31 research outputs found

    Studies on the effect of the tyrosine-kinase inhibitor dasatinib on function of T cells and monocyte-derived dendritc cells

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    Kinasen der SRC-Familie (SFKs) sind sowohl in Wachstum und Metastasierung von Tumor- und Leukämiezellen als auch an prominenter Stelle in vielgestaltige Signalwege aller Immunzellen involviert. Eine Hemmung von SFKs ist damit ein vielversprechendes Mittel zur Therapie maligner Erkrankungen, kann aber darüber hinaus auch sehr effektiv zur Immunmodulation genutzt werden. Für den zur Therapie von CML und AML zugelassenen Tyrosinkinaseinhibitor (TKI) Dasatinib (Handelsname Sprycel®), für den unter anderem SFKs die Hauptziele darstellen, wurden, neben der antitumoralen Wirkung, sowohl immunsuppressive als auch immunstimulierende Effekte beschrieben. Aus diesem Grund könnte Dasatinib ein für die Modulation von Immunantworten sehr interessantes Hilfsmittel darstellen. In der vorliegenden Arbeit werden die hemmenden und fördernden Einflüsse von Dasatinib auf zwei Typen von Immunzellen genauer untersucht, um so die Auswirkungen einer Dasatinib-Behandlung auf Zellen des Immunsystems besser zu verstehen und sich das immunmodulatorische Potenzial von Dasatinib besser nutzbar machen zu können. Der erste Teil der Arbeit beschäftigt sich mit der Untersuchung möglicher kombinatorischer Effekte zwischen Dasatinib und dem Glucocorticoid Dexamethason auf verschiedene Subsets von T-Zellen vor dem Hintergrund eines potentiellen Einsatzes der Kombination bei der allogenen Hämatopoetischen Stammzelltransplantation (HSCT) zur Separation von Graft-versus-Leukemia (GvL)-Effekten und der Graft-versus-host Disease (GvHD). Während keine kombinatorischen Effekte bei der Aktivierung von T-Zellen auftraten, ergaben sich bei der Untersuchung des Einflusses auf die Proliferation besonders in CD8+ T-Zellen additive Effekte durch die Kombination. Die Proliferation naiver T-Zell-Subsets wurde bereits durch die beiden Einzelsubstanzen alleine stark gehemmt. Dagegen waren Memory T-Zell-Subsets deutlich unempfindlicher, allerdings konnte durch eine Kombination von Dexamethason und Dasatinib auch die Proliferation dieser Memory Subsets effektiv gehemmt werden. Hierbei zeigten sich bei CD8+ Memory Subsets die deutlichsten synergistischen Effekte. Da eine Kombination in stärkerem Maße auch CD8+ gegenüber CD4+ Memory Subsets hemmt und diese Subsets unterschiedliche Rollen in der Induktion von GvL-Effekten und der Auslösung einer GvHD zu spielen scheinen, ist eine Steigerung der GvL-Effektivität durch die Medikamenten-Kombination bei gleichzeitiger Minimierung eines GvHD-Risikos in Zusammenhang mit anderen publizierten Ergebnissen durchaus denkbar. Weil eine starke Hemmung von virus-spezifischen T-Zellen nur bei sehr hohen Konzentrationen auftrat, ist zudem das Risiko einer Virus-Reaktivierung, die ein großes Problem bei einer HSCT darstellt, eher als gering einzuschätzen. Der zweite Teil der Arbeit befasst sich mit dem Einfluss von Dasatinib auf aus Monozyten generierte Dendritische Zellen (moDCs) mit einem Fokus auf der Beeinflussung ihrer Migration. Während eine Behandlung mit Dasatinib nur sehr geringe Auswirkungen auf die Ausreifung der moDCs und die Expression von kostimulatorischen Molekülen hatte, führte eine Dasatinib-Behandlung zu einer Zeit- und Dosis-abhängigen Verringerung der Zytokinsekretion (IL-10 und IL-12). Im Gegensatz dazu hatte Dasatinib keinen Einfluss auf die phagozytotische Aktivität der moDCs und auf ihre Fähigkeit, Virus-spezifische T-Zell-Antworten auszulösen. Dasatinib zeigte dagegen einen deutlich