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1.
Protein Expr Purif ; 222: 106534, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38897399

ABSTRACT

Tribolium castaneum, also known as the red flour beetle, is a polyphagous pest that seriously damages agricultural products, including stored and processed grains. Researchers have aimed to discover alternative pest control mechanisms that are less harmful to the ecosystem than those currently used. We conduct the purification and characterization of a protease inhibitor from C. plumieri seeds and an in vitro evaluation of its insecticidal potential against the insect pest T. castaneum. The trypsin inhibitor was isolated from C. plumieri seeds in a single-step DEAE-Sepharose column chromatography and had a molecular mass of 50 kDA. When analyzed for interaction with different proteolytic enzymes, the inhibitor exhibited specificity against trypsin and no activity against other serine proteases such as chymotrypsin and elastase-2. The isolated inhibitor was able to inhibit digestive enzymes of T. castaneum from extracts of the intestine of this insect. Therefore, we conclude that the new protease inhibitor, specific in tryptic inhibition, of protein nature from the seeds of C. plumieri was effective in inhibiting the digestive enzymes of T. castaneum and is a promising candidate in the ecological control of pests.


Subject(s)
Tribolium , Trypsin Inhibitors , Animals , Trypsin Inhibitors/pharmacology , Trypsin Inhibitors/chemistry , Trypsin Inhibitors/isolation & purification , Tribolium/enzymology , Tribolium/drug effects , Insect Proteins/chemistry , Insect Proteins/isolation & purification , Insect Proteins/antagonists & inhibitors , Seeds/chemistry , Insecticides/pharmacology , Insecticides/chemistry , Insecticides/isolation & purification , Plant Proteins/pharmacology , Plant Proteins/isolation & purification , Plant Proteins/chemistry
2.
Environ Sci Pollut Res Int ; 31(13): 20172-20187, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38369661

ABSTRACT

Tetracycline (TC) is a widely used antibiotic, and evaluating its interaction with humic substances (HS) that act as a complexing agent in the environment is essential to understanding the availability of this contaminant in the environment. This study evaluated the interaction between HS and TC using different spectroscopic techniques, theoretical studies, and biological assays simulating environmental conditions. TC interacts with HS, preferably by electrostatic forces, with a binding constant of 9.2 × 103 M-1 (30 °C). This process induces conformational changes in the superstructure, preferably in the HS, like protein fraction. Besides, studies using the 8-anilino-1-naphthalene sulfonate (ANS) probe indicated that the antibiotic alters the hydrophobicity degree on HS's surface. Synchronized fluorescence shows that the TC interaction occurs preferentially with the protein-like fraction of soil organic matter (KSV = 26.28 ± 1.03 M-1). The TC epitope was evaluated by 1H NMR and varied according to the pH (4.8 and 9.0) of the medium, as well as the main forces responsible for the stabilization of the HS-TC complex. The molecular docking studies showed that the formation of the HS-TC complex is carried out spontaneously (ΔG = -7.1 kcal mol-1) and is stabilized by hydrogen bonds and electrostatic interactions, as observed in the experimental spectroscopic results. Finally, biological assays indicated that HS influenced the antimicrobial activity of TC. Thus, this study contributed to understanding the dynamics and distribution of TC in the environment and HS's potential in the remediation of antibiotics of this class in natural systems, as these can have adverse effects on ecosystems and human health.


Subject(s)
Ecosystem , Humic Substances , Humans , Humic Substances/analysis , Molecular Docking Simulation , Adsorption , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Tetracycline/chemistry
3.
Prep Biochem Biotechnol ; 54(7): 910-917, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38156982

ABSTRACT

Proteases are the main enzymes traded worldwide-comprising 60% of the total enzyme market-and are fundamental to the degradation and processing of proteins and peptides. Due to their high commercial demand and biological importance, there is a search for alternative sources of these enzymes. Crotalaria stipularia is highlighted for its agroecological applications, including organic fertilizers, nematode combat, and revegetation of areas contaminated with toxic substances. Considering the pronounced biotechnological functionality of the studied species and the necessity to discover alternative sources of proteases, we investigated the extraction, purification, and characterization of a protease from seeds of the C. stipularia plant. Protease isolation was achieved by three-phase partitioning and single-step molecular exclusion chromatography in Sephacryl S-100, with a final recovery of 47% of tryptic activity. The molecular mass of the isolated enzyme was 40 kDa, demonstrating optimal activities at pH 8.0 and 50 °C. Enzymatic characterization demonstrated that the protease can hydrolyze the specific trypsin substrate, BApNA. This trypsin-like protease had a Km, Vmax, Kcat, and catalytic efficiency constant of 0.01775 mg/mL, 0.1082 mM/min, 3.86 s-1, and 217.46, respectively.


Subject(s)
Crotalaria , Seeds , Crotalaria/chemistry , Seeds/chemistry , Seeds/enzymology , Hydrogen-Ion Concentration , Trypsin/metabolism , Trypsin/chemistry , Kinetics , Substrate Specificity , Temperature , Molecular Weight
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