Cargando…

Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation

Abortive cycling is a universal feature of transcription initiation catalyzed by DNA-dependent RNA polymerases (RNAP). In bacteriophage T7 RNAP, mutation of proline 266 to leucine (P266L) in the C-linker region connecting the N-terminal promoter binding domain with the C-terminal catalytic domain dr...

Descripción completa

Detalles Bibliográficos
Autores principales: Tang, Guo-Qing, Nandakumar, Divya, Bandwar, Rajiv P., Lee, Kyung Suk, Roy, Rahul, Ha, Taekjip, Patel, Smita S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3961267/
https://www.ncbi.nlm.nih.gov/pubmed/24651161
http://dx.doi.org/10.1371/journal.pone.0091859
_version_ 1782308265192849408
author Tang, Guo-Qing
Nandakumar, Divya
Bandwar, Rajiv P.
Lee, Kyung Suk
Roy, Rahul
Ha, Taekjip
Patel, Smita S.
author_facet Tang, Guo-Qing
Nandakumar, Divya
Bandwar, Rajiv P.
Lee, Kyung Suk
Roy, Rahul
Ha, Taekjip
Patel, Smita S.
author_sort Tang, Guo-Qing
collection PubMed
description Abortive cycling is a universal feature of transcription initiation catalyzed by DNA-dependent RNA polymerases (RNAP). In bacteriophage T7 RNAP, mutation of proline 266 to leucine (P266L) in the C-linker region connecting the N-terminal promoter binding domain with the C-terminal catalytic domain drastically reduces short abortive products (4–7 nt) while marginally increasing long abortives (9–11 nt). Here we have investigated the transcription initiation pathway of P266L with the goal of understanding the mechanistic basis for short and long abortive synthesis. We show that the P266L mutation does not alter the affinity for the promoter, mildly affects promoter opening, and increases the +1/+2 GTP K (d) by 2-fold. However, unlike wild-type T7 RNAP that undergoes stepwise rotation of the promoter binding domain and DNA scrunching during initial transcription, the P266L mutant does not undergo coupled rotational/scrunching movements until 7 nt RNA synthesis. The lack of rotation/scrunching correlates with greater stabilities of the initiation complexes of the P266L and decreased short abortive products. The results indicate that the increased flexibility in the C-linker due to P266L mutation enables T7 RNAP to absorb the stress from the growing RNA:DNA hybrid thereby decreasing short abortive products. Increased C-linker flexibility, however, has an adverse effect of delaying the transition into elongation by 1–2 nt, which gives rise to long abortive products. However, a mutation in the upstream promoter region greatly decreases long abortive products in P266L reactions, rendering the combination of P266L and A-15C promoter a desirable pair for efficient in vitro transcription for RNA production. We conclude that the conformational rigidity in the C-linker region conferred by the proline at position 266 is responsible for the undesirable short abortive products, but the rigidity is critical for efficient promoter clearance and transition into elongation.
format Online
Article
Text
id pubmed-3961267
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-39612672014-03-27 Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation Tang, Guo-Qing Nandakumar, Divya Bandwar, Rajiv P. Lee, Kyung Suk Roy, Rahul Ha, Taekjip Patel, Smita S. PLoS One Research Article Abortive cycling is a universal feature of transcription initiation catalyzed by DNA-dependent RNA polymerases (RNAP). In bacteriophage T7 RNAP, mutation of proline 266 to leucine (P266L) in the C-linker region connecting the N-terminal promoter binding domain with the C-terminal catalytic domain drastically reduces short abortive products (4–7 nt) while marginally increasing long abortives (9–11 nt). Here we have investigated the transcription initiation pathway of P266L with the goal of understanding the mechanistic basis for short and long abortive synthesis. We show that the P266L mutation does not alter the affinity for the promoter, mildly affects promoter opening, and increases the +1/+2 GTP K (d) by 2-fold. However, unlike wild-type T7 RNAP that undergoes stepwise rotation of the promoter binding domain and DNA scrunching during initial transcription, the P266L mutant does not undergo coupled rotational/scrunching movements until 7 nt RNA synthesis. The lack of rotation/scrunching correlates with greater stabilities of the initiation complexes of the P266L and decreased short abortive products. The results indicate that the increased flexibility in the C-linker due to P266L mutation enables T7 RNAP to absorb the stress from the growing RNA:DNA hybrid thereby decreasing short abortive products. Increased C-linker flexibility, however, has an adverse effect of delaying the transition into elongation by 1–2 nt, which gives rise to long abortive products. However, a mutation in the upstream promoter region greatly decreases long abortive products in P266L reactions, rendering the combination of P266L and A-15C promoter a desirable pair for efficient in vitro transcription for RNA production. We conclude that the conformational rigidity in the C-linker region conferred by the proline at position 266 is responsible for the undesirable short abortive products, but the rigidity is critical for efficient promoter clearance and transition into elongation. Public Library of Science 2014-03-20 /pmc/articles/PMC3961267/ /pubmed/24651161 http://dx.doi.org/10.1371/journal.pone.0091859 Text en © 2014 Tang et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Tang, Guo-Qing
Nandakumar, Divya
Bandwar, Rajiv P.
Lee, Kyung Suk
Roy, Rahul
Ha, Taekjip
Patel, Smita S.
Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title_full Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title_fullStr Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title_full_unstemmed Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title_short Relaxed Rotational and Scrunching Changes in P266L Mutant of T7 RNA Polymerase Reduce Short Abortive RNAs while Delaying Transition into Elongation
title_sort relaxed rotational and scrunching changes in p266l mutant of t7 rna polymerase reduce short abortive rnas while delaying transition into elongation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3961267/
https://www.ncbi.nlm.nih.gov/pubmed/24651161
http://dx.doi.org/10.1371/journal.pone.0091859
work_keys_str_mv AT tangguoqing relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT nandakumardivya relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT bandwarrajivp relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT leekyungsuk relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT royrahul relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT hataekjip relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation
AT patelsmitas relaxedrotationalandscrunchingchangesinp266lmutantoft7rnapolymerasereduceshortabortivernaswhiledelayingtransitionintoelongation