The overall goal of this core is to support the specific aims of the 4 projects with existing small animal? imaging technology and to advance this technology to enhance future utility in cancer research. Small animal? imaging has gained considerable importance in recent years as more and more animal models for human? cancers have become available. Imaging of tumor development and effects of treatments has many scientific? and economical advantages, as sacrificing animals at various disease stages and performing necropsy and? histopathological studies can be sharply reduced. Optical techniques have proven to be especially valuable? when applied to small animal imaging because of an abundance of optical markers (endogenous and? exogenous) that can target and visualize various cancer related processes on the cellular and molecular? level with comparatively high sensitivities. However, to date most optical imaging studies have only explored? whole animal surface imaging without 3-dimensional reconstructions. This limits accurate localization and? quantification of observed effects inside the animal.? This core focuses on various optical imaging methods that can provide 3-dimensional functional? information at high temporal resolution about blood-dependent parameters such as oxy, deoxy, and total? hemoglobin, fluorescent markers such as GFP, and bioluminescent probes such as luciferase. Imaging? system that will be made available include a two-photon microscope for high-spatial-resolution (<0.1 mu m up? to depth of 600 mu m) imaging of hemodynamic effects and fluorescent probes in situ; two dynamic optical? tomography devices and one frequency-domain optical tomography system for non-invasive whole-animal? absorption imaging; and a Xenogen IVIS 200 system for whole-animal fluorescence and bioluminescence? imaging. Together with a 9.4 T magnetic resonance imaging system, which delivers high-resolution anatomical? images of small animals, the core will enable researcher to study effects of hypoxia on tumor development,? migration of activated myofibroblasts, bone marrow recruitment, and tumor growth and regression.? Going beyond applying existing optical technologies, the core will also advance imaging science in? itself. First, we will develop novel, highly accurate, three-dimensional image reconstruction capabilities for? the existing Xenogen IVIS 200 bioluminescence imager. Second, we will adapt and optimize laminar optical? tomography (LOT) for applications in digestive cancer research. LOT promises to be a viable optical imaging? modality that can provide absorption and fluorescence imaging of tissues to depths of 2-3mm with 100 to? 200 mu m resolution. If successfully applied to cancer imaging, this modality would fill an important niche? between the high-resolution two-photon microscope systems and the whole-animal optical imaging devices.?

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Specialized Center--Cooperative Agreements (U54)
Project #
5U54CA126513-03
Application #
7684703
Study Section
Special Emphasis Panel (ZCA1)
Project Start
Project End
Budget Start
2008-09-01
Budget End
2009-08-31
Support Year
3
Fiscal Year
2008
Total Cost
$114,268
Indirect Cost
Name
Columbia University (N.Y.)
Department
Type
DUNS #
621889815
City
New York
State
NY
Country
United States
Zip Code
10032
Hayakawa, Yoku; Fox, James G; Wang, Timothy C (2017) Isthmus Stem Cells Are the Origins of Metaplasia in the Gastric Corpus. Cell Mol Gastroenterol Hepatol 4:89-94
Hayakawa, Yoku; Fox, James G; Wang, Timothy C (2017) The Origins of Gastric Cancer From Gastric Stem Cells: LessonsĀ From Mouse Models. Cell Mol Gastroenterol Hepatol 3:331-338
Hayakawa, Yoku; Sakitani, Kosuke; Konishi, Mitsuru et al. (2017) Nerve Growth Factor Promotes Gastric Tumorigenesis through Aberrant Cholinergic Signaling. Cancer Cell 31:21-34
Sakitani, Kosuke; Hayakawa, Yoku; Deng, Huan et al. (2017) CXCR4-expressing Mist1+ progenitors in the gastric antrum contribute to gastric cancer development. Oncotarget 8:111012-111025
Worthley, Daniel L; Churchill, Michael; Compton, Jocelyn T et al. (2015) Gremlin 1 identifies a skeletal stem cell with bone, cartilage, and reticular stromal potential. Cell 160:269-84
Hayakawa, Yoku; Ariyama, Hiroshi; Stancikova, Jitka et al. (2015) Mist1 Expressing Gastric Stem Cells Maintain the Normal and Neoplastic Gastric Epithelium and Are Supported by a Perivascular Stem Cell Niche. Cancer Cell 28:800-814
Zhao, Chun-Mei; Hayakawa, Yoku; Kodama, Yosuke et al. (2014) Denervation suppresses gastric tumorigenesis. Sci Transl Med 6:250ra115
Balabanova, Silvia; Holmberg, Chris; Steele, Islay et al. (2014) The neuroendocrine phenotype of gastric myofibroblasts and its loss with cancer progression. Carcinogenesis 35:1798-806
Kumar, J Dinesh; Holmberg, Chris; Kandola, Sandhir et al. (2014) Increased expression of chemerin in squamous esophageal cancer myofibroblasts and role in recruitment of mesenchymal stromal cells. PLoS One 9:e104877
Shakya, Reena; Gonda, Tamas; Quante, Michael et al. (2013) Hypomethylating therapy in an aggressive stroma-rich model of pancreatic carcinoma. Cancer Res 73:885-96

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