The Effect of Bovine Serum Albumin on Benzo[a]pyrene Removal by Lactobacillus Strains

The aim of this study was to investigate the influence of bovine serum albumin (BSA) on the Lactobacillus-strain-mediated removal of benzo[a]pyrene (BaP). A combination of 0.5 mg/mL of BSA with 1.0 × 1010 CFU/mL bacterial cells had a removal of 49.61% BaP for strain 121, while a combination of 0.4 mg/mL of BSA with 1.0 × 1010 CFU/mL bacterial cells had a removal of 66.09% BaP for strain ML32. The results indicated that the binding of BaP to Lactobacillus-BSA was stable. BSA maintains Lactobacillus activity and BaP removal in the gastrointestinal environment. Heat and ultrasonic treatment of BSA reduced the BaP-binding ability of Lactobacillus–BSA. With the addition of BSA, the surface properties of the two strains affected BaP binding. The Fourier-transform infrared (FTIR) data demonstrated that O-H, N-H, C=O, and P=O groups were involved in the binding of BaP to Lactobacillus–BSA. Scanning electron microscopy (SEM) results revealed that the morphology of Lactobacillus–BSA bound to BaP was maintained. The adsorption of BaP by Lactobacillus–BSA was appropriately described by the pseudo-second-order kinetic model and Freundlich isotherm model. BSA enhances the affinity between the bacterial cells and BaP.


Introduction
Benzo[a]pyrene (BaP) can be detected in fruits, vegetables, cereals, and oils [1,2]. The classification of BaP in food can be categorized into two broad types: endogenous and exogenous, based on their respective origins. Endogenous contamination of BaP occurs during the processing of food through frying, smoking, and baking. The thermal cleavage reactions of lipids, cholesterol, proteins, and carbohydrates generate hydrocarbon radicals that undergo a series of chemical transformations. The combination of hydrocarbon radicals leads to the formation of acetylene, which subsequently undergoes polymerization to form vinylacetylene. The cyclization of the latter produces hexylbenzene, which combines with it to give rise to butylbenzene and tetrahydronaphthalene. Ultimately, these intermediates converge to produce BaP [3,4]. On the other hand, exogenous contamination of BaP arises from industrial activities and the incomplete combustion of coal, oil, natural gas, and other fuels, which generate exhaust gases containing BaP. It can contaminate food through water, air, and soil, ultimately leading to exogenous exposure [5]. BaP has been recognized as the most potent carcinogenic compound that can cause lung, bladder, gastrointestinal, and other types of cancers [6]. Presently, some risk assessments and warning models for BaP indicate that high-priority risk management measures should be implemented [7]. As a result, ascertaining an efficient method for BaP binding is of utmost importance.
Lactobacillus, a food-grade-safe microorganism, can be used as a dietary supplement or adsorbent for functional foods. Additionally, Lactobacillus could remove toxic substances to reduce damage in vivo and be excreted via feces after being ingested [8][9][10]. The removal of BaP by Lactobacillus has become a research priority in recent years. Qi et al. [11] demonstrated that Lactobacillus plantarum 121 and Lactobacillus pentosus ML32 can adsorb BaP. A The mixed solution comprising BaP and BSA was prepared by dissolution in sterilized ultrapure water, in which the BSA concentration was varied in incremental steps of 0.1 mg/mL, ranging from 0 to 0.5 mg/mL, and the BaP concentration was 10 µg/mL.
To separate the cells of Lactobacillus strains from the MRS medium, the incubation tubes containing the cell pellets were centrifuged at 8000× g for 10 min at 4 • C, and were subsequently subjected to two washes with sterilized saline water. The culture (approx. 1.0 × 10 10 CFU/mL) was suspended in a 1.0 mL mixed solution, and the mixture was then incubated for 4 h at 37 • C. Following incubation, chloroform (500 µL) was added. To extract the supernatant, the cells were isolated by centrifugation (at 8000× g for 10 min at 4 • C).
The BaP concentration of the collected supernatant was determined using highperformance liquid chromatography (HPLC) (LC-20AT; Shimadzu Co., Ltd., Nagoya, Japan) equipped with an InertSustain-C18 column (4.6 × 250 mm; 5-Micron) and a RID-20 differential detector. Each sample was subjected to filtration through a 0.22 µm pore membrane. Specifically, 20 µL of each sample was injected into the HPLC system to quantify the BaP concentration. The mobile phases were methanol with a flow rate of 1 mL/min at 40 • C. The detection wavelength was 290 nm. It was quantified using a calibration curve.
A positive control consisting of sterile H 2 O and BaP was utilized in all the experiments. The BaP binding percentage was calculated using the following equation: BaP binding percentage (%) = (1 − BaP peak area of sample/BaP peak area of positive control) × 100% (1)

Stability of Lactobacillus-BSA Binding to BaP
The stability of BaP binding to Lactobacillus-BSA was determined by elution using benzene, the PBS buffer, and ethanol (55%, v/v). The biomass was centrifuged, and then vortexed using benzene, the PBS buffer, and ethanol benzene three times for 5 min. The mixture was then centrifuged. The supernatant was collected and analyzed by HPLC.

