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as APCs to boost T cell immunity [93]. Iron-dextran NPs were modified with MHC-I and CD28 antibodies on their surface to bind to both T cell receptors and CD28 [93]. Magnetic fields drove the cluster aggregation of T cells by the antigen-presenting NPs, thereby proliferating T cells and expanding the population of antigen-specific CD8 T cells [93]. The administration of T cells followed by signal clustering of T cells dramat­ically reduced tumor volume and improved survival by generating antigen-specific
+
CD8
T cells in spleen and lymph nodes [93].
DC-tumor fusion cell membranes were developed to mimic copresentation of tumor antigens and costimulatory molecules by mature DCs [94]. The administration of DC-tumor fusion NPs significantly expanded the population of CD4
+
and CD8
T cells in the spleen and enabled high secretion of IFN-γ [94]. The vaccination of DC-tumor fusion NPs prevented the establishment of the tumor, resulting from a con­siderable increase in the population of tetramer
+
CD8+T cells [94]. Additionally, treat­ment of DC-tumor fusion NPs in tumor-bearing mouse model highly suppressed tumor proliferation by recruiting tetramer
+
CD8+T cells and producing IFN-γ [94].
The blockade of immune checkpoints is capable of antagonizing T cell immunity to sensitize tumor immune surveillance [88,95]. Recently, the development of immune checkpoint inhibitors harmonized with nanotechnology has been shown to enhance therapeutic index by adding several critical characteristics such as extended pharmacoki­netic, specificity to the tumor, and efficient blockade of immune checkpoints [19,96,97]. For one example, PD-L1 antibody-labeled platelets ameliorated antitumor immunity for post-surgical cancer immunotherapy [96]. Inspired by the intrinsic properties of platelets, PD-L1 antibodies were conjugated to the surface of platelets to prevent post-surgical tumor recurrence [96]. With the aid of platelets, PD-L1 receptors overexpressed on can­cer cells after surgery were efficiently blocked by the PD-L1 antibodies from PD-L1 antibody-platelets [96]. The non-activated platelets were so stable that the long systemic circulation could be induced while PD-L1 antibodies were rapidly released at surgical sites by activating the platelets [96]. Tumor recurrence of PD-L1 antibody-platelets was nearly abolished compared to monotreatment of PD-L1 antibody. Additionally, PD-L1 antibody-platelets significantly triggered a robust, T cell-mediated antitumor immunity by infiltrating cytotoxic CD4
+
and CD8+T cells into the tumor tissues
[96]. Moreover, the establishment of robust and systemic antitumor immunity by
PD-L1 antibody-platelets completely inhibited lung metastasis [96]. Likewise in a differ­ent study, NPs with PD-L1 antibodies substantially increased the antagonist effect of immune checkpoint blockade to improve antitumor immunity [97]. Poly(amidoamine) dendrimers were tethered with PD-L1 antibodies to induce multiva­lent binding of the NPs to PD-L1 receptor overexpressed on cancer cells Binding of the PD-L1 antibody-NPs to PD-L1 receptors could be saturated at lower dosage compared to PD-L1 antibody treatment [97]. After blocking the PD-L1 receptors on cancer cells, the treatment of DOX ameliorated the cytotoxic effect to cancers compared with
227Challenges and opportunities of nanotechnology in cancer immunotherapy
+
+
228 DaeYong Lee et al.
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monotreatment of DOX [97]. Dual inhibition of immune checkpoint inhibitors mod­ulated immunosuppressive environments by blocking CTLA-4 and PD-L1 to synergis­tically elicit enhanced antitumor immune responses [98]. HEK-293 cells were transfected with retrovirus including both CTLA-4 and PD-L1- DNA plasmid, and then the cell membranes from the transfected cells were isolated to self-assemble into an NP [98]. The NP-mediated dual inhibition of PD-L1 and CTLA-4 recruited cytotoxic CD8 + T cells along with significant reduction of Tregs into tumors, and also increased TNF-α secretion but decreased production of IL-6 and TGF-β [98].
