole normale supérieure, Institut de Biologie de l’Ecole normale supérieure (IBENS), CNRS, INSERM, PSL Research University , 75005  Paris , France

4. Metabolism and Function of RNA in the Nucleus, Institut Jacques Monod, CNRS, University Paris Diderot , Sorbonne Paris Cité F-75205  Paris , France

5. Programme Equipe Labellisées, Ligue Contre le Cancer , 75013  Paris , France

Abstract

Abstract Sen1 is an essential helicase for factor-dependent transcription termination in Saccharomyces cerevisiae, whose molecular-motor mechanism has not been well addressed. Here, we use single-molecule experimentation to better understand the molecular-motor determinants of its action on RNA polymerase II (Pol II) complex. We quantify Sen1 translocation activity on single-stranded DNA (ssDNA), finding elevated translocation rates, high levels of processivity and ATP affinities. Upon deleting the N- and C-terminal domains, or further deleting different parts of the prong subdomain, which is an essential element for transcription termination, Sen1 displays changes in its translocation properties, such as slightly reduced translocation processivities, enhanced translocation rates and statistically identical ATP affinities. Although these parameters fulfil the requirements for Sen1 translocating along the RNA transcript to catch up with a stalled Pol II complex, we observe significant reductions in the termination efficiencies as well as the factions of the formation of the previously described topological intermediate prior to termination, suggesting that the prong may preserve an interaction with Pol II complex during factor-dependent termination. Our results underscore a more detailed rho-like mechanism of Sen1 and a critical interaction between Sen1 and Pol II complex for factor-dependent transcription termination in eukaryotes.

Funder

National Natural Science Foundation of China

Chinese Academy of Sciences

Youth Innovation Promotion Association of CAS

China Scholarship Council

French League Nationale Contre le Cancer and a post-doctoral fellowship

Agence National pour la Recherche

French Ligue Nationale Contre le Cancer Equipe Labellisée (Core Research Team) program, ANR grants RepOne

PrTxConf

Publisher

Oxford University Press (OUP)

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