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1.
Cell Rep Med ; 5(5): 101549, 2024 May 21.
Artículo en Inglés | MEDLINE | ID: mdl-38703767

RESUMEN

There is a compelling need for approaches to predict the efficacy of immunotherapy drugs. Tumor-on-chip technology exploits microfluidics to generate 3D cell co-cultures embedded in hydrogels that recapitulate simplified tumor ecosystems. Here, we present the development and validation of lung tumor-on-chip platforms to quickly and precisely measure ex vivo the effects of immune checkpoint inhibitors on T cell-mediated cancer cell death by exploiting the power of live imaging and advanced image analysis algorithms. The integration of autologous immunosuppressive FAP+ cancer-associated fibroblasts impaired the response to anti-PD-1, indicating that tumors-on-chips are capable of recapitulating stroma-dependent mechanisms of immunotherapy resistance. For a small cohort of non-small cell lung cancer patients, we generated personalized tumors-on-chips with their autologous primary cells isolated from fresh tumor samples, and we measured the responses to anti-PD-1 treatment. These results support the power of tumor-on-chip technology in immuno-oncology research and open a path to future clinical validations.


Asunto(s)
Inhibidores de Puntos de Control Inmunológico , Neoplasias Pulmonares , Medicina de Precisión , Receptor de Muerte Celular Programada 1 , Humanos , Neoplasias Pulmonares/tratamiento farmacológico , Neoplasias Pulmonares/patología , Neoplasias Pulmonares/inmunología , Medicina de Precisión/métodos , Receptor de Muerte Celular Programada 1/antagonistas & inhibidores , Receptor de Muerte Celular Programada 1/metabolismo , Receptor de Muerte Celular Programada 1/inmunología , Inhibidores de Puntos de Control Inmunológico/farmacología , Inhibidores de Puntos de Control Inmunológico/uso terapéutico , Carcinoma de Pulmón de Células no Pequeñas/tratamiento farmacológico , Carcinoma de Pulmón de Células no Pequeñas/patología , Carcinoma de Pulmón de Células no Pequeñas/inmunología , Dispositivos Laboratorio en un Chip , Inmunoterapia/métodos , Microambiente Tumoral/efectos de los fármacos , Microambiente Tumoral/inmunología , Línea Celular Tumoral
2.
Biosens Bioelectron ; 215: 114571, 2022 Nov 01.
Artículo en Inglés | MEDLINE | ID: mdl-35932554

RESUMEN

Organ-on-chip and tumor-on-chip microfluidic cell cultures represent a fast-growing research field for modelling organ functions and diseases, for drug development, and for promising applications in personalized medicine. Still, one of the bottlenecks of this technology is the analysis of the huge amount of bio-images acquired in these dynamic 3D microenvironments, a task that we propose to achieve by exploiting the interdisciplinary contributions of computer science and electronic engineering. In this work, we apply this strategy to the study of oncolytic vaccinia virus (OVV), an emerging agent in cancer immunotherapy. Infection and killing of cancer cells by OVV were recapitulated and directly imaged in tumor-on-chip. By developing and applying appropriate image analysis strategies and advanced automatic algorithms, we uncovered synergistic cooperation of OVV and immune cells to kill cancer cells. Moreover, we observed that the kinetics of immune cells were modified in presence of OVV and that these immune modulations varied during the course of infection. A correlation between cancer cell infection and cancer-immune interaction time was pointed out, strongly supporting a cause-effect relationship between infection of cancer cells and their recognition by the immune cells. These results shed new light on the mode of action of OVV, and suggest new clinical avenues for immunotherapy developments.


Asunto(s)
Técnicas Biosensibles , Neoplasias , Viroterapia Oncolítica , Virus Oncolíticos , Humanos , Neoplasias/terapia , Viroterapia Oncolítica/métodos , Microambiente Tumoral , Virus Vaccinia
3.
Biophys J ; 120(16): 3315-3328, 2021 08 17.
Artículo en Inglés | MEDLINE | ID: mdl-34246628

RESUMEN

The pathology of Plasmodium falciparum malaria is largely defined by the cytoadhesion of infected erythrocytes to the microvascular endothelial lining. The complexity of the endothelial surface and the large range of interactions available for the infected erythrocyte via parasite-encoded adhesins make analysis of critical contributions during cytoadherence challenging to define. Here, we have explored supported membranes functionalized with two important adhesion receptors, ICAM1 or CD36, as a quantitative biomimetic surface to help understand the processes involved in cytoadherence. Parasitized erythrocytes bound to the receptor-functionalized membranes with high efficiency and selectivity under both static and flow conditions, with infected wild-type erythrocytes displaying a higher binding capacity than do parasitized heterozygous sickle cells. We further show that the binding efficiency decreased with increasing intermolecular receptor distance and that the cell-surface contacts were highly dynamic and increased with rising wall shear stress as the cell underwent a shape transition. Computer simulations using a deformable cell model explained the wall-shear-stress-induced dynamic changes in cell shape and contact area via the specific physical properties of erythrocytes, the density of adhesins presenting knobs, and the lateral movement of receptors in the supported membrane.


