Favorable Heteroaromatic Thiazole-Based Polyurea Derivatives as Interesting Biologically Active Products

This research sought to synthesize a new set of heteroaromatic thiazole-based polyurea derivatives with sulfur links in the polymers’ main chains, which were denoted by the acronyms PU1–5. Using pyridine as a solvent, a diphenylsulfide-based aminothiazole monomer (M2) was polymerized via solution polycondensation with varied aromatic, aliphatic, and cyclic diisocyanates. Typical characterization methods were used to confirm the structures of the premonomer, monomer, and fully generated polymers. The XRD results revealed that aromatic-based polymers had higher crystallinity than aliphatic and cyclic derivatives. SEM was used to visualize the surfaces of PU1, PU4, and PU5, revealing spongy and porous shapes, shapes resembling wooden planks and sticks, and shapes resembling coral reefs with floral shapes at various magnifications. The polymers demonstrated thermal stability. The numerical results for PDTmax are listed in the following order, ranked from lowest to highest: PU1 < PU2 < PU3 < PU5 < PU4. The FDT values for the aliphatic-based derivatives (PU4 and PU5) were lower than those for the aromatic-based ones (616, 655, and 665 °C). PU3 showed the greatest inhibitory impact against the bacteria and fungi under investigation. In addition, PU4 and PU5 demonstrated antifungal activities that, in contrast with the other products, were on the lower end of the spectrum. Furthermore, the intended polymers were also tested for the presence of the proteins 1KNZ, 1JIJ, and 1IYL, which are frequently utilized as model organisms for E. coli (Gram-negative bacteria), S. aureus (Gram-positive bacteria), and C. albicans (fungal pathogens). This study’s findings are consistent with the outcomes of the subjective screening.


Introduction
Polyurea derivatives are a group of interesting and varied linear polymeric materials that are made using the traditional method of polycondensation. These polymers feature an architecture in the main chain of the polymer akin to that of urea. Similar polymers can also be created by associating diamine compounds with primary amino groups with diisocyanate compounds via step-growth addition polymerization with no by-products [1][2][3][4]. This method does not yield any polymers that are similar to those that were made. A common method for the synthesis of polyurea polymers is the condensation of diisocyanates with dicarboxylic acid chlorides in the presence of dry pyridine or through the cationic ring-opening isomerization method, which additionally allows for the production of a new form of thermally stable polyurea polymerization, as reported by Miyamoto et al. [5]. When sulfur is added to these polymers in any form, or when it is introduced to the monomers, a material called sulfur-containing polyurea is produced. This substance is quite similar to conventional polyurea in terms of both its manufacture and qualities. In recent years, a Both monomers' melting temperatures were measured using a digital image-processing automated melting point device. A Perkin-Elmer Infrared Spectrophotometer was used to obtain Fourier transform infrared spectra (FT-IR). All spectra were collected between wavenumbers of 600 and 4000 cm −1 . The 1 H NMR and 13 C NMR spectra, obtained using CDCl 3 and DMSO-d 6 , respectively, were recorded on a Bruker Advance 850 MHz spectrometer. The produced polymers' solubility characteristics were estimated under the same conditions with numerous solvents, namely, dimethylformamide (DMF), dimethyl sulfoxide (DMSO), benzene (C 6 H 6 ), chloroform (CHCl 3 ), dichloromethane (CH 2 Cl 2 ), tetrahydrofuran (THF), acetone, formic acid, and concentrated sulfuric acid. The molecular weights were evaluated using gel permeation chromatography (GPC) on Agilent-GPC. G-1362A was used as the refractive index detector and was operated at 100-104-105 A • . For this experiment, polystyrene was used as a standard, and THF was used to elute the columns at a flow rate of 1 mL min −1 . Flow rate = 2000 mL min −1 , injection volume = 100,00 L, and sample concentration = 1.000 g L −1 were the operating parameters for the GPC apparatus. Using a RigakuUltima IV X-ray diffractometer, the following settings were applied to a to estimate X-ray diffraction patterns: Ni-filtered Cu K radiation at 40 kV voltage and 40 mA current across a range of 5 • to 80 • in increments of 0.02 • and a sampling speed of 4.0000 deg/min. The TGA thermal performance of the new heteroaromatic thiazolebased polyurea derivatives was displayed using a DTG-60H thermal analyzer. Tests were achieved by placing the samples on a Platinum Macro Pan with an applied heating rate of 10 • C/min within a temperature range of 30-800 • C under a nitrogen atmosphere.
The surface morphology characteristics of the novel heteroaromatic thiazole-based polyurea derivatives were determined via field emission scanning electron microscopy (FESEM) (Jeol JSM-7600F) using a Quanta FEI instrument.

