18F-FDG PET Imaging of Murine Atherosclerosis: Association with Gene Expression of Key Molecular Markers

被引:36
|
作者
Hag, Anne Mette Fisker [1 ,2 ]
Pedersen, Sune Folke [1 ,2 ]
Christoffersen, Christina [3 ]
Binderup, Tina [1 ,2 ]
Jensen, Mette Munk [1 ,2 ]
Jorgensen, Jesper Tranekjaer [1 ,2 ]
Skovgaard, Dorthe [1 ,2 ]
Ripa, Rasmus Sejersten [1 ,2 ]
Kjaer, Andreas [1 ,2 ]
机构
[1] Univ Copenhagen, Rigshosp, Fac Hlth & Med Sci, DK-2100 Copenhagen, Denmark
[2] Univ Copenhagen, Rigshosp, Dept Clin Physiol Nucl Med & PET, DK-2100 Copenhagen, Denmark
[3] Rigshosp, Dept Clin Biochem, DK-2100 Copenhagen, Denmark
来源
PLOS ONE | 2012年 / 7卷 / 11期
基金
英国医学研究理事会;
关键词
TISSUE FACTOR; PLAQUE INFLAMMATION; ACCUMULATION; MICE; CHEMOATTRACTANT; OSTEOPONTIN; ATHEROGENESIS; DEFICIENCY; DELETION; THERAPY;
D O I
10.1371/journal.pone.0050908
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Aim: To study whether F-18-FDG can be used for in vivo imaging of atherogenesis by examining the correlation between F-18-FDG uptake and gene expression of key molecular markers of atherosclerosis in apoE(-/-) mice. Methods: Nine groups of apoE(-/-) mice were given normal chow or high-fat diet. At different time-points, F-18-FDG PET/contrast-enhanced CT scans were performed on dedicated animal scanners. After scans, animals were euthanized, aortas removed, gamma counted, RNA extracted from the tissue, and gene expression of chemo (C-X-C motif) ligand 1 (CXCL-1), monocyte chemoattractant protein (MCP)-1, vascular cell adhesion molecule (VCAM)-1, cluster of differentiation molecule (CD)-68, osteopontin (OPN), lectin-like oxidized LDL-receptor (LOX)-1, hypoxia-inducible factor (HIF)-1 alpha, HIF-2 alpha, vascular endothelial growth factor A (VEGF), and tissue factor (TF) was measured by means of qPCR. Results: The uptake of F-18-FDG increased over time in the groups of mice receiving high-fat diet measured by PET and ex vivo gamma counting. The gene expression of all examined markers of atherosclerosis correlated significantly with F-18-FDG uptake. The strongest correlation was seen with TF and CD68 (p < 0.001). A multivariate analysis showed CD68, OPN, TF, and VCAM-1 to be the most important contributors to the uptake of F-18-FDG. Together they could explain 60% of the F-18-FDG uptake. Conclusion: We have demonstrated that F-18-FDG can be used to follow the progression of atherosclerosis in apoE(-/-) mice. The gene expression of ten molecular markers representing different molecular processes important for atherosclerosis was shown to correlate with the uptake of F-18-FDG. Especially, the gene expressions of CD68, OPN, TF, and VCAM-1 were strong predictors for the uptake.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Detection and Characterization of Tumor Changes in 18F-FDG PET Patient Monitoring Using Parametric Imaging
    Necib, Hatem
    Garcia, Camilo
    Wagner, Antoine
    Vanderlinden, Bruno
    Emonts, Patrick
    Hendlisz, Alain
    Flamen, Patrick
    Buvat, Irene
    JOURNAL OF NUCLEAR MEDICINE, 2011, 52 (03) : 354 - 361
  • [32] The effect of PPAR-γ agonist on 18F-FDG PET imaging for differentiating tumors and inflammation lesions
    Cheong, Su-Jin
    Lee, Chang-Moon
    Kim, Eun-Mi
    Lim, Seok Tae
    Sohn, Myung-Hee
    Jeong, Hwan-Jeong
    NUCLEAR MEDICINE AND BIOLOGY, 2015, 42 (02) : 85 - 91
  • [33] The role of 18F-FDG PET and PET/CT in the evaluation of primary cutaneous lymphoma
    Qiu, Lin
    Tu, Guojian
    Li, Jing
    Chen, Yue
    NUCLEAR MEDICINE COMMUNICATIONS, 2017, 38 (02) : 106 - 116
  • [34] PET of HER2-Positive Pulmonary Metastases with 18F-ZHER2:342 Affibody in a Murine Model of Breast Cancer: Comparison with 18F-FDG
    Kramer-Marek, Gabriela
    Bernardo, Marcelino
    Kiesewetter, Dale O.
