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      1. Author :
        Hensley, H. H.; Roder, N. A.; O'Brien, S. W.; Bickel, L. E.; Xiao, F.; Litwin, S.; Connolly, D. C.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        Neoplasia
      6. Products :
      7. Volume :
        14
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        ProSense, IntegriSense, MMPSense, Annexin-Vivo, Annexin vivo, IVIS, Animals; Antineoplastic Agents/administration & dosage/pharmacology; Carcinoma/*diagnosis/*metabolism/pathology; Cathepsins/metabolism; Cell Line, Tumor; Disease Progression; Female; Fluorescent Dyes/chemistry/metabolism; Integrin alphaVbeta3/metabolism; Integrins/genetics/*metabolism; Magnetic Resonance Imaging; Matrix Metalloproteinases/metabolism; Mice; Mice, Transgenic; *Molecular Imaging; Ovarian Neoplasms/*diagnosis/drug therapy/*metabolism; Peptide Hydrolases/*metabolism; Protein Binding; Tumor Burden/drug effects
      12. Abstract :
        Most patients with epithelial ovarian cancer (EOC) experience drug-resistant disease recurrence. Identification of new treatments is a high priority, and preclinical studies in mouse models of EOC may expedite this goal. We previously developed methods for magnetic resonance imaging (MRI) for tumor detection and quantification in a transgenic mouse model of EOC. The goal of this study was to determine whether three-dimensional (3D) fluorescence molecular tomography (FMT) and fluorescent molecular imaging probes could be effectively used for in vivo detection of ovarian tumors and response to therapy. Ovarian tumor-bearing TgMISIIR-TAg mice injected with fluorescent probes were subjected to MRI and FMT. Tumor-specific probe retention was identified in vivo by alignment of the 3D data sets, confirmed by ex vivo fluorescent imaging and correlated with histopathologic findings. Mice were treated with standard chemotherapy, and changes in fluorescent probe binding were detected by MRI and FMT. Ovarian tumors were detected using probes specific for cathepsin proteases, matrix metalloproteinases (MMPs), and integrin alpha(v)beta(3). Cathepsin and integrin alpha(v)beta(3) probe activation and retention correlated strongly with tumor volume. MMP probe activation was readily detected in tumors but correlated less strongly with tumor volume. Tumor regression associated with response to therapy was detected and quantified by serial MRI and FMT. These results demonstrate the feasibility and sensitivity of FMT for detection and quantification of tumor-associated biologic targets in ovarian tumors and support the translational utility of molecular imaging to assess functional response to therapy in mouse models of EOC.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/22787427
      14. Call Number :
        PKI @ kd.modi @ 1
      15. Serial :
        10425
      1. Author :
        Xie, B. W.; Mol, I. M.; Keereweer, S.; van Beek, E. R.; Que, I.; Snoeks, T. J.; Chan, A.; Kaijzel, E. L.; Lowik, C. W.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        PLoS One
      6. Products :
      7. Volume :
        7
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        4T1-luc2, ProSense, MMPSense, CRi, Maestro, IVIS Animals; Benzenesulfonates/diagnostic use; Diagnostic Imaging/instrumentation/*methods; Disease Models, Animal; Disease Progression; Fluorescent Dyes/*diagnostic use; Indoles/diagnostic use; Luminescent Measurements/instrumentation/*methods; Mammary Neoplasms, Experimental/*diagnosis/pathology; Mice
      12. Abstract :
        Bioluminescence imaging (BLI) has shown its appeal as a sensitive technique for in vivo whole body optical imaging. However, the development of injectable tumor-specific near-infrared fluorescent (NIRF) probes makes fluorescence imaging (FLI) a promising alternative to BLI in situations where BLI cannot be used or is unwanted (e.g., spontaneous transgenic tumor models, or syngeneic mice to study immune effects).In this study, we addressed the questions whether it is possible to detect tumor progression using FLI with appropriate sensitivity and how FLI correlates with BLI measurements. In addition, we explored the possibility to simultaneously detect multiple tumor characteristics by dual-wavelength FLI (~700 and ~800 nm) in combination with spectral unmixing. Using a luciferase-expressing 4T1-luc2 mouse breast cancer model and combinations of activatable and targeting NIRF probes, we showed that the activatable NIRF probes (ProSense680 and MMPSense680) and the targeting NIRF