IP Library Patent Application 18333946
Patent Application
App. No. 18/333,946

SYSTEM FOR FOCUSED TARGETING OF MAGNETO-AEROTACTIC-RESPONSIVE BACTERIA AND METHOD OF USE THEREOF

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Quick Facts
Patent No.
US None
App. No.
18/333,946
Abstract

A system for obtaining imaging information, diagnosis and treatment of a subject using magneto-aerotactic-responsive bacteria; it has a processor; and memory storing program code that, when executed by the processor, cause the processor to obtain imaging information of a target zone in the subject; apply a magnetic field at a first magnetic field intensity to guide the magneto-aerotactic responsive bacteria towards the target zone in the subject having hypoxic regions; and apply a magnetic field with a second magnetic field intensity that is less than the first magnetic field intensity for allowing the magneto-aerotactic responsive bacteria to follow an oxygen gradient that draws the bacteria to hypoxic regions, prior to loss of motility of the magneto-aerotactic responsive bacteria; a method of use thereof.

Claims (33)

1 . A method of at least one of obtaining imaging information, diagnosis and treatment of a subject using magneto-aerotactic-responsive bacteria adapted to self-locomote comprising:

obtaining imaging information of a target zone in the subject, whereby a bolus of magneto-aerotactic-responsive bacteria is injected into the subject, the magneto-aerotactic-responsive bacteria attached to at least one of a therapeutic agent, a diagnostic agent and an imaging agent;

applying a magnetic field at a first magnetic field intensity to guide and cause a displacement of the magneto-aerotactic responsive bacteria towards the target zone having hypoxic regions through magnetotaxis; and

applying a magnetic field with a second magnetic field intensity that is less than the first magnetic field intensity for allowing the magneto-aerotactic responsive bacteria to follow an oxygen gradient that draws the bacteria to the hypoxic regions, wherein there is an increase in changes of direction of movement of the magneto-aerotactic responsive bacteria from a direction of the magnetic field at the second magnetic field intensity than at the first magnetic field intensity, for at least one of treatment, diagnosis and imaging of the subject.

2 . The method as defined in claim 1 , further comprising obtaining velocity distribution information of the magneto-aerotactic-responsive bacteria of the bolus to predict a spread post-injection of the magneto-aerotactic-responsive bacteria in the subject when the magnetic field intensity is at the first magnetic field intensity.

3 . The method as defined in claim 2 , wherein the bolus is selected from a plurality of magneto-aerotactic-responsive bacteria solutions as a function of obtained velocity distribution information pre-injection of the magneto-aerotactic-responsive bacteria in the magneto-aerotactic-responsive bacteria solutions, wherein the selected solution includes magneto-aerotactic-responsive bacteria with a velocity distribution that is greater as a function of a desired targeting volume with the magneto-aerotactic-responsive bacteria, wherein a greater targeting volume allows for targeting of a greater number of hypoxic regions associated with the target zone.

4 . The method as defined in claim 3 , wherein a solution, amongst the solutions, with the broadest velocity distribution pre-injection of the magneto-aerotactic-responsive bacteria is selected when a greater targeting volume is sought for increasing the number of hypoxic regions targeted by the magneto-aerotactic-responsive bacteria.

5 . The method as defined in claim 3 , wherein a solution, amongst the solutions, with the narrowest velocity distribution pre-injection of the magneto-aerotactic-responsive bacteria is selected when concentrated targeting is sought for increasing the concentration of magneto-aerotactic-responsive bacteria targeting one or more hypoxic regions.

6 . The method as defined in claim 1 , wherein the first magnetic field intensity and second magnetic field intensity are determined by accounting for a regression of the velocity of the magneto-aerotactic-responsive bacteria post-injection.

7 . The method as defined in claim 6 , further comprising estimating a position of the magneto-aerotactic-responsive bacteria when the velocity of the magneto-aerotactic-responsive bacteria post-injection regresses to 0.

8 . The method as defined in claim 1 , further comprising calculating a distance between an injection site of the bolus and the aggregation zone or a portion or the tumor, wherein the applying a magnetic field with a second magnetic field intensity is based on the calculated distance.

9 . The method as defined in claim 1 , wherein the obtaining imaging information of a tumor of a subject is performed using an MRI or a CT scanner.

10 . The method as defined in claim 1 , wherein the first magnetic field intensity and second magnetic field intensity are determined and adjusted based on:

the volume of the bolus;

a distance between an injection point of the bolus and the aggregation zone; and

time that lapsed following the injecting.

11 . The method as defined in claim 10 , wherein the first magnetic field intensity and second magnetic field intensity are further determined and adjusted based on the concentration of magneto-aerotactic-responsive bacteria in the bolus.

12 . The method as defined in claim 1 , whereby the bolus of magneto-aerotactic-responsive bacteria is injected into a peripheral region of the tumor.

13 . The method as defined in claim 1 , wherein a plurality of boluses is injected into said subject at different sites on said subject.

14 . The method as defined in claim 1 , further comprising, after the reducing the magnetic field intensity of the magnetic field to a second magnetic field intensity, further reducing the magnetic field intensity of the magnetic field to a third magnetic field intensity that is less than the second magnetic field intensity, wherein the magneto-aerotactic-responsive bacteria further exhibit an increase in changes of direction of movement of the magneto-aerotactic responsive bacteria from the direction of the magnetic field at the third magnetic field intensity than at the second magnetic field intensity.

15 . The method as defined in claim 14 , wherein the second magnetic field intensity is of a value of 0 Gauss or above, but less than 5 Gauss.

16 . The method as defined in claim 1 , wherein the first magnetic field intensity is at least 15 Gauss.

17 . The method as defined in claim 1 , wherein the second magnetic field intensity is less than 15 Gauss, but more than or equal to 5 Gauss.

18 . A system for at least one of obtaining imaging information, diagnosis and treatment of a subject using magneto-aerotactic-responsive bacteria adapted to self-locomote with run-and-reverse and run-and-tumble motions after a bolus of magneto-aerotactic-responsive bacteria is injected into the subject, the magneto-aerotactic-responsive bacteria attached to at least one of a therapeutic agent, a diagnostic agent and an imaging agent, comprising:

a processor; and

memory storing program code that, when executed by the processor, cause the processor to:

obtain imaging information of a target zone in the subject;

apply a magnetic field at a first magnetic field intensity to guide and cause a displacement of the magneto-aerotactic responsive bacteria towards the target zone having hypoxic regions through magnetotaxis; and

apply a magnetic field with a second magnetic field intensity that is less than the first magnetic field intensity for allowing the magneto-aerotactic responsive bacteria to follow an oxygen gradient that draws the bacteria to the hypoxic regions, wherein there is an increase in changes of direction of movement of the magneto-aerotactic responsive bacteria from a direction of the magnetic field at the second magnetic field intensity than at the first magnetic field intensity.

19 . The system as defined in claim 18 , further comprising:

a user input interface, wherein the program code further comprises instructions for causing the processor, when executing the program code, to:

receive instructions from the user inputted into the user input interface to generate the imaging information that is obtained.

20 . The system as defined in claim 18 , further comprising the one or more magnetic sources.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 14, 2026
From: STARPAX BIOPHARMA INC.
To: 9553-1497 QUÉBEC INC.
Reel/Frame 075400/0218 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 3, 2023
From: MARTEL, SYLVAIN
To: STARPAX BIOPHARMA INC.
Reel/Frame 064477/0825 →