IP Library › Granted Patent US 12,350,674
Granted Patent B2
US 12,350,674 · App. 18/453,252 · Granted Jul 8, 2025

Headspace eliminating microtiter plate lid and method of optically measuring well oxygen concentration through the lid

Inventors: Ian M. Hayes (Glounthaune, IE); James N. Hynes (Ovens, IE)
Assignee: Agilent Technologies, Inc.
B01L3/50853G01N31/225B01L3/50825B01L2200/0689B01L2300/042B01L2300/049B01L2300/0829B01L2300/10
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Quick Facts
Patent No.
US 12,350,674
App. No.
18/453,252
Granted
Jul 8, 2025
Kind
B2
Abstract

An implement for eliminating headspace in the testing space(s) (T 9 or MP Well ) of a test tube (T) or microtiter plate (MP), and methods of using such implements to measure oxygen concentration in a test sample. The implement projects into a test chamber (T 9 or MP Well ) to displace a portion of a fluid sample within the test chamber (T 9 or MP Well ) and has longitudinally extending grooves ( 109 and 229 ) through which the displaced fluidic content can be discharged from the test chamber (T 9 or MP Well ).

Claims (25)

1. A lid for a microtiter plate having any array of wells, the lid formed from an oxygen barrier material and comprising:

(a) a cover plate for engaging the microtiter plate, and

(b) projections extending longitudinally from the cover plate in an array conforming with the array of wells, with each projection (i) configured and arranged to longitudinally and sealingly project into a corresponding well in the microtiter plate, (ii) having an outwardly projecting convex distal end, and (iii) having a plurality of longitudinally extending grooves operable for providing peripheral outlet channels between the projection and the well through which fluidic content within the well, displaced by insertion of the projection into the well, can be discharged from the well.

2. The lid of claim 1 wherein the projections have a longitudinal length and a lateral outer width, and the convex distal end of each projection has a radius of curvature of between about 2 to 10 times the outer width of the projection.

3. The lid according to claim 1 wherein the lid is formed from a material having an oxygen transmission rate of less than 16 cm 3 /m 2 /24 hr at 23° C. and 0% RH.

4. The lid according to claim 1 wherein each projection has a longitudinal length of between 4 to 12 mm and between 2 and 10 longitudinally extending grooves.

5. The lid according to claim 1 wherein each projection has between 4 and 6 uniformly circumferentially spaced longitudinally extending grooves.

6. The lid according to claim 1 wherein the peripheral outlet channels are in fluid communication with atmosphere through openings in the cover plate.

7. The lid according to claim 1 wherein the grooves on each projection form peripheral outlet channels having a radial cross-section of between 0.1 and 0.4 mm 2 when the projection is sealingly engaged within a well.

8. An assembly comprising:

(a) a microtiter plate formed from an oxygen barrier material and having an array of wells, and

(b) a lid according to claim 1 configured and arranged for fitted engagement over the microtiter plate with the projections extending longitudinally from the cover plate in an array conforming with the array of wells in the microtiter plate whereby the projections extend into the wells when the lid is placed over the microtiter plate.

9. A method of measuring oxygen concentration within a test tube, comprising the steps of:

(a) placing an oxygen-sensitive photoluminescent material and a fluid test sample within a cavity of a test tube,

(b) inserting an implement into frictional engagement within the cavity of the tube to form an enclosed chamber, wherein the implement comprises a stopper formed from an oxygen barrier material configured and arranged to longitudinally and sealingly project into a cavity of the test tube, the stopper having an outwardly projecting convex distal end and a plurality of longitudinally extending grooves operable for providing peripheral outlet channels between the stopper and the test tube, forming the peripheral outlet channels between the implement and the test tube through which fluidic content within the cavity of the test tube, displaced by insertion of the implement into the cavity of the test tube, can be discharged from the cavity, and

(c) ascertaining oxygen concentration within the enclosed chamber by (i) exposing the oxygen-sensitive photoluminescent material within the enclosed chamber to excitation radiation passed through the implement to create excited oxygen-sensitive photoluminescent material, (ii) measuring radiation emitted by the excited oxygen-sensitive photoluminescent material through the implement, and (iii) converting the measured emission to a target-analyte concentration based upon a known conversion algorithm.

10. The method according to claim 9 wherein the implement is inserted a distance sufficient to displace fluid test sample into each peripheral outlet channel.

11. A method of measuring oxygen concentration within an array of wells in a microtiter plate, comprising the steps of:

(a) obtaining an assembly in accordance with claim 8 ,

(b) placing an oxygen-sensitive photoluminescent material and a fluid test sample within the plurality of wells in the microtiter plate,

(c) covering the microtiter plate with the cover plate whereby each projection extends into and sealingly engages within each well in the microtiter plate so as to displace fluid from within each well towards the periphery of the projection and out of the well through peripheral outlet channels formed between the projection and the well, and

(d) ascertaining oxygen concentration within each well of the covered microtiter plate by (i) exposing the oxygen-sensitive photoluminescent material within each well to excitation radiation passed through the projection extending therein to create excited oxygen-sensitive photoluminescent material, (ii) measuring radiation emitted by the excited oxygen-sensitive photoluminescent material through the projection, and (iii) converting the measured emission to a target-analyte concentration based upon a known conversion algorithm.

12. The method according to claim 11 wherein sufficient fluid test sample is placed within each well that fluid test sample is displaced into each peripheral outlet channel in each well when the cover plate is secured to the microtiter plate.

13. The method according to claim 9 wherein the oxygen-sensitive photoluminescent material comprises an oxygen-sensitive indicator dye incorporated in an oxygen permeable polymeric matrix.

14. The method according to claim 9 wherein the fluid test sample contains viable cells or viable microbes.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2023
From: HAYES, IAN M.; HYNES, JAMES NIALL
To: AGILENT TECHNOLOGIES, INC.
Reel/Frame 064663/0620 →
Continuity (3)
Division 16613506
Provisional Application 62506779 · May 16, 2017
Related Publication 20230390776A1 · Dec 7, 2023
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