A Novel XRE-Type Regulator Mediates Phage Lytic Development and Multiple Host Metabolic Processes in Pseudomonas

Xiang Long1, Xiaolong Wang1, Daqing Mao2

  • 1College of Environmental Science and Engineering, Ministry of Education Key Laboratory of Pollution Processes and Environmental Criteria, Nankai Universitygrid.216938.7, Tianjin, China.

Microbiology Spectrum
|November 29, 2022
PubMed

Insights

This study identifies LfsT, a transcriptional regulator in Pseudomonas aeruginosa, that enhances bacterial metabolism and spermidine transport but reduces resistance to phage infection. LfsT plays a key role in bacterium-phage interactions.

Area of Science:

  • Microbiology
  • Molecular Biology
  • Genetics

Background:

  • Pseudomonas aeruginosa is a major opportunistic pathogen causing severe infections.
  • Xenobiotic response element (XRE) family proteins are common transcriptional regulators in P. aeruginosa, but their roles are not fully understood.
  • Limited knowledge exists regarding the functions of XRE-like small regulatory proteins in P. aeruginosa.

Purpose of the Study:

  • To investigate the function of a putative XRE-type transcriptional regulator, LfsT, found in a prophage region of P. aeruginosa.
  • To elucidate the regulatory roles of LfsT in P. aeruginosa, particularly in bacterium-phage interactions and host cellular processes.

Main Methods:

  • Southern blot and RT-qPCR to assess LfsT's control over phage sensitivity and replication.
  • Electrophoretic mobility shift assays (EMSAs) and transcriptional lacZ fusion analyses to determine LfsT's DNA binding and regulatory activity.
  • RNA-sequencing (RNA-seq) and phenotypic validation tests to identify LfsT-regulated genes and pathways.

Main Results:

  • LfsT is essential for P. aeruginosa's sensitivity to phage PP9W2 and efficient phage replication.
  • LfsT represses phage lysogeny and promotes the lytic cycle by binding to phage gene promoters.
  • LfsT regulates bacterial fatty acid metabolism, spermidine transport, and the type III secretion system (T3SS) by binding to specific genomic promoter regions.
  • A partial palindromic motif (NAACN(5,8)GTTN) was identified as the binding site for LfsT.

Conclusions:

  • LfsT exhibits novel regulatory roles in P. aeruginosa, influencing both phage interactions and host cellular functions.
  • LfsT enhances bacterial metabolic activity and spermidine transport while decreasing resistance to phage infection.
  • Understanding LfsT's function provides insights into bacterial-phage coevolution and potential targets for novel antimicrobials against P. aeruginosa infections.

Related Concept Videos

Prokaryotic Transcriptional Activators and Repressors01:58

Prokaryotic Transcriptional Activators and Repressors

The organization of prokaryotic genes in their genome is notably different from that of eukaryotes. Prokaryotic genes are organized, such that the genes for proteins involved in the same biochemical process or function are located together in groups. This group of genes, along with their regulatory elements, are collectively known as an operon. The functional genes in an operon are transcribed together to give a single strand of mRNA known as polycistronic mRNA.
Transcription of prokaryotic...
21.6K
Gene Regulation in Microbial Communities: Quorum Sensing01:28

Gene Regulation in Microbial Communities: Quorum Sensing

Quorum sensing is a mechanism of bacterial communication that enables coordinated gene expression in response to changes in population density. This facilitates collective behaviors that enhance survival, resource acquisition, and ecological adaptation. This process relies on small signaling molecules called autoinducers that accumulate as bacterial populations grow. When a critical threshold concentration of autoinducers is reached, bacterial cells collectively modify gene expression,...
69
Viral Replication: Lysogenic Cycle01:16

Viral Replication: Lysogenic Cycle

The lysogenic cycle is a crucial viral replication strategy that allows bacteriophages to persist within host cells without immediately destroying them. This process is primarily observed in temperate phages, such as bacteriophage lambda (λ), which infects Escherichia coli. The cycle allows the viral genome to persist across bacterial generations while keeping host cells viable.Integration of the Viral GenomeUpon infection, bacteriophage lambda attaches to the bacterial surface and injects...
121
Lysogenic Cycle of Bacteriophages00:43

Lysogenic Cycle of Bacteriophages

In contrast to the lytic cycle, phages infecting bacteria via the lysogenic cycle do not immediately kill their host cell. Instead, they combine their genome with the host genome, allowing the bacteria to replicate the phage DNA along with the bacterial genome. The incorporated copy of the phage genome is called the prophage. Some prophages can re-activate and enter the lytic cycle. This often occurs in response to a perturbation, such as DNA damage, but can also transpire in the absence of...
62.8K
Global Regulatory Systems01:28

Global Regulatory Systems

Global regulatory systems in bacteria enable rapid and coordinated responses to environmental changes by integrating sensory inputs with gene expression, ensuring efficient adaptation to fluctuating conditions. Key global regulatory mechanisms include regulons, two-component systems, sigma factors, and secondary messengers.Regulons and Global RegulatorsA regulon is a collection of genes and operons controlled by a common global regulator. These regulators enable bacteria to prioritize resource...
60
Other Stress Responses in Bacteria01:30

Other Stress Responses in Bacteria

Bacteria have global regulatory systems that control several types of stress mechanisms. These include Pho regulon and the heat shock response, which are essential systems for environmental adaptation, such as nutrient limitation and proteotoxic stress. The Pho regulon and the heat shock response exemplify bacterial resilience, enabling rapid adaptation to fluctuating environmental conditions.Pho RegulonBacteria require phosphorus for essential cellular processes, including nucleic acid...
49