Effect of BaP Binding in a Simulated Gastrointestinal Environment
For the simulated gastric juice, 16.4 mL HCl (1 mol/L) and 10 g pepsin were added to 800 mL of the PBS buffer. Subsequently, the PBS buffer was added to reach a final volume of 1 L and the pH was adjusted to 2.0-3.0 (8 mol/L HCl). Following the preparation of the mixture, it underwent filtration using a 0.22 µm sterile filter membrane. For the stimulated intestinal juice, pancreatic juice was composed of 0.1% trypsin, 1.1% NaHCO 3 , and 0.2% NaCl with the pH adjusted to 8.0 (1 mol/L NaOH). The 0.9% bile solution salt was adjusted to pH 8.0. The mixture was composed of pancreatic juice and bile juice in a 2:1 ratio. Ultimately, the mixture underwent filtration using a 0.22 µm sterile filter membrane.
To explore the tolerance of strains in in vitro simulation studies in the presence of BSA, the culture was suspended in a simulated gastric juice solution, in which the cell concentration was 1.0 × 10 10 CFU/mL and the BSA concentration was adjusted to 0.5 mg/mL in strain 121 and 0.4 mg/mL in strain ML32. BSA was not used in the control group. The incubation of the mixture was carried out for 2 h at 37 • C, followed by the determination of the total viable count using plate count methods. Subsequently, 1 mL of the mixture was added into 1 mL of the simulated intestinal juice and incubated for 2 h at 37 • C. Following incubation, the total viable count was determined using plate count methods. The survival rate (%) was calculated as follows: Survival rate (%) = C/C 0 × 100% (2) where C is the total viable cell count in the simulated gastrointestinal environment and C 0 is the total viable cell count without simulated gastrointestinal environment treatment.
To explore the effect of BaP binding by Lactobacillus-BSA under a simulated gastrointestinal environment, the culture was suspended in the simulated gastric juice solution, in which the cell concentration was 1.0 × 10 10 CFU/mL, the BaP concentration was 10 µg/mL, and the BSA concentration was adjusted to 0.5 mg/mL in strain 121 and 0.4 mg/mL in strain ML32. BSA was not used in the control group. The mixture was incubated for 2 h at 37 • C; the supernatants were collected for the analysis of the residual BaP concentration by HPLC. The residual BaP concentration was then determined using HPLC after 1 mL of the mixture was added to 1 mL of the simulated intestinal juice (BaP 10 µg/mL) and incubated for 2 h at 37 • C.

Heat-and Ultrasonically Treated BSA's Impact on the Binding of BaP by Lactobacillus-BSA
To determine the effect of heat treating BSA on the binding of BaP by Lactobacillus-BSA, BSA solution was heated for 10 min at 25°C, 37 • C, 50 • C, and 80 • C. To assess the effect of ultrasonic treatment of BSA on the binding of BaP by Lactobacillus-BSA, the cells were subjected to ultrasound at 25 • C for 2 min, 5 min, 10 min, 15 min, and 20 min. Following incubation for 4 h at 37 • C, the samples were analyzed by HPLC. The culture (approx. 1.0 × 10 10 CFU/mL) was suspended in 1.0 mL of the BSA solution with varying concentrations of 0, 0.1, 0.2, 0.3, 0.4, and 0.5 mg/mL. The mixture was incubated for 4 h at 37 • C. The cells were subsequently collected by centrifugation (8000× g, 10 min, 4 • C), followed by triple washing with distilled water, and adjusted to an OD of 0.5-0.6 at 600 nm (H 0 ). Following that, a 4.5 mL cell suspension was mixed with 1.5 mL of xylene and vortexed for 2 min. The mixture was subjected to phase stabilization and separation for 30 min at 25 • C, following which the OD of the aqueous phase was measured at 600 nm (H 1 ). The hydrophobicity value (%) was calculated according to: The Pearson correlation coefficient analysis was used to determine the correlation between the surface hydrophobicity and BaP binding percentage of the strains using the Statistical Package for Social Science (SPSS) (version 25.0) software.

Automatic Aggregation
Based on the methodology in Section Surface Hydrophobicity, the culture (approx. 1.0 × 10 10 CFU/mL) was suspended, incubated and adjusted to an OD of 0.5-0.6 at 600 nm (A 0 ). The cell suspension was allowed to stand for 4 h and the absorbance of the supernatant was measured at 600 nm (A 1 ). The automatic aggregation value (%) was calculated as follows: The correlation between the automatic aggregation and BaP binding percentage of the strains was determined using the SPSS (version 25.0) software to perform the Pearson correlation coefficient analysis.

FTIR Analysis
To discern the potential functional groups and binding sites involved in the binding of BaP by Lactobacillus-BSA, powdered samples (2 mg) were mixed with 200 mg of (spectral) KBr and ground using an agate mortar. The analysis was performed using an X70 FTIR spectrophotometer (Netzsch Co., Ltd., Selb, Germany). The FT-IR spectra were scanned at 25 • C, with a spectral range of 4000-400 cm −1 .

SEM Analysis
To characterize the morphology of bacterial cells using scanning electron microscopy (SEM), the cells were pre-fixed (at 4 • C, in 2.5% glutaraldehyde), dehydrated (for 10 min, with 30-90% gradient ethanol) and freeze-dried. The samples underwent the procedures involving gold sputtering, observation, and photography via an scanning electron microscope (ZEISS Gemini 300, Carl Zeiss Co., Ltd., Oberkochen, Germany).

