Filtros : "POLIKARPOV, IGOR" "Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)" Limpar

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  • Source: Nature Communications. Unidades: IB, IFSC

    Subjects: ATIVAÇÃO ENZIMÁTICA, BACTÉRIAS FITOPATOGÊNICAS, CANCRO (DOENÇA DE PLANTA), FATORES DE TRANSCRIÇÃO, POLISSACARÍDEOS BACTERIANOS, VIRULÊNCIA

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      VIEIRA, Plinio S. et al. Xyloglucan processing machinery in Xanthomonas pathogens and its role in the transcriptional activation of virulence factors. Nature Communications, v. 12, p. 4049-1-4049-15, 2021Tradução . . Disponível em: https://doi.org/10.1038/s41467-021-24277-4. Acesso em: 20 maio 2024.
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      Vieira, P. S., Bonfim, I. M., Araujo, E. A., Melo, R. R., Lima, A. R., Fessel, M. R., et al. (2021). Xyloglucan processing machinery in Xanthomonas pathogens and its role in the transcriptional activation of virulence factors. Nature Communications, 12, 4049-1-4049-15. doi:10.1038/s41467-021-24277-4
    • NLM

      Vieira PS, Bonfim IM, Araujo EA, Melo RR, Lima AR, Fessel MR, Paixão DAA, Persinoti GF, Rocco SA, Lima TB, Pirolla RAS, Morais MAB, Correa JBL, Zanphorlin LM, Diogo JA, Lima EA, Grandis A, Buckeridge M, Gozzo FC, Benedetti CE, Polikarpov I, Giuseppe PO, Murakami MT. Xyloglucan processing machinery in Xanthomonas pathogens and its role in the transcriptional activation of virulence factors [Internet]. Nature Communications. 2021 ; 12 4049-1-4049-15.[citado 2024 maio 20 ] Available from: https://doi.org/10.1038/s41467-021-24277-4
    • Vancouver

      Vieira PS, Bonfim IM, Araujo EA, Melo RR, Lima AR, Fessel MR, Paixão DAA, Persinoti GF, Rocco SA, Lima TB, Pirolla RAS, Morais MAB, Correa JBL, Zanphorlin LM, Diogo JA, Lima EA, Grandis A, Buckeridge M, Gozzo FC, Benedetti CE, Polikarpov I, Giuseppe PO, Murakami MT. Xyloglucan processing machinery in Xanthomonas pathogens and its role in the transcriptional activation of virulence factors [Internet]. Nature Communications. 2021 ; 12 4049-1-4049-15.[citado 2024 maio 20 ] Available from: https://doi.org/10.1038/s41467-021-24277-4
  • Source: Journal of Chemical Information and Modeling. Unidades: IQ, IFSC, FO

    Subjects: RAIOS X, BIOINFORMÁTICA

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      VELDMAN, Wayde et al. X-ray structure, bioinformatics analysis, and substrate specificity of a 6-phospho-β-glucosidase glycoside hydrolase 1 enzyme from Bacillus licheniformis. Journal of Chemical Information and Modeling, v. 60, n. 12, p. 6392-6407, 2020Tradução . . Disponível em: https://doi.org/10.1021/acs.jcim.0c00759. Acesso em: 20 maio 2024.
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      Veldman, W., Liberato, M. V., Almeida, V. M., Souza, V. P., Frutuoso, M. A., Marana, S. R., et al. (2020). X-ray structure, bioinformatics analysis, and substrate specificity of a 6-phospho-β-glucosidase glycoside hydrolase 1 enzyme from Bacillus licheniformis. Journal of Chemical Information and Modeling, 60( 12), 6392-6407. doi:10.1021/acs.jcim.0c00759
    • NLM

      Veldman W, Liberato MV, Almeida VM, Souza VP, Frutuoso MA, Marana SR, Moses V, Bishop OT, Polikarpov I. X-ray structure, bioinformatics analysis, and substrate specificity of a 6-phospho-β-glucosidase glycoside hydrolase 1 enzyme from Bacillus licheniformis [Internet]. Journal of Chemical Information and Modeling. 2020 ; 60( 12): 6392-6407.[citado 2024 maio 20 ] Available from: https://doi.org/10.1021/acs.jcim.0c00759
    • Vancouver

      Veldman W, Liberato MV, Almeida VM, Souza VP, Frutuoso MA, Marana SR, Moses V, Bishop OT, Polikarpov I. X-ray structure, bioinformatics analysis, and substrate specificity of a 6-phospho-β-glucosidase glycoside hydrolase 1 enzyme from Bacillus licheniformis [Internet]. Journal of Chemical Information and Modeling. 2020 ; 60( 12): 6392-6407.[citado 2024 maio 20 ] Available from: https://doi.org/10.1021/acs.jcim.0c00759
  • Source: Industrial Crops and Products. Unidades: IFSC, BIOENERGIA

