A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.

Single-stranded DNA binding proteins (SSBs) are vital in all organisms. SSBs of Escherichia coli (EcoSSB) and Mycobacterium tuberculosis (MtuSSB) are homotetrameric. The N-terminal domains (NTD) of these SSBs (responsible for their tetramerization and DNA binding) are structurally well defined. Howe...

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Main Authors: Kervin Rex, Sanjay Kumar Bharti, Shivjee Sah, Umesh Varshney
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3983218?pdf=render
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spelling doaj-6955b655e8e84e5998c27e16fea9715e2020-11-25T01:26:18ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0194e9466910.1371/journal.pone.0094669A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.Kervin RexSanjay Kumar BhartiShivjee SahUmesh VarshneySingle-stranded DNA binding proteins (SSBs) are vital in all organisms. SSBs of Escherichia coli (EcoSSB) and Mycobacterium tuberculosis (MtuSSB) are homotetrameric. The N-terminal domains (NTD) of these SSBs (responsible for their tetramerization and DNA binding) are structurally well defined. However, their C-terminal domains (CTD) possess undefined structures. EcoSSB NTD consists of β1-β1'-β2-β3-α-β4-β451-β452-β5 secondary structure elements. MtuSSB NTD includes an additional β-strand (β6) forming a novel hook-like structure. Recently, we observed that MtuSSB complemented an E. coli Δssb strain. However, a chimeric SSB (mβ4-β5), wherein only the terminal part of NTD (β4-β5 region possessing L45 loop) of EcoSSB was substituted with that from MtuSSB, failed to function in E. coli in spite of its normal DNA binding and oligomerization properties. Here, we designed new chimeras by transplanting selected regions of MtuSSB into EcoSSB to understand the functional significance of the various secondary structure elements within SSB. All chimeric SSBs formed homotetramers and showed normal DNA binding. The mβ4-β6 construct obtained by substitution of the region downstream of β5 in mβ4-β5 SSB with the corresponding region (β6) of MtuSSB complemented the E. coli strain indicating a functional interaction between the L45 loop and the β6 strand of MtuSSB.http://europepmc.org/articles/PMC3983218?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Kervin Rex
Sanjay Kumar Bharti
Shivjee Sah
Umesh Varshney
spellingShingle Kervin Rex
Sanjay Kumar Bharti
Shivjee Sah
Umesh Varshney
A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
PLoS ONE
author_facet Kervin Rex
Sanjay Kumar Bharti
Shivjee Sah
Umesh Varshney
author_sort Kervin Rex
title A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
title_short A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
title_full A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
title_fullStr A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
title_full_unstemmed A genetic analysis of the functional interactions within Mycobacterium tuberculosis single-stranded DNA binding protein.
title_sort genetic analysis of the functional interactions within mycobacterium tuberculosis single-stranded dna binding protein.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2014-01-01
description Single-stranded DNA binding proteins (SSBs) are vital in all organisms. SSBs of Escherichia coli (EcoSSB) and Mycobacterium tuberculosis (MtuSSB) are homotetrameric. The N-terminal domains (NTD) of these SSBs (responsible for their tetramerization and DNA binding) are structurally well defined. However, their C-terminal domains (CTD) possess undefined structures. EcoSSB NTD consists of β1-β1'-β2-β3-α-β4-β451-β452-β5 secondary structure elements. MtuSSB NTD includes an additional β-strand (β6) forming a novel hook-like structure. Recently, we observed that MtuSSB complemented an E. coli Δssb strain. However, a chimeric SSB (mβ4-β5), wherein only the terminal part of NTD (β4-β5 region possessing L45 loop) of EcoSSB was substituted with that from MtuSSB, failed to function in E. coli in spite of its normal DNA binding and oligomerization properties. Here, we designed new chimeras by transplanting selected regions of MtuSSB into EcoSSB to understand the functional significance of the various secondary structure elements within SSB. All chimeric SSBs formed homotetramers and showed normal DNA binding. The mβ4-β6 construct obtained by substitution of the region downstream of β5 in mβ4-β5 SSB with the corresponding region (β6) of MtuSSB complemented the E. coli strain indicating a functional interaction between the L45 loop and the β6 strand of MtuSSB.
url http://europepmc.org/articles/PMC3983218?pdf=render
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