Reagents and Solvents
Diphenylsulfide and chloroacetyl chloride were obtained from Merck and used as received. Sigma-Aldrich was contacted to procure anhydrous aluminum chloride. Thiourea, sodium carbonate, sodium hydroxide, and sodium carbonate anhydrous were all purchased from Fluka. BDH was the source for both acetone and concentrated hydrochloric acid. After their delivery by Merck, 5Å molecular sieves were used to dry carbon disulfide and pyridine. Various diisocyanate compounds (97%) from Sigma-Aldrich were used, including 1,4-phenylenediisocyanate, 4,4 -diphenyl-methanediisocyanate, toluene-2,4-diisocyanate, hexamethylene diisocyanate, and 1,4-cyclohaxylenediisocyanate. Fisher Chemical supplied us with 99.9% ethanol and absolute methanol. BDH was the source for both acetone and concentrated hydrochloric acid. All solvents and reagents were of such high purity (99-97% pure) that they were employed directly after extraction. Absolute ethanol (99%) was obtained from Fisher Chemical. All stated chemicals (solvents and reagents) were utilized exactly as they were purchased, with no additional purification, because of their high purity (99-97%). A total of 1.59 mL of chloroacetyl chloride (0.002 mol) was dissolved in 50 mL of dry carbon disulfide and poured into 1.6 mL (0.001 mol) of diphenyl sulfide. The mixture was then cooled over an ice bath, and 5.34 g of anhydrous aluminum chloride (0.004 mol) was added dropwise with continuous stirring for 5 h. At the end of the reaction time, all the carbon disulfide had evaporated; then, 60 mL of cold hydrochloric acid was poured into the residue. The resulting product was then filtered, washed with distilled water, and recrystallized, resulting in an orange precipitate with a melting point of 101-103 • C [43].

Synthetic Procedures for Monomers and Polymers
The FT-IR data of this monomer showed absorption bands at 1580 cm −1 for C=C and at 1676 cm −1 for the C=O of the chloroacetyl group ( Figure S1). 1 Figure S3).

Synthesis of 4-Bis-2-Aminothiazole-Diphenylsulfide (M2)
In a 250 mL round flask attached to a condenser, a mixture of 1 g (0.003 mol) of M1 and 0.47 g (0.006 mol) of thiourea was dissolved in 20 mL of absolute ethanol and refluxed with stirring for 6 h. Then, 25 mL of cold sodium acetate solution (20%; 100 mL) was added to the mixture. The formed precipitate was then collected, filtered, and recrystallized with ethanol, yielding yellowish crystals with a melting point of 240 • C [44].

Synthesis of Heteroaromatic PU 1-5 Derivatives General Polymerization Process
In a nitrogen-gas-saturated system, 0.002 mol of M2 were dissolved in 30-40 mL of dry pyridine, and 0.002 mol of various aromatic and aliphatic diisocyanates were added dropwise. The flask had three necks, and the condenser was attached. For 18 h, the mixture was warmed at a low simmer. After letting the reaction mixture settle at ambient temperature, it was placed into ice water to precipitate a white-brown substance (PU 1 -PU 5 ). The process was completed after the solid polymers were separated, filtered, and finally washed in water [30][31][32]. The polymer product was then dried for two days at 70 • C at low pressure (1 mmHg) [45]. The IR spectra of all produced polymers showed absorption bands at 3300 cm −1 (NH of urea derivative) and 1635 cm −1 (C=O of urea derivative) as exhibited.