    Subjects: BIOTECNOLOGIA, BAGAÇOS, BIOCOMBUSTÍVEIS, HIDRÓLISE

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      ESPIRITO SANTO, Melissa Cristina do et al. When the order matters: impacts of lignin removal and xylan conformation on the physical structure and enzymatic hydrolysis of sugarcane bagasse. Industrial Crops and Products, v. 180, p. 114708-1-114708-12, 2022Tradução . . Disponível em: https://doi.org/10.1016/j.indcrop.2022.114708. Acesso em: 20 maio 2024.
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      Espirito Santo, M. C. do, Thema, F. T., Pellegrini, V. de O. A., Kane, A. O., Guimarães, F. E. G., Filgueiras, J. G., et al. (2022). When the order matters: impacts of lignin removal and xylan conformation on the physical structure and enzymatic hydrolysis of sugarcane bagasse. Industrial Crops and Products, 180, 114708-1-114708-12. doi:10.1016/j.indcrop.2022.114708
    • NLM

      Espirito Santo MC do, Thema FT, Pellegrini V de OA, Kane AO, Guimarães FEG, Filgueiras JG, Novotny EH, Azevêdo ER de, Polikarpov I. When the order matters: impacts of lignin removal and xylan conformation on the physical structure and enzymatic hydrolysis of sugarcane bagasse [Internet]. Industrial Crops and Products. 2022 ; 180 114708-1-114708-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.indcrop.2022.114708
    • Vancouver

      Espirito Santo MC do, Thema FT, Pellegrini V de OA, Kane AO, Guimarães FEG, Filgueiras JG, Novotny EH, Azevêdo ER de, Polikarpov I. When the order matters: impacts of lignin removal and xylan conformation on the physical structure and enzymatic hydrolysis of sugarcane bagasse [Internet]. Industrial Crops and Products. 2022 ; 180 114708-1-114708-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.indcrop.2022.114708
  • Source: Biotechnology and Bioengineering. Unidade: IFSC

    Subjects: BIOMASSA, HETEROPOLISSACARÍDEOS, PAREDE CELULAR VEGETAL

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      KADOWAKI, Marco Antonio Seiki et al. Unlocking the structural features for the xylobiohydrolase activity of an unusual GH11 member identified in a compost-derived consortium. Biotechnology and Bioengineering, v. 118, n. 10, p. 4052-4064, 2021Tradução . . Disponível em: https://doi.org/10.1002/bit.27880. Acesso em: 20 maio 2024.
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      Kadowaki, M. A. S., Briganti, L., Evangelista, D. E., Echevarría-Poza, A., Tryfona, T., Pellegrini, V. de O. A., et al. (2021). Unlocking the structural features for the xylobiohydrolase activity of an unusual GH11 member identified in a compost-derived consortium. Biotechnology and Bioengineering, 118( 10), 4052-4064. doi:10.1002/bit.27880
    • NLM

      Kadowaki MAS, Briganti L, Evangelista DE, Echevarría-Poza A, Tryfona T, Pellegrini V de OA, Nakayama DG, Dupree P, Polikarpov I. Unlocking the structural features for the xylobiohydrolase activity of an unusual GH11 member identified in a compost-derived consortium [Internet]. Biotechnology and Bioengineering. 2021 ; 118( 10): 4052-4064.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/bit.27880
    • Vancouver

      Kadowaki MAS, Briganti L, Evangelista DE, Echevarría-Poza A, Tryfona T, Pellegrini V de OA, Nakayama DG, Dupree P, Polikarpov I. Unlocking the structural features for the xylobiohydrolase activity of an unusual GH11 member identified in a compost-derived consortium [Internet]. Biotechnology and Bioengineering. 2021 ; 118( 10): 4052-4064.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/bit.27880
  • Source: Carbohydrate Polymers. Unidade: IFSC

    Subjects: ENZIMAS, POLISSACARÍDEOS, BIOTECNOLOGIA

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      VACILOTTO, Milena Moreira et al. Two-domain GH30 xylanase from human gut microbiota as a tool for enzymatic production of xylooligosaccharides: crystallographic structure and a synergy with GH11 xylosidase. Carbohydrate Polymers, v. 337, p. 122141-1-122141-14 + supplementary data, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.carbpol.2024.122141. Acesso em: 20 maio 2024.
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      Vacilotto, M. M., Montalvão, L. de A., Pellegrini, V. de O. A., Liberato, M. V., Araújo, E. A. de, & Polikarpov, I. (2024). Two-domain GH30 xylanase from human gut microbiota as a tool for enzymatic production of xylooligosaccharides: crystallographic structure and a synergy with GH11 xylosidase. Carbohydrate Polymers, 337, 122141-1-122141-14 + supplementary data. doi:10.1016/j.carbpol.2024.122141
    • NLM