Isotherm Model Studies
The relationship between the mass of BaP adsorbed per unit mass of adsorbent and the aqueous-phase BaP concentration at equilibrium and a constant temperature is described by the adsorption isotherm. The cells of Lactobacillus strains were suspended in different BaP concentrations (2,5,10,20,40,60, and 80 µg/mL), and the concentration of cells was adjusted to 1 g/L. Furthermore, in the Lactobacillus-BSA group, the concentration of BSA was adjusted to 0.5 mg/mL and 0.4 mg/mL for strains 121 and ML32, respectively. The tests were conducted at 37 • C for 4 h.
The Langmuir isotherm was employed for the adsorption of BaP: where q e , q max , C e , and K L are the amounts of BaP per unit weight of the adsorbent at the adsorption equilibrium (mg/g), maximum BaP adsorption capacity (mg/g), BaP concentration in solution at equilibrium (mg/L), and the Langmuir adsorption constant (L/mg), respectively. To illustrate the Langmuir isotherm accurately, another dimensionless constant known as a separation factor (R L ) can be defined as follows: where C 0 is the initial BaP concentration (2,5,10,20,40,60, and 80 µg/mL). The Freundlich isotherm is used to describe the adsorption of a broad range of adsorbates, as shown in the following formula: where K F is the Freundlich constant related to adsorption capacity [(mg/g)/(mg/L) n ] and n is the adsorption intensity constant.

Adsorption Kinetics Studies
For adsorption kinetics studies, the Lactobacillus cells were suspended in BaP concentrations (10 µg/mL), and the cell concentration was adjusted to 1 g/L. Additionally, in the Lactobacillus-BSA group, the concentration of BSA was adjusted to 0.5 mg/mL and 0.4 mg/mL for strains 121 and ML32, respectively. The tests were run at 37 • C and analyzed at 2,5,10,15,20,25,30, and 45 min. The pseudo-first-order model, pseudo-second-order model, Elovich model and Weber-Morris model were used for determining BaP adsorption.
Pseudo-first-order kinetic rate equation: In(q e ·q t ) = Inq e ·K 1 ·t (8) where q t is the concentration of adsorbed BaP per unit weight of the adsorbent at a given time (t) (mg/g). K 1 is the pseudo-first-order kinetic rate constant (min −1 ). Pseudo-second-order kinetic rate equation: where K 2 is the pseudo-second-order kinetic rate constant (g mg −1 min −1 ). The following equation describes the Elovich model: where a (mg g −1 min −1 ) and b (g mg −1 ) are the Elovich model parameters.
The following equation describes the Weber-Morris model: where K p is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constant related to the boundary layer thickness (mg g −1 ).

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage ( Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies. Control, 121, and ML32.

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage ( Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies. Control, 121, and ML32.

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage ( Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies. Control, 121, and ML32.

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage ( Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage ( Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

Simulated Gastrointestinal Tract Analysis
This study used a model to simulate the human gastrointestinal tract and investigate the survival rate of bacterial cells in the presence of BSA as well as the percentage of BaP bound by Lactobacillus-BSA.
Both the strains exhibited high survival rates in the simulated gastrointestinal tract

Simulated Gastrointestinal Tract Analysis
This study used a model to simulate the human gastrointestinal tract and investigate the survival rate of bacterial cells in the presence of BSA as well as the percentage of BaP bound by Lactobacillus-BSA.
Both the strains exhibited high survival rates in the simulated gastrointestinal tract in the presence of BSA ( Table 1). The survival rates in the simulated gastric juice and intestinal juice for L. plantarum 121 were 69.30% and 14.47%, respectively, while they were 80.12% and 13.20%, respectively, for L. pentosus ML32. This indiates that BSA has a protective effect on bacterial cells. Furthermore, for both strains, the survival rate was observed to be higher in the simulated gastric juice compared to thr simulated intestinal juice. Lactobacillus-BSA demonstrated strong binding to BaP in the simulated gastrointestinal tract (Table 2). Similarly, the BaP binding percentage of simulated gastric juice was higher than that of the simulated intestinal juice for both strains. For L. plantarum 121, the BaP binding percentages of Lactobacillus-BSA in the simulated gastric juice and intestinal juice were 74.17% and 6.33%, respectively. For L. pentosus ML32, the BaP binding percentages of Lactobacillus-BSA in the simulated gastric juice and intestinal juice were 72.86% and 16.88%, respectively. In the simulated gastrointestinal tract, the BaP binding percentage of bacterial cells increased when combined with BSA (p < 0.05). The BaP-binding ability of L. plantarum 121-BSA was almost unaffected by heat treatment (Figure 3a). However, there was a reduction in the percentage of BaP binding by L. pentosus ML32-BSA at 80 • C; it was only 54.30%. The BaP binding percentage of Lactobacillus-BSA tended to decline between 2 and 10 min (Figure 3b). However, when the ultrasonic time increased to above 10 min, the BaP binding percentage of L. plantarum 121-BSA increased at first and then decreased to 66.58%, whereas that of L. pentosus ML32-BSA did not significantly change. These findings indicate that heat and ultrasonic treatment with BSA adversely affect the binding of BaP to Lactobacillus-BSA.  (Figure 3a). However, there was a reduction in the percentage of BaP binding by L. pentosus ML32-BSA at 80 °C; it was only 54.30%. The BaP binding percentage of Lactobacillus-BSA tended to decline between 2 and 10 min (Figure 3b). However, when the ultrasonic time increased to above 10 min, the BaP binding percentage of L. plantarum 121-BSA increased at first and then decreased to 66.58%, whereas that of L. pentosus ML32-BSA did not significantly change. These findings indicate that heat and ultrasonic treatment with BSA adversely affect the binding of BaP to Lactobacillus-BSA. analyses were performed at least three times. All data were exrd deviation. Data analysis was performed using SPSS (version 8.0). The statistical analysis was carried out using the one-way VA). ing to Lactobacillus-BSA complex with the PBS buffer led to the reduction of 2.93% and ercentage ( Figure 2). More BaP was released using 55% ethanol ions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus nding percentage were observed with 55% ethanol and 17.43% d 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, reater effect on the stability of BaP in binding to Lactobacillus- 121; yses were performed at least three times. All data were exviation. Data analysis was performed using SPSS (version The statistical analysis was carried out using the one-way .

