EP1119637B2

Small volume in vitro analyte sensor with diffusible or non-leachable redox mediator

Abstract

A sensor utilizing a non-leachable or diffusible redox mediator is described. The sensor includes a sample chamber to hold a sample in electrolytic contact with a working electrode, and in at least some instances, the sensor also contains a non-leachable or a diffusible second electron transfer agent. The sensor and/or the methods used produce a sensor signal in response to the analyte that can be distinguished from a background signal caused by the mediator. The invention can be used to determine the concentration of a biomolecule, such as glucose or lactate, in a biological fluid, such as blood or serum, using techniques such as coulometry, amperometry, and potentiometry. An enzyme capable of catalyzing the electrooxidation or electroreduction of the biomolecule is typically provided as a second electron transfer agent.

EP1119637B2, drawing sheet 1
Sheet 1 of 55

Term

Term ended

Expired 8 October 2019, 7 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

43 claims: 41 independent, 2 dependent

  1. 1
    A sensor (20) for determining the concentration of an analyte In a sample fluid, the sensor comprising:an electrode pair comprising a working electrode (22, 502, 522, 542, 562, 580, 602, 642, 1010) and a counter electrode (24, 510, 530, 550, 570, 584, 610, 650, 1020), wherein at least a portion of the working electrode is within an effective distance of no more than 200 µm of a portion of the counter electrode and, optionally, the counter electrode is a counter/reference electrode;an optional reference electrode (512, 532, 552, 572, 585, 612. 652);a sample chamber (26, 526, 546. 566, 582, 606, 646) for holding the sample fluid in electrolytic contact with the working electrode, the counter electrode, and the reference electrode, if present, the sample chamber comprising a measurement zone positioned adjacent to the working electrode, the counter electrode, and the reference electrode, if present, wherein the measurement zone is sized to contain a volume of no more than about 1 µL of sample fluid and the sample chamber is sized to contain no more than about 1 µL of sample fluid;and an analyte-responsive enzyme and a diffusible redox mediator disposed in the measurement zone;the sensor having been configured and arranged so that a background signal generated by the diffusible redox mediator is no more than the signal generated by oxidation or reduction of the average normal physiological amount of analyte.
  2. 2
    A sensor (20) for determining the concentration of:the analyte glucose in a sample fluid, the sensor comprising: an electrode pair comprising a working electrode (22. 502. 522, 542. 562, 580. 602, 642, 1010) and a counter electrode (24, 510, 530. 550, 570, 584, 610, 650, 1020), wherein the working electrode and counter electrode are separated by an effective distance in a range of 25 to 1000 µm: a sample chamber (26, 526;546, 566, 582, 606, 646) for holding the sample fluid, the sample chamber comprising a measurement zone positioned adjacent to the working electrode and the counter electrode, wherein the measurement zone and the sample chamber are sized to contain a volume of no more than about 1 µL of the sample;and an analyte-responsive enzyme and a diffusible redox mediator disposed in the measurement zone: the sensor having been configured and arranged so that a background signal generated by the diffusible redox mediator is no more than five times a signal generated by oxidation or reduction of 5 mM of glucose and the signal generated by oxidation or reduction of the average normal physiological amount of analyte.
  3. 3
    A sensor according to any of claims 1 and 2, wherein the sensor is configured and arranged so that a background signal generated by the diffusible redox mediator is no more than 25% of the signal generated by oxidation or reduction of the analyte and, preferably, no more than 5% of the signal generated by oxidation or reduction of the analyte.
  4. 4
    A sensor according to any of claims 1 to 3, wherein the sensor comprises:(a) a first substrate (500, 520, 540, 560, 579, 600, 640) having a proximal end and a distal end, the first substrate defining a first side edge (656) and a second side edge (658) of the electrochemical sensor extending from the proximal end to the distal end of the first substrate, the distal end being configured and arranged for insertion into a sensor reader, (b) a second substrate (508, 528, 548, 568, 583, 608, 648) disposed over the first substrate, the working electrode being disposed on one of the first and second substrates and the counter electrode being disposed on one of the first and second substrates;(c) a spacer (28, 504, 524, 544, 564, 581, 604, 644) disposed between the first and second substrates and defining a first aperture along the first side edge of the sensor and a second aperture along the second side edge of the sensor, the sample chamber extending from the first aperture to the second aperture: and (d) at least one indicator electrode disposed on at least one of the first and second substrates and positioned relative to either the.measurement zone or the sample chamber to determine when the measurement zone or sample chamber contains sample.
