Journal of Textile Research ›› 2026, Vol. 47 ›› Issue (03): 77-86.doi: 10.13475/j.fzxb.20251004901

• Biomedical Materials • Previous Articles     Next Articles

Preparation and antibacterial properties of coated polypropylenemeshes by one-step co-deposition of phytic acid and benzalkonium chloride

LIU Pengbi, REN Jinggang, ZHANG Kuanxiang, CAO Dongyang, LIU Xi, GUO Changsheng()   

  1. College of Textile Science and Engineering, Wuyi University, Jiangmen, Guangdong 529020, China
  • Received:2025-10-21 Revised:2026-02-06 Online:2026-03-15 Published:2026-03-15
  • Contact: GUO Changsheng E-mail:gcswy9@163.com

Abstract:

Objective Hernia repair patches are crucial medical implants, but the popularly used polypropylene meshes (PPM) are found to encounter complications such as bacterial infection, postoperative adhesion, and foreign body reaction in clinical practice. This study aims to develop functionally coated patch with required antibacterial properties, hydrophilicity and biocompatibility, thereby providing a novel approach for the research of antibacterial and anti-adhesion composite patches.

Method A phytic acid / benzalkonium chloride (PA/BAC) coating was constructed on polypropylene patch by low-temperature plasma pre-treatment combined with one-step co-deposition, mildly fabricable within 4 h. The coating was characterized by field-emission scanning electron microscopy (FE-SEM), X-ray diffractometry (XRD), X-ray photoelectron spectroscopy (XPS), Fourier transform infrared spectroscopy (FT-IR), and water contact angle (WCA) analysis. The in vitro antibacterial efficacy of the coated patch against E. coli and S. aureus was evaluated using the agar diffusion method and colony-forming unit (CFU) counting method.

Results Comprehensive characterizations and in vitro experiments confirmed that phytic acid/benzalkonium chloride (PA/BAC)-coated polypropylene patches were successfully prepared with satisfactory multifunctional properties. FE-SEM observations revealed BAC concentration-dependent coating deposition. The PA/BAC (0.08%) group showed sparse large-sized deposits, the 0.1% group exhibited smaller and denser particles, and the 0.15% group formed a continuous dense full-coverage coating, attributing to enhanced electrostatic interactions between PA and BAC. FT-IR, XRD, and XPS verified successful PA/BAC deposition on polypropylene patches. Water contact angle (WCA) measurements indicated the original PP patch had a WCA of 110.5°, while PA/BAC-coated patches achieved rapid liquid wetting within 1.61-4.41 s, reflecting significantly improved hydrophilicity. Consistently, the bovine serum albumin (BSA) adsorption capacity of coated patches( (39.4±3.04)-(44.5±2.72) mg/g) was remarkably lower than that of the original PP patch( (67.2±3.87 ) mg/g), demonstrating good hydrophilicity and biocompatibility that supports anti-tissue adhesion potential. The compliance test results of the coated patch confirmed that the patch retained its compliance, with its intrinsic flexibility effectively preserved. In vitro antibacterial tests showed PA-coated patches had no obvious inhibition zones, whereas PA/BAC coatings exhibited BAC concentration-dependent activity, where inhibition zone diameters were 14.6-22.5 mm against E. coli and 21-40 mm against S. aureus, with antibacterial rates of 99.99%-100% for both strains. The results indicated satisfactory antibacterial activity of all PA/BAC coatings against E. coli and S. aureus, with the antibacterial rate increasing with rising BAC concentration. The outstanding antibacterial performance constitutes a key innovation of this study. Cytotoxicity assays revealed that the low BAC concentration (0.05%, 0.08%) groups maintained 76%-82% cell viability, with cells adhering well and retaining normal morphology, indicating acceptable coating biocompatibility.

