Chitosan-mediated nano-bioprocessing of Acacia seyal seed extract for enhanced antineoplastic, anti-Helicobacter pylori and antioxidant performance

Aisha M. H. Al-Rajhi , Marwa Yousry A. Mohamed , Areej Mothana , Abdulaziz Debaji , Magdah Ganash , Yahya Ali , Asmaa A. Alharbi , Tarek M. Abdelghany

Bioresources and Bioprocessing ›› 2026, Vol. 13 ›› Issue (1) : 46

PDF
Bioresources and Bioprocessing ›› 2026, Vol. 13 ›› Issue (1) :46 DOI: 10.1186/s40643-026-01031-6
Research
research-article
Chitosan-mediated nano-bioprocessing of Acacia seyal seed extract for enhanced antineoplastic, anti-Helicobacter pylori and antioxidant performance
Author information +
History +
PDF

Abstract

Abstract

Acacia seyal is a medicinal plant rich in bioactive compounds known for their antimicrobial, antioxidant, and anticancer properties. Conventional plant extracts often suffer from poor stability and limited bioavailability, reducing their therapeutic effectiveness. The utilization of chitosan nanoparticles (CS-NPs) offers a promising strategy to enhance biological activity of plant extracts. Encapsulation of A. seyal seeds extract (ASSE) in CS-NPs (ASSE@CS-NPs) was the aim of the present investigation to compete Helicobacter pylori and HCT116 cancer cells. The phytochemical profile of ASSE revealed diverse phenolic acids and flavonoids via HPLC analysis. Methyl gallate was dominated (20.98 mg/g), followed by gallic acid, and catechin. FTIR analysis confirmed characteristic functional groups in ASSE and CS-NPs. Peak shifts and intensity variations in ASSE@CS-NPs indicated successful encapsulation through hydrogen bonding and electrostatic interactions. ASSE@CS-NPs showed the strongest anti-H. pylori effect with inhibition zone (23.7 mm) and lowest MIC/MBC (15.62 µg/mL). Compared to CS-NPs (20.7 mm, 31.25 µg/mL) and ASSE (19.7 mm, 31.25 µg/mL). ASSE@CS-NPs showed notable antioxidant activity, achieving 96% scavenging at 1000 µg/mL with IC50 of 3µg/mL compared to ASSE (5 µg/mL) and CS-NPs (74 µg/mL). ASSE@CS-NPs exhibited potent cytotoxicity against HCT116 cells with IC50 of 23 µg/mL, outperforming ASSE (588 µg/mL) and CS-NPs (120 µg/mL). The formulation achieved > 80% inhibition at 62.5 µg/mL. Molecular docking was performed to evaluate the binding affinity and interaction patterns of methyl gallate (a main constituent of ASSE) and chitosan against H. pylori urease (PDB ID: 6ZJA). Docking results revealed favorable binding scores for both ligands, with chitosan showing higher affinity (S score: − 6.42 kcal/mol) compared to methyl gallate (S score: − 5.45 kcal/mol). Key hydrogen bond interactions were observed with active site residues ASP362 and ALA169 for methyl gallate, and ASP223 and HIS323 for chitosan. These results suggest that ASSE@CS-NPs possess inhibitory potential against H. pylori and HCT116 cells.

Graphical abstract

Keywords

Acacia seyal / Methyl gallate / Chitosan nanoparticles / HCT116 cells / Helicobacter pylori

Cite this article

Download citation ▾
Aisha M. H. Al-Rajhi, Marwa Yousry A. Mohamed, Areej Mothana, Abdulaziz Debaji, Magdah Ganash, Yahya Ali, Asmaa A. Alharbi, Tarek M. Abdelghany. Chitosan-mediated nano-bioprocessing of Acacia seyal seed extract for enhanced antineoplastic, anti-Helicobacter pylori and antioxidant performance. Bioresources and Bioprocessing, 2026, 13(1): 46 DOI:10.1186/s40643-026-01031-6

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Abdel Ghany T, Hakamy OM. Juniperus procera as food safe additive, their antioxidant, anticancer and antimicrobial activity against some food-borne bacteria. J Biol Chem Res, 2014, 31: 668-677

[2]

Abdel-Farid IB, Sheded MG, Mohamed EA. Metabolomic profiling and antioxidant activity of some Acacia species. Saudi J Biol Sci, 2014, 21: 400-408

