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Assaying for antimicrobial compounds in plants requires separating the components of a plant extract, exposing a test microorganism to those components, and determining whether the microorganism’s growth is inhibited by any of the compounds. Separations by paper or thin-layer chromatography (PC or TLC) are convenient because many compounds can be separated on a planar surface. Separation is based on polarity, with some compounds binding tightly to the adsorbent (cellulose in the case of PC, and a variety of adsorbents in the case of TLC) and migrating less than others1. Figure 1 provides an example of the relative positions of polar and nonpolar phenolic compounds after separation on a silica TLC plate.

Figure 1. Diagram illustrating distributions of compounds of different polarities after separation on a silica thin-layer chromatographic (TLC) plate. Phenolic compounds of red clover (Trifolium pratense L.) are used as an example. Polar compounds, such as clovamide, have a strong affinity for a polar adsorbent like silica and remain near the origin (OR), while less polar compounds, such as the three isoflavones near the solvent front (SF), partition more readily into the solvents (which are less polar than silica unless water, acids, or bases are included) and migrate farther up the plate.
After separation of an extract on a TLC plate, test microorganisms can be exposed to all compounds on the plate, thus speeding the identification of the active components of an extract2. If a fungal or bacterial culture is exposed to the chromatogram, microbial growth will occur everywhere except over areas with growth-inhibitory compounds. Zones of inhibition then can be visualized by observing the contrast between mycelial growth and the growth-free areas if fungi have been applied3 or by spraying with compounds that change color when reduced or hydrolyzed by living cells4. Although the use of paper or thin-layer chromatograms for antimicrobial assays was first applied to antibiotics5 and fungicides3,6, plant extracts are now frequently screened for antimicrobial compounds with this method, often referred to as bioautography. The protocols described herein apply to bioautography of thin-layer chromatograms. TLC is widely used because it is relatively rapid and can be performed on different adsorbents (e.g. silica, starch, alumina), as well as providing good resolution and sensitivity1.
Plant extracts can be prepared for TLC in many ways. Common methods include extracting plant material in alcohol-water mixtures such as 80% ethanol7,8, possibly with the addition of acid or base9. Following an extraction in such solvents, which contain some water and are possibly acidic or basic, extracts must be concentrated so that they can be applied to TLC plates in a minimal volume. The concentration of alcohol-water extracts can be achieved by partitioning with water-immiscible organic solvents8 or with a mixture of such solvents, such as ethyl acetate-ethyl ether (1:1, v/v)10,11. Different plant metabolites are extracted into different organic solvents, depending on their polarities. To ensure that plant organic acids or bases are extracted into organic solvents at this stage, the pH of an alcohol-water extract can be raised or lowered with a water-soluble acid or base to convert dissociated analytes into their nondissociated forms, which are then soluble in neutral organic solvents9. The organic phase can then be evaporated under reduced pressure or under nitrogen and adjusted to the desired volume for TLC. The pH of the extract is unlikely to be lethal to bioassay microorganisms due to the partitioning of analytes into neutral solvents, small final volume, and evaporation of the extract on the TLC plate prior to separation.
Both fungi and bacteria are employed as test microorganisms in bioautography of plant extracts2. Spores of some fungi, such as Cladosporium cucumerinum, germinate on TLC plates (apart from areas with inhibitory compounds) if sprayed onto plates in a nutrient solution and incubated in a moist environment for several days3. The dark mycelium of C. cucumerinum on noninhibitory zones provides a sharp contrast to zones free of mycelial growth. Although bacteria have been applied to thin-layer chromatography (TLC) plates in the same manner4,12, bacteria are also poured over TLC plate surfaces in agar overlays13,14. Yeast, such as Candida albicans, can be applied in agar overlays as well14. Alternatively, TLC plates can be placed face down onto agar inoculated with bacteria10,15 or yeast8, a method known as contact bioautography2.
We describe a method for contact bioautography to screen for antimicrobial phenolic compounds from red clover (Trifolium pratense cv. Kenland). The test microorganism is Clostridium sticklandii, a ruminal hyper ammonia-producing bacterium (HAB) and obligate anaerobe. Although the separations used do not resolve all components of the extract, they facilitate identification of zones of antimicrobial activity, thus narrowing the pool of possible antimicrobial compounds. The protocol utilizes standard procedures for TLC1. The protocol also describes some of the techniques required for culturing obligate anaerobes for such an assay, a usage of contact bioautography15 and a visualization method with a tetrazolium salt, which stains living cells2,4.