1. Preparation of Chelex-treated Defined Medium (CDM) Stock Solutions
- Stock solution I
- Combine sodium chloride or NaCl (233.8 g), potassium sulfate or K2SO4 (40.0 g), ammonium chloride or NH4Cl (8.8 g), dipotassium hydrogen phosphate or K2HPO4 (13.9 g), and monopotassium dihydrogen phosphate or KH2PO4 (10.9 g) in deionized water to a final volume of 1 L.
- Filter-sterilize the solution and aliquot into 50 mL conical tubes.
- Store at -20 °C.
- Stock solution II
- Combine thiamine hydrochloric acid or HCl (0.2 g), thiamine pyrophosphate-Cl (0.05 g), calcium pantothenate (0.19 g), and biotin (0.3 g) in 50% (vol/vol) ethanol to a final volume of 1 L.
- Aliquot into 50 mL conical tubes and store at -20 °C.
- Stock solution III
- Combine L-aspartate (4.0 g), L-glutamate (10.4 g), L-arginine (1.2 g), glycine (0.2 g), L-serine (0.4 g), L-leucine (0.72 g), L-isoleucine (0.24 g), L-valine (0.48 g), L-tyrosine (0.56 g), L-proline (0.4 g), L-tryptophan (0.64 g), L-threonine (0.4 g), L-phenylalanine (0.2 g), L-asparagine-H2O (0.2 g), L-glutamine (0.4 g), L-histidine-HCl (0.2 g), L-methionine (0.12 g), L-alanine (0.8 g), L-lysine (0.4 g), and reduced glutathione (0.36 g) in 500 mL deionized water.
- Dissolve L-cysteine (0.44 g) and L-cystine (0.28 g) in a minimal volume (~1 mL) of 1 M HCl and add to the above amino acid solution.
- Adjust the pH of the solution with 10 N sodium hydroxide (NaOH) until all particulate matter is dissolved. The final pH will be 10.0–11.0.
- Bring the final volume to 1 L with deionized water.
- Filter-sterilize the solution and aliquot into 250 mL volumes.
- Store at -20 °C.
- Stock solution IV
- Dissolve glucose (200 g) in deionized water to a final volume of 1 L.
NOTE: The solution may have to be heated to dissolve the glucose. - Filter-sterilize and aliquot the solution into 50 mL conical tubes.
- Store at -20 °C.
- Stock solution V
- Combine hypoxanthine (5.0 g), uracil (5.0 g), and NaOH (4.0 g) in deionized water to a final volume of 1 L.
- Filter sterilize and aliquot into 50 mL conical tubes.
- Store at -20 °C.
- Solution VI
- Prepare a 1 M calcium chloride dihydrate or CaCl2-2H2O (147 g/L) solution in deionized water. Filter sterilize and store at room temperature (RT).
- Stock solution VII
- Prepare a 1 M anhydrous magnesium sulfate (MgSO4) solution in deionized water. Filter sterilize and store at RT.
- Stock solution VIII
- Prepare a 1 M sodium bicarbonate (NaHCO3) solution in deionized water. Filter sterilize and store at RT.
2. Preparation of 4x Sterile Concentrate and 1x CDM
NOTE: This procedure is to be performed in either acid-treated sterile glassware or plastic to prevent leaching of metals into the solutions.
- Combine stock solutions I (50 mL), II (20 mL), III (250 mL), IV (50 mL), and V (20 mL) with 20.0 g of 4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid (HEPES) and stir to mix.
- Adjust pH to 7.4, then bring the final volume to 500 mL with deionized water.
- Wash Chelex-100 resin in 1 L of deionized water to remove preservatives prior to adding it to the 4x sterile concentrate. Do this by adding 50 g of resin to 1 L of deionized water and stirring for at least 1 h. Remove the water by vacuum filtration and use this washed resin for step 2.4.
- Add 50 g of resin and slowly stir for exactly 90 min.
- Remove resin by filter sterilization and store the 4x sterile concentrate at 4 °C.
- To prepare a 1x working concentration of CDM, first dilute the 4x concentrate with sterile deionized water, then add solution VI (125 µL per 500 mL of 1x solution), solution VII (535 µL per 500 mL), and solution VIII (10 mL per 500 mL).
