Citation: Yan Yan, Yitong Li, Wenyi Mei, Yixin Li, Qian Wang, Honglin Li, Lu Lu, Shibo Jiang. Pygenic acid A, a small-molecule PD-1/SHP-2 inhibitor, enhances efficacy of therapeutic melanoma vaccines and prophylactic influenza vaccines .VIROLOGICA SINICA, 2026, 41(4) : 961-971.  http://dx.doi.org/10.1016/j.virs.2026.07.006

Pygenic acid A, a small-molecule PD-1/SHP-2 inhibitor, enhances efficacy of therapeutic melanoma vaccines and prophylactic influenza vaccines

  • Overcoming immunosuppressive tumor microenvironments remains a critical challenge in advanced vaccine development. Here, we evaluated Pygenic acid A (PA), an intracellular small-molecule inhibitor targeting the PD-1/SHP-2 axis, as a novel vaccine adjuvant. The adjuvant efficacy of PA was systematically assessed in two murine models: a therapeutic B16-F10 melanoma lung metastasis model and a prophylactic lethal H1N1 influenza virus challenge model. In the melanoma metastasis model, PA potentiated the anti-tumor effect of the mTRP2 vaccine, markedly inhibiting pulmonary metastatic lesions and prolonging the survival of tumor-bearing mice. Mechanistically, PA robustly boosted the intratumoral infiltration of functional T cells, thereby reversing local tumor immunosuppression. In the influenza vaccination model, consistent immunostimulatory effects were observed: the PA-adjuvanted hemagglutinin (HA) vaccine effectively elicited broad-spectrum cross-neutralizing antibody responses and provided complete protection against lethal heterologous influenza virus challenge. Further mechanistic investigations demonstrated that PA specifically promoted the differentiation of T follicular helper (Tfh) cells and the expansion of germinal center (GC) B cells in draining lymph nodes, while triggering a robust Th1-type cellular immune response dominated by IFN-γ secretion. Furthermore, in vivo safety assessments verified that PA intervention induced no obvious systemic inflammation, hematological abnormalities, or visceral organ injury, indicating a favorable safety profile. Collectively, these results demonstrate that PA serves as a potent and safe intracellular checkpoint-targeting adjuvant capable of potentiating both cellular immunity and cross-protective humoral immunity, holding great translational promise for the development of advanced cancer vaccines and broad-spectrum influenza vaccines.

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    1. Andrews LP, Marciscano AE, Drake CG, Vignali DAA. 2017. Lag3 (cd223) as a cancer immunotherapy target. Immunological Reviews, 276: 80-96.

    2. Awate S, Babiuk LA, Mutwiri G. 2013. Mechanisms of action of adjuvants. Front Immunol, 4: 114.

    3. Barber DL, Wherry EJ, Masopust D, Zhu B, Allison JP, Sharpe AH, Freeman GJ, Ahmed R. 2006. Restoring function in exhausted cd8 t cells during chronic viral infection. Nature, 439: 682-687.

    4. Buchbinder EI, Desai A. 2016. Ctla-4 and pd-1 pathways: Similarities, differences, and implications of their inhibition. Am J Clin Oncol, 39: 98-106.

    5. Crotty S. 2014. T follicular helper cell differentiation, function, and roles in disease. Immunity, 41: 529-542.

    6. Cui H, Hamad M, Elkord E. 2025. Tigit in cancer: From mechanism of action to promising immunotherapeutic strategies. Cell Death & Disease, 16: 664.

    7. Erbelding EJ, Post DJ, Stemmy EJ, Roberts PC, Augustine AD, Ferguson S, Paules CI, Graham BS, Fauci AS. 2018. A universal influenza vaccine: The strategic plan for the national institute of allergy and infectious diseases. J Infect Dis, 218: 347-354.

    8. Exley C, Siesjo P, Eriksson H. 2010. The immunobiology of aluminium adjuvants: How do they really work? Trends Immunol, 31: 103-109.

