IP Library Granted Patent US 11,047,000
Granted Patent B2
US 11,047,000 · App. 16/468,846 · Granted Jun 29, 2021

Molecular fuses for real-time, label-free, multiplexed imaging of RNAs in living cells

Inventor: Alexander Green (Scottsdale, AZ)
Assignee: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
C12Q1/6841G01N33/5308C12Q2525/205C12Q2525/301
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Quick Facts
Patent No.
US 11,047,000
App. No.
16/468,846
Granted
Jun 29, 2021
Kind
B2
Abstract

Provided herein are imaging probes and systems and methods employing such imaging probes for real-time, label-free, multiplexed imaging of RNAs in living cells. More particularly, aptamer-based sensors (“aptasensors”) and molecular fuses comprising multiple aptasensors are genetically encoded imaging probes comprising RNA-target binding sequence and an intramolecular reconfiguration sequence. The probe is configured such that binding of a RNA target by the RNA-target binding sequence triggers the intramolecular reconfiguration sequence to reconfigure such that an optically detectable output is generated by the probe.

Claims (15)

1. An aptasensor imaging probe comprising:

a ribonucleic acid (RNA) polynucleotide comprising an RNA-target binding sequence and an intramolecular reconfiguration sequence, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers said intramolecular reconfiguration sequence to form an active aptamer such that an optically detectable output is generated by said active aptamer,

wherein said intramolecular reconfiguration sequence comprises two or more tRNA aptamer scaffolds, each tRNA aptamer scaffold comprising an inactive aptamer and a tRNA scaffold, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers said intramolecular reconfiguration sequence to form a tRNA-stabilized active aptamer such that an optically detectable output is generated by said active aptamer,

wherein, when activated, said two or more tRNA aptamer scaffolds generate fluorescence signals of two or more colors.

2. An aptasensor imaging probe comprising:

a ribonucleic acid (RNA) polynucleotide comprising an RNA-target binding sequence and an intramolecular reconfiguration sequence, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers said intramolecular reconfiguration sequence to form an active aptamer such that an optically detectable output is generated by said active aptamer,

wherein said intramolecular reconfiguration sequence comprises a tRNA aptamer scaffold comprising an inactive aptamer and a tRNA scaffold, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers said intramolecular reconfiguration sequence to form a tRNA-stabilized active aptamer such that an optically detectable output is generated by said active aptamer, and

wherein said intramolecular reconfiguration sequence comprises two tRNA aptamer scaffolds, each of the two tRNA aptamer scaffolds flanking a central toehold domain.

3. A molecular fuse imaging probe, comprising:

a single RNA polynucleotide comprising an RNA-target binding sequence and a plurality of aptamers, wherein each aptamer of the plurality comprises a hairpin structure, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration whereby each aptamer of the plurality is activated and an optically detectable output is generated by said active aptamer.

4. The probe of claim 3 , wherein the single RNA polynucleotide comprises two or more hairpins, wherein hairpins at the 5′ end of the polynucleotide have single-stranded toehold interaction domains at the 5′ end of each hairpin, and wherein hairpins at the 3′ end of the polynucleotide have single-stranded toehold interaction domains at the 3′ end of each hairpin, said probe configured such that binding of an RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration and yields a long partially double-stranded RNA (dsRNA) product.

5. The probe of claim 3 , wherein the single RNA polynucleotide comprises two or more hairpins, wherein hairpins at the 5′ end of the polynucleotide have single-stranded toehold interaction domains at the 3′ end of each hairpin, and wherein hairpins at the 3′ end of the polynucleotide have single-stranded toehold interaction domains at the 5′ end of each hairpin, said probe configured such that binding of an RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration and yields a long partially double-stranded RNA (dsRNA) product.

6. The probe of claim 3 , wherein the single RNA polynucleotide comprises two or more hairpins comprising single-stranded toehold interaction domains at the 5′ end of each hairpin, said probe configured such that binding of a RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration and yields a multi-armed RNA junction product.

7. The probe of claim 3 , wherein the single RNA polynucleotide comprises two or more hairpins comprising single-stranded toehold interaction domains at the 3′ end of each hairpin, said probe configured such that binding of an RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration and yields a multi-armed RNA junction product.

8. The probe of claim 3 , wherein the single RNA polynucleotide comprises two or more hairpin-like structures comprising inactive aptamers, said probe configured such that binding of an RNA target by said RNA-target binding sequence triggers an intramolecular reconfiguration that causes the stem domain of each hairpin to hybridize with the stem domain in an adjacent hairpin-like structure to form two or more active aptamers.

Assignments (2)
CONFIRMATORY LICENSE Recorded Aug 11, 2023
From: ARIZONA STATE UNIVERSITY, TEMPE CAMPUS
To: NATIONAL INSTITUTES OF HEALTH (NIH), U.S. DEPT. OF HEALTH AND HUMAN SERVICES (DHHS), U.S. GOVERNMENT
Reel/Frame 064572/0220 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 19, 2019
From: GREEN, ALEXANDER
To: ARIZONA BOARD OF REGENTS ON BEHALF OF ARIZONA STATE UNIVERSITY
Reel/Frame 049517/0101 →
Continuity (2)
Provisional Application 62434914 · Dec 15, 2016
Related Publication 20210108257A1 · Apr 15, 2021
Cited By (1)
US 12,522,878