Original articles

Ganoderma Lucidum Spore Oil enhances the effect of cyclophosphamide via inhibiting programmed death-1 and prolongs the survival of H22 tumor-bearing mice

  • Zhaojian JIANG ,
  • Hongfei CAI ,
  • Cheng YUAN ,
  • Lin CAO ,
  • Wendong XU ,
  • Yaming HAN ,
  • Qin ZHANG ,
  • Jing LI ,
  • Qin WANG ,
  • Juyan LIU
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  • 1 Guangzhou HanFang Pharmaceutical Company Limited, National Engineering Research Center of Pharmaceutical Processing Technology of Traditional Chinese Medicine and Drug Innovation, Guangdong Provincial Key Laboratory of Medicinal Lipids, Guangzhou 510240, China
    2 Zhongshan Medical College, Sun Yat-sen University, Guangzhou 510080, China
    3 Guangzhou Pharmaceutical Holdings Limited, Guangzhou 510130, China
    4 National Engineering Research Center of Pharmaceutical Processing Technology of Traditional Chinese Medicine and Drug Innovation, Guangzhou 510240, China

Received date: 2023-02-16

  Accepted date: 2023-07-20

  Online published: 2024-07-15

Supported by

Ministry of Science and Technology of China: Evaluation, Re-examination, Promotion and Demonstration of Complete Sets of Technical Equipment for Efficient and Energy-Saving Extraction and Separation of Traditional Chinese Medicine(2017YFC1703104);Key Laboratory Project of Pharmaceutical Lipids in Guangdong Province : Assessment of Enterprise-Class Key Laboratory of Guangdong Province(2020B1212070024);Guangdong Province Key Areas Research and Development Program Project : Research and Development on Innovative Key Technologies and Intelligent Production Equipment about Processing, Decoction, Extraction and Separation of Traditional Chinese Medicine(2020B1111120002)

Abstract

OBJECTIVE: To investigate the effect of Ganoderma Lucidum Spore Oil (GLSO) on the tumor growth and survival of H22 tumor-bearing mice treated with cyclophosphamide (CTX), and explore the underlying mechanism.

METHODS: Allograft H22 hepatocellular carcinoma mouse model was applied to investigate the effect of GLSO on the tumor growth and survival of animals, and Kaplan-Meier survival analysis was used to analyze the life span. Plasma biochemical examination was used to determine the levels of alanine aminotransferase (ALT), aspartate aminotransferase (AST), urea (UREA) and creatinine (CRE). Western blot analysis was performed to detect Programmed Death-1 (PD-1), Programmed Death Ligand 1 (PD-L1), Janus Kinase 2 (JAK2), phosphorylated Signal Transducer and Activator of Transcription 3 (p-STAT3), and Signal Transducer and Activator of Transcription 3 (STAT3) expression.

RESULTS: GLSO increased the anti-tumor effect of CTX and prolonged the survival of H22 tumor-bearing mice treated with CTX. Meanwhile, GLSO increased the thymus index and showed no obvious toxicity to liver functions of animals. GLSO also decreased the level of UREA in H22 tumor-bearing mice treated with CTX. Furthermore, GLSO could inhibit the expression of PD-1 in spleen, which was independent of JAK2 expression and STAT3 phosphorylation. However, GLSO did not affect the expression of PD-L1, JAK2, and p-STAT3 in tumor tissue.

CONCLUSION: GLSO could strengthen the anti-tumor effect of CTX and prolong the life span of H22 tumor-bearing mice, while the underlying mechanism might be relevant to the amelioration effect of thymus function and inhibition of PD-1 expression in spleen. Furthermore, these findings implied the promising role of GLSO in combination with CTX to extend the survival of patients in clinical chemotherapy of hepatocellular carcinoma.

Cite this article

Zhaojian JIANG , Hongfei CAI , Cheng YUAN , Lin CAO , Wendong XU , Yaming HAN , Qin ZHANG , Jing LI , Qin WANG , Juyan LIU . Ganoderma Lucidum Spore Oil enhances the effect of cyclophosphamide via inhibiting programmed death-1 and prolongs the survival of H22 tumor-bearing mice[J]. Journal of Traditional Chinese Medicine, 2024 , 44(4) : 652 -659 . DOI: 10.19852/j.cnki.jtcm.2024.04.003