      Vacilotto MM, Montalvão L de A, Pellegrini V de OA, Liberato MV, Araújo EA de, Polikarpov I. Two-domain GH30 xylanase from human gut microbiota as a tool for enzymatic production of xylooligosaccharides: crystallographic structure and a synergy with GH11 xylosidase [Internet]. Carbohydrate Polymers. 2024 ; 337 122141-1-122141-14 + supplementary data.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2024.122141
    • Vancouver

      Vacilotto MM, Montalvão L de A, Pellegrini V de OA, Liberato MV, Araújo EA de, Polikarpov I. Two-domain GH30 xylanase from human gut microbiota as a tool for enzymatic production of xylooligosaccharides: crystallographic structure and a synergy with GH11 xylosidase [Internet]. Carbohydrate Polymers. 2024 ; 337 122141-1-122141-14 + supplementary data.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2024.122141
  • Source: Carbohydrate Polymers. Unidade: IFSC

    Subjects: ENZIMAS, BIOTECNOLOGIA, BAGAÇOS, ETANOL, CELULOSE

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      SEPULCHRO, Ana Gabriela Veiga et al. Transformation of xylan into value-added biocommodities using Thermobacillus composti GH10 xylanase. Carbohydrate Polymers, v. No 2020, p. 116714-1-116714-14, 2020Tradução . . Disponível em: https://doi.org/10.1016/j.carbpol.2020.116714. Acesso em: 20 maio 2024.
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      Sepulchro, A. G. V., Pellegrini, V. de O. A., Briganti, L., Araújo, E. A. de, Araújo, S. S., & Polikarpov, I. (2020). Transformation of xylan into value-added biocommodities using Thermobacillus composti GH10 xylanase. Carbohydrate Polymers, No 2020, 116714-1-116714-14. doi:10.1016/j.carbpol.2020.116714
    • NLM

      Sepulchro AGV, Pellegrini V de OA, Briganti L, Araújo EA de, Araújo SS, Polikarpov I. Transformation of xylan into value-added biocommodities using Thermobacillus composti GH10 xylanase [Internet]. Carbohydrate Polymers. 2020 ; No 2020 116714-1-116714-14.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2020.116714
    • Vancouver

      Sepulchro AGV, Pellegrini V de OA, Briganti L, Araújo EA de, Araújo SS, Polikarpov I. Transformation of xylan into value-added biocommodities using Thermobacillus composti GH10 xylanase [Internet]. Carbohydrate Polymers. 2020 ; No 2020 116714-1-116714-14.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2020.116714
  • Source: Biochimica et Biophysica Acta: General Subjects. Unidade: IFSC

    Subjects: ENZIMAS, BIOTECNOLOGIA, HIDRÓLISE

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      SONODA, Milton T. et al. Structure and dynamics of Trichoderma harzianum Cel7B suggest molecular architecture adaptations required for a wide spectrum of activities on plant cell wall polysaccharides. Biochimica et Biophysica Acta: General Subjects, v. 1863, n. 6, p. 1015-1026, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.bbagen.2019.03.013. Acesso em: 20 maio 2024.
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      Sonoda, M. T., Godoy, A. S., Pellegrini, V. O. A., Kadowaki, M. A. S., Nascimento, A. S., & Polikarpov, I. (2019). Structure and dynamics of Trichoderma harzianum Cel7B suggest molecular architecture adaptations required for a wide spectrum of activities on plant cell wall polysaccharides. Biochimica et Biophysica Acta: General Subjects, 1863( 6), 1015-1026. doi:10.1016/j.bbagen.2019.03.013
    • NLM

      Sonoda MT, Godoy AS, Pellegrini VOA, Kadowaki MAS, Nascimento AS, Polikarpov I. Structure and dynamics of Trichoderma harzianum Cel7B suggest molecular architecture adaptations required for a wide spectrum of activities on plant cell wall polysaccharides [Internet]. Biochimica et Biophysica Acta: General Subjects. 2019 ; 1863( 6): 1015-1026.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.bbagen.2019.03.013
    • Vancouver

      Sonoda MT, Godoy AS, Pellegrini VOA, Kadowaki MAS, Nascimento AS, Polikarpov I. Structure and dynamics of Trichoderma harzianum Cel7B suggest molecular architecture adaptations required for a wide spectrum of activities on plant cell wall polysaccharides [Internet]. Biochimica et Biophysica Acta: General Subjects. 2019 ; 1863( 6): 1015-1026.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.bbagen.2019.03.013
  • Source: Biochimie. Unidade: IFSC

