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Synthesis of urease hybrid nanoflowers and their enhanced catalytic properties
Institution:1. Department of Chemistry, Faculty of Science, Erciyes University, Kayseri 38039, Turkey;2. Department of Analytical Chemistry, Faculty of Pharmacy, Erciyes University, 38039 Kayseri, Turkey;3. Nanotechnology Research Center, Erciyes University, Kayseri 38039, Turkey;4. Department of Chemistry, Faculty of Arts and Science, Nev?ehir Hac? Bekta? Veli University, 50300 Nev?ehir, Turkey;1. Department of Analytical Chemistry, Faculty of Pharmacy, Erciyes University, 38039 Kayseri, Turkey;2. Nanotechnology Research Center, Erciyes University, Kayseri, 38039 Turkey;3. Department of Chemistry, Faculty of Science, Erciyes University, Kayseri, 38039 Turkey;1. Instrumental Analysis Center, Dalian Polytechnic University, Dalian 116034, PR China;2. School of Biological Engineering, Dalian Polytechnic University, Dalian 116034, PR China;1. Department of Analytical Chemistry, Faculty of Pharmacy, Erciyes University, 38039, Kayseri, Turkey;2. Nanotechnology Research Center, Erciyes University, Kayseri, 38039, Turkey;3. Department of Chemistry, Faculty of Science, Erciyes University, Kayseri, 38039, Turkey;4. Department of Basic Sciences, Faculty of Science, Erzurum Technical University, Erzurum, Turkey;5. Department of Chemistry, Faculty of Science, Ataturk University, Erzurum, 25030, Turkey
Abstract:Increasing numbers of materials have been extensively used as platforms for enzyme immobilization to enhance catalytic activity and stability. Although stability of enzyme was accomplished with immobilization approaches, activity of the most of the enzymes was declined after immobilization. Herein, we synthesize the flower shaped-hybrid nanomaterials called hybrid nanoflower (HNF) consisting of urease enzyme and copper ions (Cu2+) and report a mechanistic elucidation of enhancement in both activity and stability of the HNF. We demonstrated how experimental factors influence morphology of the HNF. We proved that the HNF (synthesized from 0.02 mg mL?1 urease in 10 mM PBS (pH 7.4) at +4 °C) exhibited the highest catalytic activity of ~2000% and ~4000% when stored at +4 °C and RT, respectively compared to free urease. The highest stability was also achieved by this HNF by maintaining 96.3% and 90.28% of its initial activity within storage of 30 days at +4 °C and RT, respectively. This dramatically enhanced activity is attributed to high surface area, nanoscale-entrapped urease and favorable urease conformation of the HNF. The exceptional catalytic activity and stability properties of HNF can be taken advantage of to use it in fields of biomedicine and chemistry.
Keywords:Urease  Urea  Flower shape  Hybrid nanomaterials  Copper ions  Enzymatic activity
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