Conclusion In order to address bacterial infection and postoperative adhesion of polypropylene hernia meshes in clinical use, this study proposes a surface functionalization strategy with PA and BAC. A PA/BAC coating was constructed on PP patches via low-temperature plasma pretreatment combined with one-step co-deposition, gently fabricated in 4 h. This mild, simple process enables PP mesh functionalization, relying on PA's surface affinity and electrostatic interactions between PA and BAC. Static water contact angle tests showed full droplet wetting on coated patches, indicating significantly enhanced hydrophilicity. Protein adsorption assays revealed a marked reduction vs. original PP patch, supporting anti-adhesion capacity. In vitro antibacterial tests demonstrated excellent efficacy against E. coli and S. aureus, with inhibition zones expanding with BAC concentration and a 100% antibacterial rate. Cell experiments showed normal morphology and adherent growth on patches coated with 0.05%, 0.08%, and 0.1% PA/BAC. Future work will focus on optimizing BAC's concentration range and its low-toxicity modification. In summary, this one-step co-deposition strategy synergistically enhances PP patches' antibacterial and anti-adhesion functions, with simple, mild conditions suitable for industrialization, offering an innovative pathway for functionalizing hernia repair materials.

Key words: hernia repair patch, polypropylene patch, low-temperature plasma treatment, one-step co-deposition, phytic acid, benzalkonium chloride, antibacterial property, medical textiles

CLC Number: 

  • TQ 342

Fig.1

Schematic diagram of preparing PA/BAC coated patch by one-step co-deposition method"

Fig.2

SEM images of original PP patch and coated PP patch. (a) Original PP; (b) PA; (c) PA/BAC (0.08%); (d) PA/BAC(0.1%); (e) PA/BAC(0.15%)"

Fig.3

FT-IR spectra of original PP patch and coated PP patch"

Fig.4

XRD patterns of original PP patch and coated PP patch"

Fig.5

Surface chemical composition of original PP patch and coated patch.(a) XPS spectra of PP patch and coated PP patch; (b)High-resolution C 1s XPS spectra of PA/BAC (0.08%); (c) High-resolution C 1s XPS spectra of PA/BAC (0.1%) ; (d) High-resolution C 1s XPS spectra of PA/BAC (0.15%)"

Fig.6

Water contact angle diagrams of original PP patch and coated PP patch. (a) Original PP patch; (b) PA/BAC(0.08%); (c) PA/BAC(0.1%); (d) PA/BAC(0.15%)"

Fig.7

Visual compliance characterization of coated patch"

Fig.8

Antibacterial activities of coated patches against E. coli and S. aureus.(a)Inhibition zones; (b)Diameter of inhibition zones"

Fig.9

Bactericidal effect of coated patches against E. coli and S. aureus"

Tab.1

Antibacterial rates of coated patches on E. coli and S. aureus"

补片 抑菌率/%
E. coli S. aureus
PA 0 0
PA/BAC(0.05%) ≥99.99 100
PA/BAC(0.08%) 100 100
PA/BAC(0.1%) 100 100
PA/BAC(0.15%) 100 100

Fig.10

BSA protein adsorption capacity"

Fig.11

Cell morphology on 1 d (a)and 3 (b)"

