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result(s) for
"Cruz, Conrad Russell"
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Conjugating Prussian blue nanoparticles onto antigen-specific T cells as a combined nanoimmunotherapy
by
Y Cruz, Conrad Russell
,
Burga, Rachel A
,
Bollard, Catherine M
in
Antigen-Presenting Cells - immunology
,
Antigen-Presenting Cells - virology
,
antigen-specific T cells
2016
To engineer a novel nanoimmunotherapy comprising Prussian blue nanoparticles (PBNPs) conjugated to antigen-specific cytotoxic T lymphocytes (CTL), which leverages PBNPs for their photothermal therapy (PTT) capabilities and Epstein-Barr virus (EBV) antigen-specific CTL for their ability to traffic to and destroy EBV antigen-expressing target cells.
PBNPs and CTL were independently biofunctionalized. Subsequently, PBNPs were conjugated onto CTL using avidin-biotin interactions. The resultant cell-nanoparticle construct (CTL:PBNPs) were analyzed for their physical, phenotypic and functional properties.
Both PBNPs and CTL maintained their intrinsic physical, phenotypic and functional properties within the CTL:PBNPs.
This study highlights the potential of our CTL:PBNPs nanoimmunotherapy as a novel therapeutic for treating virus-associated malignancies such as EBV+ cancers.
Journal Article
Nanodepots Encapsulating a Latency Reversing Agent and Broadly Neutralizing Antibody Enhance Natural Killer Cell Cytotoxicity Against an in vitro Model of Latent HIV
2023
Current antiretroviral therapies (ART) for human immunodeficiency virus (HIV) are not curative, as the virus persists in latent reservoirs, requiring lifelong adherence to ART and increasing the risk of co-morbidities. \"Shock and kill\" approaches to reactivate HIV from latent reservoirs followed by administration of anti-HIV drugs represent a promising strategy for eradicating latent HIV. To achieve effective shock and kill, we describe a strategy to eradicate the HIV reservoir that combines latency reversing agents (LRAs), broadly neutralizing antibodies (bnAbs), and natural killer (NK) cells. This strategy utilizes a polymer nanodepot (ND) that co-encapsulates the LRA and bnAb to reactivate latent infection and elicit enhanced cytotoxicity from co-administered NK cells.
Poly(lactic-co-glycolic acid) (PLGA) NDs were synthesized using the nanoprecipitation method to co-encapsulate an LRA (TNF-α) and a bnAb (3BNC117) (TNF-α-3BNC117-NDs). ACH-2 cells were used as a cellular model of latent HIV infection. An NK92 subline, genetically modified to constitutively express the Fc receptor CD16, was administered to ACH-2 cells in combination with TNF-α-3BNC117-NDs. ACH-2 cell death and extracellular p24 were measured via flow cytometry and ELISA, respectively.
Stable PLGA NDs co-encapsulated TNF-α and 3BNC117 with high efficiencies and released these agents in physiological conditions. NK92 phenotype remained similar in the presence of TNF-α-3BNC117-NDs. TNF-α released from NDs efficiently reactivated HIV in ACH-2 cells, as measured by a 3.0-fold increase in the frequency of intracellular p24 positive cells. Released 3BNC117 neutralized and bound reactivated virus, targeting 57.5% of total ACH-2 cells. Critically, TNF-α-3BNC117-NDs significantly enhanced NK92 cell-mediated killing of ACH-2 cells (1.9-fold) and reduced extracellular levels of p24 to baseline.
These findings suggest the therapeutic potential of our novel ND-based tripartite strategy to reactivate HIV from latently infected cells, generate an HIV-specific site for bnAb binding, and enhance the killing of reactivated HIV-infected target cells by NK92 cells.
Journal Article
Medulloblastoma rendered susceptible to NK-cell attack by TGFβ neutralization
by
Hwang, Eugene I.
,
Nazarian, Javad
,
Cruz, Conrad Russell Y.
in
Adoptive immunotherapy
,
Biomedical and Life Sciences
,
Biomedicine
2019
Background
Medulloblastoma (MB), the most common pediatric brain cancer, presents with a poor prognosis in a subset of patients with high risk disease, or at recurrence, where current therapies are ineffective. Cord blood (CB) natural killer (NK) cells may be promising off-the-shelf effector cells for immunotherapy due to their recognition of malignant cells without the need for a known target, ready availability from multiple banks, and their potential to expand exponentially. However, they are currently limited by immune suppressive cytokines secreted in the MB tumor microenvironment including Transforming Growth Factor β (TGF-β). Here, we address this challenge in in vitro models of MB.
Methods
CB-derived NK cells were modified to express a dominant negative TGF-β receptor II (DNRII) using retroviral transduction. The ability of transduced CB cells to maintain function in the presence of medulloblastoma-conditioned media was then assessed.
