Magnetic resonance system and method to detect and confirm analytes
A system and method are provided to detect target analytes based on magnetic resonance measurements. Magnetic structures produce distinct magnetic field regions having a size comparable to the analyte. When the analyte is bound in those regions, magnetic resonance signals from the sample are changed, leading to detection of the analyte.
1. A method for detecting whether an analyte is present using magnetic resonance and paramagnetic particles, the method comprising:
applying a first magnetic field to a sample comprising a material to be analyzed, a known liquid and paramagnetic particles having an affinity material, wherein the affinity material binds the analyte but does not form agglomerations;
applying a second magnetic field within at least one region of the sample such that the magnetic resonance signals of the liquid in the at least one region are different from magnetic resonance signals of the liquid exterior to the at least one region, wherein the second magnetic field is created by the paramagnetic particles in the presence of the first magnetic field;
holding the analyte with the affinity material in the at least one region, so as to inhibit spin-spin relaxation in the known liquid, thereby causing an increase in the spin-spin relaxation time (“T2”) of the known liquid;
exciting magnetic resonance signals from the liquid while the analyte is in the at least one region;
determining the T2 of the sample from the magnetic resonance; and
determining the presence of the analyte by determining whether the determined T2 is greater than the T2 of the combination of the known liquid with the paramagnetic particles.
2. The method of claim 1 wherein the second magnetic field is such that magnetic resonance signals of the known liquid in the second magnetic field can be distinguished from magnetic resonance signals of the liquid exterior to the second magnetic field.
3. The method of claim 1 further comprising determining the amount of the analyte in the sample from the determined T2.
4. The method of claim 1 wherein the stoichiometry of the paramagnetic particles prevents agglomeration.
5. The method of claim 1 further comprising measuring T2 of the liquid and paramagnetic particles without the material to be analyzed.
6. The method of claim 1 further comprising measuring the longitudinal relaxation time (“T1”) of the sample to determine the concentration of nanoparticles in the sample and using that determination to determine a baseline for determining whether an increase in T2 has occurred.