probes (IRDye 800CW 2-DG and IRDye 800CW EGF) were either activated by or bound to 4T1-luc2 cells. In vivo, we implanted 4T1-luc2 cells orthotopically in nude mice and were able to follow tumor progression longitudinally both by BLI and dual-wavelength FLI. We were able to reveal different probe signals within the tumor, which co-localized with immuno-staining. Moreover, we observed a linear correlation between the internal BLI signals and the FLI signals obtained from the NIRF probes. Finally, we could detect pulmonary metastases both by BLI and FLI and confirmed their presence histologically.Taken together, these data suggest that dual-wavelength FLI is a feasible approach to simultaneously detect different features of one tumor and to follow tumor progression with appropriate specificity and sensitivity. This study may open up new perspectives for the detection of tumors and metastases in various experimental models and could also have clinical applications, such as image-guided surgery.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/22348134
      14. Call Number :
        PKI @ kd.modi @ 2
      15. Serial :
        10426
      1. Author :
        Bratlie, K. M.; Dang, T. T.; Lyle, S.; Nahrendorf, M.; Weissleder, R.; Langer, R.; Anderson, D. G.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2010
      5. Publication :
        PLoS One
      6. Products :
      7. Volume :
        5
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        Prosense, IVIS, Animals; Biocompatible Materials/*diagnostic use; Diagnostic Imaging/*methods; *Fluorescence; Macrophage Activation; Materials Testing/*methods; Mice; Models, Animal; Peptide Hydrolases/metabolism; Phagocytes
      12. Abstract :
        BACKGROUND: Many materials are unsuitable for medical use because of poor biocompatibility. Recently, advances in the high throughput synthesis of biomaterials has significantly increased the number of potential biomaterials, however current biocompatibility analysis methods are slow and require histological analysis. METHODOLOGY/PRINCIPAL FINDINGS: Here we develop rapid, non-invasive methods for in vivo quantification of the inflammatory response to implanted biomaterials. Materials were placed subcutaneously in an array format and monitored for host responses as per ISO 10993-6: 2001. Host cell activity in response to these materials was imaged kinetically, in vivo using fluorescent whole animal imaging. Data captured using whole animal imaging displayed similar temporal trends in cellular recruitment of phagocytes to the biomaterials compared to histological analysis. CONCLUSIONS/SIGNIFICANCE: Histological analysis similarity validates this technique as a novel, rapid approach for screening biocompatibility of implanted materials. Through this technique there exists the possibility to rapidly screen large libraries of polymers in vivo.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/20386609
      14. Call Number :
        PKI @ kd.modi @ 5
      15. Serial :
        10427
      1. Author :
        Liu, W. F.; Ma, M.; Bratlie, K. M.; Dang, T. T.; Langer, R.; Anderson, D. G.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2011
      5. Publication :
        Biomaterials
      6. Products :
      7. Volume :
        32
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        ProSense, IVIS, Animals; Biocompatible Materials/*adverse effects; Cells, Cultured; Free Radicals/metabolism; Immunohistochemistry; Male; Mice; Prostheses and Implants/*adverse effects; Reactive Oxygen Species/*metabolism
      12. Abstract :
        The non-specific host response to implanted biomaterials is often a key challenge of medical device design. To evaluate biocompatibility, measuring the release of reactive oxygen species (ROS) produced by inflammatory cells in response to biomaterial surfaces is a well-established method. However, the detection of ROS in response to materials implanted in vivo has not yet been demonstrated. Here, we develop a bioluminescence whole animal imaging approach to observe ROS released in response to subcutaneously-implanted materials in live animals. We compared the real-time generation of ROS in response to two representative materials, polystyrene and alginate, over the course of 28 days. High levels of ROS were observed near polystyrene, but not alginate implants, and persisted throughout the course of 28 days. Histological analysis revealed that high levels of ROS correlated not only with the presence of phagocytic cells at early timepoints, but also fibrosis at later timepoints, suggesting that ROS may be involved in both the acute and chronic phase of the foreign body response. These data are the first in vivo demonstration of ROS generation in response to implanted materials, and describe a novel technique to evaluate the host response.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/21146868
