EP4023764A2

Binding probe circuits for molecular sensors

Abstract

In various embodiments a molecular circuit is disclosed. The circuit comprises a negative electrode, a positive electrode spaced apart from the negative electrode, and a binding probe molecule conductively attached to both the positive and negative electrodes to form a circuit having a conduction pathway through the binding probe. In various examples, the binding probe is an antibody, the Fab domain of an antibody, a protein, a nucleic acid oligomer hybridization probe, or an aptamer. The circuit may further comprise molecular arms used to wire the binding probe to the electrodes. In various embodiments, the circuit functions as a sensor wherein electrical signals, such as changes to voltage, current, impedance, conductance, or resistance in the circuit, are measured as targets interact with the binding probe. In various embodiments, the circuit provides a means to measure the presence, absence, or concentration of an analyte in a solution.

EP4023764A2, drawing sheet 1
Sheet 1 of 26

Term

Projected expiry 25 April 2038.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

15 claims: 10 independent, 5 dependent

  1. 1
    A circuit comprising:a positive electrode;a negative electrode spaced apart from the positive electrode;anda binding probe connected to both the positive and negative electrodes to form a conductive pathway between the positive and negative electrodes, further comprising at least one arm molecule having first and second ends, the first end bonded to the binding probe and the second end bonded to at least one of the electrodes, wherein the at least one arm molecule acts as an electrical wire between the binding probe and at least one of the electrodes and wherein the at least one arm molecule comprises a protein alpha-helix, a graphene nanoribbon, or an antibody Fab domain.
  2. 4
    The circuit of any one of claims 1 to 3, wherein at least one of the electrodes is connected to an internal structural element of the binding probe;wherein optionally the internal structural element is selected from the group consisting of an alpha-helix, a beta-sheet, and a multiple of such elements in series.
  3. 5
    The circuit of any one of claims 1 to 4, wherein at least one of the electrodes is connected to the binding probe at a location of the binding probe capable of undergoing a conformational change.
  4. 6
    The circuit of any one of claims 1 to 5, wherein the binding probe comprises an antibody Fab binding domain;wherein optionally the binding probe is engineered to have additional charge groups that variably influence the conductive pathway as the binding probe engages with a target.
  5. 7
    The circuit of any one of claims 1 to 5, wherein the binding probe comprises an aptamer.
  6. 8
    The circuit of any one of claims 1 to 5, wherein the binding probe comprises a nucleic acid oligomer hybridization probe.
  7. 12
    The circuit of any one of claims 1 to 11, wherein the positive electrode and the negative electrode each connect to the binding probe at connection points in the enzyme comprising at least one of a native cysteine, a genetically engineered cysteine, a genetically engineered amino acid with a conjugation residue, or a genetically engineered peptide domain comprising a peptide that has a conjugation partner.
  8. 13
    The circuit of any one of claims 1 to 12 further comprising a gate electrode.
  9. 14
    A method of detecting the concentration of an analyte in a solution, comprising:providing circuit of any one of claims 1-13, wherein the binding probe is capable of binding the analyte;initiating at least one of a voltage or a current through the circuit;exposing the circuit to the solution for a period of time;andmeasuring electrical signals through the circuit as the binding probe engages with the analyte,wherein the electrical signals are processed to identify features that provide information on the concentration of the analyte in the solution.
  10. 15
    A method of molecular detection, comprising:(a) providing the circuit of any one of claims 1-13;(b) initiating at least one of a voltage or a current through the circuit;(c) exposing the circuit to at least one of: a buffer of reduced ionic strength, specific applied voltage on the primary electrodes, a gate electrode voltage, or voltage spectroscopy or sweeping applied to the primary electrodes or gate electrode;and(d) measuring an electrical change in the circuit.