GEL TRAY FOR BACTERIA TRANSFORMATION LAB
20240141271 ยท 2024-05-02
Inventors
- Callen Elizabeth Hyland (La Jolla, CA, US)
- Christopher Karl Schroeder (San Diego, CA, US)
- Rita Mei Yi Wong (San Diego, CA, US)
- Richard Tat Lee Chan (La Jolla, CA, US)
Cpc classification
C12M45/22
CHEMISTRY; METALLURGY
International classification
Abstract
A gel tray for a bacterial transformation lab exercise has a plastic body with four parallel gel channels and four filling ports, one for each channel into which unmodified bacteria and heat-shocked bacteria can be injected by students along with appropriate reaction constituents to demonstrate transformation of the bacteria under visualization. A seal may be provided to seal the tops of the gel channels and a lid can cover the gel tray during incubation.
Claims
1. An apparatus comprising: an object; plural channels formed in the object; and plural filling ports each having a fill end for receiving samples and a channel end communicating with an end of a respective one of the channels, each filling port defining an axis from the respective fill end to the respective channel end, bottom walls of the channels lying in a common plane, the filling ports extending upwardly from the channels at oblique angles to the common plane, the fill ends being elevated above the channel ends, each filling port being elongated from end to end.
2. The apparatus of claim 1, wherein the channels are separated from each other by raised elongated ribs that are parallel to the channels and that are elongated in a same dimension as the channels are elongated such that outer channels are bounded by respective vertical sidewalls of the object and on their sides opposite the sidewalls by a respective rib, while inner channels are bounded on both sides by ribs, the channels extending in length from a common end wall of the object to respective channel ends.
3. The apparatus of claim 1, wherein at least one fill end has a curvilinear circumference.
4. The apparatus of claim 1, comprising at least one constituent in the channels to deter the growth of microbes during storage.
5. The apparatus of claim 1, comprising respective gels in the channels.
6. The apparatus of claim 5, comprising unmodified bacteria host cells in a first one of the channels.
7. The apparatus of claim 5, comprising unmodified bacteria host cells and an antibiotic in a second one of the channels.
8. The apparatus of claim 5, comprising genetically modified bacteria host cells and a plasmid in a third one of the channels.
9. The apparatus of claim 5, comprising genetically modified bacteria host cells, an antibiotic, and a chemical to induce exogenous expression in a fourth one of the channels.
10. The apparatus of claim 1, wherein an oblique angle is established between the axis of at least one of the filling ports and a longitudinal axis of its respective channel.
11. The apparatus of claim 1, comprising a non-flaccid lid slidably engaged with the body.
12. A device comprising: an object; plural channels formed in the object; and plural filling ports each having a fill end for receiving samples and a channel end communicating with an end of a respective one of the channels, each filling port defining an axis from the respective fill end to the respective channel end, bottom walls of the channels lying in a common plane, an oblique angle being established between the axis of at least one of the filling ports and a longitudinal axis of its respective channel, the fill ends being elevated above the channel ends, each filling port being elongated from end to end.
13. The device of claim 12, wherein the channels are separated from each other by raised elongated ribs that are parallel to the channels and that are elongated in a same dimension as the channels are elongated such that outer channels are bounded by respective vertical sidewalls of the object and on their sides opposite the sidewalls by a respective rib, while inner channels are bounded on both sides by ribs, the channels extending in length from a common end wall of the object to respective channel ends.
14. The device of claim 12, wherein at least one fill end has a curvilinear circumference.
15. The device of claim 12, comprising respective gels in the channels.
16. The device of claim 12, wherein the filling ports extend upwardly from the channels at oblique angles to the common plane.
17. The device of claim 12, comprising a non-flaccid lid slidably engaged with the object.
18. An apparatus, comprising: a body; plural channels formed in the body and configured for receiving gel; plural filling ports each having a fill end for receiving samples and a channel end communicating with an end of a respective one of the channels; and a non-flaccid lid slidably engaged with the body to cover the channels.
19. The apparats of claim 18, wherein lid comprises left and right edges formed with respective flanges that slidably engage respective sidewalls of the body, such that the lid can be advanced onto the sidewalls and slid over the body until a tab of the lid clears a front edge of the body.
20. The apparatus of claim 19, wherein tab extends in an opposite direction to a direction in which the ribs of the lid extend to prevent the lid sliding off the body once the tab clears a front edge of the body.
21. The apparatus of claim 20, wherein the lid is completely slid on to the body and a rear wall of the lid abuts a rear edge of the body to trap the body between the tab and rear wall of the lid.
22. The apparatus of claim 18, wherein the body is a first body and a top surface of the lid is formed with plural elongated raised ribs that establish cavities to receive bottoms of respective gel channels of a second body.
23. The apparatus of claim 18, wherein the lid is configured such that it can slide onto the body in only one direction.
24. The apparatus of claim 18, comprising a flaccid seal sandwiched between the lid and body.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0014]
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DETAILED DESCRIPTION
[0025] Referring initially to
[0026] In the example shown, first through fourth gel channels 18, 20, 22, 24 are formed in the body 12 parallel to each other, although in other embodiments a fewer or greater number of gel channels may be used, e.g., any integer number of gel channels from two on up. The gel channels are separated from each other by raised elongated ribs 26 that are parallel to the gel channels and that are elongated in the same dimension as the gel channels are elongated. The outer gel channels 18, 24 are thus bounded by respective vertical sidewalls 28 of the body 12 and on their sides opposite the sidewalls 28 by a respective rib 26, while the inner gel channels 20, 22 are bounded on both sides by ribs 26. The gel channels extend in length from a common end wall 30 to respective channel ends 32, and the bottom walls 34 of the gel channels 18-24 lie in the horizontal plane.
