Volume 14 Issue 12
Dec.  2024
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Zhiqiang Zhang, Li Wang, Xia Ma, Hui Wang. Lentinan-functionalized PBAE-G-nanodiamonds as an adjuvant to induce cGAS-STING pathway-mediated macrophage activation and immune enhancement[J]. Journal of Pharmaceutical Analysis, 2024, 14(12): 100922. doi: 10.1016/j.jpha.2023.12.012
Citation: Zhiqiang Zhang, Li Wang, Xia Ma, Hui Wang. Lentinan-functionalized PBAE-G-nanodiamonds as an adjuvant to induce cGAS-STING pathway-mediated macrophage activation and immune enhancement[J]. Journal of Pharmaceutical Analysis, 2024, 14(12): 100922. doi: 10.1016/j.jpha.2023.12.012

Lentinan-functionalized PBAE-G-nanodiamonds as an adjuvant to induce cGAS-STING pathway-mediated macrophage activation and immune enhancement

doi: 10.1016/j.jpha.2023.12.012
  • Received Date: Sep. 08, 2023
  • Accepted Date: Dec. 16, 2023
  • Rev Recd Date: Dec. 14, 2023
  • Publish Date: Dec. 22, 2023
  • A series of biodegradable nanoparticle-based drug delivery systems have been designed utilizing poly(β-amino ester)-guanidine-phenylboronic acid (PBAE-G) polymers. In this study, a novel Lentinan-Functionalized PBAE-G-nanodiamond system was developed to carry ovalbumin (LNT-PBAE-G-ND@OVA). The impact of this drug delivery system on the activation and maturation of macrophages was then assessed. Furthermore, LNT-PBAE-G-ND@OVA induced potent antibody response and showed no obvious toxicity in vitro and in vivo. Moreover, treatment with LNT-PBAE-G-ND@OVA was sufficient to alter the expression of genes associated with the cGAS-STING pathway, and the LNT-PBAE-G-ND@OVA induced upregulation of costimulatory molecules. LNT-PBAE-G-ND@OVA treatment was sufficient to induce macrophage activation through a complex mechanism in which cyclic guanosine monophosphate-adenosine monophosphate (cGAMP) synthase (cGAS)-stimulator of interferon genes (STING) signaling plays an integral role.

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  • [1]
    Z. He, T. Guo, Z. Cui, et al., New understanding of Angelica sinensis polysaccharide improving fatty liver: The dual inhibition of lipid synthesis and CD36-mediated lipid uptake and the regulation of alcohol metabolism, Int. J. Biol. Macromol. 207 (2022) 813-825.
    [2]
    M. Deng, Z. Hu, H. Wang, et al., Developments of subunit and VLP vaccines against influenza A virus, Virol. Sin. 27 (2012) 145-153.
    [3]
    N. Zhang, B. Zheng, L. Lu, et al., Advancements in the development of subunit influenza vaccines, Microbes Infect. 17 (2015) 123-134.
    [4]
    Q. Liu, X. Chen, J. Jia, et al., pH-responsive poly(D, L-lactic-co-glycolic acid) nanoparticles with rapid antigen release behavior promote immune response, ACS Nano 9 (2015) 4925-4938.
    [5]
    L. Fu, L. Du, Y. Sun, et al., Effect of lentinan on lipid oxidation and quality change in goose meatballs during cold storage, Foods 11 (2022), 1055.
    [6]
    M. Hamidi, O.V. Okoro, P.B. Milan, et al., Fungal exopolysaccharides: Properties, sources, modifications, and biomedical applications, Carbohydr. Polym. 284 (2022), 119152.
    [7]
    H. Liu, Y. Wang, W. Zhang, et al., Lentinan extends lifespan and increases oxidative stress resistance through DAF-16 and SKN-1 pathways in Caenorhabditis elegans, Int. J. Biol. Macromol. 202 (2022) 286-295.
    [8]
    Q. Ding, T. Zhuang, P. Fu, et al., Alpha-terpineol grafted acetylated lentinan as an anti-bacterial adhesion agent, Carbohydr. Polym. 277 (2022), 118825.