ding of BaP by Lactobacillus
of Lactobacillus-BSA ge of BSA alone was lower than that of the combination of e 1). Moreover, the BaP binding percentage of Lactobacillus-BSA concentrations for both strains. L. plantarum 121-BSA e BaP, whereas L. pentosus ML32-BSA could bind 47.91ntarum 121, the maximum BaP binding percentage was SA, while for L. pentosus ML32, the maximum BaP binding 0.4 mg/mL of BSA. As a result, these effective BSA concener studies. The surface hydrophobicity initially increased and then decreased as the BSA concentration increased for the two strains ( Figure 3c). Notably, the maximum surface hydrophobicity values were found at 0.2 mg/mL and 0.1 mg/mL, which were 51.97% (L. plantarum 121) and 40.04% (L. pentosus ML32), respectively. Overall, BSA improved the hydrophobicity of the two Lactobacillus strains in the concentration range of 0-0.5 mg/mL. As presented in Figure 3d, the automatic aggregation of L. plantarum 121 first decreased and then increased as the BSA concentration increased, which was contrary to the change observed in L. pentosus ML32. The minimum automatic aggregation value for L. plantarum 121 was found to be 3.18% at a concentration of 0.2 mg/mL. The maximum automatic aggregation value for L. pentosus ML32 was 11.40% and was discovered at 0.1 mg/mL. These data indicate that BSA had no negative effect on the automatic aggregation of the two Lactobacillus strains.
The absolute values of the Pearson correlation coefficient of the surface hydrophobicity of the two strains and the BaP binding percentage were 0.19 and 0.22, while they were 0.09 and 0.13 for the automatic aggregation of the two strains and the BaP binding percentage (Table 3). In the presence of BSA, a weak correlation was observed between the surface properties of the strains and the BaP binding percentage.

FTIR Analysis
FTIR spectroscopy was utilized as a method for identifying the possible functional groups and binding sites that may be involved in BaP binding. The average FTIR spectra of the Lactobacillus-BSA-BaP interaction are shown in Figure 4a,b. It was observed that the wavelengths were in the range of 3500-3200 cm −1 for the two strains, which could be attributed to the N-H and O-H characteristic vibration absorption peaks. The -CH stretching of the methyl and methylene groups was observed in the wavelength range 2970-2840 cm −1 , which could be attributed to the fatty acids of the membrane phospholipids participating in the binding process. The peak of amide I shifted by 19 and 25 cm −1 after Lactobacillus-BSA binding to BaP, which could be attributed to the changes in C=O in amides. The intensity of amide II (1650-1530 cm −1 ) was substantially weakened after adsorption, indicating that the functional groups of proteins participated in the binding process. The peak of P=O (lipid and polysaccharide) was near 1240 cm −1 , and the intensity of the absorption peak was weakened following the binding. The peak near 1050 cm −1 was the result of the combined action of stretching of the phosphoric acid group, sugar hydroxyl group, amide V, and S=O, which shifted when Lactobacillus-BSA was bound to BaP.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure  5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure  5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure  5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure  5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full. Analysis as used to confirm the morphology of the BaP-exposed and -unexposed bac-An alteration in the binding of Lactobacillus-BSA to BaP was observed (Figure face morphology of the bacterial cells that were not exposed to BaP was obfree from disruptions, appearing smooth. Compared with the unexposed baccontrol), the morphology of BaP-exposed cells was distinctly deformed and owever, the cell surface of Lactobacillus-BSA bound to BaP was smooth and Analysis was used to confirm the morphology of the BaP-exposed and -unexposed bac-. An alteration in the binding of Lactobacillus-BSA to BaP was observed (Figure rface morphology of the bacterial cells that were not exposed to BaP was obe free from disruptions, appearing smooth. Compared with the unexposed bac-(control), the morphology of BaP-exposed cells was distinctly deformed and However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and ML32 + BaP + BSA, and

SEM Analysis
SEM was used to confirm the morphology of terial cells. An alteration in the binding of Lactobac 5). The surface morphology of the bacterial cells served to be free from disruptions, appearing smoo terial cell (control), the morphology of BaP-expo damaged. However, the cell surface of Lactobacillu full.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure 5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control ( Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b,c demonstrates Langmuir and Freundlich isothermal adsorption model fitting results. The nature of the isotherm can be determined based on the value of R L , where R L = 0 represents irreversibility, R L = 1 represents linearity, R L between 0 and 1 represents favorableness, and R L > 1 represents unfavorableness. The calculated R L values of L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were all in the range of 0-1, signifying favorable adsorption. Based on the R 2 values, the Freundlich isotherm model is an excellent fit for BaP adsorption by Lactobacillus-BSA, with high correlation coefficients of R 2 = 0.9911 for L. plantarum 121-BSA and R 2 = 0.9905 for L. pentosus ML32-BSA (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient K F in the Freundlich isotherm model. In the presence of BSA, the K F values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

SEM Analysis
SEM was used to confirm the morphology of the BaP-exposed and -unexposed bacterial cells. An alteration in the binding of Lactobacillus-BSA to BaP was observed ( Figure  5). The surface morphology of the bacterial cells that were not exposed to BaP was observed to be free from disruptions, appearing smooth. Compared with the unexposed bacterial cell (control), the morphology of BaP-exposed cells was distinctly deformed and damaged. However, the cell surface of Lactobacillus-BSA bound to BaP was smooth and full.    (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.   The following equation describes the Weber-Morris model: where Kp is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constant related to the boundary layer thickness (mg g −1 ).