Asunto(s)
Malaria Falciparum , Plasmodium falciparum , Antígenos CD36 , Adhesión Celular , Eritrocitos/metabolismo , Humanos , Molécula 1 de Adhesión Intercelular/metabolismo
4.
Anal Chem ; 92(8): 5765-5771, 2020 04 21.
Artículo en Inglés | MEDLINE | ID: mdl-32202408

RESUMEN

While there is ample evidence suggesting that carriers of heterozygous hemoglobin S and C are protected from life-threatening malaria, little is known about the underlying biochemical mechanisms at the single cell level. Using nanofocused scanning X-ray fluorescence microscopy, we quantify the spatial distribution of individual elements in subcellular compartments, including Fe, S, P, Zn, and Cu, in Plasmodium falciparum-infected (P. falciparum-infected) erythrocytes carrying the wild type or variant hemoglobins. Our data indicate that heterozygous hemoglobin S and C significantly modulate biochemical reactions in parasitized erythrocytes, such as aberrant hemozoin mineralization and a delay in hemoglobin degradation. The label-free scanning X-ray fluorescence imaging has great potential to quantify the spatial distribution of elements in subcellular compartments of P. falciparum-infected erythrocytes and unravel the biochemical mechanisms underpinning disease and protective traits.


Asunto(s)
Eritrocitos/metabolismo , Hemoglobina C/metabolismo , Hemoglobina Falciforme/metabolismo , Nanotecnología , Plasmodium falciparum/metabolismo , Células Cultivadas , Eritrocitos/parasitología , Hemoglobina C/análisis , Hemoglobina Falciforme/análisis , Humanos , Microscopía Fluorescente , Rayos X
5.
Commun Biol ; 2: 311, 2019.
Artículo en Inglés | MEDLINE | ID: mdl-31428699

RESUMEN

During intraerythrocytic development, the human malaria parasite Plasmodium falciparum alters the mechanical deformability of its host cell. The underpinning biological processes involve gain in parasite mass, changes in the membrane protein compositions, reorganization of the cytoskeletons and its coupling to the plasma membrane, and formation of membrane protrusions, termed knobs. The hemoglobinopathies S and C are known to partially protect carriers from severe malaria, possibly through additional changes in the erythrocyte biomechanics, but a detailed quantification of cell mechanics is still missing. Here, we combined flicker spectroscopy and a mathematical model and demonstrated that knob formation strongly suppresses membrane fluctuations by increasing membrane-cytoskeleton coupling. We found that the confinement increased with hemoglobin S but decreases with hemoglobin C in spite of comparable knob densities and diameters. We further found that the membrane bending modulus strongly depends on the hemoglobinopathetic variant, suggesting increased amounts of irreversibly oxidized hemichromes bound to membranes.


Asunto(s)
Membrana Eritrocítica/parasitología , Hemoglobina C/metabolismo , Hemoglobina Falciforme/metabolismo , Plasmodium falciparum/fisiología , Fenómenos Biomecánicos , Simulación por Computador , Humanos , Mutación/genética , Análisis Numérico Asistido por Computador
6.
Commun Biol ; 1: 211, 2018.
Artículo en Inglés | MEDLINE | ID: mdl-30534603

RESUMEN

Sickle cell trait, a common hereditary blood disorder, protects carriers from severe disease in infections with the human malaria parasite Plasmodium falciparum. Protection is associated with a reduced capacity of parasitized erythrocytes to cytoadhere to the microvascular endothelium and cause vaso-occlusive events. However, the underpinning cellular and biomechanical processes are only partly understood and the impact on endothelial cell activation is unclear. Here, we show, by combining quantitative flow chamber experiments with multiscale computer simulations of deformable cells in hydrodynamic flow, that parasitized erythrocytes containing the sickle cell haemoglobin displayed altered adhesion dynamics, resulting in restricted contact footprints on the endothelium. Main determinants were cell shape, knob density and membrane bending. As a consequence, the extent of endothelial cell activation was decreased. Our findings provide a quantitative understanding of how the sickle cell trait affects the dynamic cytoadhesion behavior of parasitized erythrocytes and, in turn, endothelial cell activation.