  5. 5
    A sensor according to any of claims 1 to 3, wherein the sensor comprises:(a) a first substrate having a proximal end and a distal end, the distal end being configured and arranged for insertion into a sensor reader, the first substrate defining a first side edge and a second side edge of the electrochemical sensor extending from the proximal end to the distal end of the first substrate;(b) a second substrate disposed over the first substrate, the working electrode being disposed on one of the first and second substrates and the counter electrode being disposed on one of the first and second substrates: (c) a spacer disposed between the first and second substrates and defining a first aperture along the proximal end of the sensor and a second aperture along the first side edge of the sensor, the sample chamber extending from the first aperture to the second aperture;and (d) at least one indicator electrode disposed on at least one of the first and second substrates and positioned relative to either the measurement zone or the sample chamber to determine when the measurement zone or the sample chamber contains sample.
  6. 6
    A sensor according to any of claims 1 to 3, wherein the sensor comprises an Indicator electrode disposed in the sensor to indicate when either the measurement zone contains a sample or when the sample chamber contains a sample.
  7. 7
    A sensor according to any of claims 4 to 6, wherein the indicator electrode is also a working electrode or a counter electrode.
  8. 8
    A sensor according to any of claims 4 to 7, further comprising a visual or auditory sign, coupled to the indicator electrode, that activates when the indicator electrode indicates that the measurement zone or sample chamber contains sample.
  9. 9
    A sensor according to any of claims 4 to 8, wherein the indicator electrode is disposed in facing relationship to one of the working electrode and the counter electrode.
  10. 10
    A sensor according to any of claims 4 to 9, wherein the sensor comprises at least two indicator electrodes disposed in the sensor wherein a first indicator electrode indicates when the measurement zone or sample chamber is beginning to fill with sample, and a second indicator electrode indicates when the measurement zone or sample chamber is substantially filled with sample.
  11. 11
    A sensor according to any of claims 4 to 9, wherein the sensor comprises at least two indicator electrodes disposed in the sensor, wherein two of the indicator electrodes comprise a first counter/indicator electrode and a second counter/indicator electrode with the counter electrode disposed between the first and second counter/indicator electrodes.
  12. 12
    A sensor according to any of claims 1 to 11, wherein the measurement zone and the sample chamber have a same volume.
  13. 13
    A sensor according to any of claims 1 to 12, wherein the analyte is glucose and the analyte-responsive enzyme is a glucose-responsive enzyme.
  14. 14
    A sensor according to any of claims 1 to 12, wherein the analyte is a drug.
  15. 15
    A sensor according to any of claims 1 to 14, wherein the measurement zone is bounded on at least two sides by the working electrode and the counter electrode and, optionally, the working electrode and counter electrode form a facing electrode pair with the measurement zone positioned between the working electrode and the counter electrode.
  16. 16
    A sensor according to any of claims 1 to 15, wherein the sensor is configured and arranged so that the mediator oxidizes the analyte and the half-wave potential of the redox mediator, as measured by cyclic voltammetry in 0.1 M NaCl at pH 7, is no more than about +100 millivolts relative to the potential of the counter/reference electrode.
  17. 17
    A sensor according to any of claims 1 to 16, wherein the sensor Is configured and arranged so that the mediator oxidizes the analyte and the half-wave potential of the redox mediator, as measured by cyclic voltammetry in 0.1 M NaCl at pH 7, is about the same as the potential of the counter/reference electrode.
  18. 18
    A sensor according to any of claims 1 to 17, wherein the sensor is configured and arranged so that the mediator oxidizes the analyte, and the half-wave potential of the redox mediator, as measured by cyclic voltammetry in 0.1 M NaCl at pH 7, is no more than about -150 millivolts relative to the potential of the counter/reference electrode.
  19. 19
    A sensor according to any of claims 1 to 18, wherein, within the sensor, the effective diffusion coefficient of the redox mediator through the sample fluid is less than the effective diffusion coefficient of the analyte through the sample fluid and, preferably, at least ten times less than the effective diffusion coefficient of the analyte through the sample fluid.
  20. 20
    A sensor according to any of claims 1 to 19, wherein the diffusible mediator has a molecular weight of at least 5,000 daltons.
  21. 21
    A sensor according to any of claims 1 to 20, wherein the sensor is configured and arranged so that the redox mediator is more readily electrolyzed on the working electrode than the counter electrode.