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies.  (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.  The following equation describes the Weber-Morris model: where Kp is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constan lated to the boundary layer thickness (mg g −1 ).

Statistical Analysis
All experiments and analyses were performed at least three times. All data wer pressed as mean ± standard deviation. Data analysis was performed using SPSS (ver 25.0) and Origin (version 8.0). The statistical analysis was carried out using the oneanalysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combinatio BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobaci BSA increased with increasing BSA concentrations for both strains. L. plantarum 121could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47 66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP bin percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA con trations were selected for further studies.  (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.    (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP equal to the concentration of desorbed BaP, and the equilibrium value in the solution constant. An increase in the quantity of BaP per unit weight of the adsorbent at the ad sorption equilibrium was observed for Lactobacillus-BSA when compared with the Lacto bacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally as shown in Table 4, the affinity of the complex could be measured by the coefficient KF i the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 12 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.412 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficu or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all Ba adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L pentosus ML32-BSA were in the range of 1-2, or n < 1.  Langmuir,  (Table 4). Additionally as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 12 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.412 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficul or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L pentosus ML32-BSA were in the range of 1-2, or n < 1.  when the concentration of adsorbed BaP is and the equilibrium value in the solution is per unit weight of the adsorbent at the adbacillus-BSA when compared with the Lactoisotherm models (Langmuir and Freundlich) of BaP. Figure 6b,c demonstrates Langmuir el fitting results. The nature of the isotherm where RL = 0 represents irreversibility, RL = 1 resents favorableness, and RL > 1 represents L. plantarum 121, L. pentosus ML32, L. plantare all in the range of 0-1, signifying favorable ndlich isotherm model is an excellent fit for igh correlation coefficients of R 2 = 0.9911 for pentosus ML32-BSA (Table 4). Additionally, ex could be measured by the coefficient KF in nce of BSA, the KF values of L. plantarum 121 e of L. pentosus ML32 improved from 0.4125 tes that adsorption is poor, relatively difficult < 10, respectively. The n values of all BaP pentosus ML32, L. plantarum 121-BSA, and L. , or n < 1.

Biosorption Isotherm of BaP
An adsorption equilibrium is reached when the concentration of adsorbed BaP is equal to the concentration of desorbed BaP, and the equilibrium value in the solution is constant. An increase in the quantity of BaP per unit weight of the adsorbent at the adsorption equilibrium was observed for Lactobacillus-BSA when compared with the Lactobacillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) were used to predict the adsorption model of BaP. Figure 6b (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.

Kinetic Model Studies
The time profile of the BaP adsorption is shown in Figure 7. The BaP adsorption capacities of L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA increased rapidly before 15 min and reached the peak at approximately 30 min; more binding sites increased the likelihood of binding occurring at the start. In this study, four models (pseudo-first-order kinetic, pseudo-second-order kinetic, Elovich, and Weber-Morris models) were used to predict BaP adsorption ( Figure 8). According to the correlation coefficient values (R 2 ) from the linear regression analysis for the pseudo-firstorder kinetic, pseudo-second-order kinetic, and Elovich models (Table 5), the kinetic models of Lactobacillus binding BaP fit with the Elovich kinetic model; the R 2 value was 0.9793 for L. plantarum 121 and 0.9417 for L. pentosus ML32. The results obtained in the presence of BSA clearly fit the pseudo-second-order kinetic model. For L. plantarum 121-BSA, the R 2 value was 0.9681, while for L. pentosus ML32-BSA, the R 2 value was larger (0.9708). Furthermore, the calculated adsorption capacity values were in agreement with the experimental values (Qexp) ( Table 5). In addition, for the rate parameter K 2 in the pseudo-second-order kinetic model, the value for L. plantarum 121-BSA was greater than that for L. pentosus ML32-BSA. Based on the results of the Weber-Morris model (Figure 8d,h), the two straight lines did not pass through the origin, and the plot was divided into two stages. binding sites increased the likelihood of binding occurring at the start. In this study, four models (pseudo-first-order kinetic, pseudo-second-order kinetic, Elovich, and Weber-Morris models) were used to predict BaP adsorption (Figure 8). According to the correlation coefficient values (R 2 ) from the linear regression analysis for the pseudo-first-order kinetic, pseudo-second-order kinetic, and Elovich models (Table 5), the kinetic models of Lactobacillus binding BaP fit with the Elovich kinetic model; the R 2 value was 0.9793 for L. plantarum 121 and 0.9417 for L. pentosus ML32. The results obtained in the presence of BSA clearly fit the pseudo-second-order kinetic model. For L. plantarum 121-BSA, the R 2 value was 0.9681, while for L. pentosus ML32-BSA, the R 2 value was larger (0.9708). Furthermore, the calculated adsorption capacity values were in agreement with the experimental values (Qexp) ( Table 5). In addition, for the rate parameter K2 in the pseudo-second-order kinetic model, the value for L. plantarum 121-BSA was greater than that for L. pentosus ML32-BSA. Based on the results of the Weber-Morris model (Figure 8d,h), the two straight lines did not pass through the origin, and the plot was divided into two stages.   The following equation describes the Weber-Morris model: where Kp is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constant related to the boundary layer thickness (mg g −1 ).

