scholarly journals REASSESSMENT OF THE CATALYTIC ACTIVITY AND SUBSTRATE SPECIFICITY OF FKBP35 FROM Plasmodium knowlesi USING PROTEASE-FREE ASSAY

Author(s):  
Cahyo Budiman ◽  
Carlmond Goh Kah Wun ◽  
Lee Ping Chin ◽  
Rafida Razali ◽  
Thean Chor Leow

FK506-binding protein35 of Plasmodium knowlesi (Pk-FKBP35) is a member of peptidyl prolyl cis-trans isomerase (PPIase) and is considered as a promising avenue of antimalarial drug target development. This protein is organized into the N-terminal domain responsible for PPIase catalytic activity followed and the tetratricopeptide repeat domain for its dimerization. The protease-coupling and protease-free assays are known to be the common methods for investigating the catalytic properties of PPIase. Earlier, the protease-coupling assay was used to confirm the catalytic activity of Pk-FKBP35 in accelerating cis-trans isomerization of the peptide substrate. This report is aimed to re-assess the catalytic and substrate specificity of Pk-FKBP35 using an alternative method of a protease-free assay. The result indicated that while Pk-FKBP35 theoretically contained many possible cleavage sites of chymotrypsin, experimentally, the catalytic domain was relatively stable from chymotrypsin. Furthermore, under protease-free assay, Pk-FKBP35 also demonstrated remarkable PPIase catalytic activity with kcat/KM of 4.5 + 0.13 × 105 M−1 s−1, while the kcat/KM of active site mutant of D55A is 0.81 + 0.05 × 105 M−1 s−1. These values were considered comparable to kcat/KM obtained from the protease-coupling assay. Interestingly, the substrate specificities of Pk-FKBP35 obtained from both methods are also similar, with the preference of Pk-FKBP35 towards Xaa at P1 position was Leu>Phe>Lys>Trp>Val>Ile>His>Asp>Ala>Gln>Glu. Altogether, we proposed that protease-free and protease-coupling assays arereliable for Pk-FKBP35.

2003 ◽  
Vol 278 (19) ◽  
pp. 17388-17394 ◽  
Author(s):  
Joyce Cheung-Flynn ◽  
Patricia J. Roberts ◽  
Daniel L. Riggs ◽  
David F. Smith

Genetics ◽  
2016 ◽  
Vol 203 (3) ◽  
pp. 1439-1451 ◽  
Author(s):  
Yang Yu ◽  
Zhigang Zhao ◽  
Yanrong Shi ◽  
Hua Tian ◽  
Linglong Liu ◽  
...  

Hepatology ◽  
2020 ◽  
Vol 71 (6) ◽  
pp. 2067-2079 ◽  
Author(s):  
Ranad Shaheen ◽  
Saud Alsahli ◽  
Nour Ewida ◽  
Fatema Alzahrani ◽  
Hanan E. Shamseldin ◽  
...  

2016 ◽  
Vol 6 (1) ◽  
Author(s):  
Lee Wei Lim ◽  
Smeeta Shrestha ◽  
Yu Zuan Or ◽  
Shawn Zheng Kai Tan ◽  
Hwa Hwa Chung ◽  
...  

2005 ◽  
Vol 388 (2) ◽  
pp. 515-525 ◽  
Author(s):  
Peter BENCÚR ◽  
Herta STEINKELLNER ◽  
Barbara SVOBODA ◽  
Jan MUCHA ◽  
Richard STRASSER ◽  
...  

XylT (β1,2-xylosyltransferase) is a unique Golgi-bound glycosyltransferase that is involved in the biosynthesis of glycoprotein-bound N-glycans in plants. To delineate the catalytic domain of XylT, a series of N-terminal deletion mutants was heterologously expressed in insect cells. Whereas the first 54 residues could be deleted without affecting the catalytic activity of the enzyme, removal of an additional five amino acids led to the formation of an inactive protein. Characterization of the N-glycosylation status of recombinant XylT revealed that all three potential N-glycosylation sites of the protein are occupied by N-linked oligosaccharides. However, an unglycosylated version of the enzyme displayed substantial catalytic activity, demonstrating that N-glycosylation is not essential for proper folding of XylT. In contrast with most other glycosyltransferases, XylT is enzymatically active in the absence of added metal ions. This feature is not due to any metal ion directly associated with the enzyme. The precise acceptor substrate specificity of XylT was assessed with several physiologically relevant compounds and the xylosylated reaction products were subsequently tested as substrates of other Golgi-resident glycosyltransferases. These experiments revealed that the substrate specificity of XylT permits the enzyme to act at multiple stages of the plant N-glycosylation pathway.


2005 ◽  
Vol 32 (2) ◽  
pp. 176-176
Author(s):  
Shinichi Yoshida ◽  
Kenji Ogura ◽  
Masashi Yokochi ◽  
Satoru Yuzawa ◽  
Masataka Horiuchi ◽  
...  

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