5.2 CAR-T cell therapy with nanotechnology
CAR T cell therapy has revolutionized the field of immunooncology due to unprece­dented therapeutic index [99]. However, the therapy is limited in scope as mentioned previous requiring new strategies to overcome the limitations and maintain the unusual potency of cancer immunotherapy [100]. CAR T cell therapy with nanotechnology can broaden the applicability to various types of cancers and also maximize the therapeutic efficacy of T cell-based anticancer therapy [100]. For instance, CAR T cell therapy with IL-15-loaded nanogels allowed for significant elevation of tumor clearance by amplified CAR T cells (Fig. 7) [100]. IL-15 proteins were cross-linked with redox potential­cleavable linkers to form the protein nanogel, and then the nanogels were modified with PEG-poly­(Fig. 7) [100]. The protein nanogel-embedding CAR T cells locally released the cargo proteins across tumor tissues by increased cell surface reduction, thus remarkably increas­ing population of cytotoxic CD8+ T cells infiltrated into tumor and also secreting anti­tumor cytokines, TNF-α, IL-2, and IFN-γ into tumor compared to treatment of CAR T cell with free IL-15 (Fig. 7) [100]. Further, the CAR T cell therapy embedded with the IL-15 nanogel did not elevate the serum cytokine levels, IL-10, IL-6, and TNF- TNF-α or activity of liver enzymes compared to that with free IL-15, thus minimizing the unde­sirable side effects with maintaining higher therapeutic efficacy [100]. As another exam­ple of CAR T cell therapy with NPs, administration of CAR T cells after NP preconditioning was able to effectively infiltrate tumor lesions, undergo robust expansion and kill malignant cells [101]. Although CAR T cell treatments generated cell-mediated antitumor effect, the population of TAMs, myeloid-derived suppressor cells, Tregs were increased, thus interrupting T cell attacks [101]. The accumulation of CAR T cells into the tumor was highly suppressed in the solid tumor models, resulting in low antitumor effectiveness [101]. To augment the therapeutic effectiveness of CAR T cells, RGD­tagged liposome loading PI3K inhibitor and NK cell-activating agonists were systemi­cally pretreated prior to administration of CAR T cells [101]. The liposomes were able to reprogram tumor microenvironments by diminishing the proportion of
L-lysine and CD45 antibodies to be anchored onto the surface of CAR T cells
229Challenges and opportunities of nanotechnology in cancer immunotherapy
Fig. 7 CAR T cells combined with nanogels increased antitumor immunity to suppress tumor growth. IL-15-loaded nanogels are anchored onto CAR T cells to induce synergistic antitumor immunity. The nanogels release the encapsulated IL-15 via GSH- responsiveness, thus expanding cytotoxic CD8 + T cells throughout the tumor tissues to eliminate the tumor.
immunosuppressive cells but increasing that of NK cells and CD8 + T cells [101]. After the NP preconditioning and treatment of CAR T cells tumor progression was eradicated and survival was doubled, attributed to the high retention of CAR T cells and infiltration into tumors [101]. As the final example of combinational CAR T cell therapy, CAR T cells were combined with albumin binding phospholipid-polymers enhancing CAR T cell activity against solid tumors via the chimeric receptor [102]. Albumin­binding phospholipid-polymer tethered with CAR ligand (amph ligand) was designed to achieve lymph node targeting by albumin-hitchhiking strategy and allow DCs to interact with CAR T cells [102]. The successful accumulation of the amph ligands enabled the chimeric ligands on the surface of APCs, thus priming CAR T cells
[102]. CAR T cells with vaccine boosting highly expanded T cell population and ele-
vated IFN-γ and TNF-α, thereby significantly inhibiting tumor proliferation [102].
230 DaeYong Lee et al.
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6. Targeting strategies
Targeting strategies affect the therapeutic efficacy of cancer immunotherapy by boosting antitumor immunity without adverse effects. Recent advance in nanotechnol­ogy enables specific targeting delivery to the desired site augmenting the potency of anti­tumor immunity. In this section, we discuss several targeting approaches to drive enhanced antitumor immunity and how nanotechnology contributes to specific targeting.