    Subjects: ENZIMAS, BIOTECNOLOGIA, HIDRÓLISE

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      KADOWAKI, Marco Antonio Seiki e POLIKARPOV, Igor. Structural insights into the hydrolysis pattern and molecular dynamics simulations of GH45 subfamily a endoglucanase from Neurospora crassa OR74A. Biochimie, v. 165, p. 275-284, 2019Tradução . . Disponível em: https://doi.org/10.1016/j.biochi.2019.08.016. Acesso em: 20 maio 2024.
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      Kadowaki, M. A. S., & Polikarpov, I. (2019). Structural insights into the hydrolysis pattern and molecular dynamics simulations of GH45 subfamily a endoglucanase from Neurospora crassa OR74A. Biochimie, 165, 275-284. doi:10.1016/j.biochi.2019.08.016
    • NLM

      Kadowaki MAS, Polikarpov I. Structural insights into the hydrolysis pattern and molecular dynamics simulations of GH45 subfamily a endoglucanase from Neurospora crassa OR74A [Internet]. Biochimie. 2019 ; 165 275-284.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.biochi.2019.08.016
    • Vancouver

      Kadowaki MAS, Polikarpov I. Structural insights into the hydrolysis pattern and molecular dynamics simulations of GH45 subfamily a endoglucanase from Neurospora crassa OR74A [Internet]. Biochimie. 2019 ; 165 275-284.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.biochi.2019.08.016
  • Source: Computational and Structural Biotechnology Journal. Unidade: IFSC

    Subjects: ENZIMAS, CELULOSE, BIOTECNOLOGIA

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      BRIGANTI, Lorenzo et al. Structural and molecular dynamics investigations of ligand stabilization via secondary binding site interactions in Paenibacillus xylanivorans GH11 xylanase. Computational and Structural Biotechnology Journal, v. 19, p. 1557-1566, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.csbj.2021.03.002. Acesso em: 20 maio 2024.
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      Briganti, L., Capetti, C. C. de M., Pellegrini, V. de O. A., Ghio, S., Campos, E., Nascimento, A. S., & Polikarpov, I. (2021). Structural and molecular dynamics investigations of ligand stabilization via secondary binding site interactions in Paenibacillus xylanivorans GH11 xylanase. Computational and Structural Biotechnology Journal, 19, 1557-1566. doi:10.1016/j.csbj.2021.03.002
    • NLM

      Briganti L, Capetti CC de M, Pellegrini V de OA, Ghio S, Campos E, Nascimento AS, Polikarpov I. Structural and molecular dynamics investigations of ligand stabilization via secondary binding site interactions in Paenibacillus xylanivorans GH11 xylanase [Internet]. Computational and Structural Biotechnology Journal. 2021 ; 19 1557-1566.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.csbj.2021.03.002
    • Vancouver

      Briganti L, Capetti CC de M, Pellegrini V de OA, Ghio S, Campos E, Nascimento AS, Polikarpov I. Structural and molecular dynamics investigations of ligand stabilization via secondary binding site interactions in Paenibacillus xylanivorans GH11 xylanase [Internet]. Computational and Structural Biotechnology Journal. 2021 ; 19 1557-1566.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.csbj.2021.03.002
  • Source: International Journal of Biological Macromolecules. Unidades: IFSC, EEL

    Subjects: BIOFILMES, STAPHYLOCOCCUS, MICROBIOLOGIA, ENZIMAS

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      SAMANIEGO, Lorgio Victor Bautista et al. Staphylococcus aureus microbial biofilms degradation using cellobiose dehydrogenase from Thermothelomyces thermophilus M77. International Journal of Biological Macromolecules, v. 247, p. 125822-1-125822-12 + supplementary data: 1-16, 2023Tradução . . Disponível em: https://doi.org/10.1016/j.ijbiomac.2023.125822. Acesso em: 20 maio 2024.
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      Samaniego, L. V. B., Higasi, P. M. R., Capetti, C. C. de M., Cortez, A. A., Pratavieira, S., Pellegrini, V. de O. A., et al. (2023). Staphylococcus aureus microbial biofilms degradation using cellobiose dehydrogenase from Thermothelomyces thermophilus M77. International Journal of Biological Macromolecules, 247, 125822-1-125822-12 + supplementary data: 1-16. doi:10.1016/j.ijbiomac.2023.125822
    • NLM

      Samaniego LVB, Higasi PMR, Capetti CC de M, Cortez AA, Pratavieira S, Pellegrini V de OA, Dabul ANG, Segato F, Polikarpov I. Staphylococcus aureus microbial biofilms degradation using cellobiose dehydrogenase from Thermothelomyces thermophilus M77 [Internet]. International Journal of Biological Macromolecules. 2023 ; 247 125822-1-125822-12 + supplementary data: 1-16.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.ijbiomac.2023.125822
    • Vancouver