    [9]
    G. Chen, L. Cai, L. Liu, et al., Lentinan has a regulatory effect Th immune response in BALB/c mice infected with Toxoplasma gondii, Chin. J. Microecol. 24 (2012) 1064-1066, 1070.
    [10]
    K. Oba, M. Kobayashi, T. Matsui, et al., Individual patient based meta-analysis of lentinan for unresectable/recurrent gastric cancer, Anticancer Res. 29 (2009) 2739-2745.
    [11]
    L. Jiao, Z. Liu, Y. Zhang, et al., Lentinan PLGA-stabilized Pickering emulsion for the enhanced vaccination, Int. J. Pharm. 611 (2022), 121348.
    [12]
    Y. Wu, T. Weil, Recent developments of nanodiamond quantum sensors for biological applications, Adv. Sci. 9 (2022), e2200059.
    [13]
    W. Liu, M.N.A. Alam, Y. Liu, et al., Silicon-vacancy nanodiamonds as high performance near-infrared emitters for live-cell dual-color imaging and thermometry, Nano Lett. 22 (2022) 2881-2888.
    [14]
    H.J. Shulevitz, T.Y. Huang, J. Xu, et al., Template-assisted self-assembly of fluorescent nanodiamonds for scalable quantum technologies, ACS Nano 16 (2022) 1847-1856.
    [15]
    Y.C. Lin, E. Perevedentseva, Z. Lin, et al., Multimodal bioimaging using nanodiamond and gold hybrid nanoparticles, Sci. Rep. 12 (2022), 5331.
    [16]
    Z. Xu, L. Wang, X. Huan, et al., On-demand, direct printing of nanodiamonds at the quantum level, Adv. Sci. 9 (2022), e2103598.
    [17]
    L. Nie, A.C. Nusantara, V.G. Damle, et al., Quantum sensing of free radicals in primary human dendritic cells, Nano Lett. 22 (2022) 1818-1825.
    [18]
    C. Li, R. Soleyman, M. Kohandel, et al., SARS-CoV-2 quantum sensor based on nitrogen-vacancy centers in diamond, Nano Lett. 22 (2022) 43-49.
    [19]
    Z. Luo, Q. Wan, Z. Yu, et al., Photo-fluorination of nanodiamonds catalyzing oxidative dehydrogenation reaction of ethylbenzene, Nat. Commun. 12 (2021), 6542.
    [20]
    A. Jafarzadeh, M. Nemati, E. Salarkia, et al., Inflammatory responses during trichomoniasis: The role of Toll-like receptors and inflammasomes, Parasite Immunol. 45 (2023), e13000.
    [21]
    X. Wang, J. Wu, R. Lv, et al., Bioinspired hydrogen peroxide-activated nanochannels and their applications in cancer cell analysis, Anal. Chem. 94 (2022) 6234-6241.
    [22]
    Q. Chen, L. Su, X. He, et al., Poly(beta-amino ester)-based nanoparticles enable nonviral delivery of base editors for targeted tumor gene editing, Biomacromolecules 23 (2022) 2116-2125.
    [23]
    M. Ye, Y. Zhao, Y. Wang, et al., A dual-responsive antibiotic-loaded nanoparticle specifically binds pathogens and overcomes antimicrobial-resistant infections, Adv. Mater. 33 (2021), e2006772.
    [24]
    L. Li, Z. Bai and P.A. Levkin, Boronate-dextran: An acid-responsive biodegradable polymer for drug delivery, Biomaterials 34 (2013) 8504-8510.
    [25]
    D. Li, M. Xu, G. Li, et al., Mg/Al-LDH as a nano-adjuvant for pertussis vaccine: A evaluation compared with aluminum hydroxide adjuvant, Nanotechnology 33 (2022), 235102.
    [26]
    R. Budida, M.V. Stankov, K. Dohner, et al., Herpes simplex virus 1 interferes with autophagy of murine dendritic cells and impairs their ability to stimulate CD8+ T lymphocytes, Eur. J. Immunol. 47 (2017) 1819-1834.