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies. Control, 121, and ML32.

Stability of BaP Binding to Lactobacillus-BSA
Triple washing of the complex with the PBS buffer led to the reduction of 2.93% and 2.30% in the BaP binding percentage (Figure 2). More BaP was released using 55% ethanol and benzene. The reductions of 22.38% (L. plantarum 121-BSA) and 20.35% (L. pentosus ML32-BSA) in the BaP-binding percentage were observed with 55% ethanol and 17.43% (L. plantarum 121-BSA) and 11.33% (L. pentosus ML32-BSA) benzene (p < 0.01). In general, organic solvents have a greater effect on the stability of BaP in binding to Lactobacillus-BSA.

121,
x FOR PEER REVIEW 6 of 16 The following equation describes the Weber-Morris model: where Kp is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constant related to the boundary layer thickness (mg g −1 ).

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies. The following equation describes the Weber-Morris model: where Kp is the intra-particle diffusion rate constant (mg g −1 min −1/2 ). C is the constant related to the boundary layer thickness (mg g −1 ).

Statistical Analysis
All experiments and analyses were performed at least three times. All data were expressed as mean ± standard deviation. Data analysis was performed using SPSS (version 25.0) and Origin (version 8.0). The statistical analysis was carried out using the one-way analysis of variance (ANOVA).

The BaP-Binding Ability of Lactobacillus-BSA
The BaP binding percentage of BSA alone was lower than that of the combination of BSA with bacterial cells (Figure 1). Moreover, the BaP binding percentage of Lactobacillus-BSA increased with increasing BSA concentrations for both strains. L. plantarum 121-BSA could bind 31.06-49.61% of the BaP, whereas L. pentosus ML32-BSA could bind 47.91-66.09% of the BaP. For L. plantarum 121, the maximum BaP binding percentage was achieved with 0.5 mg/mL of BSA, while for L. pentosus ML32, the maximum BaP binding percentage was achieved with 0.4 mg/mL of BSA. As a result, these effective BSA concentrations were selected for further studies.  (Table 4). Additionally, as shown in Table 4, the affinity of the complex could be measured by the coefficient KF in the Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 changed from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 to 0.9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult or excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP adsorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA were in the range of 1-2, or n < 1.  The time profile of the BaP adsorption is shown in Figure 7. The BaP adsorption capacities of L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-BSA increased rapidly before 15 min and reached the peak at approximately 30 min; more ML32 + BSA.