      14. Call Number :
        PKI @ kd.modi @ 3
      15. Serial :
        10428
      1. Author :
        Mieog, J. S.; Hutteman, M.; van der Vorst, J. R.; Kuppen, P. J.; Que, I.; Dijkstra, J.; Kaijzel, E. L.; Prins, F.; Lowik, C. W.; Smit, V. T.; van de Velde, C. J.; Vahrmeijer, A. L.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2011
      5. Publication :
        Breast Cancer Res Treat
      6. Products :
      7. Volume :
        128
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        ProSense, IVIS, Animals; Breast Neoplasms/pathology/*surgery; Cell Line, Tumor; Disease Models, Animal; Female; *Microscopy, Fluorescence; Rats; *Surgery, Computer-Assisted; Transplantation, Isogeneic; Xenograft Model Antitumor Assays
      12. Abstract :
        Tumor involvement of resection margins is found in a large proportion of patients who undergo breast-conserving surgery. Near-infrared (NIR) fluorescence imaging is an experimental technique to visualize cancer cells during surgery. To determine the accuracy of real-time NIR fluorescence imaging in obtaining tumor-free resection margins, a protease-activatable NIR fluorescence probe and an intraoperative camera system were used in the EMR86 orthotopic syngeneic breast cancer rat model. Influence of concentration, timing and number of tumor cells were tested in the MCR86 rat breast cancer cell line. These variables were significantly associated with NIR fluorescence probe activation. Dosing and tumor size were also significantly associated with fluorescence intensity in the EMR86 rat model, whereas time of imaging was not. Real-time NIR fluorescence guidance of tumor resection resulted in a complete resection of 17 out of 17 tumors with minimal excision of normal healthy tissue (mean minimum and a mean maximum tumor-free margin of 0.2 +/- 0.2 mm and 1.3 +/- 0.6 mm, respectively). Moreover, the technique enabled identification of remnant tumor tissue in the surgical cavity. Histological analysis revealed that the NIR fluorescence signal was highest at the invasive tumor border and in the stromal compartment of the tumor. In conclusion, NIR fluorescence detection of breast tumor margins was successful in a rat model. This study suggests that clinical introduction of intraoperative NIR fluorescence imaging has the potential to increase the number of complete tumor resections in breast cancer patients undergoing breast-conserving surgery.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/20821347
      14. Call Number :
        PKI @ kd.modi @ 4
      15. Serial :
        10429
      1. Author :
        Stelter, L.; Tseng, J. C.; Torosjan, A.; Levin, B.; Longo, V. A.; Pillarsetty, N.; Zanzonico, P.; Meruelo, D.; Larson, S. M.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        Mol Imaging Biol
      6. Products :
      7. Volume :
        N/A
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        AngioSense, FMT, IVIS, Biolumninescence
      12. Abstract :
        PURPOSE: Sindbis virus (SINV) infect tumor cells specifically and systemically throughout the body. Sindbis vectors are capable of expressing high levels of transduced suicide genes and thus efficiently produce enzymes for prodrug conversion in infected tumor cells. The ability to monitor suicide gene expression levels and viral load in patients, after administration of the vectors, would significantly enhance this tumor-specific therapeutic option. PROCEDURES: The tumor specificity of SINV is mediated by the 67-kDa laminin receptor (LR). We probed different cancer cell lines for their LR expression and, to determine the specific role of LR-expression in the infection cycle, used different molecular imaging strategies, such as bioluminescence, fluorescence molecular tomography, and positron emission tomography, to evaluate SINV-mediated infection in vitro and in vivo. RESULTS: All cancer cell lines showed a marked expression of LR. The infection rates of the SINV particles, however, differed significantly among the cell lines. CONCLUSION: We used novel molecular imaging techniques to visualize vector delivery to different neoplatic cells. SINV infection rates proofed to be not solely dependent on cellular LR expression. Further studies need to evaluate the herein discussed ways of cellular infection and viral replication.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/22847302