Antimicrobial Screening
Antimicrobial screening of the synthesized polyurea derivatives PU 1 -PU 5 was performed against different bacterial and fungal organisms. Bacterial cell suspensions were prepared from cultures grown in sterile water on nutritional agar for 48 h [46,47]. One milliliter of cell suspension and fifteen milliliters of NA were placed into a Petri dish with a 9 cm diameter. We gently shook the plate to combine the inoculum. Both the tested polymer solution and the ampicillin solution (0.1 and 0.05 mg/mL in DMSO) (Whatman) were impregnated onto sterile 5 mm filter paper discs. The solvent-impregnated discs were used in conjunction with a control group (DMSO). After drying for 1 h, the impregnated discs were put in the middle of each plate. The seeded plates were incubated for 24-48 h at 30 ± 2 • C. The triplicate sets' inhibition zone radii (millimeter) were measured, and the findings are shown in later.

Antibacterial Screening
To test the antibacterial activities of the target polyurea, four bacterial species representing both Gram-negative and Gram-positive strains were used: Escherichia coli (E. coli) and Pseudomonas aeruginosa (P. aeruginosa) were the representative Gram-negative strains, and Bacillus cereus (B. cereus) and Bacillus subtilis (B. subtilis) were the representative Grampositive strains. To create the cell suspensions, 48-h-old cultures were cultivated in sterile water on nutrient agar. A 9 cm diameter Petri dish was seeded with 1 mL of cell suspension; then, 15 mL of NA was added. The dish was gently shaken to mix the inoculum. We impregnated sterile 5 mm filter paper discs (Whatman) with solutions of the polymer sample under test and ampicillin solution (0.1 and 0.05 mg/mL in DMSO) as a standard. Several discs were also treated with the solvent to serve as controls (DMSO). After drying for 1 h, the impregnated discs were placed in the center of each plate. The seeded plates were incubated for 36-48 h at 30 ± 2 • C. The triplicate sets' inhibition zone radii (millimeter) were measured, and the results are shown in shown later.

Antifungal Screening
Two important pathogenic fugal organisms were used in this work: Fausarium oxysporum (F. oxysporum) and Candida albicans (C. albicans). Using 2-to 5-day-old cultures of the test fungi grown on potato dextrose agar or sabouraud agar medium (SDA), a spore suspension in sterile water was made [46,47]. The subsequently produced spore concentration was 5 × 10 5 spores/mL. A sterile Petri plate of 9 cm in diameter was filled with 15 mL of the growth media and injected with 1 mL of the spore suspension. To homogenize the inoculum, the plate was gently shaken. The antifungal activity of the polymers was determined using the standard agar disc diffusion method, which is described as follows: The test polymer and dermatin solutions (0.1 or 0.05 mg/mL in DMSO) were impregnated into sterile 5 mm filter paper discs (Whatman). In addition, control discs containing the solvent (DMSO) were employed. Once the impregnated discs had dried for an hour, they were placed in the center of each plate. The plates were seeded and then incubated for 5 days at 30 ± 2 • C. Measurements of the inhibition zone radii (in millimeters) were taken at regular intervals during the incubation period. Using duplicate sets, we were able to observe statistically significant differences between treatments (shown later).