NOTE: Although all stock solutions have already been sterilized, it is recommended to filter-sterilize the 1x solution again after preparation.
3. Preparation of CDM Plates
NOTE: The recipe below makes 1 L of media for plates, but it is best to prepare these in smaller volumes. Everything scales down proportionally.
- Washed agarose
- Dissolve 50 g of agarose in 1 L of deionized water, stirring for 1 h.
- Transfer the solution to a centrifuge bottle and centrifuge at 1,200 x g for 15 min at RT. Carefully pour off the supernatant and discard.
- Add sufficient deionized water to resuspend the agarose pellet, then transfer to a 1 L flask. Bring to a final volume of 1 L with deionized water and then stir and centrifuge as in step 3.1.2. Discard the supernatant.
- Add sufficient 100% ethanol to resuspend the pellet, then transfer to a new 1 L flask. Bring to a final volume of 1 L with ethanol. Stir and centrifuge as in step 3.1.2.
- Repeat step 3.1.4.
- Add methanol to the agarose pellet to resuspend, then transfer to a 1 L flask. Bring to a final volume of 1 L with methanol. Stir and centrifuge as in step 3.1.2.
- Repeat step 3.1.6.
- Transfer washed agarose to a tray lined with aluminum foil and allow to dry in a fume hood. When dry, transfer to a metal-free container for long-term storage.
- Add 10 g of washed agarose and 5 g of potato starch to 750 mL of deionized water.
- Autoclave for 30 min at 121 °C, 100 kPa above atmospheric pressure.
- Allow media to cool to ~65 °C, then add 250 mL of 4X CDM, 250 µL of solution VI, 1.07 mL of solution VII, and 20 mL of solution VIII.
- If desired, add the metals of choice before pouring plates. The addition of chelators is not necessary to maintain metal-free conditions.
- Pour into Petri dishes and allow to solidify.
4. Metal Limited Growth of Neisseria gonorrhoeae
NOTE: For most applications, it is not necessary to metal stress the bacteria prior to inoculation of CDM. The initial doubling step in CDM and the subsequent dilution are sufficient to deplete the gonococci of their internal iron and zinc stores. As such, the first two steps of the following procedure are conducted using agar plates made from Gonococcus (GC) medium base that have been supplemented with Kellogg's supplement I and 12.5 μM ferric nitrate (Fe(NO3)3). If early metal stress is desired, we recommend preparing GC medium base plates without Fe(NO3)3 and with 5 μM TPEN (N,N,N',N'-tetrakis (2-pyridylmethyl) ethylenediamine) for zinc chelation or 10 μM deferoxamine for iron chelation. All incubation is conducted at 37 °C with 5% CO2.
- Two days prior to the experiment, on day -2, streak gonococci from freezer stocks onto GC medium plates and incubate for no more than 24 h.
- On day -1, streak single colonies onto fresh GC medium plates. Try to do this 14–16 h prior to the growth experiment.
- On the day of the experiment, add 5–10 mL 1x CDM to an acid-washed 125 mL baffled sidearm flask and use this to blank a Klett colorimeter.
- Use a sterile, cotton-tipped swab to inoculate CDM from healthy, single colonies. Aim for 20 Klett units.
NOTE: If a Klett colorimeter is not available, a spectrophotometer is suitable as well. There is no universal conversion formula for Klett units to OD, but a rough guide is available (https://support.hunterlab.com/hc/en-us/articles/214490283-Klett-Color-Scales). - Incubate with shaking at 250 rpm until approximately one mass doubling (40 Klett units). This should take between 1–2 h.
- At this point, the cultures are back diluted by the addition of a sufficient volume of CDM to reach half of the initial culture density (e.g., if 5 mL of culture has gone from 20 to 40 Klett units, 15 mL of CDM will bring it back down to 10 Klett units), and growth will continue as in step 4.5. The specific amount of back dilution, metal treatments, etc., depends on downstream applications. We give three examples below
5. Metal-limited Growth Assays
NOTE: These assays describe premade growth premixes. The preparation of these mixes is described in section 6.
- During the mass doubling in step 4.5, pretreat the wells of a 96-well microplate with 10x premixes. Additionally, designate three wells to serve as blanks. To these wells, add 10 µL of 10x premix and 90 µL of CDM.
