» Articles » PMID: 34789769

Functional Roles of Multiple Ton Complex Genes in a Sphingobium Degrader of Lignin-derived Aromatic Compounds

Overview
Journal Sci Rep
Specialty Science
Date 2021 Nov 18
PMID 34789769
Citations 3
Authors
Affiliations
Soon will be listed here.
Abstract

TonB-dependent transporters (TBDTs) mediate outer membrane transport of nutrients using the energy derived from proton motive force transmitted from the TonB-ExbB-ExbD complex localized in the inner membrane. Recently, we discovered ddvT encoding a TBDT responsible for the uptake of a 5,5-type lignin-derived dimer in Sphingobium sp. strain SYK-6. Furthermore, overexpression of ddvT in an SYK-6-derivative strain enhanced its uptake capacity, improving the rate of platform chemical production. Thus, understanding the uptake system of lignin-derived aromatics is fundamental for microbial conversion-based lignin valorization. Here we examined whether multiple tonB-, exbB-, and exbD-like genes in SYK-6 contribute to the outer membrane transport of lignin-derived aromatics. The disruption of tonB2-6 and exbB3 did not reduce the capacity of SYK-6 to convert or grow on lignin-derived aromatics. In contrast, the introduction of the tonB1-exbB1-exbD1-exbD2 operon genes into SYK-6, which could not be disrupted, promoted the conversion of β-O-4-, β-5-, β-1-, β-β-, and 5,5-type dimers and monomers, such as ferulate, vanillate, syringate, and protocatechuate. These results suggest that TonB-dependent uptake involving the tonB1 operon genes is responsible for the outer membrane transport of the above aromatics. Additionally, exbB2/tolQ and exbD3/tolR were suggested to constitute the Tol-Pal system that maintains the outer membrane integrity.

Citing Articles

Ochratoxin A Degradation and Stress Response Mechanism of ML17 Determined by Transcriptomic Analysis.

Zhao Z, Niu Z, Liang Z Foods. 2024; 13(23).

PMID: 39682804 PMC: 11640390. DOI: 10.3390/foods13233732.


An improved genome editing system for Sphingomonadaceae.

Garcia-Romero I, de Dios R, Reyes-Ramirez F Access Microbiol. 2024; 6(5).

PMID: 38868378 PMC: 11165598. DOI: 10.1099/acmi.0.000755.v3.


Energization of Outer Membrane Transport by the ExbB ExbD Molecular Motor.

Braun V, Ratliff A, Celia H, Buchanan S J Bacteriol. 2023; 205(6):e0003523.

PMID: 37219427 PMC: 10294619. DOI: 10.1128/jb.00035-23.

References
1.
Shultis D, Purdy M, Banchs C, Wiener M . Outer membrane active transport: structure of the BtuB:TonB complex. Science. 2006; 312(5778):1396-9. DOI: 10.1126/science.1127694. View

2.
Sievers F, Wilm A, Dineen D, Gibson T, Karplus K, Li W . Fast, scalable generation of high-quality protein multiple sequence alignments using Clustal Omega. Mol Syst Biol. 2011; 7:539. PMC: 3261699. DOI: 10.1038/msb.2011.75. View

3.
Kasai D, Kamimura N, Tani K, Umeda S, Abe T, Fukuda M . Characterization of FerC, a MarR-type transcriptional regulator, involved in transcriptional regulation of the ferulate catabolic operon in Sphingobium sp. strain SYK-6. FEMS Microbiol Lett. 2012; 332(1):68-75. DOI: 10.1111/j.1574-6968.2012.02576.x. View

4.
Vanholme R, Demedts B, Morreel K, Ralph J, Boerjan W . Lignin biosynthesis and structure. Plant Physiol. 2010; 153(3):895-905. PMC: 2899938. DOI: 10.1104/pp.110.155119. View

5.
Samantarrai D, Sagar A, Gudla R, Siddavattam D . TonB-Dependent Transporters in Sphingomonads: Unraveling Their Distribution and Function in Environmental Adaptation. Microorganisms. 2020; 8(3). PMC: 7142613. DOI: 10.3390/microorganisms8030359. View