      14. Call Number :
        PKI @ kd.modi @ 3
      15. Serial :
        10440
      1. Author :
        Tseng, J. C.; Granot, T.; DiGiacomo, V.; Levin, B.; Meruelo, D.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2010
      5. Publication :
        Cancer Gene Ther
      6. Products :
      7. Volume :
        17
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        AngioSense, IVIS, Alphavirus Infections/pathology/*therapy/virology; Animals; Antineoplastic Agents, Phytogenic/therapeutic use; Blotting, Western; Cell Membrane Permeability; Combined Modality Therapy; Cricetinae; Drug Delivery Systems; Female; *Genetic Vectors; Humans; Mice; Mice, SCID; Neovascularization, Pathologic/*prevention & control; Neuroblastoma/blood supply/therapy/virology; *Oncolytic Virotherapy; Ovarian Neoplasms/*blood supply/*therapy/virology; Paclitaxel/therapeutic use; Sindbis Virus/*physiology; Vascular Endothelial Growth Factor A/metabolism; Xenograft Model Antitumor Assays
      12. Abstract :
        Genetic instability of cancer cells generates resistance after initial responses to chemotherapeutic agents. Several oncolytic viruses have been designed to exploit specific signatures of cancer cells, such as important surface markers or pivotal signaling pathways for selective replication. It is less likely for cancer cells to develop resistance given that mutations in these cancer signatures would negatively impact tumor growth and survival. However, as oncolytic viral vectors are large particles, they suffer from inefficient extravasation from tumor blood vessels. Their ability to reach cancer cells is an important consideration in achieving specific oncolytic targeting and potential vector replication. Our previous studies indicated that the Sindbis viral vectors target tumor cells by the laminin receptor. Here, we present evidence that modulating tumor vascular leakiness, using VEGF and/or metronomic chemotherapy regimens, significantly enhances tumor vascular permeability and directly enhances oncolytic Sindbis vector targeting in tumor models. Because host-derived vascular endothelium cells are genetically stable and less likely to develop resistance to chemotherapeutics, a combined metronomic chemotherapeutics and oncolytic vector regimen should provide a new approach for cancer therapy. This mechanism could explain the synergistic treatment outcomes observed in clinical trials of combined therapies.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/19798121
      14. Call Number :
        PKI @ kd.modi @ 2
      15. Serial :
        10442
      1. Author :
        Xing, H. R.; Zhang, Q.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        Methods Mol Biol
      6. Products :
      7. Volume :
        872
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        AngioSense, Animals; Antineoplastic Agents/therapeutic use; Diagnostic Imaging/*methods; Female; Mammary Neoplasms, Animal/metabolism/pathology; Mice; Mice, Nude; Neoplasm Transplantation; Neovascularization, Pathologic/drug therapy/*pathology
      12. Abstract :
        In vivo angiogenesis assays provide more physiologically relevant information about tumor vascularization than in vitro studies because they take the complex interactions among cancer cells, endothelial cells, mural cells, and tumor stroma into consideration. Traditional microscopic assessment of vascular density conducted by immunostaining of tissue sections or by lectin angiogram visualization of tumor vessels is invasive and requires the sacrifice of tumor-bearing animals. Therefore, it prohibits longitudinal time-course observation in a single animal and requires a large number of animals at each time point to derive statistically-meaningful observations. Additionally, heterogenous behavior among different tumors will inevitably introduce individual biological variance that may obscure reliable interpretation of the results. While various artificial in vivo angiogenesis assays, such as the Matrigel implant assay, chick chorioallatoic membrane assay, and dorsal skin fold chamber assay have been developed and employed to more directly observe the progression of physiological angiogenesis, they can not appropriately assess tumor angiogenic progression or tumor vascular regression in response to therapeutic intervention. Here, we