Docking Measurements
Molecular docking is a category of bioinformatics modeling that concerns inducing the interaction of two or more molecules to provide a stable adduct. Then, depending on the binding properties of ligand and target, it is used to predict three-dimensional structures of any degree of complexity. All molecular docking protocols were performed using the MOE 2019.0120 software by employing the triangle matcher method, and refinement was performed using rigid protein and flexible compounds. The docking score and RMSD were determined for the ten highest docking positions by London dG, and the five best scores were obtained. The crystal structures of 1KNZ, a protein of the Gram-negative bacteria E. coli; 1JIJ, a protein of the Gram-positive bacteria S. aureus; and 1IYL, a protein of C. albicans, whose sources are commonly used as model organisms for fungal pathogens, were downloaded from the Protein Data Bank "https://www.rcsb.org/" (accessed on 20 February 2023) [48][49][50][51]. All proteins were isolated and corrected after removing all solvent molecules and cocrystalline compounds. The active site for all proteins was chosen as the exact site of the downloaded structures. The validation of the docking protocol was performed by executing the protocol for a cocrystalline compound, whose RMSD was 1.93 Å (<3.00 Å).

Results and Discussion
Several potential uses for the studied heteroaromatic thiazole-based polyurea derivatives have been explored. As a result, we used the polycondensation approach to create four novel series of polymers with thiazole rings and sulfur links in their polymer backbones. The novel polymers' structures were revealed using standard characterization methods. The antimicrobial properties of the produced polymers were also evaluated.