Results
We observed that the cytotoxic ability of nontransduced CB-NK cells was reduced in the presence of TGF-β-rich, medulloblastoma-conditioned media (21.21 ± 1.19% killing at E:T 5:1 in the absence vs. 14.98 ± 2.11% in the presence of medulloblastoma-conditioned media, n = 8, p = 0.02), but was unaffected in CB-derived DNRII-transduced NK cells (21.11 ± 1.84% killing at E:T 5:1 in the absence vs. 21.81 ± 3.37 in the presence of medulloblastoma-conditioned media, n = 8, p = 0.85. We also observed decreased expression of CCR2 in untransduced NK cells (mean CCR2 MFI 826 ± 117 in untransduced NK + MB supernatant from mean CCR2 MFI 1639.29 ± 215 in no MB supernatant, n = 7, p = 0.0156), but not in the transduced cells. Finally, we observed that CB-derived DNRII-transduced NK cells may protect surrounding immune cells by providing a cytokine sink for TGF-β (decreased TGF-β levels of 610 ± 265 pg/mL in CB-derived DNRII-transduced NK cells vs. 1817 ± 342 pg/mL in untransduced cells; p = 0.008).
Conclusions
CB NK cells expressing a TGF-β DNRII may have a functional advantage over unmodified NK cells in the presence of TGF-β-rich MB, warranting further investigation on its potential applications for patients with medulloblastoma.
Journal Article
Photothermal Prussian blue nanoparticles generate potent multi‐targeted tumor‐specific T cells as an adoptive cell therapy
by
Muniraj, Nethaji
,
Feng, Sally
,
Chin, Samantha J.
in
adoptive T cell therapy
,
Anticancer properties
,
Antigens
2024
Prussian blue nanoparticle‐based photothermal therapy (PBNP‐PTT) is an effective tumor treatment capable of eliciting an antitumor immune response. Motivated by the ability of PBNP‐PTT to potentiate endogenous immune responses, we recently demonstrated that PBNP‐PTT could be used ex vivo to generate tumor‐specific T cells against glioblastoma (GBM) cell lines as an adoptive T cell therapy (ATCT). In this study, we further developed this promising T cell development platform. First, we assessed the phenotype and function of T cells generated using PBNP‐PTT. We observed that PBNP‐PTT facilitated CD8+ T cell expansion from healthy donor PBMCs that secreted IFNγ and TNFα and upregulated CD107a in response to engagement with target U87 cells, suggesting specific antitumor T cell activation and degranulation. Further, CD8+ effector and effector memory T cell populations significantly expanded after co‐culture with U87 cells, consistent with tumor‐specific effector responses. In orthotopically implanted U87 GBM tumors in vivo, PBNP‐PTT‐derived T cells effectively reduced U87 tumor growth and generated long‐term survival in >80% of tumor‐bearing mice by Day 100, compared to 0% of mice treated with PBS, non‐specific T cells, or T cells expanded from lysed U87 cells, demonstrating an enhanced antitumor efficacy of this ATCT platform. Finally, we tested the generalizability of our approach by generating T cells targeting medulloblastoma (D556), breast cancer (MDA‐MB‐231), neuroblastoma (SH‐SY5Y), and acute monocytic leukemia (THP‐1) cell lines. The resulting T cells secreted IFNγ and exerted increased tumor‐specific cytolytic function relative to controls, demonstrating the versatility of PBNP‐PTT in generating tumor‐specific T cells for ATCT.
Journal Article
A New Method for Reactivating and Expanding T Cells Specific for Rhizopus oryzae
by
Rooney, Cliona M.
,
Patel, Shabnum
,
Bose, Swaroop
in
Adoptive immunotherapy
,
Antifungal activity
,
Antifungal agents
2018
Mucormycosis is responsible for an increasing proportion of deaths after allogeneic bone marrow transplantation. Because this disease is associated with severe immunodeficiency and has shown resistance to even the newest antifungal agents, we determined the feasibility of reactivating and expanding
-specific T cells for use as adoptive immunotherapy in transplant recipients.
extract
pulsed monocytes were used to stimulate peripheral blood mononuclear cells from healthy donors, in the presence of different cytokine combinations. The generated
-specific T cell products were phenotyped after the third stimulation and further characterized by the use of antibodies that block class I/II molecules, as well as pattern recognition receptors. Despite the very low frequency of
-specific T cells of healthy donors, we found that stimulation with interleukin-2 (IL-2)/IL-7 cytokine combination could expand these rare cells. The expanded populations included 17%-83% CD4
T cells that were specific for
antigens. Besides interferon-γ (IFN-γ), these cells secreted IL-5, IL-10, IL-13, and tumor necrosis factor alpha (TNF-α), and recognized fungal antigens presented by HLA-II molecules rather than through nonspecific signaling. The method described herein is robust and reproducible, and could be used to generate adequate quantities of activated
-specific T cells for clinical testing of safety and antifungal efficacy in patients with mucormycosis.