Discussion
BaP is recognized as a strong carcinogen in food production and processing, which threatens human health [6]. The removal of BaP holds considerable importance in the context of ensuring food safety. Studies have shown that L. plantarum 121 and L. pentosus ML32 can adsorb BaP [11]. This is the first study to explore the effects of BSA on the binding of BaP to Lactobacillus.
BSA has different binding effects on various substances, which provides an important basis for its role in the body [21,22]. In this study, Lactobacillus-BSA significantly improved the BaP binding percentage. All results indicated that BSA itself had the ability to bind to BaP; however, it was not as strong as that of Lactobacillus-BSA. This revealed that BaP binding results from the synergistic effects of Lactobacillus and BSA.
According to these data, the binding of the toxin to the biomass is not very stable. If binding is weak, the toxin would be released by continuous washing of the complex. The findings reveal that washing the complex with benzene, ethanol, and PBS buffer all led to the desorption of BaP. However, the binding of BaP to Lactobacillus-BSA still maintained certain stability. This indicates that the BaP bound by Lactobacillus-BSA was not easily released, which would be highly desirable.
BaP bioaccessibility is a major aspect of BaP control, and the stability of BaP binding in the gastrointestinal environment is critical [23]. To investigate the effect of BaP binding to Lactobacillus-BSA within the gastrointestinal tract, an in vitro simulation model was used. The in vitro simulation showed that supplementation with BSA maintained the survival rate of bacteria, indicating that BSA has a protective effect on Lactobacillus. Similarly, a rise in the BaP binding percentage was observed in the two strains in combination with BSA. However, the BaP binding percentage in the simulated intestinal juice was found to be significantly lower than that observed in the simulated gastric juice. Previous studies have indicated that the properties of bacterial cells and proteins change greatly after the two stages of gastrointestinal digestion [24].
Heat treatment can cause structural changes in proteins, protein denaturation, and the formation of thermal polymers [25]. Additionally, superheat treatment can change the structural properties of BSA and reduce the exposure of its hydrophobic groups [26]. Ultrasonic treatment can alter the secondary structure of proteins, in addition to changing and Freundlich isothermal adsorption model can be determined based on the value of RL, w represents linearity, RL between 0 and 1 repre unfavorableness. The calculated RL values of L rum 121-BSA, and L. pentosus ML32-BSA were adsorption. Based on the R 2 values, the Freun BaP adsorption by Lactobacillus-BSA, with hig L. plantarum 121-BSA and R 2 = 0.9905 for L. pe as shown in Table 4, the affinity of the complex the Freundlich isotherm model. In the presenc changed from 0.0919 to 0.9182, whereas those to 0.9074. Additionally, the value of n indicates or excellent when n < 1, 1 < n < 2 and 2 < n < adsorption processes by L. plantarum 121, L. pe pentosus ML32-BSA were in the range of 1-2, o (a) (b)  The time profile of the BaP adsorption is pacities of L. plantarum 121, L. pentosus ML32, L BSA increased rapidly before 15 min and reach 121, re used to predict the adsorption model of BaP. Figure 6b,c demonstrates Langmuir Freundlich isothermal adsorption model fitting results. The nature of the isotherm be determined based on the value of RL, where RL = 0 represents irreversibility, RL = 1 resents linearity, RL between 0 and 1 represents favorableness, and RL > 1 represents favorableness. The calculated RL values of L. plantarum 121, L. pentosus ML32, L. planta-121-BSA, and L. pentosus ML32-BSA were all in the range of 0-1, signifying favorable sorption. Based on the R 2 values, the Freundlich isotherm model is an excellent fit for P adsorption by Lactobacillus-BSA, with high correlation coefficients of R 2 = 0.9911 for plantarum 121-BSA and R 2 = 0.9905 for L. pentosus ML32-BSA (Table 4). Additionally, shown in Table 4, the affinity of the complex could be measured by the coefficient KF in Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 nged from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 .9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP sorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. tosus ML32-BSA were in the range of 1-2, or n < 1. The time profile of the BaP adsorption is shown in Figure 7. The BaP adsorption caities of L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. pentosus ML32-A increased rapidly before 15 min and reached the peak at approximately 30 min; more 121 + BSA, (a) pseudo-first-order, (b) pseudo-second-order, (c) Elovich, and (d) Weber-Morris. Adsorption kinetics models fitting of BaP by strain ML32 and its combination with BSA; bacillus control ( Figure 6a). In this study, two isoth were used to predict the adsorption model of B and Freundlich isothermal adsorption model fit can be determined based on the value of RL, whe represents linearity, RL between 0 and 1 represe unfavorableness. The calculated RL values of L. p rum 121-BSA, and L. pentosus ML32-BSA were al adsorption. Based on the R 2 values, the Freundli BaP adsorption by Lactobacillus-BSA, with high L. plantarum 121-BSA and R 2 = 0.9905 for L. pent as shown in Table 4, the affinity of the complex co the Freundlich isotherm model. In the presence o changed from 0.0919 to 0.9182, whereas those of to 0.9074. Additionally, the value of n indicates th or excellent when n < 1, 1 < n < 2 and 2 < n < 1 adsorption processes by L. plantarum 121, L. pent pentosus ML32-BSA were in the range of 1-2, or n  The time profile of the BaP adsorption is sh pacities of L. plantarum 121, L. pentosus ML32, L. pl BSA increased rapidly before 15 min and reached ML32, ption equilibrium was observed for Lactobacillus-BSA when compared with the Lactoillus control (Figure 6a). In this study, two isotherm models (Langmuir and Freundlich) re used to predict the adsorption model of BaP. Figure 6b,c demonstrates Langmuir Freundlich isothermal adsorption model fitting results. The nature of the isotherm be determined based on the value of RL, where RL = 0 represents irreversibility, RL = 1 resents linearity, RL between 0 and 1 represents favorableness, and RL > 1 represents favorableness. The calculated RL values of L. plantarum 121, L. pentosus ML32, L. planta-121-BSA, and L. pentosus ML32-BSA were all in the range of 0-1, signifying favorable sorption. Based on the R 2 values, the Freundlich isotherm model is an excellent fit for P adsorption by Lactobacillus-BSA, with high correlation coefficients of R 2 = 0.9911 for plantarum 121-BSA and R 2 = 0.9905 for L. pentosus ML32-BSA (Table 4). Additionally, shown in Table 4, the affinity of the complex could be measured by the coefficient KF in Freundlich isotherm model. In the presence of BSA, the KF values of L. plantarum 121 nged from 0.0919 to 0.9182, whereas those of L. pentosus ML32 improved from 0.4125 .9074. Additionally, the value of n indicates that adsorption is poor, relatively difficult excellent when n < 1, 1 < n < 2 and 2 < n < 10, respectively. The n values of all BaP sorption processes by L. plantarum 121, L. pentosus ML32, L. plantarum 121-BSA, and L. tosus ML32-BSA were in the range of 1-2, or n < 1.