7.
Biophys J ; 112(9): 1908-1919, 2017 May 09.
Artículo en Inglés | MEDLINE | ID: mdl-28494961

RESUMEN

To avoid clearance by the spleen, red blood cells infected with the human malaria parasite Plasmodium falciparum (iRBCs) adhere to the vascular endothelium through adhesive protrusions called "knobs" that the parasite induces on the surface of the host cell. However, the detailed relation between the developing knob structure and the resulting movement in shear flow is not known. Using flow chamber experiments on endothelial monolayers and tracking of the parasite inside the infected host cell, we find that trophozoites (intermediate-stage iRBCs) tend to flip due to their biconcave shape, whereas schizonts (late-stage iRBCs) tend to roll due to their almost spherical shape. We then use adhesive dynamics simulations for spherical cells to predict the effects of knob density and receptor multiplicity per knob on rolling adhesion of schizonts. We find that rolling adhesion requires a homogeneous coverage of the cell surface by knobs and that rolling adhesion becomes more stable and slower for higher knob density. Our experimental data suggest that schizonts are at the border between transient and stable rolling adhesion. They also allow us to establish an estimate for the molecular parameters for schizont adhesion to the vascular endothelium and to predict bond dynamics in the contact region.


Asunto(s)
Adhesión Celular/fisiología , Membrana Eritrocítica/metabolismo , Membrana Eritrocítica/parasitología , Eritrocitos/metabolismo , Eritrocitos/parasitología , Malaria Falciparum/sangre , Células Cultivadas , Simulación por Computador , Endotelio Vascular/metabolismo , Endotelio Vascular/patología , Membrana Eritrocítica/patología , Eritrocitos/patología , Humanos , Malaria Falciparum/parasitología , Malaria Falciparum/patología , Modelos Cardiovasculares , Movimiento (Física) , Plasmodium falciparum , Flujo Sanguíneo Regional/fisiología
8.
Cell Microbiol ; 19(2)2017 02.
Artículo en Inglés | MEDLINE | ID: mdl-27450804

RESUMEN

During intraerythrocytic development, Plasmodium falciparum increases the ion permeability of the erythrocyte plasma membrane to an extent that jeopardizes the osmotic stability of the host cell. A previously formulated numeric model has suggested that the parasite prevents premature rupture of the host cell by consuming hemoglobin (Hb) in excess of its own anabolic needs. Here, we have tested the colloid-osmotic model on the grounds of time-resolved experimental measurements on cell surface area and volume. We have further verified whether the colloid-osmotic model can predict time-dependent volumetric changes when parasites are grown in erythrocytes containing the hemoglobin variants S or C. A good agreement between model-predicted and empirical data on both infected erythrocyte and intracellular parasite volume was found for parasitized HbAA and HbAC erythrocytes. However, a delayed induction of the new permeation pathways needed to be taken into consideration for the latter case. For parasitized HbAS erythrocyte, volumes diverged from model predictions, and infected erythrocytes showed excessive vesiculation during the replication cycle. We conclude that the colloid-osmotic model provides a plausible and experimentally supported explanation of the volume expansion and osmotic stability of P. falciparum-infected erythrocytes. The contribution of vesiculation to the malaria-protective function of hemoglobin S is discussed.


Asunto(s)
Membrana Celular/fisiología , Eritrocitos/citología , Eritrocitos/parasitología , Hemoglobinopatías/patología , Interacciones Huésped-Patógeno , Permeabilidad , Plasmodium falciparum/patogenicidad , Forma de la Célula , Tamaño de la Célula , Modelos Teóricos , Factores de Tiempo
9.
Cell ; 160(3): 542-53, 2015 Jan 29.
Artículo en Inglés | MEDLINE | ID: mdl-25635461

RESUMEN

Excitatory amino acid transporters (EAATs) are essential for terminating glutamatergic synaptic transmission. They are not only coupled glutamate/Na(+)/H(+)/K(+) transporters but also function as anion-selective channels. EAAT anion channels regulate neuronal excitability, and gain-of-function mutations in these proteins result in ataxia and epilepsy. We have combined molecular dynamics simulations with fluorescence spectroscopy of the prokaryotic homolog GltPh and patch-clamp recordings of mammalian EAATs to determine how these transporters conduct anions. Whereas outward- and inward-facing GltPh conformations are nonconductive, lateral movement of the glutamate transport domain from intermediate transporter conformations results in formation of an anion-selective conduction pathway. Fluorescence quenching of inserted tryptophan residues indicated the entry of anions into this pathway, and mutations of homologous pore-forming residues had analogous effects on GltPh simulations and EAAT2/EAAT4 measurements of single-channel currents and anion/cation selectivities. These findings provide a mechanistic framework of how neurotransmitter transporters can operate as anion-selective and ligand-gated ion channels.


Asunto(s)
Sistema de Transporte de Aminoácidos X-AG/química , Aniones/metabolismo , Proteínas Arqueales/química , Proteínas de Transporte de Glutamato en la Membrana Plasmática/química , Simulación de Dinámica Molecular , Pyrococcus horikoshii/química , Secuencia de Aminoácidos , Sistema de Transporte de Aminoácidos X-AG/metabolismo , Animales , Proteínas Arqueales/metabolismo , Proteínas de Transporte de Glutamato en la Membrana Plasmática/genética , Proteínas de Transporte de Glutamato en la Membrana Plasmática/metabolismo , Humanos , Datos de Secuencia Molecular , Mutación , Técnicas de Placa-Clamp , Ratas , Alineación de Secuencia
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