logo
Loading...
Single amino acid bionanozyme for environmental remediation

Chemistry

Single amino acid bionanozyme for environmental remediation

P. Makam, S. S. R. K. C. Yamijala, et al.

Discover a groundbreaking single amino acid bionanozyme that outperforms natural laccases in cost, efficiency, and stability. Developed by esteemed researchers including Pandeeswar Makam and others, this innovative enzyme offers vast potential for applications in analytical chemistry and environmental protection.... show more
Abstract
Enzymes are extremely complex catalytic structures with immense biological and technological importance. Nevertheless, their widespread environmental implementation faces several challenges, including high production costs, low operational stability, and intricate recovery and reusability. Therefore, the de novo design of minimalistic biomolecular nanomaterials that can efficiently mimic the biocatalytic function (bionanozymes) and overcome the limitations of natural enzymes is a critical goal in biomolecular engineering. Here, we report an exceptionally simple yet highly active and robust single amino acid bionanozyme that can catalyze the rapid oxidation of environmentally toxic phenolic contaminates and serves as an ultrasensitive tool to detect biologically important neurotransmitters similar to the laccase enzyme. While inspired by the laccase catalytic site, the substantially simpler copper-coordinated bionanozyme is ~5400 times more cost-effective, four orders more efficient, and 36 times more sensitive compared to the natural protein. Furthermore, the designed mimic is stable under extreme conditions (pH, ionic strength, temperature, storage time), markedly reusable for several cycles, and displays broad substrate specificity. These findings hold great promise in developing efficient bionanozymes for analytical chemistry, environmental protection, and biotechnology.
Publisher
Nature Communications
Published On
Mar 21, 2022
Authors
Pandeeswar Makam, Sharma S. R. K. C. Yamijala, Venkata S. Bhadram, Linda J. W. Shimon, Bryan M. Wong, Ehud Gazit
Tags
bionanozyme
laccase mimic
cost-effective
broad substrate specificity
environmental protection
biotechnology
analytical chemistry
Listen, Learn & Level Up
Over 10,000 hours of research content in 25+ fields, available in 12+ languages.
No more digging through PDFs, just hit play and absorb the world's latest research in your language, on your time.
listen to research audio papers with researchbunny