steigernden Einfluss auf die Migration von moDCs gegen einen CCL19-Gradienten im Transwell-Assay, ohne die Expression des CCL19-Rezeptors CCR7 zu beeinflussen. Da ähnliche Migrations-steigernde Effekte auch bei einer Behandlung mit dem spezifischen SFK-Inhibitor SKI-1 auftraten, eine Behandlung mit Nilotinib, einem TKI der nicht auf SFKs wirkt, im Gegensatz dazu aber zu einer Hemmung der Migration führte, liegt es nahe dass die Migrations-steigernde Wirkung von Dasatinib über SFKs vermittelt wird. Dasatinib führte zu einer deutlichen Inhibierung der Phosphorylierung der inhibitorischen Immunrezeptoren Siglec-9 und Siglec-3 (CD33) ohne ihre Expressionslevel zu beeinflussen. Eine mit spezifischen Antikörpern durchgeführte Blockierung dieser Immunrezeptoren, deren ITIM-Domänen mutmaßlich von SFKs phosphoryliert werden, hatte eine deutliche Steigerung der Migration und eine verringerte Phosphorylierung von Siglec-9, Siglec-3 und SHP-2 zur Folge. Letztere ist eine Phosphatase, die nach Bindung an phosphorylierte ITIM-Domänen von Rezeptoren wie den Siglecs verschiedene Zielmoleküle dephosphoryliert. Die Ergebnisse dieser Arbeit legen nahe, dass die Migrations-steigernde Wirkung von Dasatinib über eine Hemmung von SFKs und daraus resultierend auf dem Wegfall eines inhibitorischen Signalwegs erfolgt. Diese Steigerung der Migration könnte in der Tumor-Therapie von großem Nutzen sein, da bei einer Vakzinierung mit autologen DCs, die mit Tumor-assoziierten Antigenen stimuliert wurden, die schlechte Einwanderung in die Lymphknoten eines der Hauptprobleme darstellt. Zur Überwindung dieses Problems könnte Dasatinib ein sehr effektives Hilfsmittel darstellen und die Therapie-Effizienz deutlich verbessern. Da Dasatinib aber auch eine ganze Reihe weiterer, sehr vielfältiger Einflüsse auf alle Arten von Immunzellen ausübt, scheint eine Verwendung spezifischer blockierender α-Siglec-Antikörper auf Grund geringerer Nebenwirkungen im Vergleich zu Dasatinib möglicherweise sogar noch deutlich besser geeignet zu sein, das Migrationsverhaltens Dendritischer Zellen positiv zu beeinflussen. Die Verwendung gegen Siglec-Rezeptoren gerichteter Antikörper als Adjuvantien könnte somit zu einem erfolgreicheren Einsatz der Vakzination mit Dendritischen Zellen in der Tumor-Therapie führen.SRC-family kinases (SFKs) are involved in growth and metastasis of tumor and leukemic cells as well as in manifold signaling pathways at prominent position in all types of immune cells. Inhibition of SFKs thereby represents a promising tool for the therapy of malignant diseases but can also be used quite effectively for immunomodulation. Besides its antitumoral activity, immune-suppressive as well as immune-stimulatory effects have been described for the tyrosine kinase inhibitor (TKI) dasatinib (trademark Sprycel®) which is approved for the treatment of CML and AML. Therefore the use of dasatinib could be a very interesting method for the modulation of immune responses. The present paper aimes to scrutinize the inhibitory and promoting effects of dasatinib on two types of immune cells to gain a better insight into the consequences of a dasatinib treatment in immune cells and to take advantage of the immunomodulatory potential of dasatinib. The first part of the paper deals with the investigation of potential combinatory effects between dasatinib and the glucocorticoid dexamethasone on various T cell subsets in the context of a potential use of the combination in allogeneic hematopoietic stem cell transplantation (HSCT) to dissect Graft-versus-leukemia (GvL) effects and Graft-versus-host Disease. While no combinatory effects regarding T cell