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by Keyword: t-cell

Perucca, Alice, Llonin, Andrea Gomez, Benach, Oriol Mane, Hallopeau, Clement, Rivas, Elisa I, Linares, Jenniffer, Garrido, Marta, Sallent-Aragay, Anna, Golde, Tom, Colombelli, Julien, Dalaka, Eleni, Linacero, Judith, Cazorla, Marina, Galan, Teresa, Pastor Viel, Jordi, Badenas, Xavier, Recort-Bascuas, Alba, Comerma, Laura, Fernandez-Nogueira, Patricia, Rovira, Ana, Roca-Cusachs, Pere, Albanell, Joan, Trepat, Xavier, Calon, Alexandre, Labernadie, Anna, (2025). Micro Immune Response On-chip (MIRO) models the tumour-stroma interface for immunotherapy testing Nature Communications 16, 1279

Immunotherapies are beneficial for a considerable proportion of cancer patients, but ineffective in others. In vitro modelling of the complex interactions between cancer cells and their microenvironment could provide a path to understanding immune therapy sensitivity and resistance. Here we develop MIRO, a fully humanised in vitro platform to model the spatial organisation of the tumour/stroma interface and its interaction with immune cells. We find that stromal barriers are associated with immune exclusion and protect cancer cells from antibody-dependent cellular cytotoxicity, elicited by targeted therapy. We demonstrate that IL2-driven immunomodulation increases immune cell velocity and spreading to overcome stromal immunosuppression and restores anti-cancer response in refractory tumours. Collectively, our study underscores the translational value of MIRO as a powerful tool for exploring how the spatial organisation of the tumour microenvironment shapes the immune landscape and influences the responses to immunomodulating therapies.

JTD Keywords: Activation, Animals, Architecture, Breast-cancer, Cancer-associated fibroblasts, Cell line, tumor, Collagen, Female, Humans, Immunomodulation, Immunotherapy, Interleukin-2, Lab-on-a-chip devices, Mechanism, Mice, Microenvironment, Migration, Neoplasms, Stromal cells, T-cells, Therap, Tumor microenvironment


Hinnekens, C, Harizaj, A, Berdecka, D, Aernout, I, Shariati, M, Peeters, S, Lion, E, De Smedt, SC, Vandekerckhove, B, Braeckmans, K, Fraire, JC, (2024). Photoporation of NK-92MI cells with biodegradable polydopamine nanosensitizers as a promising strategy for the generation of engineered NK cell therapies Applied Materials Today 40, 102402

Chimeric antigen receptor (CAR)-T cells have made significant advancements in the field of adoptive immune cell therapies and the treatment of hematological malignancies. However, there are several drawbacks associated with the production and administration of these therapies. As a result, there has been interest in using natural killer (NK) cells to develop allogeneic CAR-NK cell therapies instead. While viral transduction is powerful for engineering T cells, NK cells have shown limited efficacy and high toxicity with this method. Therefore, efforts are being made to optimize non-viral transfection technologies for engineering NK cells. One such emerging technology is photoporation, which has demonstrated high efficiency and versatility for transfecting different immune cells. In this study, we evaluated the potential of nanoparticle-sensitized photoporation for genetic engineering of NK cells. Our findings show that both FD500 and eGFP mRNA can be successfully delivered into NK-92MI cells with high efficiency and low toxicity. When compared to state-of-the-art electroporation, photoporation proved to be more efficient, gentle, and capable of preserving the phenotype of NK-92MI cells. Overall, our work highlights the promising prospects of photoporation for NK cell engineering.

JTD Keywords: Cancer immunotherapie, Car, Cell engineering, Deliver, Messenger-rna, Nanoparticles, Natural killer cells, Natural-killer-cells, Photoporation, Polydopamine nanoparticles, T-cells


Hinnekens, C, De Smedt, SC, Fraire, JC, Braeckmans, K, (2023). Non-viral engineering of NK cells Biotechnology Advances 68, 108212

The last decade has witnessed great progress in the field of adoptive cell therapies, with the authorization of Kymriah (tisagenlecleucel) in 2017 by the Food and Drug Administration (FDA) as a crucial stepstone. Since then, five more CAR-T therapies have been approved for the treatment of hematological malignancies. While this is a great step forward to treating several types of blood cancers, CAR-T cell therapies are still associated with severe side-effects such as Graft-versus-Host Disease (GvHD), cytokine release syndrome (CRS) and neurotoxicity. Because of this, there has been continued interest in Natural Killer cells which avoid these side-effects while offering the possibility to generate allogeneic cell therapies. Similar to T-cells, NK cells can be genetically modified to improve their therapeutic efficacy in a variety of ways. In contrast to T cells, viral transduction of NK cells remains inefficient and induces cytotoxic effects. Viral vectors also require a lengthy and expensive product development process and are accompanied by certain risks such as insertional mutagenesis. Therefore, non-viral transfection technologies are avidly being developed aimed at addressing these shortcomings of viral vectors. In this review we will present an overview of the potential of NK cells in cancer immunotherapies and the non-viral transfection technologies that have been explored to engineer them.Copyright © 2023 Elsevier Inc. All rights reserved.