describe a noninvasive method and a detailed protocol that we have developed and optimized using the Olympus OV-100 in vivo imaging system for real-time high-resolution visualization and assessment of tumor angiogenesis and vascular response to anticancer therapies in live animals. We show that using this approach, tumor vessels can be monitored longitudinally through the whole vasculogenesis and angiogenesis process in the same mouse. Further, morphologic changes of the same vessel prior to and after drug treatments can be captured with microscopic high resolution. Moreover, the multichannel co-imaging capability of the OV-100 allows us to analyze and compare tumor vessel permeability before and after antiangiogenesis therapy by employing a near-infrared blood pool reagent, or by visualizing improved cytotoxic drug delivery upon tumor vessel normalization by using a fluorophore tagged drug. This noninvasive method can be readily applied to orthotopically transplanted breast cancer models as well as to subcutaneously-transplanted tumor models.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/22700407
      14. Call Number :
        PKI @ kd.modi @ 4
      15. Serial :
        10443
      1. Author :
        Swirski, F. K.; Nahrendorf, M.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        Immunol Cell Biol
      6. Products :
      7. Volume :
        N/A
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        AngioSense
      12. Abstract :
        Macrophages are central regulators of disease progression in both atherosclerosis and myocardial infarction (MI). In atherosclerosis, macrophages are the dominant leukocyte population that influences lesional development. In MI, which is caused by atherosclerosis, macrophages accumulate readily and have important roles in inflammation and healing. Molecular imaging has grown considerably as a field and can reveal biological process at the molecular, cellular and tissue levels. Here, we explore how various imaging modalities, from intravital microscopy in mice to organ-level imaging in patients, are contributing to our understanding of macrophages and their progenitors in cardiovascular disease.Immunology and Cell Biology advance online publication, 4 December 2012; doi:10.1038/icb.2012.72.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/23207281
      14. Call Number :
        PKI @ kd.modi @ 12
      15. Serial :
        10441
      1. Author :
        Cao, L.; Kobayakawa, S.; Yoshiki, A.; Abe, K.
      2. Title :
      3. Type :
        Journal Article
      4. Year :
        2012
      5. Publication :
        PLoS One
      6. Products :
      7. Volume :
        7
      8. Issue :
        N/A
      9. Page Numbers :
        N/A
      10. Research Area :
        N/A
      11. Keywords :
        AngioSense, Abdomen; Animals; Imaging, Three-Dimensional; Liver/cytology; Mice; Mice, Transgenic; Microscopy/*instrumentation/*methods; Molecular Imaging/*instrumentation/*methods; Pancreas/cytology/ultrastructure; Time-Lapse Imaging
      12. Abstract :
        Intravital imaging of brain and bone marrow cells in the skull with subcellular resolution has revolutionized neurobiology, immunology and hematology. However, the application of this powerful technology in studies of abdominal organs has long been impeded by organ motion caused by breathing and heartbeat. Here we describe for the first time a simple device designated 'microstage' that effectively reduces organ motions without causing tissue lesions. Combining this microstage device with an upright intravital laser scanning microscope equipped with a unique stick-type objective lens, the system enables subcellular-level imaging of abdominal organs in live mice. We demonstrate that this technique allows for the quantitative analysis of subcellular structures and gene expressions in cells, the tracking of intracellular processes in real-time as well as three-dimensional image construction in the pancreas and liver of the live mouse. As the aforementioned analyses based on subcellular imaging could be extended to other intraperitoneal organs, the technique should offer great potential for investigation of physiological and disease-specific events of abdominal organs. The microstage approach adds an exciting new technique to the in vivo imaging toolbox.
      13. URL :
        http://www.ncbi.nlm.nih.gov/pubmed/22479464
      14. Call Number :
        PKI @ kd.modi @ 6
      15. Serial :
        10431
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