[3]

Abd-ElGawad A, El-Amier Y. Allelopathy and potential impact of invasive Acacia saligna (Labill.) Wendl. on plant diversity in the Nile Delta coast of Egypt. Int J Environ Res, 2015, 9: 923-932

[4]

Abdelghany TM, Ganash M, Alawlaqi MM. Antioxidant, antitumor, antimicrobial activities evaluation of Musa paradisiaca L. pseudostem exudate cultivated in Saudi Arabia. BioNanoScience, 2019, 9: 172-178

[5]

Abdelghany TM, Hassan MM, El-Naggar MA, Abd El-Mongy M. GC/MS analysis of Juniperus procera extract and its activity with silver nanoparticles against Aspergillus flavus growth and aflatoxins production. Biotechnol Rep, 2020, 27 e00496

[6]

Adiamo OQ, Netzel ME, Hoffman LC, Sultanbawa Y. Acacia seed proteins: low or high quality? A comprehensive review. Compr Rev Food Sci Food Saf, 2020, 19: 21-43

[7]

Ahmed AZ, Satyam SM, Shetty P, and D'Souza MR (2021) Methyl Gallate Attenuates Doxorubicin-Induced Cardiotoxicity in Rats by Suppressing Oxidative Stress. Science (Cairo) 6694340. https://doi.org/10.1155/2021/6694340

[8]

Alajmi MF, Alam P, Alqasoumi SI, Ali Siddiqui N, Basudan OA, Hussain A, Mabood Husain F, Ali Khan A. Comparative anticancer and antimicrobial activity of aerial parts of Acacia salicina, Acacia laeta, Acacia hamulosa and Acacia tortilis grown in Saudi Arabia. Saudi Pharm J, 2017, 25: 1248-1252

[9]

Alawlaqi MM, Al-Rajhi AMH, Abdelghany TM, Ganash M, Moawad H. Evaluation of biomedical applications for linseed extract: antimicrobial, antioxidant, anti-diabetic, and anti-inflammatory activities in vitro. J Funct Biomater, 2023, 14(6): 300

[10]

Al-Huqail AA, Behiry SI, Salem MZM, Ali HM, Siddiqui MH, Salem AZM. Antifungal, antibacterial, and antioxidant activities of Acacia saligna (Labill.) H. L. Wendl. flower extract: HPLC analysis of phenolic and flavonoid compounds. Molecules, 2019, 24 700

[11]

Al-Rajhi AMH, Abdelghany TM. In vitro repress of breast cancer by bio-product of edible Pleurotus ostreatus loaded with chitosan nanoparticles. Appl Biol Chem, 2023, 66 33

[12]

Al-Rajhi AMH, Abdelghany TM. Nanoemulsions of some edible oils and their antimicrobial, antioxidant, and anti-hemolytic activities. BioResources, 2023, 18(1): 1465-1481

[13]

Al-Rajhi AMH, Qanash H, Almashjary MN, Hazzazi MS, Felemban HR, Abdelghany TM. Anti-Helicobacter pylori, antioxidant, antidiabetic, and anti-Alzheimer's activities of laurel leaf extract treated by moist heat and molecular docking of its flavonoid constituent, naringenin, against acetylcholinesterase and butyrylcholinesterase. Life, 2023, 13(7): 1512

[14]

Al-Rajhi AMH, Qanash H, Bazaid AS, Binsaleh NK, Abdelghany TM. Pharmacological evaluation of Acacia nilotica flower extract against Helicobacter pylori and human hepatocellular carcinoma in vitro and in silico. J Funct Biomater, 2023, 14(4): 237

[15]

Al-Rajhi AMH, Abdelghany TM, Almuhayawi MS, Alruhaili MH, Saddiq AA, Baghdadi AM, Selim S. Effect of ozonation on the phytochemicals of black seed oil and its anti-microbial, anti-oxidant, anti-inflammatory, and anti-neoplastic activities in vitro. Sci Rep, 2024, 14 30445

[16]

Alsalamah SA, Alghonaim MI, Abdelghany TM, et al. . Effect of UV-C radiation on chemical profile and pharmaceutical application in vitro of Aloe vera oil. AMB Express, 2025, 15 83

[17]