    9. Finnefrock AC, Tang A, Li F, Freed DC, Feng M, Cox KS, Sykes KJ, Guare JP, Miller MD, Olsen DB, Hazuda DJ, Shiver JW, Casimiro DR, Fu TM. 2009. Pd-1 blockade in rhesus macaques: Impact on chronic infection and prophylactic vaccination. J Immunol, 182: 980-987.

    10. Gocher AM, Workman CJ, Vignali DAA. 2022. Interferon-γ: Teammate or opponent in the tumour microenvironment? Nat Rev Immunol, 22: 158-172.

    11. Good-Jacobson KL, Szumilas CG, Chen L, Sharpe AH, Tomayko MM, Shlomchik MJ. 2010. Pd-1 regulates germinal center b cell survival and the formation and affinity of long-lived plasma cells. Nat Immunol, 11: 535-542.

    12. Ha SJ, Mueller SN, Wherry EJ, Barber DL, Aubert RD, Sharpe AH, Freeman GJ, Ahmed R. 2008. Enhancing therapeutic vaccination by blocking pd-1-mediated inhibitory signals during chronic infection. J Exp Med, 205: 543-555.

    13. Hanahan D, Michielin O, Pittet MJ. 2025. Convergent inducers and effectors of t cell paralysis in the tumour microenvironment. Nature Reviews Cancer, 25: 41-58.

    14. Irvine DJ, Swartz MA, Szeto GL. 2013. Engineering synthetic vaccines using cues from natural immunity. Nat Mater, 12: 978-990.

    15. Jain RK, Baxter LT. 1988. Mechanisms of heterogeneous distribution of monoclonal antibodies and other macromolecules in tumors: Significance of elevated interstitial pressure1. Cancer Research, 48: 7022-7032.

    16. Joffe A, Vazquez-Maldonado N, Singleton KL, Leitner WW. 2024. Tiny but mighty: Small molecules as vaccine adjuvants. Trends Pharmacol Sci, 45: 1097-1099.

    17. Kamensek U, Ursic K, Markelc B, Cemazar M, Setrajcic Dragos V, Sersa G. 2021. Mutational burden, mhc-i expression and immune infiltration as limiting factors for in situ vaccination by tnfα and il-12 gene electrotransfer. Bioelectrochemistry, 140: 107831.

    18. Kedzierska K, Nguyen THO. 2022. Pd-1 blockade unblocks immune responses to vaccination. Nat Immunol, 23: 1135-1137.

    19. Keir ME, Butte MJ, Freeman GJ, Sharpe AH. 2008. Pd-1 and its ligands in tolerance and immunity. Annu Rev Immunol, 26: 677-704.

    20. Krammer F, Smith GJD, Fouchier RAM, Peiris M, Kedzierska K, Doherty PC, Palese P, Shaw ML, Treanor J, Webster RG, Garcia-Sastre A. 2018. Influenza. Nat Rev Dis Primers, 4: 3.

    21. Kuroda E, Coban C, Ishii KJ. 2013. Particulate adjuvant and innate immunity: Past achievements, present findings, and future prospects. Int Rev Immunol, 32: 209-220.

    22. Laubli H, Balmelli C, Kaufmann L, Stanczak M, Syedbasha M, Vogt D, Hertig A, Muller B, Gautschi O, Stenner F, Zippelius A, Egli A, Rothschild SI. 2018. Influenza vaccination of cancer patients during pd-1 blockade induces serological protection but may raise the risk for immune-related adverse events. J Immunother Cancer, 6: 40.

    23. Li W, Mei W, Jiang H, Wang J, Li X, Quan L, Diao Y, Ma Y, Fan S, Xie Z, Gong M, Zhu H, Bi D, Zhang F, Ma L, Zhang J, Gao Y, Paschalidis A, Lin H, Liu F, Liu K, Ye M, Zhao Z, Duan Y, Chen Z, Xu Y, Xiao W, Tao S, Zhu L, Li H. 2025. Blocking the pd-1 signal transduction by occupying the phosphorylated itsm recognition site of shp-2. Sci China Life Sci, 68: 189-203.

