Improved catalytic and antifungal activities of Bacillus thuringiensis cells with surface display of Chi9602ΔSP
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X. Sun | J. Wan | H. Ni | M. Tang | S. Zhang | L. Li | Hong Ni | Mengjun Tang | Xiaowen Sun | Shan Zhang | Wan Juan | Lin Li
[1] Ziniu Yu,et al. Molecular Docking and Site-directed Mutagenesis of a Bacillus thuringiensis Chitinase to Improve Chitinolytic, Synergistic Lepidopteran-larvicidal and Nematicidal Activities , 2015, International journal of biological sciences.
[2] A. Silva,et al. A novel family 19 chitinase from the marine-derived Pseudoalteromonas tunicata CCUG 44952T: Heterologous expression, characterization and antifungal activity , 2015 .
[3] G. Festel,et al. Bacterial whole-cell biocatalysts by surface display of enzymes: toward industrial application , 2014, Applied Microbiology and Biotechnology.
[4] J. Zhu,et al. Construction and characterization of a thermostable whole-cell chitinolytic enzyme using yeast surface display , 2014, World journal of microbiology & biotechnology.
[5] A. Palva,et al. Lactobacillus surface layer proteins: structure, function and applications , 2013, Applied Microbiology and Biotechnology.
[6] P. Saris,et al. Immobilization of nisin producer Lactococcus lactis strains to chitin with surface-displayed chitin-binding domain , 2013, Applied Microbiology and Biotechnology.
[7] C. Tseng,et al. Enhancing the stability of xylanase from Cellulomonas fimi by cell‐surface display on Escherichia coli , 2012, Journal of applied microbiology.
[8] X. Shao,et al. An improved system for the surface immobilisation of proteins on Bacillus thuringiensis vegetative cells and spores through a new spore cortex-lytic enzyme anchor. , 2012, New biotechnology.
[9] V. Seidl-Seiboth,et al. Self versus non-self: fungal cell wall degradation in Trichoderma. , 2012, Microbiology.
[10] D. Ning,et al. Surface‐displayed VP28 on Bacillus subtilis spores induce protection against white spot syndrome virus in crayfish by oral administration , 2011, Journal of applied microbiology.
[11] Ziniu Yu,et al. In vivo and in vitro surface display of heterologous proteins on Bacillus thuringiensis vegetative cells and spores , 2011 .
[12] S. Gill,et al. Bacillus thuringiensis: A story of a successful bioinsecticide. , 2011, Insect biochemistry and molecular biology.
[13] R. Twyman,et al. Bacillus thuringiensis: a century of research, development and commercial applications. , 2011, Plant biotechnology journal.
[14] Leslie D. Knecht,et al. Bacterial spores as platforms for bioanalytical and biomedical applications , 2011, Analytical and bioanalytical chemistry.
[15] B. Ma,et al. Role of chitin and chitinase/chitinase-like proteins in inflammation, tissue remodeling, and injury. , 2011, Annual review of physiology.
[16] Harald Kolmar,et al. Decorating microbes: surface display of proteins on Escherichia coli. , 2011, Trends in biotechnology.
[17] M. Yamabhai,et al. Expression and characterization of Bacillus licheniformis chitinase (ChiA), suitable for bioconversion of chitin waste. , 2010, Bioresource technology.
[18] Morten Sørlie,et al. Production of Chitooligosaccharides and Their Potential Applications in Medicine , 2010, Marine drugs.
[19] Dong Liu,et al. Purification and partial characterization of a 36-kDa chitinase from Bacillus thuringiensis subsp. colmeri, and its biocontrol potential , 2010 .
[20] G. Ahmadian,et al. Chitinolytic and antifungal activity of a Bacillus pumilus chitinase expressed in Arabidopsis , 2010, Biotechnology Letters.
[21] Ziniu Yu,et al. Surface display of heterologous proteins in Bacillus thuringiensis using a peptidoglycan hydrolase anchor , 2009, Microbial cell factories.
[22] T. Park,et al. Spore display using Bacillus thuringiensis exosporium protein InhA. , 2009, Journal of microbiology and biotechnology.
[23] Ming Sun,et al. Displaying the protein of Mycoplasma gallisepticum agglutinin on the cell surface of Bacillus thuringiensis with the S-layer protein. , 2008, Veterinary microbiology.
[24] S. Igimi,et al. Display of heterologous proteins on the surface of Lactococcus lactis using the H and W domain of PrtB from Lactobacillus delburueckii subsp. bulgaricus as an anchoring matrix , 2008, Journal of applied microbiology.
[25] Ming Sun,et al. Display of avian influenza virus nucleoprotein on Bacillus thuringiensis cell surface using CTC as a fusion partner , 2008, Applied Microbiology and Biotechnology.
[26] Rajinder K. Gupta,et al. Bacterial Chitinases: Properties and Potential , 2007, Critical reviews in biotechnology.
[27] N. Mahadi,et al. Phage Displayed Bacillus thuringiensis Cry1Ba4 Toxin Is Toxic to Plutella xylostella , 2006, Current Microbiology.
[28] C. Tsai,et al. Cell surface display of Chi92 on Escherichia coli using ice nucleation protein for improved catalytic and antifungal activity. , 2006, FEMS microbiology letters.
[29] W. Chan,et al. Surface Display of Recombinant Proteins on Bacillus thuringiensis Spores , 2005, Applied and Environmental Microbiology.
[30] B. Synstad,et al. Structure of the D142N mutant of the family 18 chitinase ChiB from Serratia marcescens and its complex with allosamidin. , 2004, Biochimica et biophysica acta.
[31] U. Stahl,et al. Antifungal proteins: targets, mechanisms and prospective applications , 2004, Cellular and Molecular Life Sciences CMLS.
[32] Sang Yup Lee,et al. Microbial cell-surface display. , 2003, Trends in biotechnology.
[33] R. Bhatnagar,et al. Phage display of Bacillus thuringiensis CryIA(a) insecticidal toxin , 1997, FEBS letters.
[34] W. K. Roberts,et al. PLANT AND BACTERIAL CHITINASES DIFFER IN ANTIFUNGAL ACTIVITY , 1988 .
[35] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .