IP Library Patent Application 12421619
Patent Application
App. No. 12/421,619

Electrodes With Multilayer Membranes And Methods Of Making The Electrodes

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Quick Facts
Patent No.
US None
App. No.
12/421,619
Abstract

A sensor including a sensing layer is disposed over an electrode or an optode and a layer-by-layer assembled mass transport limiting membrane disposed over the sensing layer. The membrane includes at least one layer of a polyanionic or polycationic material. The assembled layers of the membrane are typically disposed in an alternating manner. The sensor also optionally includes a biocompatible membrane.

Claims (59)

1 . (canceled)

2 . A system for monitoring analyte concentration in a biological sample of a host, the system comprising:

a substantially continuous analyte sensor configured to produce a data signal indicative of an analyte concentration in a host during exposure of the sensor to a biological sample;

a reference solution, wherein the system is configured to expose the sensor to the reference solution, and wherein the system is configured to produce a data signal indicative of an analyte concentration in the reference solution during exposure of the sensor to the reference solution; and

a computer system comprising programming configured to determine calibration information and to calibrate a signal associated with a biological sample therefrom, wherein the calibration information comprises steady state information and transient information.

3 . The system of claim 2 , wherein the reference solution has a known analyte concentration.

4 . The system of claim 2 , wherein the calibration information is determined from a signal associated with exposure of the sensor to the reference solution and a signal associated with exposure of the sensor to the biological sample.

5 . The system of claim 2 , wherein the steady state information comprises at least one of sensitivity information and baseline information.

6 . The system of claim 5 , wherein the steady state information comprises sensitivity information and baseline information.

7 . The system of claim 2 , wherein steady state information comprises information associated with a signal produced during exposure of the sensor to the reference solution.

8 . The system of claim 7 , wherein the reference solution comprises a known analyte concentration of about zero, and wherein the steady state information comprises baseline information about the sensor in the reference solution.

9 . The system of claim 7 , wherein the reference solution comprises a known analyte concentration of more than zero, and wherein the steady state information comprises sensitivity information about the sensor.

10 . The system of claim 2 , wherein the steady state calibration information comprises reference data from an analyte sensor other than the substantially continuous analyte sensor.

11 . The system of claim 2 , wherein transient information comprises a rate of change of a signal produced during exposure of the sensor to a step change in analyte concentration.

12 . The system of claim 11 , wherein the rate of change comprises a rate change of a signal produced during exposure of the sensor to a biological sample of an unknown analyte concentration or an uncalibrated analyte concentration.

13 . The system of claim 11 , wherein the rate of change comprises a rate change of a signal produced during exposure of the sensor to a biological sample, and wherein steady state information comprises reference data from an analyte sensor other than the substantially continuous analyte sensor.

14 . The system of claim 2 , wherein transient information comprises response of a signal produced during exposure of the sensor to a change in analyte concentration.

15 . The system of claim 14 wherein the response includes an impulse response, and the change in analyte concentration includes a step change in analyte concentration.

16 . The system of claim 14 , wherein the response is used to determine an offset between a baseline measurement associated with the reference solution and a baseline measurement associated with a biological sample.

17 . The system of claim 14 , wherein the response is used to determine a time point of a steady state measurement during which an analyte concentration can be obtained.

18 . The system of claim 2 , wherein the transient information comprises a comparison of steady state information and transient information for a plurality of time spaced signals associated with biological samples of unknown analyte concentration or uncalibrated analyte concentration.

19 . The system of claim 18 , wherein the comparison of steady state information and transient information is used to determine an offset between a baseline measurement associated with the reference solution and a baseline measurement associated with a biological sample.

20 . The system of claim 18 , further comprising programming to detect a shift in baseline or sensitivity based on a comparison of steady state information and transient information.

21 . The system of claim 20 , further comprising programming configured to initiate calibration of the signal to correct for a shift in at least one of baseline and sensitivity based on a comparison of steady state information and transient information.

22 . The system of claim 20 , further comprising programming configured to calibrate of the signal to correct for a shift in at least one of baseline and sensitivity based on a comparison of steady state information and transient information.

23 . The system of claim 2 , wherein the programming is configured to calibrate a signal is configured to perform at least one of initial calibration and update calibration.

24 . The system of claim 2 , wherein the analyte sensor is a glucose sensor.

25 . A system for monitoring analyte concentration in a biological sample of a host, the system comprising:

a substantially continuous analyte sensor configured to produce a data signal indicative of an analyte concentration in a host during exposure of the sensor to a biological sample;

a reference solution, wherein the system is configured to expose the sensor to the reference solution, and wherein the system is configured to produce a data signal indicative of an analyte concentration in the reference solution during exposure of the sensor to the reference solution; and

a computer system comprising programming configured to determine calibration information and to calibrate a signal associated with a biological sample therefrom, wherein the calibration information is determined from a signal associated with exposure of the sensor to the reference solution and a signal associated with exposure of the sensor a biological sample, wherein the biological sample is of unknown analyte concentration or uncalibrated analyte concentration.

26 . The system of claim 25 , wherein the reference solution has a known analyte concentration.

27 . The system of claim 25 , wherein calibration information comprises steady state information and transient information

28 . The system of claim 25 , wherein steady state information comprises at least one of sensitivity information and baseline information

29 . The system of claim 25 , wherein transient information comprises a rate of change of the sensor's signal responsive to exposure of the sensor to a change in analyte concentration

30 . The system of claim 25 , wherein transient information comprises a rate of change of a signal produced during exposure of the sensor to a step change in analyte concentration.

31 . The system of claim 25 , wherein the analyte sensor is a glucose sensor.

32 . A system for monitoring analyte concentration in a biological sample of a host, the system comprising:

a substantially continuous analyte sensor configured to produce a data signal indicative of an analyte concentration in a host during exposure of the sensor to a biological sample;

a reference solution, wherein the system is configured to expose the sensor to the reference solution, and wherein the system is configured to produce a data signal indicative of an analyte concentration in the reference solution during exposure of the sensor to the reference solution; and

a computer system comprising programming configured to determine calibration information and calibrate a signal associated with a biological sample therefrom, wherein the calibration information is determined from at least one of a signal associated with exposure of the sensor to the reference solution and a signal associated with exposure of the sensor to a biological sample, wherein the biological sample is of unknown analyte concentration or uncalibrated analyte concentration.

33 . The system of claim 32 , wherein the reference solution has a known analyte concentration.

34 . The system of claim 32 , wherein the computer system further comprises programming configured to diagnose a condition of at least one of the sensor and the host responsive to calibration information.

35 . The system of claim 32 , wherein calibration information comprises baseline information, and wherein the system comprises programming configured to determine an offset between a baseline associated with a reference solution and a baseline associated with a biological sample.

36 . The system of claim 35 , wherein the offset is determined by processing an impulse response of the sensor's signal during exposure of the sensor to a step change in analyte concentration.

37 . The system of claim 35 , wherein the offset is determined by a comparison of steady state information and transient information for a plurality of time spaced samples of a biological sample of unknown analyte concentration or uncalibrated analyte concentration.

38 . The system of claim 35 , wherein the computer system further comprises programming configured to detect an interfering species.

39 . The system of claim 38 wherein the interfering species is responsive to a change in the offset above a predetermined amount.

40 . The system of claim 35 , wherein the computer system further comprises programming configured to diagnose a condition of the host's metabolic processes responsive to a change in the offset above a predetermined amount.

41 . The system of claim 40 , wherein the computer system further comprises programming configured to display or transmit a message associated with the host's condition responsive to diagnosing the condition.

42 . The system of claim 35 , wherein the computer system further comprises programming configured to diagnose an error and fail safe responsive to a change in the offset above a predetermined amount.

43 . The system of claim 35 , wherein the computer system further comprises programming configured to recalibrate the sensor responsive to a change in the offset above a predetermined amount.

44 . The system of claim 32 , wherein calibration information comprises sensitivity information, and wherein the system comprises programming configured to diagnose an error responsive to a change in sensitivity above a predetermined amount.

45 . The system of claim 32 , wherein the computer system further comprises programming configured to calculate an response of a signal produced during exposure of the sensor to a change in analyte concentration, and wherein a time constant for the change is determined from the time of the peak response.

46 . The system of claim 45 wherein the response of the signal includes an impulse response.

47 . The system of claim 45 wherein the change in analyte concentration includes a step change.

48 . The system of claim 45 wherein the time constant for the change includes a time constant for a step change.

49 . The system of claim 45 wherein the time of the peak response includes the time of the peak impulse response.

50 . The system of claim 45 , wherein the step of calculating an response is repeated more than one time, and wherein the computer system further comprises programming configured to diagnose a sensor condition or error responsive to a change in the time constants associated with the plurality of step changes above a predetermined threshold.