    24. Liu Z, Zhou J, Xu W, Deng W, Wang Y, Wang M, Wang Q, Hsieh M, Dong J, Wang X, Huang W, Xing L, He M, Tao C, Xie Y, Zhang Y, Wang Y, Zhao J, Yuan Z, Qin C, Jiang S, Lu L. 2022. A novel sting agonist-adjuvanted pan-sarbecovirus vaccine elicits potent and durable neutralizing antibody and t cell responses in mice, rabbits and nhps. Cell Res, 32: 269-287.

    25. MacLennan IC. 1994. Germinal centers. Annu Rev Immunol, 12: 117-139.

    26. Mai J, Li Z, Xia X, Zhang J, Li J, Liu H, Shen J, Ramirez M, Li F, Li Z, Yokoi K, Liu X, Mittendorf EA, Ferrari M, Shen H. 2021. Synergistic activation of antitumor immunity by a particulate therapeutic vaccine. Adv Sci (Weinh), 8: 2100166.

    27. Marrack P, McKee AS, Munks MW. 2009. Towards an understanding of the adjuvant action of aluminium. Nat Rev Immunol, 9: 287-293.

    28. Mullins SR, Vasilakos JP, Deschler K, Grigsby I, Gillis P, John J, Elder MJ, Swales J, Timosenko E, Cooper Z, Dovedi SJ, Leishman AJ, Luheshi N, Elvecrog J, Tilahun A, Goodwin R, Herbst R, Tomai MA, Wilkinson RW. 2019. Intratumoral immunotherapy with tlr7/8 agonist medi9197 modulates the tumor microenvironment leading to enhanced activity when combined with other immunotherapies. J Immunother Cancer, 7: 244.

    29. Okagawa T, Konnai S, Nakamura H, Ganbaatar O, Sajiki Y, Watari K, Noda H, Honma M, Kato Y, Suzuki Y, Maekawa N, Murata S, Ohashi K. 2023. Enhancement of vaccine-induced t-cell responses by pd-l1 blockade in calves. Vaccines (Basel), 11, 559.

    30. Overwijk WW, Restifo NP. 2001. B16 as a mouse model for human melanoma. Curr Protoc Immunol, Chapter 20: Unit 20.21.

    31. Pan H, Yang X, Wang J, Liang H, Jiang Z, Zhao L, Wang Y, Liang Z, Shen X, Lin Q, Liang Y, Yang J, Lu P, Zhu Y, Li M, Wang P, Xu J, Lu H, Zhu H. 2023. Allogeneic gene-edited hiv-specific car-t cells secreting pd-1 blocking scfv enhance specific cytotoxic activity against hiv env+ cells in vivo. Virologica Sinica, 38: 285-295.

    32. Pardoll DM. 2012. The blockade of immune checkpoints in cancer immunotherapy. Nat Rev Cancer, 12: 252-264.

    33. Postow MA, Sidlow R, Hellmann MD. 2018. Immune-related adverse events associated with immune checkpoint blockade. N Engl J Med, 378: 158-168.

    34. Pulendran B, P SA, O'Hagan DT. 2021. Emerging concepts in the science of vaccine adjuvants. Nat Rev Drug Discov, 20: 454-475.

    35. Reed SG, Orr MT, Fox CB. 2013. Key roles of adjuvants in modern vaccines. Nat Med, 19: 1597-1608.

    36. Sharpe AH, Pauken KE. 2018. The diverse functions of the pd1 inhibitory pathway. Nat Rev Immunol, 18: 153-167.

    37. Shi J, Hou S, Fang Q, Liu X, Liu X, Qi H. 2018. Pd-1 controls follicular t helper cell positioning and function. Immunity, 49: 264-274.e264.

