IP Library Patent Application 18912894
Patent Application
App. No. 18/912,894

Deterministic Stepping of Polymers Through A Nanopore

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Patent No.
US None
App. No.
18/912,894
Abstract

A method is provided for deterministically translocating through a nanopore a target polymer molecule of a nucleic acid polymer molecule or a protein polymer molecule. In the method, an enzyme clamp is reversibly bound to a plurality of sequential polymer subunits of the target polymer molecule. The target polymer molecule and the enzyme clamp are disposed at the nanopore. In the method, there is applied a pulse of force operative to deterministically advance the enzyme clamp along the target polymer molecule by no more than one polymer subunit. The pulse of force is then repeatedly applied to cause deterministic translocation of a sequential plurality of polymer subunits of the target polymer molecule through the nanopore.

Claims (24)

1 . A method for deterministically translocating a target polymer molecule through a nanopore, the target polymer molecule selected from nucleic acid polymer molecules and protein polymer molecules, comprising:

reversibly binding an enzyme clamp to a plurality of sequential polymer subunits of the target polymer molecule;

disposing the target polymer molecule and enzyme clamp at the nanopore;

applying a pulse of force operative to deterministically advance the enzyme clamp along the target polymer molecule by no more than one polymer subunit;

repeatedly applying the pulse of force to cause deterministic translocation of a sequential plurality of polymer subunits of the target polymer molecule through the nanopore.

2 . The method of claim 1 wherein applying a pulse of force comprises applying a pulse of electrical voltage to deterministically advance the enzyme clamp by voltage-forced movement along the target polymer molecule.

3 . The method of claim 2 wherein applying a pulse of electrical voltage comprises applying an electrical voltage pulse across the nanopore.

4 . The method of claim 1 further comprising measuring current through the nanopore while a sequential plurality of polymer subunits of the target polymer molecule translocates through the nanopore.

5 . The method of claim 1 further comprising a step of acquiring a representative indication of a polymer subunit as the polymer subunit translocates through the nanopore.

6 . The method of claim 5 wherein repeatedly applying the pulse of force comprises conducting one repetition of pulse of force application after each acquisition of a representative indication of a polymer subunit.

7 . The method of claim 1 wherein reversibly binding an enzyme clamp to a plurality of sequential polymer subunits of the target polymer molecule comprises reversibly binding an enzyme clamp to a plurality of between 2 and 20 sequential polymer subunits of the target polymer molecule.

8 . The method of claim 1 wherein reversibly binding an enzyme clamp to a plurality of sequential polymer subunits of the target polymer molecule comprises reversibly binding a helicase enzyme to a plurality of sequential polymer subunits.

9 . The method of claim 8 wherein reversibly binding an enzyme clamp to a plurality of sequential polymer subunits of the target polymer molecule comprises reversibly binding a helicase enzyme selected from a SF1 family helicase and a T4 Dda helicase.

10 . The method of claim 1 wherein reversibly binding an enzyme clamp to a plurality of sequential polymer subunits of the target polymer molecule comprises reversibly binding a polymerase enzyme to a plurality of sequential polymer subunits.

11 . The method of claim 1 wherein the nanopore comprises a biological nanopore.

12 . The method of claim 11 wherein the nanopore comprises a biological nanopore selected from a CsgG bacterial porin nanopore and a Mycobacterium smegmatis porin A (MspA) nanopore.

13 . The method of claim 11 wherein the nanopore comprises a biological nanopore in a membrane selected from a triblock copolymer membrane, a mycolic acid membrane, a tetraether lipid membrane, and a lipid bilayer membrane.

14 . The method of claim 13 wherein the membrane comprises a diphytanoyl phosphatidylcholine (diPhPC) membrane.

15 . The method of claim 1 wherein the nanopore comprises a channel in an atomically-thin solid state material.

16 . The method of claim 1 wherein disposing the target polymer molecule and enzyme clamp at the nanopore comprises applying a constant force selected from electrophoretic force, hydrostatic force, optical force, and magnetic force.

17 . The method of claim 16 wherein applying a constant force comprises applying a constant electrical voltage across the nanopore, and wherein applying the pulse of force comprises applying across the nanopore a pulse of electrical voltage having an electrical voltage pulse amplitude greater than a constant voltage amplitude of the constant electrical voltage applied across the nanopore.

18 . The method of claim 16 wherein applying the pulse of force comprises applying a pulse of electrical voltage having an electrical voltage pulse duration less than a length of time required for the constant force to induce the target polymer molecule to travel into the nanopore by one polymer subunit.

19 . The method of claim 1 wherein applying the pulse of force comprises applying a pulse of electrical voltage having an electrical voltage pulse duration no greater than about one millisecond.

20 . The method of claim 1 wherein disposing the target polymer molecule and enzyme clamp at the nanopore comprises disposing the target polymer molecule and enzyme clamp in a fluidic ionic solution in fluidic communication with the nanopore.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2025
From: BRANTON, DANIEL; FLEMING, STEPHEN; GOLOVCHENKO, JENE
To: PRESIDENT AND FELLOWS OF HARVARD COLLEGE
Reel/Frame 070261/0958 →