[1] 刘延圈. 一文了解疝气以及护理[J]. 健康必读, 2025(15): 128-129.
LIU Yanquan. Understanding hernia and nursing care[J]. Gems of Health, 2025(15): 128-129.
[2] SETHI V, VERMA C, GUPTA A, et al. Infection-resistant polypropylene hernia mesh: vision & innovations[J]. ACS Applied Bio Materials, 2025, 8(3): 1797-1819.
doi: 10.1021/acsabm.4c01751
[3] 王小飞. 聚氨酯凝胶改性聚丙烯补片的制备及性能研究[D]. 成都: 四川大学, 2023: 3-10.
WANG Xiaofei. Preparation and properties of polyurethane gel modified polypropylene patch[D]. Chengdu: Sichuan University, 2023: 3-10.
[4] 刘沁欣. PP/PCL复合疝修补片的开发与性能评价[D]. 上海: 东华大学, 2020: 2-8.
LIU Qinxin. Development and performance evaluation of PP/PCL composite hernia repair patch[D]. Shanghai: Donghua University, 2020: 2-8.
[5] WEI D D, JIAO G H, TAO Y H, et al. Polypropylene mesh coated with dual cross-linked hyaluronic acid/polyvinyl alcohol composite hydrogel with antiadhesion and angiogenesis properties for abdominal wall repair[J]. Advanced Materials Technologies, 2025, 10(9): 2401786.
doi: 10.1002/admt.v10.9
[6] 方琴, 周棣华, 蔺虹宾, 等. 植酸添加对铝合金微弧氧化膜组织结构及性能的影响[J]. 兵器材料科学与工程, 2026, 49(1): 111-118.
FANG Qin, ZHOU Dihua, LIN Hongbin, et al. Effect of phytic acid addition on microstructure and properties of micro arc oxidation film on aluminum alloy[J]. Ordnance Material Science and Engineering, 2026, 49(1): 111-118.
[7] 刘强, 程鑫, 游波. 植酸-硅烷改性氧化石墨烯/聚天门冬氨酸酯复合涂层的构筑及其防腐蚀机理[J]. 腐蚀与防护, 2025, 46(5): 15-23.
LIU Qiang, CHENG Xin, YOU Bo. Preparation of phytic acid and silane modified graphene oxide polyaspartic acid ester composite coating and its anti-corrosion mechanism[J]. Corrosion & Protection, 2025, 46(5): 15-23.
[8] GENG Z J, GUO C P, LU D H, et al. Natural polysaccharide-based injectable hydrogels with tunable mechanical and electrical properties enabled by phytic acid[J]. Carbohydrate Research, 2025, 554: 109555.
doi: 10.1016/j.carres.2025.109555
[9] 李文秋, 李瑞涛, 杨宗山, 等. 一种新型复合抗菌剂的制备及其抗菌性能研究[J]. 应用化工, 2021, 50(S1): 150-153, 160.
LI Wenqiu, LI Ruitao, YANG Zongshan, et al. Preparation and antibacterial properties of benzalkonium chloride-Fe3+-montmorillonite antibacterial agent[J]. Applied Chemical Industry, 2021, 50(S1): 150-153, 160.
[10] 马珂珂. 非诺贝特对大鼠结膜下组织纤维化的下调作用及其机制研究[D]. 厦门: 厦门大学, 2020: 3-5.
MA Keke. Down-regulation of fenofibrate on subconjunctival fibrosis in rats and its mechanism[D]. Xiamen: Xiamen University, 2020: 3-5.
[11] 王晓燕, 吴晓慧, 蔡碧梅. 苯扎氯铵溶液联合盐酸环丙沙星栓对细菌性阴道炎疗效研究[J]. 中华灾害救援医学, 2024, 11(10): 1159-1162, 1169.
WANG Xiaoyan, WU Xiaohui, CAI Bimei. Study on the efficacy of benzalkonium chloride solution combined with ciprofloxacin hydrochloride suppositories in the treatment of bacterial vaginosis[J]. Chinese Journal of Disaster Medicine, 2024, 11(10): 1159-1162, 1169.
[12] RAJ R, SHENOY S J, MONY M P, et al. Surface modification of polypropylene mesh with a porcine cholecystic extracellular matrix hydrogel for mitigating host tissue reaction[J]. ACS Applied Bio Materials, 2021, 4(4): 3304-3319.
doi: 10.1021/acsabm.0c01627 pmid: 35014417
[13] BREDIKHIN M, GIL D, REX J, et al. Anti-inflammatory coating of hernia repair meshes: a 5-rabbit study[J]. Hernia, 2020, 24(6): 1191-1199.
doi: 10.1007/s10029-020-02122-9
[14] YU S, SHI W T, HOUSHYAR S, et al. Preparation and performances of coated polypropylene hernia mesh with natural biomaterials[J]. Colloid and Interface Science Communications, 2021, 45: 100535.
