QseC Mediates Osmotic Stress Resistance and Biofilm Formation in Haemophilus parasuis

Haemophilus parasuis is known as a commensal organism discovered in the upper respiratory tract of swine where the pathogenic bacteria survive in various adverse environmental stress. QseC, a histidine protein kinase of the two-component regulatory systems CheY/QseC, is involved in the environmental adaptation in bacteria. To investigate the role of QseC in coping with the adverse environment stresses and survive in the host, we constructed a qseC mutant of H. parasuis serovar 13 strain (ΔqseC), MY1902. In this study, we found that QseC was involved in stress tolerance of H. parasuis, by the ΔqseC exhibited a decreased resistance to osmotic pressure, oxidative stress, and heat shock. Moreover, the ΔqseC weakened the ability to take up iron and biofilm formation. We also found that the QseC participate in sensing the epinephrine in environment to regulate the density of H. parasuis.


INTRODUCTION
Haemophilus parasuis is a causative agent of Glässer's disease what characterized by fibrinous polyserositis, polyarthritis, and meningitis (Cai et al., 2005). H. parasuis, one of the major causes of nursery mortality in swine herds, giving rise to great economic loss in pig farms (Oliveira and Pijoan, 2004). After invading the respiratory tract and lung tissue, H. parasuis exposes to stress conditions, such as osmotic pressure, oxidative stress, and temperature. These stresses may affect bacterial survival, and result in protein denaturation and misfolding (Frees et al., 2004). H. parasuis regulates a variety of gene expression to survive these stress conditions . However, bacterial survival and establishment of infection require to sense and accurately to environmental cues. Two component regulatory systems are important for bacterial to adapt in the environment (Stock et al., 2000).
QseC sensory kinase is a bacterial adrenergic receptor that is crucial for interkingdom signaling in E. coli (Clarke et al., 2006). QseC, as a transmembrane protein with histidine protein kinase, is activated in response to host and bacterial signals, and phosphorylates the QseB response regulator, a transcription factor that regulates relevant virulence gene expression (Walters and Sperandio, 2006;Hughes et al., 2009) 1 . QseC can control QseB activation via a mechanism that is independent of reverse phosphotransfer. QseC-mediated dephosphorylation is required for maintaining proper QseB-PmrB-PmrA interactions in Uropathogenic E. coli (Breland et al., 2017). QseC controls biofilm formation in non-typeable Haemophilus influenza (Unal et al., 2012). Moreover, the qseC diminished motility and colonization of the gastrointestinal tract compared to the wildtype parent strain in Salmonella enterica serovar Typhimurium (S. Typhimurium) (Bearson and Bearson, 2008). QseC also involved in flagellar motility, fimbrial hemagglutination, and intracellular virulence in fish pathogen Edwardsiella tarda (Wang et al., 2011).
TCSTS of bacteria are considered to form an intricate signal network to detect changes in environmental and respond by adjusting various cellular functions (Li et al., 2002;Eguchi et al., 2007) 2,3 . However, whether the QseC plays a role in the H. parasuis adapt to environmental changes in pigs are still unknown.
In the present study, we investigated the responses of qseC to the stress conditions and biological characteristics which constructed by the natural transformation system (Bigas et al., 2005). In addition to affect biofilm formation as reported in E. coli and Salmonella, we found that QseC function in bacterial response to a variety of stimuli such as osmotic pressure, oxidative stress, and heat shock.

Construction and Complementation of the qseC Strain
The primers used to construct the qseC mutant are listed in Table 2. The 964-bp upstream and 945-bp downstream fragments of qseC were amplified from the genome of MY1902 using primers qseC-Up-F/R and qseC-Down-F/R, A kanamycin resistant (kanR) cassette(935 bp) was amplified from pKD4 using primers Kan-F/R. These three PCR fragments were combined by overlap PCR with primers qseC-up-F and qseC-down-R. Then the overlapped product was cloned into pK18mobsacB at BamHI and HindIII to construct the recombinant plasmid pLQ2. The recombinant plasmid pLQ2 was mobilized into H. parasuis strain MY1902 by natural transformations (Zhang et al., 2012b).
To construct the complementing Plasmid pLQ3, the qseC gene was amplified from MY1902 using primers qseC-Comp-F/R and cloned into KpnI and BamHI digested pSF116 . Both two DNA fragments (upstream homologous arm and down homologous arm) contained a 9-bp core DNA uptake signal sequence (USS) of 5 ′ -ACCGCTTGT−3 ′ (Zhang et al., 2012a).

