Subtilisin-like proteases play crucial roles in host-pathogen interactions. Thus, protease inhibitors constitute important tools in the regulation of this interaction. CmPI-II is a Kazal proteinase inhibitor isolated from Cenchritis muricatus that inhibits subtilisin A, trypsin and elastases. Based on sequence analysis it defines a new group of non-classical Kazal inhibitors. Lacking solved 3D structures from this group prevents the straightforward structural comparison with other Kazal inhibitors. The 3D structure of CmPI-II, solved in this work using NMR techniques, shows the typical fold of Kazal inhibitors, but has significant differences in its N-terminal moiety, the disposition of the CysI-CysV disulfide bond and the reactive site loop (RSL) conformation. The high flexibility of its N-terminal region, the RSL, and the α-helix observed in NMR experiments and molecular dynamics simulations, suggest a coupled motion of these regions that could explain CmPI-II broad specificity. The 3D structure of the CmPI-II/subtilisin A complex, obtained by modeling, allows understanding of the energetic basis of the subtilisin A inhibition. The residues at the P2 and P2' positions of the inhibitor RSL were predicted to be major contributors to the binding free energy of the complex, rather than those at the P1 position. Site directed mutagenesis experiments confirmed the Trp14 (P2') contribution to CmPI-II/subtilisin A complex formation. Overall, this work provides the structural determinants for the subtilisin A inhibition by CmPI-II and allows the designing of more specific and potent molecules. In addition, the 3D structure obtained supports the existence of a new group in non-classical Kazal inhibitors.
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http://dx.doi.org/10.1016/j.jsb.2019.03.011 | DOI Listing |
Sci Rep
December 2024
Department of Endocrinology and Metabolism, Institute of Post Graduate Medical Education & Research, 244 AJC Bose Road, Kolkata, 700020, India.
Panel of known genetic mutations (SPINK1, PRSS1, PRSS2, CTRC, and CFTR) in patients with Fibrocalcific pancreatic diabetes (FCPD)compared to Type 2 Diabetes (T2DM) and healthy controls with emphasis on SPINK1 (N34S) mutations. Whole blood samples were used to detect mutations by PCR followed by Sanger sequencing. In-silico analysis of N34S performed, to explore role in pathogenesis.
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Department of Biochemistry, Faculty of Medicine and Health Sciences, Christian University of Krida Wacana, Jakarta, Indonesia.
Kallikrein proteases (KPs) are vital enzymes involved in the formation of dermatosomes and are regulated by the body's internal inhibitors. Maintaining a balance between KPs and their inhibitors is essential for promoting a healthy scalp. The scalp specifically contains two KPs: human kallikrein (hK) 5 and hK7, which are encoded by their respective genes.
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Gastroenterology and Hepatology, National Hospital of Sri Lanka, Colombo, LKA.
Acute pancreatitis is a disease characterized by local destruction of the pancreatic gland due to premature activation of pancreatic enzymes within the acinar cells. Tissue damage can activate an inflammatory cascade, which can lead to systemic complications. Although vascular complications are uncommon, they significantly contribute to mortality and morbidity.
View Article and Find Full Text PDFBiomolecules
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Institute of Biosciences, São Paulo State University (UNESP), Botucatu 18618-693, SP, Brazil.
Cell Death Dis
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Key Laboratory of Screening and Control of Infectious Diseases, Fujian Provincial University, Quanzhou Medical College, Quanzhou, 362011, Fujian, China.
The PI3K/Akt pathway is overexpressed in nearly 50% of hepatocellular carcinomas and inhibits apoptosis by promoting the expression of antiapoptotic genes. Serine protease inhibitors have been shown to induce apoptosis in hepatoma cells by downregulating SPINK13 in the PI3K/Akt pathway. In this study, SPINK13 was expressed in lentiviral vectors.
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