Chemistry and Characterization Tools
First, chloroacetyl chloride and diphenyl sulfide were reacted in dry carbon disulfide with the aid of aluminum chloride to produce 4-bis-chloroacetyl-diphenylsulfide (M1). After 6 h of refluxing M1 and thiourea in 100% ethanol, sodium acetate was added to the resulting reaction mixture to produce the monomer 4-bis-2-aminothiazole diphenyl sulfide (M2) (Figure 1). Melting point measurements were performed on the synthesized monomers, and the findings were found to be in accordance with the published literature [43,44]. Many spectroscopic investigations, including those employing Fourier transform infrared spectroscopy (FT-IR) and proton nuclear magnetic resonance (NMR) spectroscopy ( 1 H-and 13 C-NMR), were conducted to verify the hypothesized structures, as reported in the Experimental section and the Supplemental Information file. resulting reaction mixture to produce the monomer 4-bis-2-aminothiazole diphenyl sulfide (M2) (Figure 1). Melting point measurements were performed on the synthesized monomers, and the findings were found to be in accordance with the published literature [43,44]. Many spectroscopic investigations, including those employing Fourier transform infrared spectroscopy (FT-IR) and proton nuclear magnetic resonance (NMR) spectroscopy ( 1 H-and 13 C-NMR), were conducted to verify the hypothesized structures, as reported in the Experimental section and the Supplemental Information file. Afterward, a new series of polyurea derivatives-PU1, PU2, PU3, PU4, and PU5-was synthesized using the solution polycondensation procedure through the interaction between M2 and different aromatic aliphatic and cyclic diisocyanates in pyridine, as presented in Figure 2. The synthesis of polyurea linear polymers is generally based on the condensation of diisocyanates with dicarboxylic acid chlorides in dry pyridine [30][31][32]. Afterward, a new series of polyurea derivatives-PU 1 , PU 2 , PU 3 , PU 4 , and PU 5was synthesized using the solution polycondensation procedure through the interaction between M2 and different aromatic aliphatic and cyclic diisocyanates in pyridine, as presented in Figure 2. The synthesis of polyurea linear polymers is generally based on the condensation of diisocyanates with dicarboxylic acid chlorides in dry pyridine [30][31][32]. The chemical structures of these new polymers were determined using FT-IR analysis, as presented in the Experimental Procedures section. The IR spectra of all the polymers showed absorption bands at 3300 cm −1 (NH of urea derivative) and 1635 cm −1 (C=O of urea derivative) in addition to the most common characteristic peaks presented in the polymers' main chains, as illustrated in Figure 3. The chemical structures of these new polymers were determined using FT-IR analysis, as presented in the Experimental Procedures section. The IR spectra of all the polymers showed absorption bands at 3300 cm −1 (NH of urea derivative) and 1635 cm −1 (C=O of urea derivative) in addition to the most common characteristic peaks presented in the polymers' main chains, as illustrated in Figure 3.  The new polymers were also characterized using different standard methods, including a solubility test, GPC molecular weight determinations, X-ray diffraction analysis, thermal analysis, and scanning electron microscopy. The solubility of PU1, PU2, PU3, PU4, and PU5 was examined at room temperature using many solvents, including CHCl3, CH2Cl2, benzene, acetone, dimethylformamide (DMF), tetrahydrofuran (THF), dimethyl The new polymers were also characterized using different standard methods, including a solubility test, GPC molecular weight determinations, X-ray diffraction analysis, thermal analysis, and scanning electron microscopy. The solubility of PU 1 , PU 2 , PU 3 , PU 4 , and PU 5 was examined at room temperature using many solvents, including CHCl 3 , CH 2 Cl 2 , benzene, acetone, dimethylformamide (DMF), tetrahydrofuran (THF), dimethyl sulfoxide (DMSO), formic acid, and sulfuric acid A 5% (w = v). All the polyurea derivative solutions were prepared under the same conditions and were fully soluble in THF and concentrated H 2 SO 4 , yielding a dark red color, but they were only partially soluble in other aprotic organic solvents such as formic acid, DMF, DMSO, DCM, and chloroform, while in common organic solvents such as benzene and acetone, they were insoluble. Table 1 presents the solubility characteristics of the synthesized polyurea derivatives in various solvents.
The primary technique used to examine molecular weight is gel permeation chromatography. In this study, the GPC values of the studied substances were recorded and calculated by a computer program. The values of the average numbers, weight-average molecular weights, and polydispersity indexes (Mw, Mn, Pw, and DPI) of the polyurea derivatives were determined, and their data are presented in Table 2. In this table, it can be seen that the average molecular weights (Mw) for the tested polymers are nearly in the same range, from 36,629.54 to 43,356.72, which demonstrates that all the resulting polymers have the same chain length [52]. The longest polymer chain was PU 2 , presenting a Pw ≈ 69 and a PDI = 1.08; however, the lowest molecular weight was that of PU 1 , presenting a Pw ≈ 68 and a PDI = 1.13. The resulting polyurea derivatives were characterized using XRD and TGA to determine their crystallinity and thermal stability, respectively. The data regarding the thermogravimetric analysis of the polyurea derivatives are shown in Table 3 and Figure 4. Table 3 shows the various temperatures for various percentage weight losses. All samples were heated to 800 • C at a rate of 10 • C/min in N 2 , which resulted in the same decomposition curve for all samples