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zadetkov: 31
1.
  • Non-Linear Quantitative Str... Non-Linear Quantitative Structure⁻Activity Relationships Modelling, Mechanistic Study and In-Silico Design of Flavonoids as Potent Antioxidants
    Žuvela, Petar; David, Jonathan; Yang, Xin ... International journal of molecular sciences, 05/2019, Letnik: 20, Številka: 9
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    In this work, we developed quantitative structure-activity relationships (QSAR) models for prediction of oxygen radical absorbance capacity (ORAC) of flavonoids. Both linear (partial least ...
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2.
  • Prediction of Chromatograph... Prediction of Chromatographic Elution Order of Analytical Mixtures Based on Quantitative Structure-Retention Relationships and Multi-Objective Optimization
    Žuvela, Petar; Liu, J Jay; Wong, Ming Wah ... Molecules (Basel, Switzerland), 07/2020, Letnik: 25, Številka: 13
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    Prediction of the retention time from the molecular structure using quantitative structure-retention relationships is a powerful tool for the development of methods in reversed-phase HPLC. However, ...
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3.
  • Mechanistic Chromatographic... Mechanistic Chromatographic Column Characterization for the Analysis of Flavonoids Using Quantitative Structure-Retention Relationships Based on Density Functional Theory
    Buszewski, Bogusław; Žuvela, Petar; Sagandykova, Gulyaim ... International journal of molecular sciences, 03/2020, Letnik: 21, Številka: 6
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    This work aimed to unravel the retention mechanisms of 30 structurally different flavonoids separated on three chromatographic columns: conventional Kinetex C18 (K-C18), Kinetex F5 (K-F5), and ...
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4.
  • Affinity of Antifungal Isox... Affinity of Antifungal Isoxazolo[3,4- b ]pyridine-3(1 H )-Ones to Phospholipids in Immobilized Artificial Membrane (IAM) Chromatography
    Ciura, Krzesimir; Fedorowicz, Joanna; Žuvela, Petar ... Molecules (Basel, Switzerland), 10/2020, Letnik: 25, Številka: 20
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    Currently, rapid evaluation of the physicochemical parameters of drug candidates, such as lipophilicity, is in high demand owing to it enabling the approximation of the processes of absorption, ...
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5.
  • Quantitative Structure-Rete... Quantitative Structure-Retention Relationships with Non-Linear Programming for Prediction of Chromatographic Elution Order
    Liu, J Jay; Alipuly, Alham; Bączek, Tomasz ... International journal of molecular sciences, 07/2019, Letnik: 20, Številka: 14
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    In this work, we employed a non-linear programming (NLP) approach via quantitative structure-retention relationships (QSRRs) modelling for prediction of elution order in reversed phase-liquid ...
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6.
  • Column Characterization and... Column Characterization and Selection Systems in Reversed-Phase High-Performance Liquid Chromatography
    Žuvela, Petar; Skoczylas, Magdalena; Jay Liu, J ... Chemical reviews, 03/2019, Letnik: 119, Številka: 6
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    Reversed-phase high-performance liquid chromatography (RP-HPLC) is the most popular chromatographic mode, accounting for more than 90% of all separations. HPLC itself owes its immense popularity to ...
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7.
  • Prediction of corrosion inh... Prediction of corrosion inhibition efficiency of pyridines and quinolines on an iron surface using machine learning-powered quantitative structure-property relationships
    Ser, Cher Tian; Žuvela, Petar; Wong, Ming Wah Applied surface science, 05/2020, Letnik: 512
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    Display omitted •QSPR models predicting N-heterocycle corrosion inhibition efficiency were developed.•Linear model captures relationship between efficiency and quantum chemical variables.•Non-linear ...
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9.
  • Fiber-Optic Raman Spectrosc... Fiber-Optic Raman Spectroscopy with Nature-Inspired Genetic Algorithms Enhances Real-Time in Vivo Detection and Diagnosis of Nasopharyngeal Carcinoma
    Žuvela, Petar; Lin, Kan; Shu, Chi ... Analytical chemistry (Washington), 07/2019, Letnik: 91, Številka: 13
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    Raman spectroscopy is an optical vibrational spectroscopic technique capable of probing specific biochemical structures and conformation of tissue and cells in biomedical systems. This work aims to ...
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  • Interpretation of ANN‐based... Interpretation of ANN‐based QSAR models for prediction of antioxidant activity of flavonoids
    Žuvela, Petar; David, Jonathan; Wong, Ming Wah Journal of computational chemistry, June 15, 2018, Letnik: 39, Številka: 16
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    Quantitative structure–activity relationships (QSARs) built using machine learning methods, such as artificial neural networks (ANNs) are powerful in prediction of (antioxidant) activity from quantum ...
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zadetkov: 31

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