Hydrogen sulfide producing bacteria can utilize sulfur-containing amino acids and proteins to produce hydrogen sulfide (H2S). The production of H2S occurs usually in gram-negative Enterobacteriaceae family bacteria and also in members of Citrobacter spp., Proteus spp., Edwardsiella spp., and Shewanella spp.1. These bacteria have the ability to reduce sulphate into hydrogen sulfide (H2S) in order to obtain energy. Hydrogen sulfide has been implicated in the development of bacterial drug resistance. H2S protects bacteria from the toxicity of reactive oxygen species (ROS), thus antagonizing the antibacterial effect of antibiotics2,3. H2S also has an important physiological effect in maintaining homeostasis. At supraphysiological levels, H2S has been shown to be profoundly toxic to the body. In the human body, H2S has another role as a gas signaling molecule that is involved in a variety of physiological and pathological processes. H2S can regulate the systolic function of the heart and plays an important physiological role in relaxing blood vessels, inhibiting vascular remodeling, and protecting the myocardium4,5. H2S also plays an important role in regulating the nervous system and digestive tract6,7. It has been found that, when exposed to bactericidal antibiotics, bacteria produce lethal reactive oxygen species (ROS) leading to cell death8,9,10,11.
As a common biochemical test in microbiological laboratory courses, the hydrogen sulfide test is an important experiment in the identification of bacteria, especially bacteria of the family Enterobacteriaceae. At present, the hydrogen sulfide test is usually performed on a large number of sulfur-containing amino acids and lead acetate medium inoculated with the bacteria to be tested. After a period of incubation (2-3 days), the results are judged by observing whether the culture medium or lead acetate paper strip is blackened because of lead acetate production11. However, these traditional methods are not only tedious and time-consuming but also prone to inhibition of bacterial growth due to the toxic effect of heavy metal salts in sulfur-containing medium, which often leads to negative results. A bismuth-based method has been established for the detection of H2S12,13. H2S can react with bismuth, forming black bismuth sulfide precipitation. In order to conduct a reform for this biochemical test, a simple and quick method with no side effects on bacterial growth needs to be established. Here, we set up a simple method for the detection of hydrogen sulfide producing bacteria grown in an in vitro environment using bismuth sulfide as a substrate in a 96-well microtiter plate format.