Antifungal Activity, Mode of Action, Docking Prediction and Anti-biofilm Effects of (+)-β-pinene Enantiomers against Candida spp.

被引:40
|
作者
de Macedo Andrade, Ana Claudia [1 ]
Rosalen, Pedro Luiz [2 ]
Freires, Irlan Almeida [3 ]
Scotti, Luciana [1 ]
Scotti, Marcus Tulius [1 ]
Aquino, Sabrina Garcia [1 ]
de Castro, Ricardo Dias [1 ]
机构
[1] Univ Fed Paraiba, Campus 1, Joao Pessoa, Paraiba, Brazil
[2] Univ Estadual Campinas, Piracicaba Dent Sch, Piracicaba, SP, Brazil
[3] Univ Florida, Coll Dent, Gainesville, FL USA
关键词
Candidiasis; Products with antimicrobial action; Antifungal agents; Drug synergism; Molecular docking simulation; ESSENTIAL OILS; ANTIMICROBIAL ACTIVITY; CHEMICAL-COMPOSITION; ALBICANS; GROWTH; SUSCEPTIBILITY; CASPOFUNGIN; FLUCONAZOLE; INHIBITORS; TERPENES;
D O I
10.2174/1568026618666181115103104
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
Aims: The objective of this study was to investigate the effectiveness of (+)-beta-pinene inhibition on Candida spp. growth, aiming at elucidation of the mechanism of action; to determine fungal cell enzyme binding activity (through molecular docking simulations) and its effects on biofilm reduction. Methods: Candida strains (n=25) from referenced and clinical origins, either susceptible or resistant to standard clinical antifungals, were tested for determination of Minimum Inhibitory Concentration (MIC); Minimum Fungicidal Concentration (MFC); and microbial death curves upon treatment with (+)-beta-pinene; the effects of (+)-beta-pinene on the cell wall (sorbitol assay), membrane ergosterol binding, and effects on biofilm were evaluated by microdilution techniques. We also evaluated the interactions between (+)-beta-pinene and cell wall and membrane enzymes of interest. Results: The MIC values of (+)-beta-pinene ranged from <56.25 to 1800 mu mol/L. The MIC of (+)-beta-pinene did not increase when ergosterol was added to the medium, however it did increase in the presence of sorbitol, leading to a doubled MIC for C. tropicalis and C. krusei. The results of the molecular docking simulations indicated better interaction with delta-14-sterol reductase (-51kcal/mol). (+)-beta-pinene presents anti-biofilm activity against multiples species of Candida. Conclusion: (+)-beta-pinene has antifungal activity and most likely acts through interference with the cell wall; through molecular interaction with Delta-14-sterol reductase and, to a lesser extent, with the 1,3-beta-glucan synthase. This molecule was also found to effectively reduce Candida biofilm adhesion.
引用
收藏
页码:2481 / 2490
页数:10
相关论文
共 50 条
  • [21] Antifungal and anti-adhesion activity of plant extracts and essential oils against Candida spp. and Pichia spp.
    Tomicic, Zorica
    Tomicic, Ruzica
    Mozina, Sonja Smole
    Bucar, Franz
    Turek, Ivana
    Raspor, Peter
    JOURNAL OF FOOD AND NUTRITION RESEARCH, 2022, 61 (01): : 61 - 68
  • [22] Anti-biofilm Properties of the Fecal Probiotic Lactobacilli Against Vibrio spp.
    Kaur, Sumanpreet
    Sharma, Preeti
    Kalia, Namarta
    Singh, Jatinder
    Kaur, Sukhraj
    FRONTIERS IN CELLULAR AND INFECTION MICROBIOLOGY, 2018, 8
  • [23] Resveratrol inclusion complexes: Antibacterial and anti-biofilm activity against Campylobacter spp. and Arcobacter butzleri
    Duarte, Andreia
    Alves, Ana C.
    Ferreira, Susana
    Silva, Filomena
    Domingues, Fernanda C.
    FOOD RESEARCH INTERNATIONAL, 2015, 77 : 244 - 250
  • [24] Antifungal activity of silver nanoparticles and clotrimazole against Candida spp.
    Laura Meneses, Maria
    Recalde, Maite
    Lorena Martin, Paula
    Guillermo Pardo, Alejandro
    BRAZILIAN JOURNAL OF PHARMACEUTICAL SCIENCES, 2022, 58
  • [25] Antifungal activity of the lemongrass oil and citral against Candida spp.
    da Silva, Cristiane de Bona
    Guterres, Silvia S.
    Weisheimer, Vanessa
    Schapoval, Elfrides E. S.
    BRAZILIAN JOURNAL OF INFECTIOUS DISEASES, 2008, 12 (01): : 63 - 66
  • [26] Antifungal activity of Rhopalurus crassicauda venom against Candida spp.
    Zottich, Umberto
    de Oliveira, Isadora Sousa
    Fereira, Isabela Gobbo
    Cerni, Felipe Augusto
    Figueiredo, Bordon Karla de Castro
    Arantes, Eliane Candiani
    Gomes, Valdirene Moreira
    Dias, Germana Bueno
    Pucca, Manuela Berto
    TOXICON-X, 2022, 14
  • [27] Antifungal activity of echinocandins against invasive isolates of Candida spp.
    Kantarcioglu, A. S.
    Kiraz, N.
    Turan, D.
    Baris, A. Bayri
    Sav, H.
    MYCOSES, 2013, 56 : 56 - 56
  • [28] Effect of the molecular weight of chitosan on its antifungal activity against Candida spp. in planktonic cells and biofilm
    Silva Garcia, Lana Glerieide
    de Melo Guedes, Glaucia Morgana
    Queiroz da Silva, Maria Lucilene
    Collares Maia Castelo-Branco, Debora Souza
    Costa Sidrim, Jose Julio
    Cordeiro, Rossana de Aguiar
    Gadelha Rocha, Marcos Fabio
    Vieira, Rodrigo Silveira
    Nogueira Brilhante, Raimunda Samia
    CARBOHYDRATE POLYMERS, 2018, 195 : 662 - 669
  • [29] Antifungal activity of β-lapachone against Candida spp. resistant to azoles and its aspects upon biofilm formation
    da Silva, Cecilia R.
    Campos, Rosana de S.
    Neto, Joao B. de A.
    Sampaio, Leticia S.
    do Nascimento, Francisca B. S. A.
    do AV Sa, Livia G.
    Candido, Thiago M.
    Magalhaes, Hemerson I. F.
    da Cruz, Eduardo H. G.
    Junior, Eufranio N. da S.
    de Moraes, Manoel O.
    Cavalcanti, Bruno C.
    Silva, Jacilene
    Marinho, Emmanuel S.
    Junior, Helio V. N.
    FUTURE MICROBIOLOGY, 2020, 15 (16) : 1543 - 1554
  • [30] Antifungal Activity of Essential Oils and Their Constituents against Candida Spp. and Their Effects on Activity of Amphotericin B
    Nozaki, Akiko
    Takahashi, Eizo
    Okamoto, Keinosuke
    Ito, Hideyuki
    Hatano, Tsutomu
    YAKUGAKU ZASSHI-JOURNAL OF THE PHARMACEUTICAL SOCIETY OF JAPAN, 2010, 130 (06): : 895 - 902