    38. Song MY, Park SH, Nam HJ, Choi DH, Sung YC. 2011. Enhancement of vaccine-induced primary and memory cd8(+) t-cell responses by soluble pd-1. J Immunother, 34: 297-306.

    39. Thompson EA, Lore K. 2017. Non-human primates as a model for understanding the mechanism of action of toll-like receptor-based vaccine adjuvants. Curr Opin Immunol, 47: 1-7.

    40. Tzeng A, Kwan BH, Opel CF, Navaratna T, Wittrup KD. 2015. Antigen specificity can be irrelevant to immunocytokine efficacy and biodistribution. Proc Natl Acad Sci U S A, 112: 3320-3325.

    41. Victora GD, Nussenzweig MC. 2012. Germinal centers. Annu Rev Immunol, 30: 429-457.

    42. Victora GD, Mesin L. 2014. Clonal and cellular dynamics in germinal centers. Curr Opin Immunol, 28: 90-96.

    43. Wherry EJ. 2011. T cell exhaustion. Nat Immunol, 12: 492-499.

    44. Yi M, Li T, Niu M, Mei Q, Zhao B, Chu Q, Dai Z, Wu K. 2023. Exploiting innate immunity for cancer immunotherapy. Mol Cancer, 22: 187.

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    Pygenic acid A, a small-molecule PD-1/SHP-2 inhibitor, enhances efficacy of therapeutic melanoma vaccines and prophylactic influenza vaccines

      Corresponding author: Honglin Li, hlli@hsc.ecnu.edu.cn
      Corresponding author: Lu Lu, lul@fudan.edu.cn
      Corresponding author: Shibo Jiang, shibojiang@fudan.edu.cn
    • a. Key Laboratory of Medical Molecular Virology (Ministry of Education/National Health Commission/Chinese Academy of Medical Science), Shanghai Institute of Infectious Disease and Biosecurity, School of Basic Medical Sciences, Fudan University, Shanghai 200032, China;
    • b. Innovation Center for AI and Drug Discovery, School of Pharmacy, East China Normal University, Shanghai 200062, China

    Abstract: Overcoming immunosuppressive tumor microenvironments remains a critical challenge in advanced vaccine development. Here, we evaluated Pygenic acid A (PA), an intracellular small-molecule inhibitor targeting the PD-1/SHP-2 axis, as a novel vaccine adjuvant. The adjuvant efficacy of PA was systematically assessed in two murine models: a therapeutic B16-F10 melanoma lung metastasis model and a prophylactic lethal H1N1 influenza virus challenge model. In the melanoma metastasis model, PA potentiated the anti-tumor effect of the mTRP2 vaccine, markedly inhibiting pulmonary metastatic lesions and prolonging the survival of tumor-bearing mice. Mechanistically, PA robustly boosted the intratumoral infiltration of functional T cells, thereby reversing local tumor immunosuppression. In the influenza vaccination model, consistent immunostimulatory effects were observed: the PA-adjuvanted hemagglutinin (HA) vaccine effectively elicited broad-spectrum cross-neutralizing antibody responses and provided complete protection against lethal heterologous influenza virus challenge. Further mechanistic investigations demonstrated that PA specifically promoted the differentiation of T follicular helper (Tfh) cells and the expansion of germinal center (GC) B cells in draining lymph nodes, while triggering a robust Th1-type cellular immune response dominated by IFN-γ secretion. Furthermore, in vivo safety assessments verified that PA intervention induced no obvious systemic inflammation, hematological abnormalities, or visceral organ injury, indicating a favorable safety profile. Collectively, these results demonstrate that PA serves as a potent and safe intracellular checkpoint-targeting adjuvant capable of potentiating both cellular immunity and cross-protective humoral immunity, holding great translational promise for the development of advanced cancer vaccines and broad-spectrum influenza vaccines.

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