- Once the cultures in the sidearm flasks have doubled, add 100 µL of each culture to an unused well in the microplate and measure the optical density at 600 nm (OD600). This may be done with cuvettes in a spectrophotometer, but with larger numbers of strains within an assay, this can become cumbersome and is generally not advised unless your spectrophotometer can measure directly from the arm of the side arm flask.
- While measuring the OD, place the flasks back in the incubator to ensure the gonococci remain viable.
- Calculate the correct amount of dilution required to bring the cultures to OD600 = 0.02. The 10x premixes have a negligible effect on OD and can be omitted from the calculation.
- Dilute cultures with CDM in small culture tubes and add sufficient volume to dilute the 10x premixes to 1x in the plate. If a plate warmer is available, keep the plate at 37 °C while working.
- Incubate the plate for 8–12 h with shaking in a plate reader, taking OD600 measurements at desired intervals.
6. Metal Loading of Transferrin, S100A7, and Calprotectin, and Preparation of 10x Premixes
NOTE: As with CDM preparation, use acid-washed glass or plastic for solution preparation.
- Dissolve human transferrin at 10 mg/mL (125 μM) in the initial buffer (100 mM Tris, 150 mM NaCl, 20 mM NaHCO3, pH = 8.4). S100A7 and calprotectin are suspended in a buffer consisting of 20 mM Tris, 100 mM NaCl, 10 mM 2-Mercaptoethanol, and 1 mM calcium chloride or CaCl2, pH = 8.0).
- Add ferration solution (100 mM sodium citrate, 100 mM NaHCO3, 5 mM Iron(III) chloride hexahydrate or FeCl3-6H2O, pH = 8.4) to the transferrin solution to achieve 30% iron saturation (e.g., 75 µL of ferration solution is suitable for 5 mL of transferrin if made at 10 mg/mL).
- Add Zinc sulfate (ZnSO4) to S100A7 or calprotectin at a 50% molar ratio to the protein to create 25% saturation (each protein molecule has two metal binding sites). Preparations of 100 μM S100A7 or calprotectin with 50 μM ZnSO4 can be used.
- For both cases, allow end-over-end mixing for at least 1 h for metal loading.
- Prepare 4 L of dialysis buffer (40 mM Tris, 150 mM NaCl, 20 mM NaHCO3, pH = 7.4). Split this into two separate 2 L volumes and place one at 4 °C.
- Add the metal-loaded proteins to a dialysis cassette using a syringe and dialyze against the first buffer volume for 4 h at RT.
- Move the cassette to the second buffer volume and dialyze overnight at 4 °C. After these steps, any unbound metals should be removed.
NOTE: We advise a bicinchoninic acid assay to determine protein concentrations after dialysis. - Use a 10x transferrin premix for transferrin utilization as a sole iron source.
- Prepare this premix by diluting 30% human Fe-transferrin and bovine apo-transferrin (prepared at 125 μM as described for human transferrin, without the iron loading step) to 75 μM and 30 μM, respectively, in phosphate-buffered saline (PBS). A positive control premix replaces 30% Fe-transferrin with 75 μM Fe(NO)3, and a negative control premix omits any added iron, retaining only the bovine apo-transferrin. In the growth assay, dilute 10 µL of these concentrates with 90 µL of culture. Final concentrations are 7.5 μM 30% human Fe-transferrin and 3 μM bovine apo-transferrin.
- Use a modified version of the transferrin 10x premix for S100A7 or calprotectin utilization as a sole zinc source.
- For a positive control premix, incorporate 50 μM ZnSO4 into the transferrin premix. For a negative control, incorporate 50 μM TPEN and omit the zinc. Then, take 10 µL of each of these for every sample well needed, and move that volume to a new tube. Add to this half as much volume of sterile PBS. For example, if 10 wells will receive the positive control premix, take 100 µL of premix, move it to a new tube, and add 50 µL of PBS. Do the same for the negative control.
- To make the S100A7 or calprotectin premix, take 10 µL of the negative control premix per well needed, move to a new tube, and add half that volume of the 25% Zn-S100A7 or calprotectin. In the growth assay, use 15 µL of premix and dilute with 85 µL of culture. Final concentrations for the transferrins remain the same as in step 8.5, with an added 5 μM of Zn, TPEN, or S100A7/calprotectin.