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Table representation of search results timeline featuring number of search results per year.

Year Number of Results
1797 2
1799 2
1801 2
1802 1
1803 2
1804 4
1809 2
1810 2
1811 4
1814 1
1816 2
1817 1
1819 1
1820 2
1823 2
1824 1
1827 1
1828 2
1829 1
1830 3
1831 2
1834 2
1835 1
1836 3
1837 3
1838 3
1839 4
1840 5
1841 1
1842 9
1843 4
1844 4
1845 7
1846 5
1847 6
1848 3
1849 2
1850 1
1851 2
1852 7
1853 3
1854 6
1855 2
1856 3
1857 4
1858 2
1859 2
1860 3
1861 3
1862 1
1863 1
1864 3
1866 4
1867 3
1868 6
1869 7
1870 3
1871 2
1872 10
1873 5
1874 9
1875 6
1876 4
1877 3
1878 1
1879 3
1880 5
1881 12
1882 20
1883 8
1884 14
1885 8
1886 8
1887 7
1888 3
1889 11
1890 19
1891 21
1892 16
1893 9
1894 4
1895 8
1896 8
1897 14
1898 14
1899 10
1900 27
1901 14
1902 8
1903 13
1904 15
1905 22
1906 13
1907 17
1908 23
1909 23
1910 16
1911 25
1912 30
1913 31
1914 25
1915 46
1916 41
1917 38
1918 40
1919 33
1920 33
1921 46
1922 42
1923 48
1924 51
1925 62
1926 56
1927 60
1928 60
1929 53
1930 55
1931 57
1932 44
1933 37
1934 50
1935 55
1936 64
1937 45
1938 58
1939 46
1940 51
1941 45
1942 30
1943 47
1944 38
1945 1412
1946 4895
1947 5953
1948 5158
1949 4623
1950 7296
1951 8555
1952 8454
1953 9198
1954 9710
1955 9828
1956 10350
1957 11031
1958 11238
1959 11816
1960 12546
1961 13650
1962 14328
1963 18640
1964 23883
1965 33831
1966 42178
1967 47104
1968 51761
1969 56445
1970 57168
1971 60960
1972 65122
1973 67703
1974 69845
1975 72134
1976 70100
1977 71097
1978 73491
1979 78070
1980 80831
1981 81840
1982 84803
1983 87322
1984 90606
1985 92857
1986 96207
1987 98350
1988 102728
1989 107350
1990 111148
1991 111762
1992 112491
1993 114562
1994 118175
1995 119839
1996 120661
1997 122503
1998 125740
1999 127392
2000 134621
2001 137598
2002 142444
2003 148129
2004 156743
2005 168150
2006 180373
2007 185998
2008 193558
2009 200380
2010 210818
2011 219566
2012 229675
2013 237034
2014 238274
2015 238513
2016 233977
2017 230725
2018 233833
2019 237091
2020 243986
2021 237425
2022 199653
2023 182360
2024 53774
2025 1