[0027] Extending upwardly (in the z-dimension) from the horizontal gel channels at oblique angles to the horizontal plane if desired, are first through fourth filling ports 36, 38, 40, 42, each having a respective fill end 44 that may have a semi-circular circumference if desired as shown. More generally, a filling port may be provided for each gel channel. The fill ends are configured for receiving constituent samples from a dispenser such as a micropipette or multi-channel pipette. Each filling port 36-42 extends from its fill end 44 to a respective channel end 46 that communicates with a respective channel end 32 of a respective one of the gel channels. The fill ends 44 thus may be elevated above the channel ends 46 of the fill ports on the body.
[0028] The respective channel ends 32, 46 of a respective gel channel/filling port pair are closely juxtaposed as shown such that constituent deposited in the fill end 44 of a filling port flows down the filling port under gravity through the channel ends 32, 46 and into the respective gel channel. In the example shown, each filling port is elongated from end 44 to end 46 and defines an axis there between with a component 48 in the horizontal plane. As best shown in
[0029]
[0030] A protective plastic sheet 56, which may be transparent, may cover the interior of the body 12 as shown and may extend across the periphery 14 from all four sides (
[0031] It may now be appreciated that the gel tray assembly 10 may include four separate pools of growth media (gels), for example, one for a control and three for variations. The body 12 of the tray can be transparent (which include translucent) to allow light to pass through the bottom 34 and into the contents of the gel channels 18-24 tray.
[0032]
[0033] Unmodified bacteria host cells may be disposed in the first gel channel 18 by an end user. Such cells may be, in one example, a strain (BL21) of E. coli bacteria that already has resistance to chloramphenicol.
[0034] In one example implementation, unmodified bacteria and an antibiotic may be added to the second gel channel 20 by an end user. For example, ampicillin may be used to demonstrate that this antibiotic will kill bacteria that have not been transformed with an ampicillin resistance gene. Antibiotics other than ampicillin may be used.
[0035] Added to the third gel channel 22 may be genetically modified bacteria such as bacteria transformed with a plasmid (vector) through heat-shocking or another method. Prior to heat-shocking, bacteria may be made competent by the addition of a chemical, for example, calcium chloride. The plasmid (vector) may include genes for making fluorescent protein molecules like eGFP (enhanced Green Florescent Protein), which glows green under blue light when the bacteria make it. The plasmid may also include an ampicillin resistance gene. That way ampicillin can be used to kill all of the bacteria that do not take up the plasmid.
[0036] Genetically modified bacteria may be added to the fourth gel channel 24 by the end user along with an antibiotic and a chemical, e.g., IPTG, to induce expression of an exogenous constituent, as described above. A plasmid vector may be incorporated which can be a plasmid developed specifically for the purpose of a lab activity that gives the bacteria resistance to ampicillin and, when activated by IPTG, induces the bacteria to produce a protein that is fluorescent (e.g., eGFP).
[0037] Preferably, the samples added to all gel channels are spread evenly over the surface of the agar to maximize growth. In one embodiment, the tray may be sealed again with the sheet 56 and incubated. In another embodiment, the user will not seal the tray before incubating. The user will place only the below-described lid over the tray, on which the lid does not create a seal, and then incubate.
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[0041]
[0042] In the example of
[0043] When a seal 1200 (
[0044] As was the case with the gel tray 800 in
[0045] As alluded to above, a rigid plastic lid 1202 also may be provided. The lid 1202 may be sized to fit over the gel tray 1100 with the seal 1200 sandwiched between the top edges of the gel tray and the bottom flat surface of the lid 1202. The lid may snappingly engage the body or fit over the edges of the body in an interference fit. In an example embodiment, the bottom left and right edges of the lid 1202 are formed with respective parallel U-shaped (in transverse cross-section) flanges 1203 that slidably engage respective sidewalls 28A of the gel tray, such that the lid 1202 can be advanced onto the sidewalls 28A, e.g., from the rear, and slid over the seal 1200 and gel tray 1100 until a 1212 (described further below) clears the front edge of the gel tray 1100, at which point the 1212 snaps down under material bias over the front edge of the gel tray.
[0046] The top surface of the lid 1202 may be formed with plural elongated raised ribs 1204 that establish a frame with cavities 1206 to receive the bottoms of respective gel channels 1208 of a second gel tray 1210, with the bottoms of the gel channels 1208 of the second gel tray 1210 closely fitting in respective cavities 1206 of the frame established by the ribs 1204 of the lid 1202. In this way, gel trays can be stacked one on top of the other.
[0047] The gel tray 1100 may be configured such that it can fit on the lid in only one direction. As discussed above, the lid 1202 may also include a tab 1212 that extends down in the opposite direction that the ribs 1206 extend up, to prevent accidental sliding out of the tray once the tab 1212 clears the front edge of the gel tray and snaps down over the front edge. Once the lid is completely slid on to the gel tray, a rear wall 1214 of the lid 1202 abuts the rear edge 1216 of the gel tray to trap the gel tray between the tab 1212 and rear wall 1214 of the lid. The seal can be removed from the gel tray and the lid can be re-engaged with the gel tray when the seal is removed.
[0048] While particular structures and techniques are herein shown and described in detail, it is to be understood that the subject matter which is encompassed by the present invention is limited only by the claims.