6.1 Lymph node targeting
Lymph nodes are highly dense with APCs and consequently are a promising target to efficiently strengthen innate immunity by delivering antigens or immunostimulatory agents [103,104]. To facilitate lymph node targeting, the design of nanomaterials is essen­tial, which must meet certain requirements [103,104]. First, the diameter of NPs influ­ences how NPs drain into the lymph nodes [103,104]. NPs ranging from 10 to 100 nm can enter through lymphatic vessels and then be retained into lymph nodes [103,104]. Second, the surface engineering of NPs strongly affects the successful accumulation of NPs to lymph nodes, systemic circulation should be prolonged to increase the possibility for lymph node drainage [103,104]. PEGylation of NPs is a promising strategy of surface modification to achieve enhanced pharmacokinetics [103,104]. Lastly, the surface charge of NPs is also important for enhanced lymph node targeting.[103, 104]The negative sur­face charge of NPs can block the undesirable binding to interstitum and non-target cells, thus increasing the efficacy of lymph node targeting [103,104]. Recently, lymph node targeting was that PEGylated NPs induced prolonged systemic circulation thereby augmenting the possibility for lymph node drainage [105]. PEGylation of STING agonist-loaded NPs prevented unspecific adsorption of serum proteins/matrix, which triggered lymphatic drainage [105]. The cyclic di-GMP-loaded PEG-liposome NPs were accumulated into lymph nodes for 2–3 days, augmenting the uptake of vaccines and adjuvant by macrophages, DCs, and B cells [105]. The lymph node targeting delivery highly expressed costimulatory markers in APCs, thereby inducing cytotoxic T cell immunity to suppress tumor proliferation [105]. Furthermore, the lymph node targeting of the NPs selectively activated lymph node-resident APCs, which did not influence on the activation of plasmacytoid DCs, thereby minimizing the undesired cytotoxicity
[105]. The negative surface charges of NPs increased retention of the systemic circulation
and lymph node targetability. The aminiated cholesterol-grafted poly(γ-polyglutamic acid) was mixed with ovalbumin and poly(I:C) to self-assemble into an NP [106]. The inherent negative charges of NPs triggered the retention of the NPs into lymph nodes for up to 168 h, thereby activating DCs and NK cells in lymph nodes due to type
I IFN activation [106]. The vaccine delivery achieved by lymph node targeting signif­icantly suppressed tumor growth and ameliorate survival [106].
Exploiting biological systems also enables effective lymph node targeting referred to as “hitchhiking” strategy designed to interact with endogenous albumin in the bloodstream and travel with it [107]. Albumin-binding complexes can prudentially drain lymph nodes in that endogenous albumin drains from the interstitum and returns to the systemic cir­culation via lymphatic vessels [107]. Nanotechnology combined with albumin­hitchhiking property can achieve lymph node targeting to reinforce both innate and adaptive immunity [107]. In one example, albumin-binding fatty acids were conjugated to CpG or peptide antigen, thus augmenting the accumulation of vaccine and adjuvant into lymph nodes to boost antitumor immunity [107]. The structure of lipid-antigen or vaccine extended the retention into lymph node for up to 150 h, which could recruit cytotoxic CD8
+
T cells without side effects to suppress tumor proliferation [107]. Another albumin-hitchhiking strategy was that a synthetic analog, maleimide­functionalized EB derivative, which was capable of achieving lymph node targeting the delivery of antigen and adjuvant [44]. The maleimide-functionalized EB derivative was able to be docked into endogenous albumin molecules, thus inducing NP formation in serum conditions [44]. The nanovaccine surrounded by albumin molecules prolonged its pharmacokinetic and retention time into the lymph nodes, proliferating antigen­specific CD8
+
T cells and also activating effector/central memory T cells do not only
eradicate the established tumor but also inhibit lung metastasis [44].