Discussion
BaP is recognized as a strong carcinogen in food production and processing, which threatens human health [6]. The removal of BaP holds considerable importance in the context of ensuring food safety. Studies have shown that L. plantarum 121 and L. pentosus ML32 can adsorb BaP [11]. This is the first study to explore the effects of BSA on the binding of BaP to Lactobacillus.
BSA has different binding effects on various substances, which provides an important basis for its role in the body [21,22]. In this study, Lactobacillus-BSA significantly improved the BaP binding percentage. All results indicated that BSA itself had the ability to bind to BaP; however, it was not as strong as that of Lactobacillus-BSA. This revealed that BaP binding results from the synergistic effects of Lactobacillus and BSA.
According to these data, the binding of the toxin to the biomass is not very stable. If binding is weak, the toxin would be released by continuous washing of the complex. The findings reveal that washing the complex with benzene, ethanol, and PBS buffer all led to the desorption of BaP. However, the binding of BaP to Lactobacillus-BSA still maintained certain stability. This indicates that the BaP bound by Lactobacillus-BSA was not easily released, which would be highly desirable.
BaP bioaccessibility is a major aspect of BaP control, and the stability of BaP binding in the gastrointestinal environment is critical [23]. To investigate the effect of BaP binding to Lactobacillus-BSA within the gastrointestinal tract, an in vitro simulation model was used. The in vitro simulation showed that supplementation with BSA maintained the survival rate of bacteria, indicating that BSA has a protective effect on Lactobacillus. Similarly, a rise in the BaP binding percentage was observed in the two strains in combination with BSA. However, the BaP binding percentage in the simulated intestinal juice was found to be significantly lower than that observed in the simulated gastric juice. Previous studies have indicated that the properties of bacterial cells and proteins change greatly after the two stages of gastrointestinal digestion [24].
Heat treatment can cause structural changes in proteins, protein denaturation, and the formation of thermal polymers [25]. Additionally, superheat treatment can change the structural properties of BSA and reduce the exposure of its hydrophobic groups [26]. Ultrasonic treatment can alter the secondary structure of proteins, in addition to changing their hydrophobic properties [27]. As a result, a decrease in the number of binding sites of BSA for BaP resulted in a reduction in the BaP binding percentage.
Previous studies have confirmed that the hydrophobicity and automatic aggregation of bacterial cells are related to adhesion properties, which are important prerequisites for functioning in the human body [28]. Various pretreatments expose the hydrophobic groups on the bacterial surface, enhancing the binding of BaP [29]. Zhao et al. [30] indicated that hydrophobic interactions affect the removal of di-n-butyl phthalate (DBP) by LAB and that a decrease in the DBP adsorption rate can be attributed to a reduction in the number of hydrogen bonds and electrostatic interactions. In this study, BSA improved the surface hydrophobicity of the two strains, which could be attributed to the enhancement of surface hydrophobicity that increased the BaP binding percentage. The correlation between the BaP binding percentage and the surface properties of the selected Lactobacillus strains was analyzed using the Pearson correlation coefficient. The greater the absolute value of the correlation coefficient, the stronger the correlation. The closer the correlation coefficient is to 1 or −1, the stronger was the correlation, and the closer the correlation coefficient is to 0, the weaker was the correlation. A weak correlation between the surface properties of the two Lactobacillus strains and the BaP binding percentage in the presence of BSA was noted.
By analyzing the FTIR spectrum, it can be assumed that some functional groups of polysaccharides, lipids, and proteins are involved in BaP binding. Shen et al. [31] demonstrated that peptidoglycans and proteins on cell walls are the major components involved in AA adsorption. Ge et al. [32] revealed that the C-O, O-H, and N-H groups related to proteins and peptidoglycans play a major role in tenuazonic acid adsorption. SEM could explore the relationship between the changes in cell surface structure and BaP binding by Lactobacillus-BSA. The SEM results showed that the morphology of Lactobacillus-BSA did not change significantly after the adsorption of BaP. BSA does not change the morphology of bacterial cells.
In this study, Langmuir and Freundlich isotherm models were used to predict the adsorption of BaP by Lactobacillus-BSA. The corresponding fitting parameters were obtained by fitting and analyzing the adsorption isotherms. These adsorption isotherm parameters reflect the affinities of the binding sites and binding mechanisms [33]. According to the correlation coefficient results, the Freundlich model provided a better description of the kinetics of BaP adsorption by Lactobacillus-BSA than the Langmuir model did. The basis for this is the supposition that BaP adsorption is probably heterogeneous between layers. K F reflects the affinity between the adsorbent and adsorbate. The larger the value of K F , the easier the adsorption of the adsorbate [34]. An increase in K F values was observed for BaP adsorption by Lactobacillus-BSA compared to Lactobacillus, which indicated that the supplementation of BSA enhanced the affinity between bacterial cells and BaP. Another parameter (1/n) was used to describe the adsorption intensity, with a value of 1/n between 0.1 and 0.5, indicating that adsorption is easy to conduct [35]. Based on these results, the binding process of BaP to Lactobacillus-BSA was not optimal.
According to the kinetic model studies, the kinetic models of Lactobacillus-BSA binding to BaP fit the pseudo-second-order kinetic model, whereas those of Lactobacillus binding to BaP fit the Elovich kinetic model. It can be presumed that BaP binding is influenced by chemisorption during the binding process. Zoghi et al. [36] found that chemisorption was also involved in patulin adsorption by NaOH-treated L. plantarum ATCC 8014 in apple juice by analyzing a pseudo-second-order kinetic model. Additionally, the Weber-Morris intraparticle diffusion model was used to understand the diffusion mechanism and predict the rate-limiting step of the adsorption of BaP by Lactobacillus-BSA. If the plot gives a straight line and passes through the origin, it means that the binding process of BaP is controlled only by intra-particle diffusion [37]. The two straight lines do not pass through the origin, thus indicating that the BaP-binding process is controlled by intra-particle diffusion and liquid membrane diffusion.

Conclusions
In this study, the combination of Lactobacillus and BSA enhanced the BaP-binding effect. Better stability, complete cell morphology and a desirable influence of the gastrointestinal environment were obtained in the BaP binding by Lactobacillus-BSA. Additionally, polysaccharides, lipids, and proteins were involved in BaP binding. The pseudo-secondorder kinetic model and Freundlich isotherm model were more suitable for describing the binding behavior of Lactobacillus-BSA to BaP. These findings demonstrate a novel method for the combination of Lactobacillus and BSA for the effective removal of BaP.