Journal Article
Autologous HIV-specific T cell therapy targeting conserved epitopes is well-tolerated in six adults with HIV: an open-label, single-arm phase 1 study
2025
Novel cellular therapies may enable HIV control or cure. HIV-specific T cells targeting conserved immunogenic protein regions of HIV Gag/Pol and the entirety of HIV Nef, termed HST-NEETs, eliminate HIV infected cells in vitro. Here we enroll seven participants in an open-label, single-arm phase 1 study (NCT03485963) to evaluate the safety (primary endpoint) of two autologous administrations of HST-NEET products without prescribed lymphodepletion. Adults with well-controlled HIV on anti-retroviral therapy are eligible. Six participants completed safety monitoring. No serious product-related toxicities are observed. Secondary endpoints are to assess expansion and persistence of HIV-reactive T cell clones, and changes to the HIV reservoir for each infused participant. HIV-specific T cell and HIV anti-Env antibody responses increase in two participants after infusion two. A trend towards decreasing levels of intact proviruses is observed in 2 participants. Three participants show persistence of HIV-reactive, product-associated T cell clones for ≥40 weeks post infusions. HST-NEETs infusions are well-tolerated. Future trials are needed to evaluate the efficacy of HST-NEETs in this population.
While anti-retroviral therapy (ART) helps contain HIV, whether adoptive T cell therapy further improve the prognosis is unclear. Here the authors conduct an open-label, single-arm phase 1 study to assess the safety (primary outcome) and characteristic (secondary outcome) of autologous, HIV-specific T cell therapy to find it safe to warrant further efficacy assessment.
Journal Article
Medulloblastoma rendered susceptible to NK-cell attack by TGFbeta neutralization
by
Burga, Rachel A
,
Hwang, Eugene I
,
Nazarian, Javad
in
Bone morphogenetic proteins
,
Brain cancer
,
Cancer
2019
Medulloblastoma (MB), the most common pediatric brain cancer, presents with a poor prognosis in a subset of patients with high risk disease, or at recurrence, where current therapies are ineffective. Cord blood (CB) natural killer (NK) cells may be promising off-the-shelf effector cells for immunotherapy due to their recognition of malignant cells without the need for a known target, ready availability from multiple banks, and their potential to expand exponentially. However, they are currently limited by immune suppressive cytokines secreted in the MB tumor microenvironment including Transforming Growth Factor [beta] (TGF-[beta]). Here, we address this challenge in in vitro models of MB. CB-derived NK cells were modified to express a dominant negative TGF-[beta] receptor II (DNRII) using retroviral transduction. The ability of transduced CB cells to maintain function in the presence of medulloblastoma-conditioned media was then assessed. We observed that the cytotoxic ability of nontransduced CB-NK cells was reduced in the presence of TGF-[beta]-rich, medulloblastoma-conditioned media (21.21 [+ or -] 1.19% killing at E:T 5:1 in the absence vs. 14.98 [+ or -] 2.11% in the presence of medulloblastoma-conditioned media, n = 8, p = 0.02), but was unaffected in CB-derived DNRII-transduced NK cells (21.11 [+ or -] 1.84% killing at E:T 5:1 in the absence vs. 21.81 [+ or -] 3.37 in the presence of medulloblastoma-conditioned media, n = 8, p = 0.85. We also observed decreased expression of CCR2 in untransduced NK cells (mean CCR2 MFI 826 [+ or -] 117 in untransduced NK + MB supernatant from mean CCR2 MFI 1639.29 [+ or -] 215 in no MB supernatant, n = 7, p = 0.0156), but not in the transduced cells. Finally, we observed that CB-derived DNRII-transduced NK cells may protect surrounding immune cells by providing a cytokine sink for TGF-[beta] (decreased TGF-[beta] levels of 610 [+ or -] 265 pg/mL in CB-derived DNRII-transduced NK cells vs. 1817 [+ or -] 342 pg/mL in untransduced cells; p = 0.008). CB NK cells expressing a TGF-[beta] DNRII may have a functional advantage over unmodified NK cells in the presence of TGF-[beta]-rich MB, warranting further investigation on its potential applications for patients with medulloblastoma.
Journal Article
Toward a Rapid Production of Multivirus-Specific T Cells Targeting BKV, Adenovirus, CMV, and EBV from Umbilical Cord Blood
by
Luo, Min
,
Hanley, Patrick J.
,
Barese, Cecilia
in
Adenoviruses
,
adoptive immunotherapy
,
Adoptive transfer
2017
Umbilical cord blood (CB) has emerged as an effective alternative donor source for hematopoietic stem cell transplantation. Despite this success, the prolonged duration of immune suppression following CB transplantation and the naiveté of CB T cells leave patients susceptible to viral infections. Adoptive transfer of ex vivo-expanded virus-specific T cells from CB is both feasible and safe. However, the manufacturing process of these cells is complicated, lengthy, and labor-intensive. We have now developed a simplified method to manufacture a single culture of polyclonal multivirus-specific cytotoxic T cells in less than 30 days. It eliminates the need for a live virus or transduction with a viral vector, thus making this approach widely available and GMP-applicable to target multiple viruses. The use of overlapping PepMixes as a source of antigen stimulation enable expansion of the repertoire of the T cell product to any virus of interest and make it available as a third party \"off the shelf\" treatment for viral infections following transplantation.
Journal Article