Dr. Keni  Vidilaseris
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Dr. Keni Vidilaseris

Postdoctoral researcher
University of Helsinki, Finland


Highest Degree
Ph.D. in Molecular Biology from Vienna University, Austria

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Area of Interest:

Biomedical Sciences
100%
Molecualar Biology
62%
Chemistry
90%
Pathology
75%
Morphology
55%

Research Publications in Numbers

Books
0
Chapters
0
Articles
0
Abstracts
0

Selected Publications

  1. Vidilaseris, K., J. Kellosalo and A. Goldman, 2018. A high-throughput method for orthophosphate determination of thermostable membrane-bound pyrophosphatase activity. Anal. Meth., 10: 646-651.
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  2. Strauss, J., C. Wilkinson, K. Vidilaseris, S.P. Harborne and A. Goldman, 2018. A simple strategy to determine the dependence of membrane-bound pyrophosphatases on K+ as a cofactor. Meth. Enzymol., 607: 131-156.
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  3. Shah, N.R., K. Vidilaseris, H. Xhaard and A. Goldman, 2016. Integral membrane pyrophosphatases: A novel drug target for human pathogens? AIMS Biophys., 3: 171-194.
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  4. Vidilaseris, K., J. Lesigang, B. Morriswood and G. Dong, 2015. Assembly mechanism of Trypanosoma brucei BILBO1 at the flagellar pocket collar. Communicat. Integrat. Biol., Vol. 8. 10.4161/19420889.2014.992739.
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  5. Natalia, D., K. Vidilaseris, W.T. Ismaya, F. Puspasari and I. Prawira et al., 2015. Effect of introducing a disulphide bond between the A and C domains on the activity and stability of Saccharomycopsis fibuligera R64 α-amylase. J. Biotechnol., 195: 8-14.
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  6. Florimond, C., A. Sahin, K. Vidilaseris, G. Dong and N. Landrein et al., 2015. BILBO1 is a scaffold protein of the flagellar pocket collar in the pathogen Trypanosoma brucei. Plos Pathogens, Vol. 11. 10.1371/journal.ppat.1004654.
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  7. Vidilaseris, K., E. Shimanovskaya, H.J. Esson, B. Morriswood and G. Dong, 2014. Assembly mechanism of Trypanosoma brucei BILBO1, a multidomain cytoskeletal protein. J. Biol. Chem., 289: 23870-23881.
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  8. Vidilaseris, K., B. Morriswood, G. Kontaxis and G. Dong, 2014. Structure of the TbBILBO1 protein N-terminal domain from Trypanosoma brucei reveals an essential requirement for a conserved surface patch. J. Biol. Chem., 289: 3724-3735.
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  9. Vidilaseris, K. and G. Dong, 2014. Expression, purification and preliminary crystallographic analysis of the N-terminal domain of Trypanosoma brucei BILBO1. Acta Crystallogr. Section F: Struct. Biol. Commun., 70: 628-631.
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  10. Morriswood, B., K. Havlicek, L. Demmel, S. Yavuz and M. Sealey-Cardona et al., 2013. Novel bilobe components in Trypanosoma brucei identified using proximity-dependent biotinylation. Eukaryotic Cell, 12: 356-367.
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  11. Esson, H.J., B. Morriswood, S. Yavuz, K. Vidilaseris, G. Dong and G. Warren, 2012. Morphology of the trypanosome bilobe, a novel cytoskeletal structure. Eukaryotic Cell, 11: 761-772.
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  12. Natalia, D., K. Vidilaseris, P. Satrimafitrah, W. Ismaya and H. Permentier et al., 2011. Biochemical characterization of a glucoamylase from Saccharomycopsis fibuligera R64. Biologia, 66: 27-32.
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  13. Vidilaseris, K., K. Hidayat, D. Retnoningrum, Z. Nurachman, A. Noer and D. Natalia, 2009. Biochemical characterization of a raw starch degrading α-amylase from the Indonesian marine bacterium Bacillus sp. ALSHL3. Biologia, 64: 1047-1052.
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