with multistep processes, starting with the conformable removal of the (OH) group due to the removal of absorbed moisture and attached solvents that cause weight loss; however, this step starts at room temperature and ends at approximately 105 • C for PU 1 , PU 2 , PU 3 , PU 4 , and PU 5 , with mass losses of 3.8, 1.4, 2.9, 3.4, and 0.1 mg, respectively. The thermographs also show that the polyurea derivatives decompose in three stages. The first one, between 105 • C and 160 • C, is the partial decomposition of all polymers. The second stage starts at 160 • C and ends at 400, 389, 410, 500, and 447 • C for PU 1 , PU 2 , PU 3 , PU 4 , and PU 5 , respectively. In the third stage, degradation becomes maximal at around 550 • C and is nearly complete at around 800 • C. Thus, the new polyurea derivatives exhibit good thermal stability, which may be attributed to the presence of the thiazole moiety and sulfur linkage in the main chain of all new polymers. The initial decomposition temperature (IDT) refers to the temperatures at which decomposition starts, while (FDT) is defined as the final decomposition temperature and refers to the temperatures at which decomposition is completed [53]. Both values can easily be determined from the TGA curves. All polymers have the same IDT (150 ± 2 • C) except PU 1 , which showed a lower IDT value (135 • C), whereas the aromatic-based derivatives (PU 1 -PU 3 ) showed higher FDT values (616, 655, and 665 • C) compared to the aliphatic-based derivatives' (PU 4 and PU 5 ) values (590, 605 • C). This observation is attributed to the higher rigidity of the aromatic moieties in the polymers' main chains compared to the more flexible spacers presented in the aliphatic derivatives [31,32]. Furthermore, the maximum decomposition temperature (PDT max ) refers to the temperature at which decomposition reaches its maximum [54]. The PDT max values were determined from the corresponding DTG curves. The PDT max for PU4 and PU5 showed the highest values (430 and 425 • C, respectively) compared to the other derivatives, while PU1 showed the lowest PDT max value (383 • C). The order of PDT max obtained values from lowest to highest is as follows: PU 1 < PU 2 < PU 3 < PU 5 < PU 4 .  Furthermore, the X-ray diffraction patterns of the polyurea derivatives were measured, as shown in Figure 5. The data were acquired over the range of 2θ = 5 to 80°, which indicates a high degree of crystallinity for all polymers, except for PU4, which exhibited an amorphous halo pattern, possibly because of the six methylene groups, which might Furthermore, the X-ray diffraction patterns of the polyurea derivatives were measured, as shown in Figure 5. The data were acquired over the range of 2θ = 5 to 80 • , which indicates a high degree of crystallinity for all polymers, except for PU 4 , which exhibited an amorphous halo pattern, possibly because of the six methylene groups, which might be the result of increasing polyurea chain flexibility in the adjacent chains [32].  PU5 is the most crystalline of the PUs and can be categorized as a crystalline polymer due to its crystalline diffractogram. The X-ray diffractograms show a large number of reflection peaks that are intermediate between crystalline and amorphous interferences in the same region, indicating the presence of C=O and S as polar groups and high C=C bond levels in the polymers' main chains, which induce a significant degree of order between the two adjacent chains of polymers, leading to a noticeable increase in crystallinity [43]. In addition, the presence of a high number of C=C bands and C=O bands, which represent PU 5 is the most crystalline of the PUs and can be categorized as a crystalline polymer due to its crystalline diffractogram. The X-ray diffractograms show a large number of reflection peaks that are intermediate between crystalline and amorphous interferences in the same region, indicating the presence of C=O and S as polar groups and high C=C bond levels in the polymers' main chains, which induce a significant degree of order between the two adjacent chains of polymers, leading to a noticeable increase in crystallinity [43]. In addition, the presence of a high number of C=C bands and C=O bands, which represent polar groups arranged between the adjacent polyurea chains, could have caused this increased crystallinity [32].
The morphological features of the new polyurea derivatives were studied via SEM measurements, as illustrated in Figure 6. PU 1 , PU 4 , and PU 5 were employed as the measured samples, indicating that the surface of PU 1 consisted of micro-holes, yielding spongy, porous shapes at different magnifications (x = 3000, 7500, and 30,000), as illustrated in Figure 6a polar groups arranged between the adjacent polyurea chains, could have caused this increased crystallinity [32]. The morphological features of the new polyurea derivatives were studied via SEM measurements, as illustrated in Figure 6. PU1, PU4, and PU5 were employed as the measured samples, indicating that the surface of PU1 consisted of micro-holes, yielding spongy, porous shapes at different magnifications (x = 3000, 7500, and 30,000), as illustrated in Figure 6a-c, respectively. Meanwhile, PU4′s surface displayed shapes resembling wooden planks, sticks, or rod-like particles at magnifications of x = 3000 ( Figure 6e) and 7500 (Figure 6e). The same features appeared at a magnification of x = 30,000 (Figure 6f). The average rod diameter ranged from 100 to 150 nm. Furthermore, the surface of PU5 showed coral-reef-like shapes with flowery shapes and noticeable round particles at lower and higher magnifications of x = 3000, 7500, and 30,000 (Figure 6d-f). Such globular particles were clearly visible when zooming in, as illustrated in Figure 6i.