Utilizing magnetic responsiveness artificially rendered NPs accumulated into lymph nodes over the long term [108]. For instance, magnetic NPs coated with CD205 antibody-tagged cancer cell membranes could be driven into lymph nodes via magnetic fields to efficiently deliver antigen and adjuvant [108]. The magnetic NPs were retained into lymph nodes for up to 24 days with applying magnetic fields, which could strengthen both innate and adaptive immune responses to inhibit lung metastasis as well as eliminate tumor progression [108].
231Challenges and opportunities of nanotechnology in cancer immunotherapy
6.2 APC targeting
APCs play an important role in mediating cellular immunity by processing and presenting antigen recognition by certain lymphocytes such as T cells and activating adaptive immu­nity to drive antitumor immunity. APC targeting offers the strong possibility to initiate antitumor immune responses and to expand antigen-specific T cells infiltrated into the tumor via the phagocytic process. Harnessing several receptors exclusively expressed on APCs is a promising approach to actively target APCs.
Mannose receptors overexpressed on DCs have been utilized to achieve specific targ­eting delivery to DCs [109]. Mannose-tagged nanomaterials are recognized as a pathogen
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by DCs, thus improving the targeting capability [109]. Mannose-tagged polymersomes with ovalbumin and imiquimod were capable of enhancing promoting DC maturation by delivering antigens and activating the type I IFN pathway, which was associated with the higher uptake of vaccines by DCs [109]. The vaccine delivery via mannose receptor­mediated endocytosis upregulated costimulatory molecules (CD40 and CD86) and secrete proinflammatory cytokines, thereby increasing the population of cytotoxic T cell responses against tumor to abolish the recurrence of tumor growth [109]. Likewise, mannose-tethered amphiphilic triblock copolymer-based NPs were selectively taken up by DCs to deliver antigens and adjuvants [110]. The DCs specifically pulsing with the NPs expressed the costimulatory markers, CD40, CD80, and CD86, and then activated T cell priming to eliminate established tumor dendritic cell-specific intracellular adhesion molecule-3-grabbing nonintegrin receptor (DC-SIGN), CD209, can be also exploited for specific DC targeting [111]. DC-SIGN is critical in peptide presentation and eliciting T cell activation on complementary signaling by costimulatory molecule interactions
[111] DC-SIGN antibody-tagged silica NPs were able to be engulfed by DCs compared
with the NPs without DC-SIGN [111].
The combined use of metabolic engineering and click chemistry allows for selective DC targeting [112]. Alginate gel incorporating cytokines and azido-sugar-loaded NPs were subcutaneously implanted to recruit DCs into the network of gels [112]. The rec­ruited DCs exposed azido groups on their surface via the metabolism of azido sugars, which was sensitive to click chemistry-mediated conjugation with dibenzocycloctyne group-tethered antigen, adjuvant, or cytokine [112]. The click chemistry-mediated DC targeting delivery significantly promoted DC maturation and secretion of proinflammatory cytokines, thus eliciting enhanced antitumor immunity [112].
Reeducation of TAMs has been in the limelight in cancer immunotherapy as ther­apeutic effects are highly impeded by their antiinflammatory properties, resulting in fail­ure of immunotherapy [113]. To modulate tumor microenvironments with proinflammatory mode, specific TAM targeting is required by delivering immuno­stimulatory molecules [113]. Dextran that is one of the prevalent targeting ligands inter­acts with C-type lectin endowed with native macrophage avidity, which can accelerate the preferential uptake by TAMs [113]. For example, ferumoxytol, a dextran-coated iron oxide NP, could be preferentially taken up by TAMs and triggered M1 macrophage polarization in vivo to suppress tumor proliferation [72]. β-cyclodextrin follows the sim­ilar behavior of dextran and also possesses the drug reservoir by host-guest interaction
[63]. β-cyclodextrin-based NPs with TLR agonists could be selectively engulfed by mac-
rophages, thereby shifting macrophages with M1 phenotype to elicit enhanced antitumor immunity [63].