      Samaniego LVB, Higasi PMR, Capetti CC de M, Cortez AA, Pratavieira S, Pellegrini V de OA, Dabul ANG, Segato F, Polikarpov I. Staphylococcus aureus microbial biofilms degradation using cellobiose dehydrogenase from Thermothelomyces thermophilus M77 [Internet]. International Journal of Biological Macromolecules. 2023 ; 247 125822-1-125822-12 + supplementary data: 1-16.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.ijbiomac.2023.125822
  • Source: Protein Science. Unidades: IF, IFSC

    Subjects: ESPALHAMENTO DE RAIOS X A BAIXOS ÂNGULOS, PESO MOLECULAR, PROTEÍNAS

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      OLIVEIRA NETO, Mario de et al. SAXSMoW 3.0: new advances in the determination of the molecular weight of proteins in dilute solutions from SAXS intensity data on a relative scale. Protein Science, v. 31, n. Ja 2022, p. 251-258 + supporting information: 1-3, 2022Tradução . . Disponível em: https://doi.org/10.1002/pro.4227. Acesso em: 20 maio 2024.
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      Oliveira Neto, M. de, Fernandes, A. de F., Piiadov, V., Craievich, A. F., Araújo, E. A. de, & Polikarpov, I. (2022). SAXSMoW 3.0: new advances in the determination of the molecular weight of proteins in dilute solutions from SAXS intensity data on a relative scale. Protein Science, 31( Ja 2022), 251-258 + supporting information: 1-3. doi:10.1002/pro.4227
    • NLM

      Oliveira Neto M de, Fernandes A de F, Piiadov V, Craievich AF, Araújo EA de, Polikarpov I. SAXSMoW 3.0: new advances in the determination of the molecular weight of proteins in dilute solutions from SAXS intensity data on a relative scale [Internet]. Protein Science. 2022 ; 31( Ja 2022): 251-258 + supporting information: 1-3.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/pro.4227
    • Vancouver

      Oliveira Neto M de, Fernandes A de F, Piiadov V, Craievich AF, Araújo EA de, Polikarpov I. SAXSMoW 3.0: new advances in the determination of the molecular weight of proteins in dilute solutions from SAXS intensity data on a relative scale [Internet]. Protein Science. 2022 ; 31( Ja 2022): 251-258 + supporting information: 1-3.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/pro.4227
  • Source: Protein Science. Unidades: IF, IFSC

    Subjects: PESO MOLECULAR, PROTEÍNAS, ESPALHAMENTO DE RAIOS X A BAIXOS ÂNGULOS

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      PIIADOV, Vassili et al. SAXSMoW 2.0: online calculator of the molecular weight of proteins in dilute solution from experimental SAXS data measured on a relative scale. Protein Science, v. 28, n. 2, p. 454-463, 2019Tradução . . Disponível em: https://doi.org/10.1002/pro.3528. Acesso em: 20 maio 2024.
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      Piiadov, V., Araújo, E. A. de, Oliveira Neto, M., Craievich, A. F., & Polikarpov, I. (2019). SAXSMoW 2.0: online calculator of the molecular weight of proteins in dilute solution from experimental SAXS data measured on a relative scale. Protein Science, 28( 2), 454-463. doi:10.1002/pro.3528
    • NLM

      Piiadov V, Araújo EA de, Oliveira Neto M, Craievich AF, Polikarpov I. SAXSMoW 2.0: online calculator of the molecular weight of proteins in dilute solution from experimental SAXS data measured on a relative scale [Internet]. Protein Science. 2019 ; 28( 2): 454-463.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/pro.3528
    • Vancouver

      Piiadov V, Araújo EA de, Oliveira Neto M, Craievich AF, Polikarpov I. SAXSMoW 2.0: online calculator of the molecular weight of proteins in dilute solution from experimental SAXS data measured on a relative scale [Internet]. Protein Science. 2019 ; 28( 2): 454-463.[citado 2024 maio 20 ] Available from: https://doi.org/10.1002/pro.3528
  • Source: FASEB Journal. Conference titles: Experimental Biology Meeting. Unidades: IFSC, FCFRP

    Subjects: SPIN, FÍSICA TEÓRICA

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      PEDEZZI, Rafael et al. Recombinant production and structural studies of a serine peptidase from Scopulariopsis koningii. FASEB Journal. Bethesda: Federation of American Societies for Experimental Biology. Disponível em: https://www.fasebj.org/doi/10.1096/fasebj.2019.33.1_supplement.467.1. Acesso em: 20 maio 2024. , 2019
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      Pedezzi, R., Evangelista, D. E., Polikarpov, I., & Cabral, H. (2019). Recombinant production and structural studies of a serine peptidase from Scopulariopsis koningii. FASEB Journal. Bethesda: Federation of American Societies for Experimental Biology. Recuperado de https://www.fasebj.org/doi/10.1096/fasebj.2019.33.1_supplement.467.1
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      Pedezzi R, Evangelista DE, Polikarpov I, Cabral H. Recombinant production and structural studies of a serine peptidase from Scopulariopsis koningii [Internet]. FASEB Journal. 2019 ; 33( 1 suppl.):[citado 2024 maio 20 ] Available from: https://www.fasebj.org/doi/10.1096/fasebj.2019.33.1_supplement.467.1
    • Vancouver