activation occurred, the investigation of the influence on T cell proliferation revealed significant additive effects of the combination especially in CD8+ T cells. The proliferation of naïve T cell subsets was inhibited already by use of the single agents. In contrast, memory T cell subsets proved to be much more insensitive, but their proliferation was effectively hampered by a combination of dasatinib and dexamethasone whereas the most pronounced synergistic effects occurred in CD8+ memory subsets. Since the combination more potently inhibits also CD8+ in comparison to CD4+ Memory subsets and since these subsets seem to fulfill diverging roles in mediation of GvL effects and induction of GvHD, an increase in GvL efficacy by the drug combination while concurrently reducing the risk of a GvHD is conceivable, especially when including other published results. Moreover, as a potent inhibition of virus-specific T cells only occurred at very high concentrations, the risk of viral reactivations, which represent a major problem with HSCT, could be considered as rather marginal. The second part of the paper addresses the influence of dasatinib on monocyte-derived dendritic cells (moDCs) with a special focus on its influence on their migration. While dasatinib treatment exhibited only negligible effects on moDCs’ maturation and expression of costimulatory molecules, dasatinib led to a time- and dose-dependent reduction in cytokine secretion (IL-10 and IL-12). In contrast, dasatinib had no influence on phagocytotic activity of moDCs and on their ability to induce virus-specific T cell responses. Notably Dasatinib had a pronounced beneficial effect on migration of moDCs towards a CCL-19 gradient in a transwell assay without altering the expression of the CCL19 receptor CCR7. Since comparable migration-enhancing effects also occurred in presence of the specific SFK-inhibitor SKI-1 while the use of nilotinib, a TKI not inhibiting SFKs, in contrast led to an inhibition of migration, it can be assumed that dasatinib mediates its migration-enhancing effects via an inhibition of SFKs. Dasatinib treatment led to a dramatic decrease in phosphorylation of the inhibitory immunoreceptors Siglec-9 and Siglec-3 (CD33) without altering their expression levels. The use of specific antibodies for blocking of these immunoreceptors, whose ITIM domains are thought to be phosphorylated by SFKs, led to a powerful increase in migration and diminished phosphorylation of Siglec-9, Siglec-3 and SHP-2. The latter is a phosphatase which dephosphorylates target molecules after binding phosphorylated ITIM domains of receptors like the Siglecs. This paper’s results suggest that dasatinib mediates its migration-enhancing effects via inhibition of SFKs resulting in omission of an inhibitory signaling pathway. This enhancement of migratory capacity could be very useful in anti-tumor therapy as limited migration to the lymph nodes is one of the major problems when vaccinating with autologous dendritic cells that were stimulated with tumor-associated antigens. Dasatinib could be a potent mediator to overcome this problem and could lead to an improvement in the efficacy of therapy. Since dasatinib in addition also affects a broad range of processes in all immune cells, the use of specific α-Siglec blocking antibodies seems to be the more appropriate attempt to positively influence the migratory behavior of dendritic cells due to fewer side effects in comparison to dasatinib. Utilization of antibodies that target siglec receptors as adjuvants could lead to a more successful use of a vaccination with dendritic cells in tumor therapy

