We have identified proteins that control the expression of slpA, the gene encoding the crystalline surface layer of Thermus thermophilus HB8. We cloned three genes from T. thermophilus that specifically repressed the expression of the slpA promoter in Escherichia coli. The proteins encoded by two of them (Rep6 and Rep29) bound in vitro to the slpA promoter, while that from the third (Rep54) bound specifically to the 5'-untranslated region (5'UTR) of the slpA mRNA. Rep6 protein was identified as a C-fragment from a Thermus cytoplasmic basic protein of 28 kDa, whose coding gene, slrA (for S-layer regulator), was characterized. Surprisingly, Rep29 was identified as a C-fragment of SlpM, an S-layer-like protein that is overexpressed in slpA mutants. Insertional inactivation of slrA and slpM demonstrated their in vivo function in the control of slpA transcription: SlrA acts as a repressor, and SlpM as an activator. Even more surprising was the identification of Rep54, the 5'UTR mRNA-binding protein, as a C-terminal fragment of the SlpA protein. This result, in addition to further in vivo evidence presented here, supports the existence of a translational autoregulation in slpA expression. The physiological meaning of overlapping transcriptional and translational controls of S-layer expression, and its relationships with other systems, are discussed.
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http://dx.doi.org/10.1046/j.1365-2958.1997.3191683.x | DOI Listing |
J Phys Chem B
January 2025
Department of Chemistry, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
The microbial aminotransferase enzyme DapC is vital for lysine biosynthesis in various Gram-positive bacteria, including . Characterization of the enzyme's conformational dynamics and identifying the key residues for ligand binding are crucial for the development of effective antimicrobials. This study employs atomistic simulations to explore and categorize the dynamics of DapC in comparison to other classes of aminotransferase.
View Article and Find Full Text PDFAnal Chem
January 2025
State Key Laboratory of Food Science and Resources, Jiangnan University, Wuxi 214122, China.
Timely and accurate detection of trace mycotoxins in agricultural products and food is significant for ensuring food safety and public health. Herein, a deep learning-assisted and entropy-driven catalysis (EDC)-Argonaute powered fluorescence single-particle aptasensing platform was developed for ultrasensitive detection of fumonisin B (FB) using single-stranded DNA modified with biotin and red fluorescence-encoded microspheres as a signal probe and streptavidin-conjugated magnetic beads as separation carriers. The binding of aptamer with FB releases the trigger sequence to mediate EDC cycle to produce numerous 5'-phosphorylated output sequences, which can be used as the guide DNA to activate downstream Argonaute (Ago) for cleaving the signal probe, resulting in increased number of fluorescence microspheres remaining in the final reaction supernatant after magnetic separation.
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January 2025
Departamento de Micro y Nanotecnologías, Instituto de Ciencias Aplicadas y Tecnología, Universidad Nacional Autónoma de México, Cto. Exterior S/N, C.U., Coyoacán, Ciudad de México C.P. 04510, Mexico.
Thermus thermophilus HB27 laccase (Tth-Lac) is a thermostable enzyme that contains a β-hairpin (Ala292-Gln307) covering the substrate entrance. We analyzed the role of this β-hairpin in the enzymatic activity of Tth-Lac through three β-hairpin mutants: two variants without the β-hairpin (C1Tth-Lac and C2Tth-Lac) and one with a partially modified β-hairpin (P1Tth-Lac). Enzymatic activity was assayed with different substrates with and without copper.
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January 2025
Department of Molecular Biosciences, Wenner-Gren Institute, Stockholm University, Stockholm, SE 106 91, Sweden.
Bacteria experience a continual array of environmental stresses, necessitating adaptive mechanisms crucial for their survival. Thermophilic bacteria, such as Thermus thermophilus, face constant environmental challenges, particularly high temperatures, which requires robust adaptive mechanisms for survival. Studying these extremophiles provides valuable insights into the intricate molecular and physiological processes used by extremophiles to adapt and survive in harsh environments.
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Center for Cooperative Research in Biomaterials (CIC biomaGUNE), Basque Research and Technology Alliance (BRTA), San Sebastián, Spain.
Enzyme immobilization is indispensable for enhancing enzyme performance in various industrial applications. Typically, enzymes require specific spatial arrangements for optimal functionality, underscoring the importance of correct orientation. Despite well-known N- or C-terminus tailoring techniques, alternatives for achieving orientation control are limited.
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