Alsalamah SA, Alghonaim MI, Mohammad AM, et al. . Ozone-modified properties of pumpkin seed oil as anti-H. pylori, anticancer, anti-diabetic and anti-obesity agent. Sci Rep, 2025, 15 25959

[18]

Alsolami A, Bazaid AS, Alshammari MA, et al. . Ecofriendly fabrication of natural jojoba nanoemulsion and chitosan/jojoba nanoemulsion with studying the antimicrobial, anti-biofilm, and anti-diabetic activities in vitro. Biomass Conv Bioref, 2025, 15: 1283-1294

[19]

Bakri MM, Alghonaim MI, Alsalamah SA, et al. . Impact of moist heat on phytochemical constituents, anti-Helicobacter pylori, antioxidant, anti-diabetic, hemolytic and healing properties of rosemary plant extract in vitro. Waste Biomass Valor, 2024, 15: 4965-4979

[20]

Bazaid AS, Binsaleh NK, Barnawi H, et al. . Unveiling the in vitro activity of extracted Euphorbia trigona via supercritical fluid extraction against pathogenic yeasts, obesity, cancer, and its wound healing properties. Bioresour Bioprocess, 2025, 12 28

[21]

Bhandari A, Crowe SE. Helicobacter pylori in gastric malignancies. Curr Gastroenterol Rep, 2012, 14: 489-496

[22]

Binsaleh NK, Bazaid AS, Barnawi H, et al. . Chemical characterization, anticancer, antioxidant and anti-obesity activities with molecular docking studies of Pleurotus ostreatus biomass exposed to moist heat. Food Measure, 2025, 19: 2476-2495

[23]

Castro-Muñoz R, Cabezas R. From non-porous to highly porous homogeneous and heterogeneous structures: the evolving role of deep eutectic solvents in customizing chitosan-based materials—a review. Adv Colloid Interface Sci, 2026, 349 103756

[24]

Castro-Muñoz R, René Cabezas R, Plata-Gryl M. Mangiferin: a comprehensive review on its extraction, purification and uses in food systems. Adv Colloid Interface Sci, 2024, 329 103188

[25]

Chang S-H, Hsieh P-L, Tsai G-J. Chitosan inhibits Helicobacter pylori growth and urease production and prevents its infection of human gastric carcinoma cells. Mar Drugs, 2020, 18(11): 542

[26]

Chang PK, Tsai MF, Huang CY, Lee CL, Lin C, Shieh CJ, Kuo C-H. Chitosan-based anti-oxidation delivery nano-platform: applications in the encapsulation of DHA-enriched fish oil. Mar Drugs, 2021, 19(8): 470

[27]

Correa LB, Seito LN, Manchope MF, Verri WA, Cunha TM, Henriques MG, et al. . Methyl gallate attenuates inflammation induced by Toll-like receptor ligands by inhibiting MAPK and NF-Κb signaling pathways. Inflamm Res, 2020, 69(12): 1257-1270

[28]

da Silva SB, Amorim M, Fonte P, Madureira R, Ferreira D, Pintado M, et al. . Natural extracts into chitosan nanocarriers for rosmarinic acid drug delivery. Pharm Biol, 2015, 53: 642-652

[29]

Devi CS, Tarafder A, Shishodiya E, Mohanasrinivasan V. Encapsulation of staphylokinase and Leucasaspera plant extracts using chitosan nanoparticles. Int J Pharmtech Res, 2015, 7: 654-661

[30]

Dunn BE, Cohen H, Blaser MJ. Helicobacter pylori. Clin Microbiol Rev, 1997, 10: 720-741

[31]

Elmi A, Spina R, Risler A, Philippot S, Mérito A, Duval RE, Abdoul-latif FM, Laurain-Mattar D. Evaluation of antioxidant and antibacterial activities, cytotoxicity of Acacia seyal Del bark extracts and isolated compounds. Molecules, 2020, 25(10): 2392

[32]

Eranda DHU, Chaijan M, Panpipat W, Karnjanapratum S, Cerqueira MA, Castro-Muñoz R. Gelatin-chitosan interactions in edible films and coatings doped with plant extracts for biopreservation of fresh tuna fish products: a review. Int J Biol Macromol, 2024, 280(Pt 2): 135661

[33]