M2 targeting peptide sequences were successfully developed by library screening to selectively target the M2 phenotype [114]. The M2 targeting peptide exclusively bound to M2 macrophage compared to other phenotypes or other immune cells such as DCs, B cells, and T cells [114]. When applied with the aid of nanotechnology, M2 targeting
peptide labeled on gold NPs induced the preferential uptake of the NPs by TAMs, which modulated macrophage phenotype with M1 mode by silencing the expression of vascular endothelial growth factor [115].
6.3 Tumor targeting
Tumor targeting delivery can improve therapeutic efficacy without adverse effects by delivering anticancer agents at the desired site [116]. A majority of NP approaches are mainly dependent on enhanced permeation and retention effects that have been exten­sively utilized in systemic delivery systems [116]. However, the enhanced permeation and retention effect can be applied only to several tumors characterized by fast growth rate and high angiogenic activity tumor with angiogenesis, which is not included in the clinical model [116]. Moreover, the systemic delivery of NPs via enhanced perme­ation and retention effect causes a small portion of NPs to accumulate in tumor tissues, which results in limited therapeutic potency [116]. Despite the development of various NPs with tumor-targeting moieties, meaningful therapeutic indexes have not been attained due to the complexity of tumor microenvironments such as high tumor intes­tinal fluid, slow blood flow, dense extracellular matrix, abnormal vasculature, and abun­dant stroma cells [116]. To reprogram tumor vasculature and extracellular matrix in and around the tumor microenvironment for successful NP delivery, several reports suggested that the treatment of specific antibodies could normalize environmental factors throughout the tumor to enhance the delivery efficacy of NPs [117,118]. An additional major challenge of NP-based cancer therapy is difficulty in penetrating and delivering anticancer agents into a solid tumors [118]. To be efficiently accessible into a solid tumor, again the normalization of tumor microenvironments are required by treating the anti­bodies that suppressing angiogenesis and extracellular matrix formation [118]. The treat­ment of VEGF antibody significantly reduces vessel density, vessel tortuosity, and leakage fraction along with increasing pericyte coverage [118]. In addition, the administration of TGF-β antibody decreased the extracellular matrix contents, thus increasing the acces­sibility of NPs into the tumor [118]. The combination of these two treatments highly improved the NP delivery into tumors even within depths of the tumor tissue by rem­odeling of tumor microenvironments [118].
Intratumoral delivery is the most straightforward method to deliver therapeutic agents directly into tumor only if the tumor is accessible, which showed higher therapeutic effects compared to systemic delivery [1]. The intratumoral injection can bypass several critical hurdles until tumor entry, thus achieving a dose-sparing effect and minimizing off-target delivery [1]. Although intratumoral delivery directly accumulates NPs into tumor, the retention of NPs into the tumors is not certain. To augment the retention time of NPs into the tumor, NPs tethered with extracellular matrix-binding peptides adhere to extracellular matrix collagen, thus increasing the therapeutic efficacy without causing adverse events [119].
233Challenges and opportunities of nanotechnology in cancer immunotherapy
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7. Perspective
Immunotherapy with nanotechnology possesses huge potential to overcome the current critical limitations in cancer immunotherapy. The treatment of immune check­point inhibitors alone does not efficiently sensitize antitumor immunity, thus providing the impetus to harness nanotechnology for effective cancer therapy. NPs allow tumor microenvironments to be modulated to more tumor-suppressive modes by awakening innate or adaptive immunity. The combinational therapy of immune checkpoint blockers with NPs synergistically amplified robust and long-term antitumor immunity, thereby suppressing tumor proliferation and also metastasis to other organs. Moreover, CAR-T cell therapies that have been recently revolutionized are highly restricted in most solid tumors despite unprecedented therapeutic indexes achieved in the clinical study. However, CAR T cell therapy with nanotechnology is capable of addressing the crucial hurdle by reprogramming tumor microenvironments and sensitizing immune cells against tumor cells. Immunotherapy with the aid of nanotechnology may provide a sig­nificant breakthrough in cancer treatment. However, numerous NP-based strategies have failed to be translated into clinical models. The perpetual development of NPs aimed for enhanced cancer immunotherapy is required to establish a new platform in immunooncology.
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