Computational fluid dynamics study of the synthesis process for a PET radiotracer compound, [11C]raclopride on a microfluidic chip

被引:6
作者
Haroun, Samar [1 ]
Wang, Lin [1 ]
Ruth, Thomas J. [1 ,2 ]
Li, Paul C. H. [1 ]
机构
[1] Simon Fraser Univ, Dept Chem, Burnaby, BC V5A 1S6, Canada
[2] TRIUMF, Div Nucl Med, Vancouver, BC V6T 2A3, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Microfluidic reactor; Positron emission tomography (PET) imaging; Radiotracer; Raclopride; Computational fluid dynamics (CFD); POSITRON-EMISSION-TOMOGRAPHY; MICRO-REACTORS;
D O I
10.1016/j.cep.2013.04.008
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Recent synthetic applications conducted on microfluidic chips have shown improved yields and shorter reaction times as compared to conventional methods. These have generated great interest in the microfluidic synthesis of radiotracer compounds with short lived radioisotopes, such as carbon-11 (t(1/2) - 20.4 mm). For the purpose of microreactor design optimization and to predict synthetic behavior, we launched a study of the radiosynthesis of [11(C)]raclopride on three different microchip designs by computational fluid dynamics, using COMSOL Multiphysics (R). COMSOL's Reaction Engineering Lab (R) tool and convection and diffusion models were used first to investigate the "ideal" reactor and then to study reaction progress in the microchip geometry. Examining the concentration distribution within the microchannel geometry, it was clear that the microchannel length can predict passive mixing and higher product generation than microchannel length. Reducing the flow rate of reagents, premixing the reagents, and increasing reagent concentrations also increased product generation due to increased space times and molecular interactions. For the purpose of simulation, the yield is undesirably reduced by decreasing the diffusion coefficient and the reaction rate constant. This study provides the optimized parameters to redesign the microchip in order to increase the efficiency of micromixing within the microchannels and, therefore, increase the reaction yield. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:140 / 147
页数:8
相关论文
共 44 条
[1]   11C-methylations using 11C-methyl iodide and tetrabutylammonium fluoride [J].
Adam, MJ ;
Jivan, S ;
Huser, JM ;
Lu, J .
RADIOCHIMICA ACTA, 2000, 88 (3-4) :207-209
[2]  
Bailey D.L., 2005, POSITRON EMISSION TO, P30
[3]   Positron emission tomography: a technical introduction for clinicians [J].
Blokland, JAK ;
Trindev, P ;
Stokkel, MPM ;
Pauwels, EKJ .
EUROPEAN JOURNAL OF RADIOLOGY, 2002, 44 (01) :70-75
[4]  
Bruus H., 2007, Theoretical microfluidics
[5]   Study of the pyrolysis of 2-pinanol in tubular and microreactor systems with reaction kinetics and modelling [J].
Buddoo, Subash ;
Siyakatshana, Njabulo ;
Zeelie, Ben ;
Dudas, Jozef .
CHEMICAL ENGINEERING AND PROCESSING-PROCESS INTENSIFICATION, 2009, 48 (09) :1419-1426
[6]   Screening, Selecting, and Designing Microreactors [J].
Cherlo, Siva Kumar Reddy ;
Sreenath, K. ;
Pushpavanam, S. .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2009, 48 (18) :8678-8684
[7]   Control and detection of chemical reactions in microfluidic systems [J].
deMello, Andrew J. .
NATURE, 2006, 442 (7101) :394-402
[8]   Generation of gradients having complex shapes using microfluidic networks [J].
Dertinger, SKW ;
Chiu, DT ;
Jeon, NL ;
Whitesides, GM .
ANALYTICAL CHEMISTRY, 2001, 73 (06) :1240-1246
[9]  
Ehmann W., 1991, RADIOCHEMISTRY NUCL
[10]   Microreactors for radiopharmaceutical synthesis [J].
Elizarov, Arkadij M. .
LAB ON A CHIP, 2009, 9 (10) :1326-1333