    [27]
    Z. Liu, J. He, T. Zhu, et al., Lentinan-functionalized graphene oxide is an effective antigen delivery system that modulates innate immunity and improves adaptive immunity, ACS Appl. Mater. Interfaces 12 (2020) 39014-39023.
    [28]
    Y. Wang, Z. Li, Y. Chen, et al., Nano-STING agonist-decorated microrobots boost innate and adaptive anti-tumor immunity, Nano Res. 16 (2023) 9848-9858.
    [29]
    Z. Liu, H. Ni, L. Yu, et al., Adjuvant activities of CTAB-modified Polygonatum sibiricum polysaccharide cubosomes on immune responses to ovalbumin in mice, Int. J. Biol. Macromol. 148 (2020) 793-801.
    [30]
    Y. Zhang, P. Gu, A. Wusiman, et al., The immunoenhancement effects of polyethylenimine-modified Chinese yam polysaccharide-encapsulated PLGA nanoparticles as an adjuvant, Int. J. Nanomed. 15 (2020) 5527-5543.
    [31]
    L. Liu, F. Cao, X. Liu, et al., Hyaluronic acid-modified cationic lipid-PLGA hybrid nanoparticles as a nanovaccine induce robust humoral and cellular immune responses, ACS Appl. Mater. Interfaces 8 (2016) 11969-11979.
    [32]
    X. Chen, Y. Liu, L. Wang, et al., Enhanced humoral and cell-mediated immune responses generated by cationic polymer-coated PLA microspheres with adsorbed HBsAg, Mol. Pharm. 11 (2014) 1772-1784.
    [33]
    A. Wusiman, S. Xu, H. Ni, et al., Immunomodulatory effects of Alhagi honey polysaccharides encapsulated into PLGA nanoparticles, Carbohydr. Polym. 211 (2019) 217-226.
    [34]
    P.K. Singh, S. Kushwaha, A.K. Rana, et al., Cofactor independent phosphoglycerate mutase of Brugia malayi induces a mixed Th1/Th2 type immune response and inhibits larval development in the host, BioMed Res. Int. 2014 (2014), 590281.
    [35]
    L. Yuan, L. Wu, J. Chen, et al., Paclitaxel acts as an adjuvant to promote both Th1 and Th2 immune responses induced by ovalbumin in mice, Vaccine 28 (2010) 4402-4410.
    [36]
    A. Oleaga, R. Perez-Sanchez, E. Pages, et al., Identification of immunoreactive proteins from the dog heartworm (Dirofilaria immitis) differentially recognized by the sera from dogs with patent or occult infections, Mol. Biochem. Parasitol. 166 (2009) 134-141.
    [37]
    Z. Zhang, D. Li, X. Ma, et al., Carboxylated nanodiamond-mediated NH2-PLGA nanoparticle-encapsulated fig polysaccharides for strongly enhanced immune responses in vitro and in vivo, Int. J. Biol. Macromol. 165 (2020) 1331-1345.
    [38]
    S.J. Yang, Y.Y. Chen, C.H. Hsu, et al., Activation of M1 macrophages in response to recombinant TB vaccines with enhanced antimycobacterial activity, Front. Immunol. 11 (2020), 1298.
    [39]
    N. M. Drzeniek, N. Kahwaji, S. Schlickeiser, et al., Immuno-engineered mRNA combined with cell adhesive niche for synergistic modulation of the MSC secretome, Biomaterials 294 (2023), 121971.
    [40]
    L. Casalino, C. Seitz, J. Lederhofer, et al., Breathing and tilting: Mesoscale simulations illuminate influenza glycoprotein vulnerabilities, ACS Cent. Sci. 8 (2022) 1646-1663.
    [41]
    Y. Fan, M. Zhan, J. Liang, et al., Programming injectable DNA hydrogels yields tumor microenvironment-activatable and immune-instructive depots for augmented chemo-immunotherapy, Adv. Sci. (Weinh) 10 (2023), e2302119.
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