RT-PCR and Western Blotting
The RNAs of MY1902, qseC, and C-qseC were extracted using the Bacterial RNA Kit (5) according to the instructions(OMEGA R6950-00, America). RT-PCR using a PrimeScript TM RT reagent Kit (Perfect Real Time) according to the instructions (TaKaRa, Japan). The cDNA synthesis of both wild strain MY1902 and qseC was detected with primers HPS-F/R, Kan-F/R, and qseC-F/R ( Table 2). Western blotting assay was performed as described previously . 1 ml overnight bacterial cultures of the wild strain MY1902 and the qseC were harvested by centrifugation for 1 min at 12000 rpm/min. Then resuspended with 40 µL ultrapure water, followed by adding 10 µL five-fold

Primer name
Sequence

HPS-R GGCTTCGTCACCCTCTGT
Restriction sites are underlined, uptake signal sequences (USS) are in bold.
protein loading buffer, then boil for 10 min and ice bath for 2 min. The samples (10 ml) were electrophoresed on 12% SDS-PAGE gel and transferred onto Nitrocellulose(NC) membranes. The proteins on membrane were detected with Clarity TM Western ECL Substrate kit according to the instructions (BIO-RAD, America).

Stress Resistance Assays
Stress resistance assays were performed as the previously described methods (Wong et al., 2007;Allen and Schmitt, 2009;Liu et al., 2013;Xie et al., 2013Xie et al., , 2016Nasrallah et al., 2014;Huang et al., 2016). Fifty microliters of overnight cultures of MY1902, qseC, and C-qseC were subcultured at a dilution of 1:100 into 5 mL fresh TSB with 5% inactivated bovine serum and 0.01% NAD and the cells were grown at 37 • C with 220 rpm. For the osmotic tolerance assay, the cells were cultivated on 40, 60, 80, and 100 mM NaCl TSA respectively. For the oxidative stress tolerance assay, the bacterial suspension was treated with 0.

Biofilm Formation Assays
Biofilm formation ability was measured as described previously with some modifies (Kaplan and Mulks, 2005;Tremblay et al., 2013;Xie et al., 2016). Twenty microliters overnight cultures of MY1902, qseC, and C-qseC were subcultured at a dilution of 1:100 into fresh TSB in 6-well tissue culture plate for 24, 48, 72, 96 h at 37 • C respectively. Biofilms were washed with water and stained with 1 ml of 0.1% crystal violet for30 min. Excess staining was rinsed off under water, drying, and 100 µL of 33% (v/v) acetic acid was added to each well, then transferred to 96well polystyrenemicrotiter plates and measured at wavelength of 595 nm. All tests were repeated independently times.

Confocal Laser Scanning Microscopy
Confocal laser scanning microscopy (CLSM) assay was performed as previously described (Tremblay et al., 2013). Thirty microliters overnight cultures of MY1902, qseC, and C-qseC were subcultured were diluted 1:100 in the following media: fresh TSB, TSB with 50 µM epinephrine both supplemented with 5% inactivated bovine serum and 0.01% NAD in the six well microtiter plate with 20 × 20 mm cell climbing tablets for 18 h. The cell climbing tablets were removed and washed three times with phosphate buffer saline and stained with (LIVE/DEAD @ BacLight TM Bacterial Viability kits, Invitrogen; live bacteria stain fluorescent green, whereas dead bacteria stain fluorescent red). The plates were incubated at room temperature in the dark for 20 min and washed three times with phosphate buffer saline. SYTO 9 was excitation (with an Ar laser) at 488 nm, and propidium iodide was excitation (with a HeNe laser) at 559 nm using Nikon AIR confocal scanning laser microscope (CLSM). The images were analyzed with the NIS-Elements AR software.

Construction and Complementation of the qseC knockout Mutant in H. parasuis
In this study, we constructed the qseC mutant (   qseC compared with the wild-type strain MY1902 (Figure 4 in Supplementary Material). These results indicated that the qseC gene have been knocked out from the genome of the wild-type strain MY1902.

Growth Assays
Compared with the wild strain MY1902, we found that the qseC didn't exhibit obvious growth defects compared with the wild strain (Figure 2).

The QseC Influenced Iron Utilization of H. parasuis
The ability of utilize iron in the wild strain MY1902 and the qseC mutant strain were studied by using of iron restricted medium with 100, 200 µM EDDHA or 33.33 µM FeSO4, 66.66 µM FeSO4 respectively, containing 5% inactivated bovine serum and 0.01%NAD. As shown in Figure 3, when exposed to 100 /200 µM EDDHA, the qseC decreased the growth compared with the wild strain in H. parasuis. Whereas supplement of FeSO4, the qseC restored the growth rate (Figure 4).

The qseC Showed Impaired Biofilm Formation
The biofilm formation assay results show that QseC was involved in biofilm formation in H. parasuis (Figure 5). Biofilm productions was measured at wavelength of 595 nm.

The QseC Might Sense the Epinephrine in Environment to Regulate the Density of H. parasuis
Previously study proved that qseBC is activated by AI-3. AI-3, and Epi are recognized by the same receptor, and qseC is unable to respond to both AI-3 and Epi in Enterohemorrhagic E. coli (Sperandio et al., 2003). We found that when exposed to 50 µM exogenous epinephrine, the qseC weakened the ability of feeling the signal AI-3 (Figure 6). The specific mechanisms of  interkingdom communication still unkown, and further research are needed in this specific mechanisms, which is important in understanding bacterial pathogenesis.