Antimicrobial Screening
Biologically active polymers and/or their related nanocomposites are of significant interest to a huge number of researchers worldwide [55][56][57][58][59][60][61][62][63]. E. coli and P. aeruginosa were identified as representative Gram-negative bacteria and B. cereus and B. subtilis were chosen as representative Gram-positive bacteria for the purpose of the antimicrobial screening of all the synthetically produced polyurea derivatives (PU1-PU5). In order to evaluate

Antimicrobial Screening
Biologically active polymers and/or their related nanocomposites are of significant interest to a huge number of researchers worldwide [55][56][57][58][59][60][61][62][63]. E. coli and P. aeruginosa were identified as representative Gram-negative bacteria and B. cereus and B. subtilis were chosen as representative Gram-positive bacteria for the purpose of the antimicrobial screening of all the synthetically produced polyurea derivatives (PU 1 -PU 5 ). In order to evaluate the produced polymers' antifungal properties, a number of different species of fungi, including F. oxysporum and C. albicans, were utilized. The inhibitory area was measured in millimeters, and the antibacterial and antifungal activities were evaluated in relation to the standard medications Ampicillin and Dermatin, which served as references for the antibacterial and antifungal activities, respectively. Figures 7 and 8 contain illustrations of all of the results from the antimicrobial screening of the synthesized polymers at two different concentrations: 0.05 and 0.1 (mg/mL). The findings presented in Table 4 demonstrate that the examined compounds showed varying levels of antibacterial activity. the produced polymers' antifungal properties, a number of different species of fungi, including F. oxysporum and C. albicans, were utilized. The inhibitory area was measured in millimeters, and the antibacterial and antifungal activities were evaluated in relation to the standard medications Ampicillin and Dermatin, which served as references for the antibacterial and antifungal activities, respectively. Figures 7 and 8 contain illustrations of all of the results from the antimicrobial screening of the synthesized polymers at two different concentrations: 0.05 and 0.1 (mg/mL). The findings presented in Table 4 demonstrate that the examined compounds showed varying levels of antibacterial activity.  bacteria and fungi. Both PU1 and PU2 demonstrated a notable level of antibacterial activity against the employed Gram-negative bacteria (E. coli and P. aeruginosa). In addition, neither C. albicans nor A. flavus were susceptible to any kind of antifungal activity exhibited by PU1 or PU2. Both variants produced the same outcomes when tested against the Grampositive bacteria that were used in the study (B. cereus and B. subtilis). In contrast with the other compounds, PU4 and PU5 demonstrated antifungal activities that were on the lower end of the spectrum.

Docking Study
All polyurea derivatives (PU1-5) were screened for the presence of the 1KNZ protein of the Gram-negative bacteria E. coli. 1KZN codes for the 24 kDa gyrase fragment, which is the main protein involved in the replication and transcription of bacterial circular DNA [48,49]. Furthermore, the 1JIJ protein is contained in the Gram-positive bacteria S. aureus [50,51], and the 1IYL protein of C. albicans is commonly used as a model organism for fungal pathogens [64,65].  PU 3 had the greatest inhibitory impact on the bacteria and fungi studied. The positive controls were able to establish inhibition zones of a significant magnitude against these bacteria and fungi. Both PU 1 and PU 2 demonstrated a notable level of antibacterial activity against the employed Gram-negative bacteria (E. coli and P. aeruginosa). In addition, neither C. albicans nor A. flavus were susceptible to any kind of antifungal activity exhibited by PU 1 or PU 2 . Both variants produced the same outcomes when tested against the Gram-positive bacteria that were used in the study (B. cereus and B. subtilis). In contrast with the other compounds, PU 4 and PU 5 demonstrated antifungal activities that were on the lower end of the spectrum.

