Optimization of Polysaccharides Extraction from Physalis alkekengi L. Peel and Its Effect on the Expression of Inflammation-Related Proteins in SW620 Cells
Download PDF
$currentUrl="http://$_SERVER[HTTP_HOST]$_SERVER[REQUEST_URI]"

Keywords

Physalis alkekengi L. polysaccharide
Antioxidant
Extraction process
Colorectal cancer

DOI

10.26689/par.v8i4.7906

Submitted : 2024-07-10
Accepted : 2024-07-25
Published : 2024-08-09

Abstract

Objective: To establish an optimized aqueous extraction process for polysaccharides from Physalis alkekengi L. peel and to preliminarily explore its in vitro anti-inflammatory activity against colorectal cancer SW620 cells. Methods: A single-factor test combined with orthogonal test analysis was used to evaluate the effects of the material-to-liquid ratio, extraction temperature, and extraction time on the yield of polysaccharides from Physalis alkekengi L. peel. The antioxidant activity of the polysaccharides was assessed by analyzing their free radical scavenging ability in vitro, and the anti-inflammatory effect was evaluated using SW620 cells. Results: The optimal extraction conditions were a material-to-liquid ratio of m(g):V(mL) = 1:30, an extraction temperature of 100°C, and an extraction time of 40 minutes, with a predicted polysaccharide yield of 25.7%. The polysaccharides from Physalis peruviana peel effectively scavenged DPPH, superoxide anion, and hydroxyl radicals. After treatment with Physalis peruviana polysaccharides, the levels of IL-1β, IL-18, and TNF-α in the cell culture medium were significantly reduced, and the phosphorylation level of P65 protein in SW620 cells was decreased. Conclusion: This extraction method is stable and reliable, and the prepared Physalis alkekengi L. polysaccharides exhibit significant in vitro antioxidant and anti-inflammatory activities. This study provides a theoretical basis for developing drugs for the prevention and treatment of colorectal cancer.

References

Li JJ, Li L, Su SS, et al., 2024, Anti-Inflammatory Properties and Characterization of Water Extracts Obtained from Callicarpa kwangtungensis Chun using In Vitro and In Vivo Rat Models. Sci Rep, 14(1): 11047. https://doi.org/10.1038/s41598-024-61892-9

Lee YM, Kim DS, 2024, Analgesic, Anti-Inflammatory, and Chondroprotective Activities of Siraitia grosvenorii Residual Extract. Int J Mol Sci, 25(8): 4268. https://doi.org/10.3390/ijms25084268

Lu J, Luo M, Wang L, et al., 2021, The Physalis floridana Genome Provides Insights into the Biochemical and Morphological Evolution of Physalis Fruits. Hortic Res, 8(1): 244. https://doi.org/10.1038/s41438-021-00705-w

El-Emam MMA, El-Demerdash AS, Abdo SA, et al., 2024, The Ameliorative Role of Aloe vera-Loaded Chitosan Nanoparticles on Staphylococcus aureus Induced Acute Lung Injury: Targeting TLR/NF-KappaB Signaling Pathways. Open Vet J, 14(1): 416–427. https://doi.org/10.5455/OVJ.2024.v14.i1.38

Harasym J, Dziendzikowska K, Kopiasz L, et al., 2024, Consumption of Feed Supplemented with Oat Beta-Glucan as a Chemopreventive Agent against Colon Cancerogenesis in Rats. Nutrients, 16(8): 1125. https://doi.org/10.3390/nu16081125

Li J, Song C, He C, 2019, Chinese Lantern in Physalis is An Advantageous Morphological Novelty and Improves Plant Fitness. Sci Rep, 9(1): 596. https://doi.org/10.1038/s41598-018-36436-7

Ruan J, Zhang P, Zhang Q, et al., 2023, Colorectal Cancer Inhibitory Properties of Polysaccharides and Their Molecular Mechanisms: A Review. Int J Biol Macromol, 238: 124165. https://doi.org/10.1016/j.ijbiomac.2023.124165

Pan H, Wang Y, Na K, et al., 2019, Autophagic Flux Disruption Contributes to Ganoderma lucidum Polysaccharide-Induced Apoptosis in Human Colorectal Cancer Cells via MAPK/ERK Activation. Cell Death Dis, 10(6): 456. https://doi.org/10.1038/s41419-019-1653-7

Li YH, Niu YB, Sun Y, et al., 2015, Role of Phytochemicals in Colorectal Cancer Prevention. World J Gastroenterol, 21(31): 9262–9272. https://doi.org/10.3748/wjg.v21.i31.9262

Elshami M, Dwikat MF, Al-Slaibi I, et al., 2024, Understanding the Interplay of Colorectal Cancer Awareness and Attitudes among Palestinians: A National Cross-Sectional Study. BMC Cancer, 24(1): 590. https://doi.org/10.1186/s12885-024-12357-9

Shang Z, Xi S, Lai Y, et al., 2024, Single-Cell Transcriptomics and Mendelian Randomization Reveal LUCAT1’s Role in Right-Sided Colorectal Cancer Risk. Front Genet, 15: 1357704. https://doi.org/10.3389/fgene.2024.1357704

Ren J, Han B, Feng P, et al., 2024, Mechanism of miR-7 Mediating TLR4/TRAF6/NF-KappaB Inflammatory Pathway in Colorectal Cancer. Funct Integr Genomics, 24(1): 24. https://doi.org/10.1007/s10142-024-01307-0

Li Q, von Ehrlich-Treuenstatt V, Schardey J, et al., 2023, Gut Barrier Dysfunction and Bacterial Lipopolysaccharides in Colorectal Cancer. J Gastrointest Surg, 27(7): 1466–1472. https://doi.org/10.1007/s11605-023-05654-4

Tuysuz EC, Mourati E, Rosberg R, et al., 2024, Tumor Suppressor Role of the Complement Inhibitor CSMD1 and Its Role in TNF-Induced Neuroinflammation in Gliomas. J Exp Clin Cancer Res, 43(1): 98. https://doi.org/10.1186/s13046-024-03019-6

Hapil Zevkliler FZ, Çopuroglu FE, Ertosun MG, et al., 2023, TNFR1 Signaling is Positively Regulated by Jak-2 and c-Src via Tyrosine Phosphorylation. Turk J Biol, 48(1): 1–12. https://doi.org/10.55730/1300-0152.2677