      Pedezzi R, Evangelista DE, Polikarpov I, Cabral H. Recombinant production and structural studies of a serine peptidase from Scopulariopsis koningii [Internet]. FASEB Journal. 2019 ; 33( 1 suppl.):[citado 2024 maio 20 ] Available from: https://www.fasebj.org/doi/10.1096/fasebj.2019.33.1_supplement.467.1
  • Source: World Journal of Microbiology and Biotechnology. Unidade: IFSC

    Subjects: BIOFILMES, MICROBIOLOGIA, ENZIMAS

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      CORTEZ, Anelyse Abreu et al. Recombinant prevotella melaninogenica α-1,3 glucanase and Capnocytophaga ochracea α-1,6 glucanase as enzymatic tools for in vitro degradation of S. mutans biofilms. World Journal of Microbiology and Biotechnology, v. 39, n. 12, p. 357-1-357-12 + supplementary information, 2023Tradução . . Disponível em: https://doi.org/10.1007/s11274-023-03804-z. Acesso em: 20 maio 2024.
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      Cortez, A. A., Queiroz, M. X. de, Pellegrini, V. de O. A., Capetti, C. C. de M., Dabul, A. N. G., Liberato, M. V., et al. (2023). Recombinant prevotella melaninogenica α-1,3 glucanase and Capnocytophaga ochracea α-1,6 glucanase as enzymatic tools for in vitro degradation of S. mutans biofilms. World Journal of Microbiology and Biotechnology, 39( 12), 357-1-357-12 + supplementary information. doi:10.1007/s11274-023-03804-z
    • NLM

      Cortez AA, Queiroz MX de, Pellegrini V de OA, Capetti CC de M, Dabul ANG, Liberato MV, Pratavieira S, Ricomini Filho AP, Polikarpov I. Recombinant prevotella melaninogenica α-1,3 glucanase and Capnocytophaga ochracea α-1,6 glucanase as enzymatic tools for in vitro degradation of S. mutans biofilms [Internet]. World Journal of Microbiology and Biotechnology. 2023 ; 39( 12): 357-1-357-12 + supplementary information.[citado 2024 maio 20 ] Available from: https://doi.org/10.1007/s11274-023-03804-z
    • Vancouver

      Cortez AA, Queiroz MX de, Pellegrini V de OA, Capetti CC de M, Dabul ANG, Liberato MV, Pratavieira S, Ricomini Filho AP, Polikarpov I. Recombinant prevotella melaninogenica α-1,3 glucanase and Capnocytophaga ochracea α-1,6 glucanase as enzymatic tools for in vitro degradation of S. mutans biofilms [Internet]. World Journal of Microbiology and Biotechnology. 2023 ; 39( 12): 357-1-357-12 + supplementary information.[citado 2024 maio 20 ] Available from: https://doi.org/10.1007/s11274-023-03804-z
  • Source: Bioresource Technology. Unidades: IFSC, EEL

    Subjects: FUNGOS, ENZIMAS, BIOTECNOLOGIA

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      OLIVA, Bianca et al. Recombinant cellobiose dehydrogenase from thermothelomyces thermophilus: its functional characterization and applicability in cellobionic acid production. Bioresource Technology, v. 402, p. 130763-1-130763-11 + supplementary data, 2024Tradução . . Disponível em: https://doi.org/10.1016/j.biortech.2024.130763. Acesso em: 20 maio 2024.
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      Oliva, B., Mendoza, J. A. V., Berto, G. L., Polikarpov, I., Oliveira, L. C. de, & Segato, F. (2024). Recombinant cellobiose dehydrogenase from thermothelomyces thermophilus: its functional characterization and applicability in cellobionic acid production. Bioresource Technology, 402, 130763-1-130763-11 + supplementary data. doi:10.1016/j.biortech.2024.130763
    • NLM

      Oliva B, Mendoza JAV, Berto GL, Polikarpov I, Oliveira LC de, Segato F. Recombinant cellobiose dehydrogenase from thermothelomyces thermophilus: its functional characterization and applicability in cellobionic acid production [Internet]. Bioresource Technology. 2024 ; 402 130763-1-130763-11 + supplementary data.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.biortech.2024.130763
    • Vancouver