DISCUSSION
Bacteria have multiple mechanisms for sensing the environment and regulate gene expressions in response to different niches of their host organisms, which is frequently mediated by TCSTS (Labandeira-Rey et al., 2010;Xu et al., 2014). CheY/QseC is one of the TCSTS in H. parasuis, and involved in virulence gene expression in a number of pathogenic bacterias (Kostakioti et al., 2009). QseC controls the phosphorylation of QseB in order to optimize expression patterns (metabolic and virulence genes) in E. coli (Hadjifrangiskou et al., 2011). QseBC plays an important role in flagellar motility, fimbrial hemagglutination, and intracellular virulence in fish pathogen Edwardsiella tarda (Wang et al., 2011). QseBC of E. coli shares the homology with H. parasuis regulator Y and C (CheY/QseC). However, the functions of QseC in the H. parasuis adapts to the environment are unknown. It is necessary to explore the function of the QseC in H. parasuis.
In this study, we constructed a qseC deletion mutant of H. parasuis serovar 13 strain MY1902( qseC), and studied the survival rate under a variety of stress conditions as well as relevant biological characteristics. Results showed that the QseC played an important role in stress tolerance and biofilm formation of H. parasuis strain. Whereas we found that the qseC didn't exhibit obvious growth defects compared with the wild strain. In this study, we observed that the qseC was more sensitive to osmotic pressure, oxidative stress, and heat shock. Most notably the qseC significantly osmotic pressure tolerance, in which the survival rate of wild strain was 42.1% whereas the qseC didn't grow when exposed to 100 mM NaCl. These data suggested that the QseBC two-component system participated in H. parasuis responded to signal in the environment and survived in the stress conditions. Iron is essential for bacterial growth, and it's an environmental signal that regulates the expression of virulence factors (Jacques, 2004). Iron contributes a lot to the growth of H. parasuis, and low iron availability in the host is a primary pressure for the pathogenic bacterium and considered a signal that leads to significant changes in cell processes (Deslandes et al., 2007). In this study we found that QseC might regulate the expression of some of the genes involved in iron uptake, and further studies will be necessary to evaluate the impact of the twocomponent regulatory systems CheY/QseC during the course of iron acquisition in H. parasuis.
Furthermore, we observed that the biofilm formation ability of the qseC was weaker than the wild-type strain. Bacterial biofilm formation is a complex multifactor process, which is involved in adherence, competence, quorum sensing, cell wall synthesis, metabolism, and the stress response (Hasona et al., 2007). Previous studies have demonstrated that qseC controls biofilm formation of non-typeable H. influenza (Unal et al., 2012). Similarly, protein CheY was proved to influence biofilm formation in H. parasuis (He et al., 2016), which might closely related with QseC. In this study, we demonstrated that QseC was involved in biofilms formation in H. parasuis.
QseC, a histidine sensor kinase that can sense epinephrine (EPI)/norepinephrine (NE) was the quorum-sensing regulator of E. coli and Eschericha coli and S. enterica (Yang et al., 2014;Weigel et al., 2015). Weigel et al. demonstrated that iron and catecholamines may be signals that activate the QseC sensor, and detection of catecholamines and iron by the QseBC two-component system may essential for the adaptation of A. actinomycetemcomitans to the host cell environment (Weigel et al., 2015). Privious study demonstrated that epinephrine (EPI) and norepinephrine (NE) can promote the growth of a variety of bacteria, including Pseudomonas aeruginosa, Yersinia enterocolitica, E. coli (Green et al., 2003). But some scholars noted that the addition of 50 µM EPI or NE did not accelerate E. coli growth, which was in contrast to prior reports describing that NE increased the growth of E. coli and other bacteria (Yang et al., 2014). Interestingly, we found that the addition of 50 µM epinephrine reduced the cell density of MY1902 in H. parasuis, which might had an relationship with the QseC quorum-sensing sensor kinase. The qseC, which lacks the ability to sense the hormones, showed little difference when exposure to epinephrine in the environment. Detection of AI-3 by the QseBC twocomponent system may play an important role in the growth of H. parasuis.
In conclusion, we successfully constructed the qseC, C-qseC and investigated the functions of QseC in the H. parasuis on stress response, iron utilization, biofilm formation and sense epinephrine. The qseC obviously weakened the ability of stress tolerance such as osmotic pressure, oxidative stress, heat shock. In addition, the qseC decreased the ability of iron acquisition and biofilm formation compared with the wildtype strain MY1902 in H. parasuis, which suggested that QseBC two-component system played an important role in sensing the external stimuli and adapt to environmental pressures. Further studies are needed to determine the regulatory mechanism of transmembrane protein QseC interacted with the response regulator CheY in H. parasuis.

AUTHOR CONTRIBUTIONS
XW, SC, XHu, RW, YH, and QZ: designed this experiment; LH, KD, LD, and YW: implement the experimental program the experimental program; QY, XM, and XHa: modify the articles; LH: organize data and write articles.