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7,561,270 results

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Page 1
Imaging molecules.
Vinogradov E. Vinogradov E. J Magn Reson. 2019 Sep;306:145-149. doi: 10.1016/j.jmr.2019.07.022. Epub 2019 Jul 9. J Magn Reson. 2019. PMID: 31337563 Review.
In this short perspective we focus on some direct and indirect methods to visualize endogenous molecules. We briefly discuss Spectroscopic Imaging (MRSI), Chemical Exchange Saturation Transfer (CEST) and Magnetization Transfer Contrast (MTC). ...
In this short perspective we focus on some direct and indirect methods to visualize endogenous molecules. We briefly discuss Spectroscopic I …
Dynamic Glucose-Enhanced MR Imaging.
Paech D, Radbruch A. Paech D, et al. Magn Reson Imaging Clin N Am. 2021 Feb;29(1):77-81. doi: 10.1016/j.mric.2020.09.009. Epub 2020 Nov 2. Magn Reson Imaging Clin N Am. 2021. PMID: 33237017 Review.
Dynamic glucose-enhanced MR imaging represents a novel technique that uses natural, unlabeled d-glucose as a nontoxic biodegradable contrast agent in chemical exchange-sensitive MR imaging approaches....
Dynamic glucose-enhanced MR imaging represents a novel technique that uses natural, unlabeled d-glucose as a nontoxic biodegra …
d-glucose weighted chemical exchange saturation transfer (glucoCEST)-based dynamic glucose enhanced (DGE) MRI at 3T: early experience in healthy volunteers and brain tumor patients.
Xu X, Sehgal AA, Yadav NN, Laterra J, Blair L, Blakeley J, Seidemo A, Coughlin JM, Pomper MG, Knutsson L, van Zijl PCM. Xu X, et al. Magn Reson Med. 2020 Jul;84(1):247-262. doi: 10.1002/mrm.28124. Epub 2019 Dec 24. Magn Reson Med. 2020. PMID: 31872916 Free PMC article.
PURPOSE: Dynamic glucose enhanced (DGE) MRI has shown potential for imaging glucose delivery and blood-brain barrier permeability at fields of 7T and higher. Here, we evaluated issues involved with translating d-glucose weighted chemical exchange sa
PURPOSE: Dynamic glucose enhanced (DGE) MRI has shown potential for imaging glucose delivery and blood-brain barrier permeability at fields …
Molecular imaging of tumors by chemical exchange saturation transfer MRI of glucose analogs.
Rivlin M, Navon G. Rivlin M, et al. Quant Imaging Med Surg. 2019 Oct;9(10):1731-1746. doi: 10.21037/qims.2019.09.12. Quant Imaging Med Surg. 2019. PMID: 31728315 Free PMC article. Review.
Increased glucose demand has been recognized as one of the hallmarks of cancerous cells (the "Warburg effect"), hence glucose and its analogs are commonly used for cancer imaging. One example is FDG-PET technique, that led to the use of chemical exchange saturati
Increased glucose demand has been recognized as one of the hallmarks of cancerous cells (the "Warburg effect"), hence glucose and its analog …
Multiparametric chemical exchange saturation transfer MRI detects metabolic changes in breast cancer following immunotherapy.
Hoffmann E, Schache D, Höltke C, Soltwisch J, Niland S, Krähling T, Bergander K, Grewer M, Geyer C, Groeneweg L, Eble JA, Vogl T, Roth J, Heindel W, Maus B, Helfen A, Faber C, Wildgruber M, Gerwing M, Hoerr V. Hoffmann E, et al. J Transl Med. 2023 Aug 28;21(1):577. doi: 10.1186/s12967-023-04451-6. J Transl Med. 2023. PMID: 37641066 Free PMC article.
The purpose of this study was to investigate whether multiparametric chemical exchange saturation transfer magnetic resonance imaging (CEST-MRI) allows to detect differences in the metabolic profiles of the TME in murine breast cancer models with diver …
The purpose of this study was to investigate whether multiparametric chemical exchange saturation transfer magne …
Application of Chemical Exchange Saturation Transfer (CEST) in neuroimaging.
Mamoune KE, Barantin L, Adriaensen H, Tillet Y. Mamoune KE, et al. J Chem Neuroanat. 2021 Jul;114:101944. doi: 10.1016/j.jchemneu.2021.101944. Epub 2021 Mar 11. J Chem Neuroanat. 2021. PMID: 33716103 Review.
To gain neurochemical information using MRI, new categories of contrast agents were developed from the beginning of the 2000's, particularly using the chemical-exchange saturation transfer (CEST) method. This method induces a significant change in the …
To gain neurochemical information using MRI, new categories of contrast agents were developed from the beginning of the 2000's, particularly …
Nuts and bolts of chemical exchange saturation transfer MRI.
Liu G, Song X, Chan KW, McMahon MT. Liu G, et al. NMR Biomed. 2013 Jul;26(7):810-28. doi: 10.1002/nbm.2899. Epub 2013 Jan 10. NMR Biomed. 2013. PMID: 23303716 Free PMC article. Review.
Chemical exchange saturation transfer (CEST) has emerged as a novel MRI contrast mechanism that is well suited for molecular imaging studies. ...
Chemical exchange saturation transfer (CEST) has emerged as a novel MRI contrast mechanism that is well suited f
Nanoparticle-based chemical exchange saturation transfer (CEST) agents.
Castelli DD, Terreno E, Longo D, Aime S. Castelli DD, et al. NMR Biomed. 2013 Jul;26(7):839-49. doi: 10.1002/nbm.2974. NMR Biomed. 2013. PMID: 23784956 Review.
The frequency-encoding property of chemical exchange saturation transfer (CEST) agents places them in a unique position among the MRI contrast agents, as it allows the visualization of more agents in the same MR image, as well as making it possible to …
The frequency-encoding property of chemical exchange saturation transfer (CEST) agents places them in a unique p …
Magnetic resonance chemical exchange saturation transfer imaging and nanotechnology.
Winter PM. Winter PM. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2012 Jul-Aug;4(4):389-98. doi: 10.1002/wnan.1167. Epub 2012 Mar 15. Wiley Interdiscip Rev Nanomed Nanobiotechnol. 2012. PMID: 22422650 Review.
Chemical exchange saturation transfer (CEST) agents and paramagnetic CEST (PARACEST) agents display bound water signals that exchange protons with the bulk water. ...
Chemical exchange saturation transfer (CEST) agents and paramagnetic CEST (PARACEST) agents display bound water
7,561,270 results
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