      Oliva B, Mendoza JAV, Berto GL, Polikarpov I, Oliveira LC de, Segato F. Recombinant cellobiose dehydrogenase from thermothelomyces thermophilus: its functional characterization and applicability in cellobionic acid production [Internet]. Bioresource Technology. 2024 ; 402 130763-1-130763-11 + supplementary data.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.biortech.2024.130763
  • Source: Anais. Conference titles: Simpósio Nacional de Bioprocessos - SINAFERM. Unidades: IFSC, EEL

    Subjects: ASPERGILLUS, EXPRESSÃO GÊNICA, ENZIMAS

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      MENDOZA, Josman Andrey Velasco et al. Recombinant LPMOs and the Aspergillus nidulans role as expression system. 2022, Anais.. Campinas: Galoá, 2022. Disponível em: https://proceedings.science/sinaferm/sinaferm-sheb-enzitec-2022/papers/recombinant-lpmos-and-the-aspergillus-nidulans-role-as-expression-system. Acesso em: 20 maio 2024.
    • APA

      Mendoza, J. A. V., Higasi, P. M. R., Polikarpov, I., & Segato, F. (2022). Recombinant LPMOs and the Aspergillus nidulans role as expression system. In Anais. Campinas: Galoá. Recuperado de https://proceedings.science/sinaferm/sinaferm-sheb-enzitec-2022/papers/recombinant-lpmos-and-the-aspergillus-nidulans-role-as-expression-system
    • NLM

      Mendoza JAV, Higasi PMR, Polikarpov I, Segato F. Recombinant LPMOs and the Aspergillus nidulans role as expression system [Internet]. Anais. 2022 ;[citado 2024 maio 20 ] Available from: https://proceedings.science/sinaferm/sinaferm-sheb-enzitec-2022/papers/recombinant-lpmos-and-the-aspergillus-nidulans-role-as-expression-system
    • Vancouver

      Mendoza JAV, Higasi PMR, Polikarpov I, Segato F. Recombinant LPMOs and the Aspergillus nidulans role as expression system [Internet]. Anais. 2022 ;[citado 2024 maio 20 ] Available from: https://proceedings.science/sinaferm/sinaferm-sheb-enzitec-2022/papers/recombinant-lpmos-and-the-aspergillus-nidulans-role-as-expression-system
  • Source: World Journal of Microbiology and Biotechnology. Unidade: IFSC

    Subjects: CELULOSE, BIOTECNOLOGIA, BAGAÇOS, CANA-DE-AÇÚCAR, MATERIAIS NANOESTRUTURADOS, ENZIMAS

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      CAPETTI, Caio Cesar de Mello et al. Recent advances in the enzymatic production and applications of xylooligosaccharides. World Journal of Microbiology and Biotechnology, v. 37, n. 10, p. 169-1-169-12, 2021Tradução . . Disponível em: https://doi.org/10.1007/s11274-021-03139-7. Acesso em: 20 maio 2024.
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      Capetti, C. C. de M., Vacilotto, M. M., Dabul, A. N. G., Sepulchro, A. G. V., Pellegrini, V. de O. A., & Polikarpov, I. (2021). Recent advances in the enzymatic production and applications of xylooligosaccharides. World Journal of Microbiology and Biotechnology, 37( 10), 169-1-169-12. doi:10.1007/s11274-021-03139-7
    • NLM

      Capetti CC de M, Vacilotto MM, Dabul ANG, Sepulchro AGV, Pellegrini V de OA, Polikarpov I. Recent advances in the enzymatic production and applications of xylooligosaccharides [Internet]. World Journal of Microbiology and Biotechnology. 2021 ; 37( 10): 169-1-169-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1007/s11274-021-03139-7
    • Vancouver

      Capetti CC de M, Vacilotto MM, Dabul ANG, Sepulchro AGV, Pellegrini V de OA, Polikarpov I. Recent advances in the enzymatic production and applications of xylooligosaccharides [Internet]. World Journal of Microbiology and Biotechnology. 2021 ; 37( 10): 169-1-169-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1007/s11274-021-03139-7
  • Source: Enzyme and Microbial Technology. Unidade: IFSC

    Subjects: BIOTECNOLOGIA, BIOMASSA, ENZIMAS

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      VACILOTTO, Milena Moreira et al. Production of prebiotic xylooligosaccharides from arabino- and glucuronoxylan using a two-domain Jonesia denitrificans xylanase from GH10 family. Enzyme and Microbial Technology, v. 144, p. 109743-1-109743-9, 2021Tradução . . Disponível em: https://doi.org/10.1016/j.enzmictec.2021.109743. Acesso em: 20 maio 2024.
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      Vacilotto, M. M., Sepulchro, A. G. V., Pellegrini, V. de O. A., & Polikarpov, I. (2021). Production of prebiotic xylooligosaccharides from arabino- and glucuronoxylan using a two-domain Jonesia denitrificans xylanase from GH10 family. Enzyme and Microbial Technology, 144, 109743-1-109743-9. doi:10.1016/j.enzmictec.2021.109743
    • NLM

