930 resultados para Vascular cellular therapy


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INTRODUCTION: Solid tumors are known to have an abnormal vasculature that limits the distribution of chemotherapy. We have recently shown that tumor vessel modulation by low-dose photodynamic therapy (L-PDT) could improve the uptake of macromolecular chemotherapeutic agents such as liposomal doxorubicin (Liporubicin) administered subsequently. However, how this occurs is unknown. Convection, the main mechanism for drug transport between the intravascular and extravascular spaces, is mostly related to interstitial fluid pressure (IFP) and tumor blood flow (TBF). Here, we determined the changes of tumor and surrounding lung IFP and TBF before, during, and after vascular L-PDT. We also evaluated the effect of these changes on the distribution of Liporubicin administered intravenously (IV) in a lung sarcoma metastasis model. MATERIALS AND METHODS: A syngeneic methylcholanthrene-induced sarcoma cell line was implanted subpleurally in the lung of Fischer rats. Tumor/surrounding lung IFP and TBF changes induced by L-PDT were determined using the wick-in-needle technique and laser Doppler flowmetry, respectively. The spatial distribution of Liporubicin in tumor and lung tissues following IV drug administration was then assessed in L-PDT-pretreated animals and controls (no L-PDT) by epifluorescence microscopy. RESULTS: L-PDT significantly decreased tumor but not lung IFP compared to controls (no L-PDT) without affecting TBF. These conditions were associated with a significant improvement in Liporubicin distribution in tumor tissues compared to controls (P < .05). DISCUSSION: L-PDT specifically enhanced convection in blood vessels of tumor but not of normal lung tissue, which was associated with a significant improvement of Liporubicin distribution in tumors compared to controls.

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Par la sécrétion d’adipokines, le tissu adipeux blanc viscéral présent chez des patients souffrant d’obésité promeut l’installation d’altérations métaboliques telles que l’intolérance au glucose, la résistance à l’insuline et le diabète de type 2. Les complications cardiovasculaires, en particulier l’athérosclérose, sont les principales causes de mortalité chez les patients atteints de diabète de type 2. Il a été démontré que la fraction vasculaire stromale du tissu adipeux est composée de cellules régénératives dérivées du tissu adipeux (CRTA) et que ces cellules possèdent des caractéristiques des cellules progénitrices stromales (CPS). L’impact de l’intolérance au glucose et du diabète de type 2 sur les adipocytes sont assez bien documentés. Par contre, les conséquences de ces pathologies sur le comportement des CRTA n’ont pas été mesurées d’une façon approfondie. Plus particulièrement, l’impact de ces altérations métaboliques sur le potentiel de différenciation des CRTA en adipocytes et en cellules endothéliales n’a pas été étudié. Ce projet a pour but d’évaluer, dans un modèle murin, l’effet de ces altérations métaboliques sur l’équilibre de la différenciation in vitro des CRTA en adipocytes ou en cellules endothéliales. L’intolérance au glucose et le diabète de type 2 ont été induit chez les souris par la prise de deux diètes riches en acides gras de provenance végétale (DV) ou animale (DA). L’impact de l’origine des acides gras sur la différenciation des CRTA a également été étudié. Pour ce faire, une mise au point de la culture cellulaire des CRTA s’est avérée nécessaire et compte pour une partie de ces travaux de maîtrise. Nos travaux ont démontré en premier lieu, que le DMSO est un agent qui conserve la viabilité et les propriétés progénitrices des CRTA suite à leur congélation. De plus, parmi les matrices testées, le collagène s’est avéré être celle qui conserve le mieux les caractéristiques des progéniteurs et même, qui enrichie la population cellulaire ensemencée en cellules progénitrices. La densité cellulaire des cellules non-adipeuses du tissu adipeux s’avère être significativement plus élevée chez les souris du groupe de la DV comparativement aux souris contrôles. De plus, l’évaluation in vitro de la différenciation adipogénique démontre un potentiel de différenciation plus important pour les CRTA provenant des souris de la DV par rapport au groupe contrôle et à la DA. Cependant, la différenciation en cellules endothéliales est inhibée chez les CRTA de la DV, comparativement à un retard de ce processus pour la DA. Nos travaux suggèrent que le potentiel de différenciation adipogénique et endothéliale des CRTA est affecté par le statut métabolique des souris ainsi que par la nature de la diète. Ces résultats mettent en lumière pour la première fois l’importance d’évaluer le comportement des CRTA en fonction du statut métabolique du donneur, un paramètre pouvant avoir un impact majeur dans l’utilisation des CRTA autologues en thérapie cellulaire pour la réparation de tissus vasculaires chez des patients diabétiques.

