C-13-NMR AND P-31-NMR STUDIES OF HUMAN COLON CANCER INVITRO AND INVIVO

被引:21
作者
SINGER, S
OKUNIEFF, P
GOSTIN, C
THILLY, WG
CHEN, LB
NEURINGER, LJ
机构
[1] Division of Surgical Oncology, Department of Surgery, Brigham and Woman's Hospital, Boston, MA
[2] Francis Bitter National Magnet Laboratory, Massachusetts Institute of Technology, Cambridge, MA
[3] Center for Environmental Health Sciences, Massachusetts Institute of Technology, Cambridge, MA
[4] Dana Farber Cancer Institute, Boston, MA
来源
SURGICAL ONCOLOGY-OXFORD | 1993年 / 2卷 / 01期
关键词
CANCER; CELLS; COLON; METABOLISM; TUMOR;
D O I
10.1016/0960-7404(93)90039-2
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
We report comparative P-31-NMR studies in-vivo and in-vitro of the human adenocarcinoma cell line HCT-116 in a high-density, perfused microcarrier culture and as a tumour from the same cell line grown in three different immune-suppressed animal models (NIH triple deficient, Nude, SCID). The phosphate metabolite ratios, pH(NMR) and intracellular free magnesium, derived from the P-31-NMR spectra, were compared for the in-vivo and in-vitro systems. Results obtained with HCT-116 cells on microcarrier beads are quantitatively similar to that of small (122 mm3), tumours in-vivo derived from the same cell line in any of the immune-suppressed animal systems studied. This suggests that in-vitro microcarrier cell culture serves as a useful model system for deriving information about metabolism of small, tumours in-vivo. It offers the additional advantages of allowing for precise control of substrate milieu, perfusion and oxygenation. The microcarrier system was also used to measure flux through glycolysis and the pentose cycle. In particular, we measured glucose utilization and the production of lactate, alanine, glutamine and glycogen in proton-decoupled C-13-NMR experiments following administration of [1-C-13] glucose. We found that (63% +/- 6%) of the glucose utilized was released as [3-C-13] lactate in the presence of oxygen, indicating that the HCT-116 cells have a high level of aerobic glycolysis. Serial labelling experiments with [1-C-13] glucose and [6-C-13] glucose reveal that at least (11.6% +/- 1.3%) of the glucose utilized enters the pentose cycle. We determined that (6.9% +/- 1.2%) of the glucose utilized is recycled to glucose via the pentose cycle while (4.7% +/- 1.4%) of the glucose utilized enters the pentose cycle to form lactate. The high rate of recycling via the pentose cycle suggests that a significant fraction of cellular NADPH is generated by the pentose cycle as opposed to generation by the malate-pyruvate shuttle.
引用
收藏
页码:7 / 18
页数:12
相关论文
共 31 条
[1]  
Aue, Non-invasive localized NMR spectroscopy in-vivo: volume selective excitation, Ann NY Acad Sci, 508, pp. 360-365, (1987)
[2]  
Bottomley, Human in-vivo NMR spectroscopy in diagnostic medicine: clinical tool or research probe?, Radiology, 170, (1989)
[3]  
Brown, Kincaid, Ugurbil, NMR chemical shift imaging in three dimensions, Proc Nat Acad Sci USA, 79, (1982)
[4]  
Frahm, Bruhn, Gyngell, Merboldt, Hanicke, Sauter, Localized proton NMR spectroscopy in different regions of the human brain in-vivo. Relaxation times and concentrations of cerebral metabolites, Magn Reson Med, 11, pp. 47-63, (1989)
[5]  
Luyten, Groen, Vermeulen, Den Hollander, Experimental approaches to image localized human <sup>31</sup>P NMR spectroscopy, Magn Reson Med, 11, pp. 1-21, (1989)
[6]  
Majors, Ng, Xu, Meaney, Monitoring therapeutic response of human superficial tumors using phase-encoded spectroscopy, Magn Reson Med, 12, pp. 369-378, (1989)
[7]  
Ng, Grundfest, Vijayakumar, Et al., Therapeutic response of breast carcinoma monitored by <sup>31</sup>P MRS in situ, Magn Reson Med, 10, pp. 125-134, (1989)
[8]  
Segebarth, Baleriaux, Luyten, Den Hollander, Detection of metabolic heterogeneity of human intracranial tumors in-vivo by <sup>1</sup>H NMR spectroscopic imaging, Magn Reson Med, 13, pp. 62-76, (1990)
[9]  
Steen, Response of solid tumors to chemotherapy monitored by in-vivo<sup>31</sup>P nuclear magnetic resonance spectroscopy: a review, Cancer Res, 49, pp. 4075-4085, (1989)
[10]  
Ugurbil, Guernsey, Brown, Glynn, Tobkes, Edelman, <sup>31</sup>P NMR studies of intact anchoragedependent mouse embryo fibroblasts, Proc Natl Acad Sci USA, 78, pp. 4843-4847, (1981)