The assay time is 10?min, including non-time-consuming sample preparation, which is limited to dilution of the sample under analysis using a buffer. assay is usually shown to identify TC in milk; the degree of recovery of TC ranges from 90 to 112%. The precision of the concentrations measurements was no more than 10%. 1. Introduction Tetracyclines (TCs) are a group of broad-spectrum antibiotics representing polyketones in their chemical structure [1]. By blocking the binding of transferred ribonucleic acid aminoacyl to ribosome, Dicyclanil they inhibit protein synthesis in bacterial cells [2, 3]. TCs are widely used in veterinary medicine, both for therapeutic and preventive purposes, due to their high activity towards a large number of Gram-positive and Gram-negative bacteria, small doses, and broad spectrum of action. In addition, TCs are used as growth promoters of animal body weight, destroyers of pathogens in drinking water sources, fodder, and food, and phytopathogenic brokers in crop production [4]. The most widely used tetracycline antibiotics are tetracycline (TC), chlortetracycline, and oxytetracycline (Physique 1). Open in a separate window Physique 1 The overall structure of tetracycline antibiotics: tetracycline (R1, H; R2, H); chlortetracycline (R1, Cl; R2, H); oxytetracycline (R1, H; R2, OH). Because of their intensive and diverse uses, tetracyclines may enter the human body not only in the treatment of diseases but also with food. This can cause toxic and allergic effects, dysfunction of the gastrointestinal tract, renal insufficiency, and deformation of mucous tissues [5, 6]. The emergence of bacteria resistant to tetracycline antibiotics is due to their massive clinical, veterinary, and agricultural use [7]. It is therefore important to monitor the presence of tetracyclines and other antibiotics in food. Most countries of the world have regulations concerning acceptable levels of tetracyclines in food. According to the regulations of the Customs Union, the concentration of tetracyclines in milk, dairy products, meat, and prefabricated meat products should not exceed 10?ng/mL (ng/g) in Russia [8]. The European Commission established maximum residue levels (MRLs) for the amounts of tetracyclines, namely, oxytetracycline, chlortetracycline, and their stereoisomers, of 100?pg/g for meat, 600?ng/g for kidneys, 200?ng/g for eggs, and 100?ng/g for milk [9]. Tetracycline is not allowed in some food products (honey and baby food); that is, the level of tetracycline should be below the detection threshold of the recommended analytical methods. In the United States, the maximum permissible level of tetracycline is usually 300?is the asymptotic maximum (the color intensity in the absence of the analyte), is the slope of the curve Dicyclanil in semilogarithmic coordinates in the inflection point, is the concentration of the analyte at the inflection point, and is the asymptotic minimum (the intensity of Klf1 the background coloration). The quantitative limit of detection was calculated as the TC content corresponding to a binding inhibition of 10%. The working range was calculated as the TC content corresponding to a binding inhibition of 20% Dicyclanil (lower limit of working range) and 80% (upper limit of working range) [30]. The visual detection limit was 1,000?RU. 2.12. Addition-Detection Experiments The test system was characterized in addition-detection experiments using spiked milk samples. The recovery (= 3 (b) for immunochromatographic determination of the TC in milk samples. Adequate goodness of fit (= 3. 4. Conclusions The developed IC test system is usually characterized by a low detection threshold of TC in milk of 0.02?ng/mL for instrumental recording, as well as a wide (more than two orders) operating range. The quantitative assay method proposed is usually 10C100 times more sensitive than IC assay [21] and ELISA [18, 42]. The visual detection threshold of the test system is usually 10?ng/mL, which is 2C5 times greater than that of commercial analogues (SNAP, Charm). The assay time is usually 10?min, including non-time-consuming sample preparation, which is limited to dilution of the sample under analysis using a buffer. The effectiveness of the test system for monitoring tetracycline in milk was confirmed. The characteristics established allow the developed test system to be considered as a promising tool for monitoring the safety of foods. Detection threshold reduction was achieved using two methods, as follows: (a) transition from a qualitative assessment of results to a quantitative assessment based on video digital recording and (b) the use of a polyclonal formulation made up of a small proportion of antibodies specific to TC and nonspecific antibodies.