doi: 10.1016/j.colcom.2021.100535
[15] QIAO Y S, LI Y, ZHANG Q, et al. Dopamine-mediated zwitterionic polyelectrolyte-coated polypropylene hernia mesh with synergistic anti-inflammation effects[J]. Langmuir, 2020, 36(19): 5251-5261.
doi: 10.1021/acs.langmuir.0c00602 pmid: 32336102
[16] HE X D, ZHANG J Y, XIE L W, et al. Phytic acid-promoted rapid fabrication of natural polypeptide coatings for multifunctional applications[J]. Chemical Engineering Journal, 2022, 440: 135917.
doi: 10.1016/j.cej.2022.135917
[17] DING R, YU L F, PENG P D, et al. Durable and robust antibacterial polypropylene hernia mesh for abdominal wall defect repair[J]. ACS Applied Materials & Interfaces, 2024, 16(20): 25686-25697.
[18] WEI D D, HUANG Y L, LIANG M, et al. Polypropylene mesh coated with hyaluronic acid/polyvinyl alcohol composite hydrogel for preventing bowel adhesion[J]. International Journal of Biological Macromolecules, 2024, 270: 132061.
doi: 10.1016/j.ijbiomac.2024.132061
[19] 庄金秋, 梅建国, 张颖, 等. 猪圆环病毒2型Cap蛋白琼脂扩散试验检测方法的建立[J]. 中国动物检疫, 2020, 37(9): 113-117.
ZHUANG Jinqiu, MEI Jianguo, ZHANG Ying, et al. Establishment of an agar-gel precipitation test for PCV2 cap protein[J]. China Animal Health Inspection, 2020, 37(9): 113-117.
[20] 牛世全, 李静, 张雪莹, 等. 一株抗黄芪根腐病芽孢杆菌的筛选、鉴定及抑菌物质的初步研究[J]. 西北师范大学学报(自然科学版), 2021, 57(2): 79-86.
NIU Shiquan, LI Jing, ZHANG Xueying, et al. Screening and identification of Bacillus subtilis against root rot disease of Astragalus membranaceus and preliminary study on the antibacterial substance[J]. Journal of Northwest Normal University (Natural Science), 2021, 57(2): 79-86.
[21] LI Y, XU Z H, TANG L Q, et al. Nanofibers fortified with synergistic defense route: a potent wound dressing against drug-resistant bacterial infections[J]. Chemical Engineering Journal, 2023, 475: 146492.
doi: 10.1016/j.cej.2023.146492
[22] YE S J, WEI D F, XU X, et al. Surface antimicrobial modification of polyamide by poly(hexamethylene guanidine) hydrochloride[J]. Polymers for Advanced Technologies, 2020, 31(8): 1847-1856.
doi: 10.1002/pat.v31.8
[23] PANZARASA G, OSYPOVA A, TONCELLI C, et al. The pyranine-benzalkonium ion pair: a promising fluorescent system for the ratiometric detection of wound pH[J]. Sensors and Actuators B: Chemical, 2017, 249: 156-160.
doi: 10.1016/j.snb.2017.04.045
[24] 乔燕莎, 毛迎, 徐丹瑶, 等. 用于应对疝修补术后并发症的经编补片研究进展[J]. 纺织学报, 2022, 43(3): 1-7.
QIAO Yansha, MAO Ying, XU Danyao, et al. Research progress in warp-knitted meshes for tackling complications after hernia repair[J]. Journal of Textile Research, 2022, 43(3): 1-7.
doi: 10.1177/004051757304300101
[25] WANG Z Y, HAMEDI H, ZHANG F, et al. Plasma-induced diallyldimethylammonium chloride antibacterial hernia mesh[J]. ACS Applied Bio Materials, 2022, 5(12): 5645-5656.
doi: 10.1021/acsabm.2c00695 pmid: 36446396
[26] YAO X, HU W H, LI Y H, et al. Dual dynamic crosslinked hydrogel patch embodied with anti-bacterial and macrophage regulatory properties for synergistic prevention of peritendinous adhesion[J]. Advanced Functional Materials, 2024, 34(34): 2400660.
doi: 10.1002/adfm.v34.34
[1] LI Chengcai, ZHU Denghui, YIN Xiang, ZHU Hailin, ZHANG Huapeng, LIU Guojin, GUO Yuhai, LIU Bingrong. Preparation of polytetrafluoroethylene tubular fiber membranes with dense inner and sparse outer pore structure and its application in artificial blood vessels [J]. Journal of Textile Research, 2026, 47(03): 1-8.