Ferreyra-Suarez D, Paredes-Vargas L, Jafari SM, García-Depraect O, Castro-Muñoz R. Extraction pathways and purification strategies towards carminic acid as natural-based food colorant: a comprehensive review. Adv Colloid Interface Sci, 2024, 323 103052

[34]

Foyzun T, Mahmud AA, Ahammed MS, Manik MIN, Hasan MK, Islam KMM, Lopa SS, Al-Amin MY, Biswas K, Afrin MR, et al. . Polyphenolics with strong antioxidant activity from Acacia nilotica ameliorate some biochemical signs of Arsenic-induced neurotoxicity and oxidative stress in mice. Molecules, 2022, 27 1037

[35]

Hussen EM, Endalew SA. In vitro antioxidant and free-radical scavenging activities of polar leaf extracts of Vernonia amygdalina. BMC Complement Med Ther, 2023, 23 146

[36]

Kaur P, Arora S, Singh R. Isolation, characterization and biological activities of betulin from Acacia nilotica bark. Sci Rep, 2022, 12 9370

[37]

Liang H, Chen Z, Yang R, Huang Q, Chen H, Chen W, Zhang Y. Methyl gallate suppresses the migration, invasion, and epithelial-mesenchymal transition of hepatocellular carcinoma cells via the AMPK/NF-κB signaling pathway in vitro and in vivo. Front Pharmacol, 2022, 13 894285

[38]

Magnini RD, Hilou A, Millogo-Koné H, Compaore S, Pagès JM, Davin-Regli A. A review on ethnobotanical uses, biological activities, and phytochemical aspects of Acacia senegal (L.) Willd. and Acacia seyal Delile. (Fabaceae). Int J Plant Sci Hor, 2020, 2: 32-55

[39]

Mashraqi A. Induction role of chitosan nanoparticles to Anethum graveolens extract against food-borne bacteria, oxidant, and diabetic activities in vitro. Front Microbiol, 2023, 14 1209524

[40]

Negi A, Kesari KK. Chitosan nanoparticle encapsulation of antibacterial essential oils. Micromachines, 2022, 13 1265

[41]

Qanash H, Bazaid AS, Aldarhami A, Alharbi B, Almashjary MN, Hazzazi MS, Felemban HR, Abdelghany TM. Phytochemical characterization and efficacy of Artemisia judaica extract loaded chitosan nanoparticles as inhibitors of cancer proliferation and microbial growth. Polymers, 2023, 15 391

[42]

Qanash H, Al-Rajhi AMH, Almashjary MN, et al. . Inhibitory potential of rutin and rutin nano-crystals against Helicobacter pylori, colon cancer, hemolysis and butyrylcholinesterase in vitro and in silico. Appl Biol Chem, 2023, 66 79

[43]

Subhaswaraj P, Sowmya M, Jobina R, Sudharshan SJ, Dyavaiah M, Siddhardha B. Determination of antioxidant potential of Acacia nilotica leaf extract in oxidative stress response system of Saccharomyces cerevisiae. J Sci Food Agric, 2017, 97: 5247-5253

[44]

Surendhiran D, Li C, Cui H, Lin L. Fabrication of high stability active nanofibers encapsulated with pomegranate peel extract using chitosan/PEO for meat preservation. Food Packag Shelf Life, 2020, 23 100439

[45]

Sze Kwan L, Tzi Bun N. Acafusin, a dimeric antifungal protein from Acacia confusa seeds. Protein Pept Lett, 2010, 17: 817-822

[46]

Thotathil V, Rizk HH, Fakrooh A, Sreerama L. Phytochemical analysis of Acacia ehrenbergiana (Hayne) grown in Qatar: identification of active ingredients and their biological activities. Molecules, 2022, 27(19): 6400

[47]

Yahya R, Al-Rajhi AMH, Alzaid SZ, Al Abboud MA, Almuhayawi MS, Al Jaouni SK, et al. . Molecular docking and efficacy of Aloe vera gel based on chitosan nanoparticles against Helicobacter pylori and its antioxidant and anti-inflammatory activities. Polymers, 2022, 14 2994

Funding

Princess Nourah Bint Abdulrahman University((PNURSP2026R217)

RIGHTS & PERMISSIONS

The Author(s)

PDF

0

Accesses

0

Citation

Detail

Sections
Recommended

/