    Antibody‐Based CAR T Cells Produced by Lentiviral Transduction

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    One promising approach to treat hematologic malignancies is the usage of patient‐derived CAR T cells. There are continuous efforts to improve the function of these cells, to optimize their receptor, and to use them for the treatment of additional types of cancer and especially solid tumors. In this protocol, an easy and reliable approach for CAR T cell generation is described. T cells are first isolated from peripheral blood (here: leukoreduction system chambers) and afterwards activated for one day with anti‐CD3/CD28 Dynabeads. The gene transfer is performed by lentiviral transduction and gene transfer rate can be verified by flowcytometric analysis. Six days after transduction, the stimulatory Dynabeads are removed. T cells are cultured in interleukin‐2 conditioned medium for several days for expansion. There is an option to expand CAR T cells further by co‐incubation with irradiated, antigen‐expressing feeder cell lines. The CAR T cells are ready to use after 10 (without feeder cell expansion) to 24 days (with feeder cell expansion)

    Karanjin interferes with ABCB1, ABCC1, and ABCG2

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    PURPOSE The prominent ATP-binding cassette (ABC) transporters ABCB1, ABCC1, and ABCG2 are involved in substance transport across physiological barriers and therefore in drug absorption, distribution, and elimination. They also mediate multi-drug resistance in cancer cells. Different flavonoids are known to interfere with different ABC transporters. Here, the effect of the furanoflavonol karanjin, a potential drug with antiglycaemic, gastroprotective, antifungal, and antibacterial effects, was investigated on ABCB1, ABCC1, and ABCG2-mediated drug transport in comparison to the flavonoids apigenin, genistein, and naringenin. METHODS Cells expressing the relevant transporters (ABCB1: UKF-NB-3ABCB1, UKF-NB-3rVCR10; ABCC1: G62, PC-3rVCR20; ABCG2: UKF-NB-3ABCG2) were used in combination with specific fluorescent and cytotoxic ABC transporter substrates and ABC transporter inhibitors to study ABC transporter function. Moreover, the effects of the investigated flavonoids were determined on the ABC transporter ATPase activities. RESULTS Karanjin interfered with drug efflux mediated by ABCB1, ABCC1, and ABCG2 and enhanced the ATPase activity of all three transporters. Moreover, karanjin exerted more pronounced effects than the control flavonoids apigenin, genistein, and naringenin on all three transporters. Most notably, karanjin interfered with ABCB1 at low concentrations being about 1µM. CONCLUSIONS Taken together, these findings should be taken into account during further consideration of karanjin as a potential drug for different therapeutic indications. The effects on ABCB1, ABCC1, and ABCG2 may affect the pharmacokinetics of co-administered drugs. This article is open to POST-PUBLICATION REVIEW. Registered readers (see "For Readers") may comment by clicking on ABSTRACT on the issue's contents page. METHODS Cells expressing the relevant transporters (ABCB1: UKF-NB-3ABCB1, UKF-NB-3rVCR10; ABCC1: G62, PC-3rVCR20; ABCG2: UKF-NB-3ABCG2) were used in combination with specific fluorescent and cytotoxic ABC transporter substrates and ABC transporter inhibitors to study ABC transporter function. Moreover, the effects of the investigated flavonoids were determined on the ABC transporter ATPase activities. RESULTS Karanjin interfered with drug efflux mediated by ABCB1, ABCC1, and ABCG2 and enhanced the ATPase activity of all three transporters. Moreover, karanjin exerted more pronounced effects than the control flavonoids apigenin, genistein, and naringenin on all three transporters. Most notably, karanjin interfered with ABCB1 at low concentrations being about 1µM. CONCLUSIONS Taken together, these findings should be taken into account during further consideration of karanjin as a potential drug for different therapeutic indications. The effects on ABCB1, ABCC1, and ABCG2 may affect the pharmacokinetics of co-administered drugs

    Chimeric Antigen Receptor Library Screening Using a Novel NF-kappa B/NFAT Reporter Cell Platform

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    Chimeric antigen receptor (CAR)-T cell immunotherapy is under intense preclinical and clinical investigation, and it involves a rapidly increasing portfolio of novel target antigens and CAR designs. We established a platform that enables rapid and high-throughput CAR-screening campaigns with reporter cells derived from the T cell lymphoma line Jurkat. Reporter cells were equipped with nuclear factor kappa B (NF kappa B) and nuclear factor of activated T cells (NFAT) reporter genes that generate a duplex output of enhanced CFP (ECFP) and EGFP, respectively. As a proof of concept, we modified reporter cells with CD19-specific and ROR1-specific CARs, and we detected high-level reporter signals that allowed distinguishing functional from non-functional CAR constructs. The reporter data were highly reproducible, and the time required for completing each testing campaign was substantially shorter with reporter cells (6 days) compared to primary CAR-T cells (21 days). We challenged the reporter platform to a large-scale screening campaign on a ROR1-CAR library, and we showed that reporter cells retrieved a functional CAR variant that was present with a frequency of only 6 in 1.05 x 10(6). The data illustrate the potential to implement this reporter platform into the preclinical development path of novel CAR-T cell products and to inform and accelerate the selection of lead CAR candidates for clinical translation

    Super-resolution microscopy reveals ultra-low CD19 expression on myeloma cells that triggers elimination by CD19 CAR-T