Docking Study
All polyurea derivatives (PU 1-5 ) were screened for the presence of the 1KNZ protein of the Gram-negative bacteria E. coli. 1KZN codes for the 24 kDa gyrase fragment, which is the main protein involved in the replication and transcription of bacterial circular DNA [48,49]. Furthermore, the 1JIJ protein is contained in the Gram-positive bacteria S. aureus [50,51], and the 1IYL protein of C. albicans is commonly used as a model organism for fungal pathogens [64,65].
The docking scores of the five polymers with the proteins 1KNZ, 1JIJ, and 1IYL are compatible with the experimental data in Figures 9 and 10 as well as Figure S7 (see Supplementary Information file). The cocrystalline ligand 3-((3-methyl-2-(1-methyl-1H imidazole-2-carbonyl)benzofuran-4-yl)oxy)-N-(pyridin-3-ylmethyl)propan-1-aminium was redocked; the RMSD value of this compound was 1.85 Å with the 1KNZ protein, and its docking score was −6.72 k.Cal (Table S1). The docking scores of the five polymers with the proteins 1KNZ, 1JIJ, and 1IYL are compatible with the experimental data in Figures 9 and 10 as well as Figure S7 (see Supplementary Information file). The cocrystalline ligand 3-((3-methyl-2-(1-methyl-1H imidazole-2-carbonyl)benzofuran-4-yl)oxy)-N-(pyridin-3-ylmethyl)propan-1-aminium was redocked; the RMSD value of this compound was 1.85 Å with the 1KNZ protein, and its docking score was −6.72 k.Cal (Table S1).  PU3 has the highest docking score of all the Gram-positive, Gram-negative, and fungal proteins among all other compounds, with docking scores of −9.97, −9.04, and −10.55 k.Cal, respectively (Tables 5 and 6 and Table S2 (see Supporting Information file)). These results are in agreement with the obtained experimental results against the selected bacteria and fungi.   (Tables 5 and 6 and Table S2 (see Supporting Information file)). These results are in agreement with the obtained experimental results against the selected bacteria and fungi.    For the Gram-negative protein, the most effective compounds were PU 1 , PU 2 , and PU 3 , which have a greater degree of aromaticity in their structures than the other two compounds, i.e., PU 4 and PU 5 (Table 7). With regard to the docking result for the Grampositive protein, the only compound with high activity is PU 3 , presenting −9.04 kcal/mol of activity via two hydrogen-π stacking interactions of 2.43 and 2.82 Å (Table S3 (see  Supporting Information file)). This finding is in line with the findings of the experiments conducted against the selected bacteria and fungi.

Conclusions
By performing solution polycondensation of the monomer M2 with five distinct aromatic, aliphatic, and cyclic diisocyanates in pyridine, a new family of sulfur-containing heteroaromatic polyurea derivatives based on thiazole moieties coupled with thioether linkages was produced with high yields. The structures of the new polymers were confirmed using XRD, TGA, and SEM and, subsequently, characterized using FT-IR spectroscopy. In thermal stability tests (TGA), all the polymers performed well. The obtained XRD data confirm that PU 5 displays the highest crystallinity, whereas PU 4 displays the lowest. Matching DTG curves were used to calculate the PDT max values, of which those for PU 4 and PU 5 derivatives were the highest (430 and 425 • C, respectively) when compared to the other derivatives. Meanwhile, PU 1 had the lowest PDT max (383 • C). Aside from PU 1 , all the polymers had the same IDT (15 ± 2 • C), but PU 1 had a lower IDT value (135 • C). The surface of PU 1 was made up of micro-holes that created spongy, porous shapes, whereas the surface of PU 4 displayed shapes resembling wooden planks and sticks. Moreover, the surface of polyurea PU 5 showed a morphology resembling coral reefs with flowery shapes at different magnifications. Both PU 1 and PU 2 demonstrated a notable level of antibacterial activity against the studied Gram-negative bacteria (E. coli and P. aeruginosa). Furthermore, three distinct proteins were used in 2D and 3D molecular docking investigations, with the results correlating with those of the antimicrobial screening. PU 3 had the highest docking score with all Gram-positive, Gram-negative, and fungal proteins among all other compounds, with docking scores of −9.97, −9.04, and −10.55 k.Cal, respectively.