NMR analysis on microfluidic devices by remote detection

被引:44
作者
McDonnell, EE [1 ]
Han, SL
Hilty, C
Pierce, KL
Pines, A
机构
[1] Lawrence Berkeley Natl Lab, Div Mat Sci, Berkeley, CA 94720 USA
[2] Univ Calif Berkeley, Dept Chem, Berkeley, CA 94720 USA
关键词
D O I
10.1021/ac051320+
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
We present a novel approach to perform high-sensitivity NMR imaging and spectroscopic analysis on microfluidic devices. The application of NMR, the most information-rich spectroscopic technique, to microfluidic devices remains a challenge because the inherently low sensitivity of NMR is aggravated by small fluid volumes leading to low NMR signal and geometric constraints resulting in poor efficiency for inductive detection. We address the latter by physically separating signal detection from encoding of information with remote detection. Thereby, we use a commercial imaging probe with sufficiently large diameter to encompass the entire device, enabling encoding of NMR information at any location on the chip. Because large-diameter coils are too insensitive for detection, we store the encoded information as longitudinal magnetization and flow it into the outlet capillary. There, we detect the signal with optimal sensitivity, using a solenoidal microcoil, and reconstruct the information encoded in the fluid. We present a generally applicable design for a detection-only microcoil probe that can be inserted into the bore of a commercial imaging probe. Using hyperpolarized Xe-129 gas, we show that this probe enables sensitive reconstruction of NMR spectroscopic information encoded by the large imaging probe while keeping the flexibility of a large coil.
引用
收藏
页码:8109 / 8114
页数:6
相关论文
共 36 条
[1]   Micro total analysis systems. 2. Analytical standard operations and applications [J].
Auroux, PA ;
Iossifidis, D ;
Reyes, DR ;
Manz, A .
ANALYTICAL CHEMISTRY, 2002, 74 (12) :2637-2652
[2]   An integrated nanoliter DNA analysis device [J].
Burns, MA ;
Johnson, BN ;
Brahmasandra, SN ;
Handique, K ;
Webster, JR ;
Krishnan, M ;
Sammarco, TS ;
Man, PM ;
Jones, D ;
Heldsinger, D ;
Mastrangelo, CH ;
Burke, DT .
SCIENCE, 1998, 282 (5388) :484-487
[3]   Microfabricated devices in biotechnology and biochemical processing [J].
Chován, T ;
Guttman, A .
TRENDS IN BIOTECHNOLOGY, 2002, 20 (03) :116-122
[4]   Measuring reaction kinetics by using multiple microcoil NMR spectroscopy [J].
Ciobanu, L ;
Jayawickrama, DA ;
Zhang, XZ ;
Webb, AG ;
Sweedler, JV .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2003, 42 (38) :4669-4672
[5]   3D MR microscopy with resolution 3.7 μm by 3.3 μm by 3.3 μm [J].
Ciobanu, L ;
Seeber, DA ;
Pennington, CH .
JOURNAL OF MAGNETIC RESONANCE, 2002, 158 (1-2) :178-182
[6]   Lab-on-a-chip: A revolution in biological and medical sciences. [J].
Figeys, D ;
Pinto, D .
ANALYTICAL CHEMISTRY, 2000, 72 (09) :330A-335A
[7]   Femtomole mixer for microsecond kinetic studies of protein folding [J].
Hertzog, DE ;
Michalet, X ;
Jäger, M ;
Kong, XX ;
Santiago, JG ;
Weiss, S ;
Bakajin, O .
ANALYTICAL CHEMISTRY, 2004, 76 (24) :7169-7178
[8]   Microfluidic gas-flow profiling using remote-detection NMR [J].
Hilty, C ;
McDonnell, EE ;
Granwehr, J ;
Pierce, KL ;
Han, SI ;
Pines, A .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (42) :14960-14963
[9]   NMR RECEIVER - DESCRIPTION AND ANALYSIS OF DESIGN [J].
HOULT, DI .
PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 1978, 12 :41-77
[10]   Micromixer-based time-resolved NMR: Applications to ubiquitin protein conformation [J].
Kakuta, M ;
Jayawickrama, DA ;
Wolters, AM ;
Manz, A ;
Sweedler, JV .
ANALYTICAL CHEMISTRY, 2003, 75 (04) :956-960