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    Immunotherapy with chimeric antigen receptor-engineered T-cells (CAR-T) is under investigation in multiple myeloma. There are reports of myeloma remission after CD19 CAR-T therapy, although CD19 is hardly detectable on myeloma cells by flow cytometry (FC). We apply single molecule-sensitive direct stochastic optical reconstruction microscopy (dSTORM), and demonstrate CD19 expression on a fraction of myeloma cells (10.3–80%) in 10 out of 14 patients (density: 13–5,000 molecules per cell). In contrast, FC detects CD19 in only 2 of these 10 patients, on a smaller fraction of cells. Treatment with CD19 CAR-T in vitro results in elimination of CD19-positive myeloma cells, including those with <100 CD19 molecules per cell. Similar data are obtained by dSTORM analyses of CD20 expression on myeloma cells and CD20 CAR-T. These data establish a sensitivity threshold for CAR-T and illustrate how super-resolution microscopy can guide patient selection in immunotherapy to exploit ultra-low density antigens

    Differential Effects of the Oncogenic BRAF Inhibitor PLX4032 (Vemurafenib) and its Progenitor PLX4720 on ABCB1 Function

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    PURPOSE The clinically approved oncogenic BRAF inhibitor PLX4032 (vemurafenib) was shown to be a substrate of the ATP-binding cassette (ABC) transporter ABCB1. Here, we compared PLX4032 and its structurally closely related precursor compound PLX4720 for their interference with ABCB1 and the ABCB1-mediated compound transport using docking and cell culture experiments. METHODS For the docking study of PLX4032 and PLX4720 with ABCB1, we analysed binding of both compounds to mouse Abcb1a and to human ABCB1 using a homology model of human ABCB1 based on the 3D structure of Abcb1a. Naturally ABCB1 expressing cells including V600E BRAF-mutated and BRAF wild-type melanoma cells and cells transduced with a lentiviral vector encoding for ABCB1 were used as cell culture models. ABCB1 expression and function were studied by the use of fluorescent and cytotoxic ABCB1 substrates in combination with ABCB1 inhibitors. RESULTS Docking experiments predicted PLX4032 to interact stronger with ABCB1 than PLX4720. Experimental studies using different cellular models and structurally different ABCB1 substrates confirmed that PLX4032 interfered stronger with ABCB1 function than PLX4720. For example, PLX4032 (20µM) induced a 4-fold enhanced rhodamine 123 accumulation compared to PLX4720 (20µM) in ABCB1-transduced UKF-NB-3 cells and reduced the IC50 for the cytotoxic ABCB1 substrate vincristine in this model by 21-fold in contrast to a 9-fold decrease induced by PLX4720. CONCLUSIONS PLX4032 exerted stronger effects on ABCB1-mediated drug transport than PLX4720.  This indicates that small changes in a molecule can substantially modify its interaction with ABCB1, a promiscuous transporter that transports structurally different compounds.This article is open to POST-PUBLICATION REVIEW. Registered readers (see "For Readers") may comment by clicking on ABSTRACT on the issue's contents page. PURPOSE The clinically approved oncogenic BRAF inhibitor PLX4032 (vemurafenib) was shown to be a substrate of the ATP-binding cassette (ABC) transporter ABCB1. Here, we compared PLX4032 and its structurally closely related precursor compound PLX4720 for their interference with ABCB1 and the ABCB1-mediated compound transport using docking and cell culture experiments. METHODS For the docking study of PLX4032 and PLX4720 with ABCB1, we analysed binding of both compounds to mouse Abcb1a and to human ABCB1 using a homology model of human ABCB1 based on the 3D structure of Abcb1a. Naturally ABCB1 expressing cells including V600E BRAF-mutated and BRAF wild-type melanoma cells and cells transduced with a lentiviral vector encoding for ABCB1 were used as cell culture models. ABCB1 expression and function were studied by the use of fluorescent and cytotoxic ABCB1 substrates in combination with ABCB1 inhibitors. RESULTS Docking experiments predicted PLX4032 to interact stronger with ABCB1 than PLX4720. Experimental studies using different cellular models and structurally different ABCB1 substrates confirmed that PLX4032 interfered stronger with ABCB1 function than PLX4720. For example, PLX4032 (20µM) induced a 4-fold enhanced rhodamine 123 accumulation compared to PLX4720 (20µM) in ABCB1-transduced UKF-NB-3 cells and reduced the IC50 for the cytotoxic ABCB1 substrate vincristine in this model by 21-fold in contrast to a 9-fold decrease induced by PLX4720. CONCLUSIONS PLX4032 exerted stronger effects on ABCB1-mediated drug transport than PLX4720.  This indicates that small changes in a molecule can substantially modify its interaction with ABCB1, a promiscuous transporter that transports structurally different compounds. This article is open to POST-PUBLICATION REVIEW. Registered readers (see "For Readers") may comment by clicking on ABSTRACT on the issue's contents page