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Endothelial progenitor cells (EPCs) have great clinical value because they can be used as diagnostic biomarkers and as a cellular therapy for promoting vascular repair of ischaemic tissues. However, EPCs also have an additional research value in vascular disease modelling to interrogate human disease mechanisms. The term EPC is used to describe a diverse variety of cells, and we have identified a specific EPC subtype called outgrowth endothelial cell (OEC) as the best candidate for vascular disease modelling because of its high-proliferative potential and unambiguous endothelial commitment. OECs are isolated from human blood and can be exposed to pathologic conditions (forward approach) or be isolated from patients (reverse approach) in order to study vascular human disease. The use of OECs for modelling vascular disease will contribute greatly to improving our understanding of endothelial pathogenesis, which will potentially lead to the discovery of novel therapeutic strategies for vascular diseases.

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Macrophage function is not restricted to the innate and adaptive immune responses, but also includes host defence, wound healing, angiogenesis and homeostatic processes. Within the spectrum of macrophage activation there are two extremes: M1 classically activated macrophages which have a pro-inflammatory phenotype, and M2 alternatively activated macrophages which are pro-angiogenic and anti-inflammatory. An important property of macrophages is their plasticity to switch from one phenotype to the other and they can be defined in their polarisation state at any point between the two extremes. In order to determine what stage of activation macrophages are in, it is essential to profile various phenotypic markers for their identification. This review describes the angiogenic role for myeloid cells: circulating monocytes, Tie-2 expressing monocytes (TEMs), myeloid-derived suppressor cells (MDSCs), tumour associated macrophages (TAMs), and neutrophils. Each cell type is discussed by phenotype, roles within angiogenesis and possible targets as a cell therapy. In addition, we also refer to our own research on myeloid angiogenic cells (MACs), outlining their ability to induce angiogenesis and their similarities to alternatively activated M2 macrophages. MACs significantly contribute to vascular repair through paracrine mechanisms as they lack the capacity to differentiate into endothelial cells. Since MACs also retain plasticity, phenotypic changes can occur according to disease states and the surrounding microenvironment. This pro-angiogenic potential of MACs could be harnessed as a novel cellular therapy for the treatment of ischaemic diseases, such as diabetic retinopathy, hind limb ischaemia and myocardial infarction; however, caution needs to be taken when MACs are delivered into an inflammatory milieu.

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Aberrant blood vessels enable tumor growth, provide a barrier to immune infiltration, and serve as a source of protumorigenic signals. Targeting tumor blood vessels for destruction, or tumor vascular disruption therapy, can therefore provide significant therapeutic benefit. Here, we describe the ability of chimeric antigen receptor (CAR)-bearing T cells to recognize human prostate-specific membrane antigen (hPSMA) on endothelial targets in vitro as well as in vivo. CAR T cells were generated using the anti-PSMA scFv, J591, and the intracellular signaling domains: CD3ζ, CD28, and/or CD137/4-1BB. We found that all anti-hPSMA CAR T cells recognized and eliminated PSMA(+) endothelial targets in vitro, regardless of the signaling domain. T cells bearing the third-generation anti-hPSMA CAR, P28BBζ, were able to recognize and kill primary human endothelial cells isolated from gynecologic cancers. In addition, the P28BBζ CAR T cells mediated regression of hPSMA-expressing vascular neoplasms in mice. Finally, in murine models of ovarian cancers populated by murine vessels expressing hPSMA, the P28BBζ CAR T cells were able to ablate PSMA(+) vessels, cause secondary depletion of tumor cells, and reduce tumor burden. Taken together, these results provide a strong rationale for the use of CAR T cells as agents of tumor vascular disruption, specifically those targeting PSMA. Cancer Immunol Res; 3(1); 68-84. ©2014 AACR.

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Thèse numérisée par la Division de la gestion de documents et des archives de l'Université de Montréal.

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Posttraumatic stress disorder (PTSD) and circulating cellular adhesion molecules (CAMs) predict cardiovascular risk. We hypothesized a positive relationship between PTSD caused by myocardial infarction (MI) and soluble CAMs. We enrolled 22 post-MI patients with interviewer-rated PTSD and 22 post-MI patients with no PTSD. At 32±6months after index MI, all patients were re-scheduled to undergo the Clinician-Administered PTSD Scale (CAPS) interview and had blood collected to assess soluble CAMs at rest and after the CAPS interview. Relative to patients with no PTSD, those with PTSD had significantly higher levels of soluble vascular cellular adhesion molecule (sVCAM)-1 and intercellular adhesion molecule (sICAM)-1 at rest and, controlling for resting CAM levels, significantly higher sVCAM-1 and sICAM-1 after the interview. Greater severity of PTSD predicted significantly higher resting levels of sVCAM-1 and soluble P-selectin in patients with PTSD. At follow-up, patients with persistent PTSD (n=15) and those who had remitted (n=7) did not significantly differ in CAM levels at rest and after the interview; however, both these groups had significantly higher sVCAM-1 and sICAM-1 at rest and also after the interview compared to patients with no PTSD. Elevated levels of circulating CAMs might help explain the psychophysiologic link of PTSD with cardiovascular risk.