[2] GUO Yiming, YU Shuang, ZHAO Fan, WANG Fujun. Construction and performance evaluation of fiber-based piezoelectric sensors for vascular monitoring [J]. Journal of Textile Research, 2026, 47(03): 118-128.
[3] LIN Xiaojing, MAO Ying, CHEN Wenxing, LÜ Wangyang. Preparation and antibacterial and antioxidant properties of curcumin-loaded electrospun membranes [J]. Journal of Textile Research, 2026, 47(03): 217-224.
[4] TIAN Junying, CHENG Youqi, HE Tianhong, YAO Jinbo, LI Zhenfeng, WU Songliang. Study on antibacterial properties and antibacterial components of bamboo pulp fibers [J]. Journal of Textile Research, 2026, 47(03): 225-232.
[5] SHAO Yinghai, PIAO Hongwei, CAO Jipeng, ZHANG Yue, XU Lanjie, YU Xuezhi, ZHANG Mingguang. Preparation and antibacterial properties of natural colored cotton/Antheraea pernyi staple fiber blended yarns [J]. Journal of Textile Research, 2026, 47(03): 240-246.
[6] YANG Xiao, ZHANG Yumo, LI Yan, WANG Lu, WANG Fujun. Short-fiber-reconstructed composite dressings integrating glycose-triggered bacterial resistance and exudate management and its performance [J]. Journal of Textile Research, 2026, 47(03): 44-51.
[7] CHEN Yongliang, YANG Xiao, WANG Chaorong, HUANG Junhong, LI Yan, WANG Lu. Hydration-stable biphasic poly(D,L-lactic acid)/collagen I patch via electrospinning-constant-stress annealing synergy for rotator cuff tendon-bone regeneration [J]. Journal of Textile Research, 2026, 47(03): 60-69.
[8] XI Lifeng, ZHANG Aijun, JIA Wei, MA Pibo, JIANG Gaoming. Model construction and knitting damage mechanism of extracorporeal membrane oxygenation membrane fabrics [J]. Journal of Textile Research, 2026, 47(02): 162-171.
[9] SHAN Mengqi, YANG Zeqi, WANG Fujun, WANG Lu, MAO Jifu. Preparation and properties of fabric-hydrogel composite myocardial patch [J]. Journal of Textile Research, 2026, 47(02): 222-229.
[10] WANG Shijie, SUN Hui, YU Bin. Preparation of nanofiber membrane from polyvinyl alcohol/peony bark extract composite and antibacterial properties [J]. Journal of Textile Research, 2026, 47(02): 56-64.
[11] GU Jiayu, ZHANG Weidong, DONG Yongchun, SUN Xuan, XU Liangjun. Antibacterial finishing of wool and silk fabrics with Ginkgo Biloba flavonoids [J]. Journal of Textile Research, 2026, 47(01): 142-150.
[12] SONG Jiayi, WANG Zhengyi, CHENG Xianwei, GUAN Jinping, ZHU Yawei. Preparation of liquid indigo dye and its dyeing performance on cotton fabrics [J]. Journal of Textile Research, 2025, 46(12): 133-141.
[13] HOU Zhiwen, REN Zeping, WANG Xiaoning, ZHANG Tianjiao. Preparation and properties of chitosan/alginate-treated flame retardant and antibacterial cotton fabrics [J]. Journal of Textile Research, 2025, 46(12): 171-180.
[14] JI Qiao, YU Qingyuan, ZHOU Aihui, MA Bomou, XU Jin, YUAN Jiugang. Research progress in application of bacterial cellulose composites [J]. Journal of Textile Research, 2025, 46(12): 243-250.
[15] YAO Xiaojun, XU Enting, YANG Xueyuan, FANG Lei, BAO Wei, FANG Kuanjun. Regulation of polyvinylpyrrolidone on structure and properties of polyethylene terephthalate hollow fiber membranes [J]. Journal of Textile Research, 2025, 46(12): 66-73.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!