  22. 22
    A sensor according to any of claims 1 to 21, wherein the sensor comprises a molar amount of the redox mediator that is, on a stoichiometric basis, no more than an average normal physiological amount of the analyte and, preferably, the sensor comprises a molar amount of the redox mediator that is, on a stoichiometric basis, no more than 20% of an average norman physiological amount of the analyte.
  23. 23
    A sensor according to any of claims 1 to 22, wherein the working electrode has a surface area of no more than about 0.01 cm 2 exposed in the measurement zone.
  24. 24
    A sensor according to any of claims 1 to 23, wherein the activity of the enzyme is no more than 1 unit/cm 3
  25. 25
    A sensor according to any of claims 1 to 24, wherein the sensor is configured and arranged so that the diffusible redox mediator precipitates when reacted at the counter electrode.
  26. 26
    A sensor according to any of claims 1 to 25, wherein the sensor is configured and arranged so that a mathematical product of the effective diffusion coefficient of the redox mediator and the concentration of the redox mediator is no more than 1 x 10 -12 moles cm -1 sec -1 when sample fluid fills the measurement zone.
  27. 27
    A sensor according to any of claims 1 to 26, wherein the diffusible redox mediator ls disposed on the working electrode.
  28. 28
    A sensor according to any of claims 1 to 27, wherein the analyte-responsive enzyme is disposed on the working electrode.
  29. 29
    A method for determining a concentration of an analyte in a sample, comprising the steps of:contacting a sample with any of the electrochemical sensors of claims 1 to 28;generating a sensor signal at the working electrode, and determining the concentration of the analyte using the sensor signal.
  30. 31
    A method according to any of claims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by coulometry using the sensor signal.
  31. 32
    A method according to any of ciaims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by amperometry using the sensor signal.
  32. 33
    A method according to any of claims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by potentiometry using the sensor signal.
  33. 34
    A method according to any of claims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by chronoamperometry using the sensor signal.
  34. 35
    A method according to any of claims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by chronopotentiometry using the sensor signal.
  35. 36
    A method according to any of claims 29 to 30, wherein determining the concentration of the analyte comprises determining the concentration of the analyte by a Cotrell measurement technique using the sensor signal.
  36. 37
    A method according to any of claims 29 to 36, further comprising:providing calibration data on a batch of the electrochemical sensors to a measurement instrument, said calibration data comprising information related to a magnitude of a background charge for the batch of the electrochemical sensors;wherein the step of determining the concentration of the analyte comprises determining the concentration of the analyte using the sensor signal and the calibration data.
  37. 38
    A method for determining a concentration of an analyte in a sample, the method comprising the steps of:contacting a sample with any of the electrochemical sensors of claims 1 to 28;observing a signal from the indicator electrode to signify that the measurement zone contains sample;applying a potential between the working electrode and the counter electrode to electrolyze the analyte in the sample;generating an analyte-responsive signal from the sensor in response to electrolysis of the analyte in the sample;and determining the concentration of the analyte using the analyte-responsive signal.
  38. 39
    A method of manufacturing any of the electrochemical sensors of claims 1 to 28, the method comprising:(a) forming a plurality of working electrodes on a first substrate;(b) forming a plurality of counter electrodes on a second substrate;(c) disposing a spacer layer on one of the first and second substrates;(d) removing a portion of the spacer layer to define sample chamber regions;(e) laminating the first and second substrates together;and (f) separating a plurality of electrochemical sensors from the laminated substrates, each electrochemical sensor comprising at least one of the working electrodes at least one of the counter electrodes, and at least one of the sample chamber regions.
  39. 41
    A method according to any of claims 39 and 40, wherein separating the plurality of electrochemical sensors comprises cutting the first and second substrates to separate the electrochemical sensors and to define at least one end of the sample chamber of the electrochemical sensors.
  40. 42
    A method according to any of claims 39 to 41, further comprising forming a plurality of indicator electrodes on one of the first and second substrates
  41. 43
    A method according to any of claims 39 to 42, wherein the portion of the spacer layer is removed to define the sample chamber regions after the spacer layer is disposed on one of the first and second substrates.
Independent claims41