References

1. Sung H, Ferlay J, Siegel RL, et al. Global Cancer Statistics 2020: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries. CA Cancer J Clin 2021; 71: 209-49.
2. Li H, Gu L, Zhong Y, et al. Administration of polysaccharide from Panax notoginseng prolonged the survival of H22 tumor-bearing mice. Onco Targets Ther 2016; 9: 3433-41.
3. Ikeda M, Morizane C, Ueno M, Okusaka T, Ishii H, Furuse J. Chemotherapy for hepatocellular carcinoma: current status and future perspectives. Jpn J Clin Oncol 2018; 48: 103-14.
4. Emadi A, Jones RJ, Brodsky RA. Cyclophosphamide and cancer: golden anniversary. Nat Rev Clin Oncol 2009; 6: 638-47.
5. Ahlmann M, Hempel G. The effect of cyclophosphamide on the immune system: implications for clinical cancer therapy. Cancer Chemother Pharmacol 2016; 78: 661-71.
6. Ahmad MF. Ganoderma lucidum: persuasive biologically active constituents and their health endorsement. Biomed Pharmacother 2018; 107: 507-19.
7. Chan SW, Tomlinson B, Chan P, Lam CWK. The beneficial effects of Ganoderma lucidum on cardiovascular and metabolic disease risk. Pharm Biol 2021; 59: 1161-71.
8. Cui XY, Cui SY, Zhang J, et al. Extract of Ganoderma lucidum prolongs sleep time in rats. J Ethnopharmacol 2012; 139: 796-800.
9. Ma HT, Hsieh JF, Chen ST. Anti-diabetic effects of Ganoderma lucidum. Phytochemistry 2015; 114: 109-13.
10. Cuong VT, Chen W, Shi J, et al. The anti-oxidation and anti-aging effects of Ganoderma lucidum in Caenorhabditis elegans. Exp Gerontol 2018; 117: 99-105.
11. Li J, Gu F, Cai C, et al. Purification, structural characterization, and immunomodulatory activity of the polysaccharides from Ganoderma lucidum. Int J Biol Macromol 2020; 143: 806-13.
12. Jin X, Ruiz Beguerie J, Sze DM, Chan GC. Ganoderma lucidum (Reishi mushroom) for cancer treatment. Cochrane Database Syst Rev 2016; 4: CD007731.
13. Zhou D, Zhou F, Ma J, Ge F. Microcapsulation of Ganoderma Lucidum spores oil: evaluation of its fatty acids composition and enhancement of oxidative stability. Ind Crop Prod 2019; 131: 1-7.
14. Zhang Y, Cai H, Tao Z, et al. Ganoderma lucidum spore oil (GLSO), a novel antioxidant, extends the average life span in Drosophila melanogaster. Food Sci Hum Well 2021; 10: 38-44.
15. Alsaab HO, Sau S, Alzhrani R, et al. PD-1 and PD-L 1 checkpoint signaling inhibition for cancer immunotherapy: mechanism, combinations, and clinical outcome. Front Pharmacol 2017; 8: 561.
16. Yi M, Zheng X, Niu M, Zhu S, Ge H, Wu K. Combination strategies with PD-1/PD-L1 blockade: current advances and future directions. Mol Cancer 2022; 21: 28.
17. National Research Council. Guide for the care and use of laboratory animals:eighth edition. Washington DC: the National Academies Press, 2011: 11-151.
18. Cor D, Knez Z, Knez Hrncic M. Antitumour, antimicrobial, antioxidant and antiacetylcholinesterase effect of Ganoderma Lucidum terpenoids and polysaccharides: a review. Molecules 2018; 23: 649.
19. Brodsky RA, Jones RJ. Aplastic anaemia. Lancet 2005; 365: 1647-56.
20. Krishnan C, Kaplin AI, Brodsky RA, et al. Reduction of disease activity and disability with high-dose cyclophosphamide in patients with aggressive multiple sclerosis. Arch Neurol 2008; 65: 1044-51.
21. Cheung MC, Agarwal K. Liver abnormalities in the immunosuppressed. Best Pract Res Clin Gastroenterol 2013; 27: 597-618.
22. Wang G, Wang L, Zhou J, Xu X. The possible role of PD-1 protein in ganoderma lucidum-mediated immunomodulation and cancer treatment. Integr Cancer Ther 2019; 18: 1534735419880275.
23. Austin JW, Lu P, Majumder P, Ahmed R, Boss JM. STAT3, STAT4, NFATc1, and CTCF regulate PD-1 through multiple novel regulatory regions in murine T cells. J Immunol 2014; 192: 4876-86.
24. Llovet JM, Ricci S, Mazzaferro V, et al. Sorafenib in advanced hepatocellular carcinoma. N Engl J Med 2008; 359: 378-90.
25. Sun Y, Li Q, Xu JM, et al. A multicenter, single arm phase Ⅱ trial of a small molecule immune-modulator icaritin: safety, overall survival, immune dynamics, and PD-L 1 expression in advanced hepatocellular carcinoma. J Clin Oncol 2018; 36: 4077.
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