    Bagci, Ulas
    Kuban, Monika
    Omer, Aras
    Zielinski, Rafal
    Seidel, Jurgen
    Choyke, Peter
    Capala, Jacek
    JOURNAL OF NUCLEAR MEDICINE, 2012, 53 (06) : 939 - 946
  • [35] Ferret Thoracic Anatomy by 2-Deoxy-2-(18F)Fluoro-D-Glucose (18F-FDG) Positron Emission Tomography/Computed Tomography (18F-FDG PET/CT) Imaging
    Wu, Albert
    Zheng, Huaiyu
    Kraenzle, Jennifer
    Biller, Ashley
    Vanover, Carol D.
    Proctor, Mary
    Sherwood, Leslie
    Steffen, Marlene
    Ng, Chin
    Mollura, Daniel J.
    Jonsson, Colleen B.
    ILAR JOURNAL, 2012, 53 (01) : E9 - +
  • [36] Effects of age and cardiovascular risk factors on 18F-FDG PET/CT quantification of atherosclerosis in the aorta and peripheral arteries
    Pasha, Ahmed K.
    Moghbel, Mateen
    Saboury, Babak
    Gharavi, Mohammed H.
    Blomberg, Bjorn A.
    Torigian, Drew A.
    Kwee, Thomas C.
    Basu, Sandip
    Mohler, Emile R., III
    Alavi, Abass
    HELLENIC JOURNAL OF NUCLEAR MEDICINE, 2015, 18 (01): : 5 - 10
  • [37] 18F FDG PET/CT and Novel Molecular Imaging for Directing Imnnunotherapy in Cancer
    Hughes, Daniel J.
    Subesinghe, Manil
    Taylor, Benjamin
    Bille, Andrea
    Spicer, James
    Papa, Sophie
    Goh, Vicky
    Cook, Gary J. R.
    RADIOLOGY, 2022, 304 (02) : 246 - 264
  • [38] Assessment of artery calcification in atherosclerosis with dynamic 18F-FDG-PET/CT imaging in elderly subjects
    Al-enezi, Mamdouh S.
    Abdo, Redha-alla
    Mokeddem, Mohamed Yazid
    Slimani, Faical A. A.
    Khalil, Abdelouahed
    Fulop, Tamas
    Turcotte, Eric
    Bentourkia, M'hamed
    INTERNATIONAL JOURNAL OF CARDIOVASCULAR IMAGING, 2019, 35 (05) : 947 - 954
  • [39] Tailoring the clinical management of colorectal cancer by 18F-FDG PET/CT
    Shi, Yang
    Wang, Meiqi
    Zhang, Jiyu
    Xiang, Zheng
    Li, Can
    Zhang, Jingjing
    Ma, Xing
    FRONTIERS IN ONCOLOGY, 2022, 12
  • [40] Impact of 18F-FDG PET/CT on the staging and management of follicular lymphoma
    Metser, U.
    Hussey, D.
    Murphy, G.
    BRITISH JOURNAL OF RADIOLOGY, 2014, 87 (1042)