    CAR T-cells targeting FLT3 have potent activity against FLT3−ITD+ AML and act synergistically with the FLT3-inhibitor crenolanib

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    FMS-like tyrosine kinase 3 (FLT3) is a transmembrane protein expressed on normal hematopoietic stem and progenitor cells (HSC) and retained on malignant blasts in acute myeloid leukemia (AML). We engineered CD8(+) and CD4(+) T-cells expressing a FLT3-specific chimeric antigen receptor (CAR) and demonstrate they confer potent reactivity against AML cell lines and primary AML blasts that express either wild-type FLT3 or FLT3 with internal tandem duplication (FLT3-ITD). We also show that treatment with the FLT3-inhibitor crenolanib leads to increased surface expression of FLT3 specifically on FLT3-ITD AML cells and consecutively, enhanced recognition by FLT3-CAR T-cells in vitro and in vivo. As anticipated, we found that FLT3-CAR T-cells recognize normal HSCs in vitro and in vivo, and disrupt normal hematopoiesis in colony formation assays, suggesting that adoptive therapy with FLT3-CAR T-cells will require subsequent CAR T-cell depletion and allogeneic HSC transplantation to reconstitute the hematopoietic system. Collectively, our data establish FLT3 as a novel CAR target in AML with particular relevance in high-risk FLT3-ITD AML. Further, our data provide the first proof of-concept that CAR T-cell immunotherapy and small molecule inhibition can be used synergistically, as exemplified by our data showing superior antileukemia efficacy of FLT3-CAR T-cells in combination with crenolanib

    ROR1-CAR T cells are effective against lung and breast cancer in advanced microphysiologic 3D tumor models

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    Solid tumors impose immunologic and physical barriers to the efficacy of chimeric antigen receptor (CAR) T cell therapy that are not reflected in conventional preclinical testing against singularized tumor cells in 2-dimensional culture. Here, we established microphysiologic three-dimensional (3D) lung and breast cancer models that resemble architectural and phenotypical features of primary tumors and evaluated the antitumor function of receptor tyrosine kinase-like orphan receptor 1-specific (ROR1-specific) CART cells. 30 tumors were established from A549 (non-small cell lung cancer) and MDA-MB-231 (triple-negative breast cancer) cell lines on a biological scaffold with intact basement membrane (BM) under static and dynamic culture conditions, which resulted in progressively increasing cell mass and invasive growth phenotype (dynamic > static; MDA-MB-231 > A549). Treatment with ROR1-CAR T cells conferred potent antitumor effects. In dynamic culture, CART cells actively entered arterial medium flow and adhered to and infiltrated the tumor mass. ROR1-CAR T cells penetrated deep into tumor tissue and eliminated multiple layers of tumor cells located above and below the BM. The microphysiologic 3D tumor models developed in this study are standardized, scalable test systems that can be used either in conjunction with or in lieu of animal testing to interrogate the antitumor function of CART cells and to obtain proof of concept for their safety and efficacy before clinical application

    Wireless Optical Network for a Home Network

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    During the European collaborative project OMEGA, two optical-wireless prototypes have been developed. The first prototype operates in the near-infrared spectral region and features Giga Ethernet connectivity, a simple transceiver architecture due to the use of on-off keying, a multi-sector transceiver, and an ultra-fast switch for sector-to-sector hand over. This full-duplex system, composed by one base station and one module, transmits data on three meters. The second prototype is a visible-light-communications system based on DMT signal processing and an adapted MAC sublayer. Data rates around to 100 Mb/s at the physical layer are achieved. This broadcast system, composed also by one base station and one module, transmits data up to two meters. In this paper we present the adapted optical wireless media-access-control sublayer protocol for visible-light communications. This protocol accommodates link adaptation from 128 Mb/s to 1024 Mb/s with multi-sector coverage, and half-duplex or full-duplex transmission
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