JTD Keywords: adoptive cell therapy, cancer immunotherapy, immunotherapy, messenger-rna delivery, nanoparticle, nk cells, non -viral engineering, sonoporation, t-cell, transfection, ultrasound, Adoptive cell therapy, Cancer immunotherapy, Cell engineering, Natural-killer-cells, Nk cells, Non-viral engineering


Nong, J, Glassman, PM, Myerson, JW, Zuluaga-Ramirez, V, Rodriguez-Garcia, A, Mukalel, A, Omo-Lamai, S, Walsh, LR, Zamora, ME, Gong, XJ, Wang, ZC, Bhamidipati, K, Kiseleva, RY, Villa, CH, Greineder, CF, Kasner, SE, Weissman, D, Mitchell, MJ, Muro, S, Persidsky, Y, Brenner, JS, Muzykantov, VR, Marcos-Contreras, OA, (2023). Targeted Nanocarriers Co-Opting Pulmonary Intravascular Leukocytes for Drug Delivery to the Injured Brain Acs Nano 17, 13121-13136

Ex vivo-loaded white blood cells (WBC) can transfer cargo to pathological foci in the central nervous system (CNS). Here we tested affinity ligand driven in vivo loading of WBC in order to bypass the need for ex vivo WBC manipulation. We used a mouse model of acute brain inflammation caused by local injection of tumor necrosis factor alpha (TNF-α). We intravenously injected nanoparticles targeted to intercellular adhesion molecule 1 (anti-ICAM/NP). We found that (A) at 2 h, >20% of anti-ICAM/NP were localized to the lungs; (B) of the anti-ICAM/NP in the lungs >90% were associated with leukocytes; (C) at 6 and 22 h, anti-ICAM/NP pulmonary uptake decreased; (D) anti-ICAM/NP uptake in brain increased up to 5-fold in this time interval, concomitantly with migration of WBCs into the injured brain. Intravital microscopy confirmed transport of anti-ICAM/NP beyond the blood-brain barrier and flow cytometry demonstrated complete association of NP with WBC in the brain (98%). Dexamethasone-loaded anti-ICAM/liposomes abrogated brain edema in this model and promoted anti-inflammatory M2 polarization of macrophages in the brain. In vivo targeted loading of WBC in the intravascular pool may provide advantages of coopting WBC predisposed to natural rapid mobilization from the lungs to the brain, connected directly via conduit vessels.

JTD Keywords: drug delivery, icam-1, inflammation, lung injury, messenger-rna, migration, model, nanoparticles, neutrophils, pharmacokinetics, t-cells, white bloodcells, Adhesion molecules, Brain, Drug delivery, Inflammation, Nanoparticles, Pharmacokinetics, White blood cells


Pesce, M, Duda, GN, Forte, G, Girao, H, Raya, A, Roca-Cusachs, P, Sluijter, JPG, Tschöpe, C, Van Linthout, S, (2023). Cardiac fibroblasts and mechanosensation in heart development, health and disease Nature Reviews Cardiology 20, 309-324

The term 'mechanosensation' describes the capacity of cells to translate mechanical stimuli into the coordinated regulation of intracellular signals, cellular function, gene expression and epigenetic programming. This capacity is related not only to the sensitivity of the cells to tissue motion, but also to the decryption of tissue geometric arrangement and mechanical properties. The cardiac stroma, composed of fibroblasts, has been historically considered a mechanically passive component of the heart. However, the latest research suggests that the mechanical functions of these cells are an active and necessary component of the developmental biology programme of the heart that is involved in myocardial growth and homeostasis, and a crucial determinant of cardiac repair and disease. In this Review, we discuss the general concept of cell mechanosensation and force generation as potent regulators in heart development and pathology, and describe the integration of mechanical and biohumoral pathways predisposing the heart to fibrosis and failure. Next, we address the use of 3D culture systems to integrate tissue mechanics to mimic cardiac remodelling. Finally, we highlight the potential of mechanotherapeutic strategies, including pharmacological treatment and device-mediated left ventricular unloading, to reverse remodelling in the failing heart.© 2022. Springer Nature Limited.

JTD Keywords: cardiomyocyte proliferation, cross-linking, extracellular-matrix, focal adhesions, gene-expression, mechanical regulation, myocardial-infarction, substrate stiffness affects, t-cells, Ventricular assist device


Bohner, M, Maazouz, Y, Ginebra, MP, Habibovic, P, Schoenecker, JG, Seeherman, H, van den Beucken, JJJP, Witte, F, (2022). Sustained local ionic homeostatic imbalance caused by calcification modulates inflammation to trigger heterotopic ossification Acta Biomaterialia 145, 1-24

Heterotopic ossification (HO) is a condition triggered by an injury leading to the formation of mature lamellar bone in extraskeletal soft tissues. Despite being a frequent complication of orthopedic and trauma surgery, brain and spinal injury, the etiology of HO is poorly understood. The aim of this study is to evaluate the hypothesis that a sustained local ionic homeostatic imbalance (SLIHI) created by mineral formation during tissue calcification modulates inflammation to trigger HO. This evaluation also considers the role SLIHI could play for the design of cell-free, drug-free osteoinductive bone graft substitutes. The evaluation contains five main sections. The first section defines relevant concepts in the context of HO and provides a summary of proposed causes of HO. The second section starts with a detailed analysis of the occurrence and involvement of calcification in HO. It is followed by an explanation of the causes of calcification and its consequences. This allows to speculate on the potential chemical modulators of inflammation and triggers of HO. The end of this second section is devoted to in vitro mineralization tests used to predict the ectopic potential of materials. The third section reviews the biological cascade of events occurring during pathological and material-induced HO, and attempts to propose a quantitative timeline of HO formation. The fourth section looks at potential ways to control HO formation, either acting on SLIHI or on inflammation. Chemical, physical, and drug-based approaches are considered. Finally, the evaluation finishes with a critical assessment of the definition of osteoinduction.

JTD Keywords: apatite, beta-tricalcium phosphate, bone, bone graft, bone morphogenetic protein, demineralized bone-matrix, experimental myositis-ossificans, extracellular calcium, heterotopic ossification, in-vitro, inflammation, multinucleated giant-cells, osteoinduction, spinal-cord-injury, total hip-arthroplasty, traumatic brain-injury, Apatite, Calcium-sensing receptor, Osteoinduction