      Vacilotto MM, Sepulchro AGV, Pellegrini V de OA, Polikarpov I. Production of prebiotic xylooligosaccharides from arabino- and glucuronoxylan using a two-domain Jonesia denitrificans xylanase from GH10 family [Internet]. Enzyme and Microbial Technology. 2021 ; 144 109743-1-109743-9.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.enzmictec.2021.109743
    • Vancouver

      Vacilotto MM, Sepulchro AGV, Pellegrini V de OA, Polikarpov I. Production of prebiotic xylooligosaccharides from arabino- and glucuronoxylan using a two-domain Jonesia denitrificans xylanase from GH10 family [Internet]. Enzyme and Microbial Technology. 2021 ; 144 109743-1-109743-9.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.enzmictec.2021.109743
  • Source: Industrial Crops and Products. Unidades: IFSC, BIOENERGIA

    Subjects: BIOCOMBUSTÍVEIS, CATÁLISE, CAVACOS, CELULOSE DE MADEIRA, ETANOL, EUCALIPTO

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      ESPÍRITO SANTO, Melissa Cristina do et al. Physical techniques shed light on the differences in sugarcane bagasse structure subjected to steam explosion pretreatments at equivalent combined severity factors. Industrial Crops and Products, v. 158, p. 113003-1-113003-10, 2020Tradução . . Disponível em: https://doi.org/10.1016/j.indcrop.2020.113003. Acesso em: 20 maio 2024.
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      Espírito Santo, M. C. do, Fockink, D. H., Pellegrini, V. de O. A., Guimarães, F. E. G., Azevêdo, E. R. de, Ramos, L. P., & Polikarpov, I. (2020). Physical techniques shed light on the differences in sugarcane bagasse structure subjected to steam explosion pretreatments at equivalent combined severity factors. Industrial Crops and Products, 158, 113003-1-113003-10. doi:10.1016/j.indcrop.2020.113003
    • NLM

      Espírito Santo MC do, Fockink DH, Pellegrini V de OA, Guimarães FEG, Azevêdo ER de, Ramos LP, Polikarpov I. Physical techniques shed light on the differences in sugarcane bagasse structure subjected to steam explosion pretreatments at equivalent combined severity factors [Internet]. Industrial Crops and Products. 2020 ; 158 113003-1-113003-10.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.indcrop.2020.113003
    • Vancouver

      Espírito Santo MC do, Fockink DH, Pellegrini V de OA, Guimarães FEG, Azevêdo ER de, Ramos LP, Polikarpov I. Physical techniques shed light on the differences in sugarcane bagasse structure subjected to steam explosion pretreatments at equivalent combined severity factors [Internet]. Industrial Crops and Products. 2020 ; 158 113003-1-113003-10.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.indcrop.2020.113003
  • Source: Carbohydrate Polymers. Unidades: IQSC, EEL, IFSC

    Subjects: BIOTECNOLOGIA, PREBIÓTICOS

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      VACILOTTO, Milena Moreira et al. Paludibacter propionicigenes GH10 xylanase as a tool for enzymatic xylooligosaccharides production from heteroxylans. Carbohydrate Polymers, v. 275, n. Ja 2022, p. 118684-1-118684-12, 2022Tradução . . Disponível em: https://doi.org/10.1016/j.carbpol.2021.118684. Acesso em: 20 maio 2024.
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      Vacilotto, M. M., Pellegrini, V. de O. A., Sepulchro, A. G. V., Capetti, C. C. de M., Curvelo, A. A. da S., Marcondes, W. F., et al. (2022). Paludibacter propionicigenes GH10 xylanase as a tool for enzymatic xylooligosaccharides production from heteroxylans. Carbohydrate Polymers, 275( Ja 2022), 118684-1-118684-12. doi:10.1016/j.carbpol.2021.118684
    • NLM

      Vacilotto MM, Pellegrini V de OA, Sepulchro AGV, Capetti CC de M, Curvelo AA da S, Marcondes WF, Arantes V, Polikarpov I. Paludibacter propionicigenes GH10 xylanase as a tool for enzymatic xylooligosaccharides production from heteroxylans [Internet]. Carbohydrate Polymers. 2022 ; 275( Ja 2022): 118684-1-118684-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2021.118684
    • Vancouver

      Vacilotto MM, Pellegrini V de OA, Sepulchro AGV, Capetti CC de M, Curvelo AA da S, Marcondes WF, Arantes V, Polikarpov I. Paludibacter propionicigenes GH10 xylanase as a tool for enzymatic xylooligosaccharides production from heteroxylans [Internet]. Carbohydrate Polymers. 2022 ; 275( Ja 2022): 118684-1-118684-12.[citado 2024 maio 20 ] Available from: https://doi.org/10.1016/j.carbpol.2021.118684

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