A method for site-specifically tethering the enzyme urease to DNA origami with sustained activity

I Ian Murphy K Keren Bobilev D Daichi Hayakawa (Martin A. Fisher School of Physics) E Eden Ikonen T Thomas E. Videbæk (Martin A. Fisher School of Physics) S Shibani Dalal W Wylie W. Ahmed J Jennifer L. Ross W W. Benjamin Rogers (Martin A. Fisher School of Physics)

Abstract

Attaching enzymes to nanostructures has proven useful to the study of enzyme functionality under controlled conditions and has led to new technologies. Often, the utility and interest of enzyme-tethered nanostructures lie in how the enzymatic activity is affected by how the enzymes are arranged in space. Therefore, being able to conjugate enzymes to nanostructures while preserving the enzymatic activity is essential. In this paper, we present a method to conjugate single-stranded DNA to the enzyme urease while maintaining enzymatic activity. We show evidence of successful conjugation and quantify the variables that affect the conjugation yield. We also show that the enzymatic activity is unchanged after conjugation compared to the enzyme in its native state. Finally, we demonstrate the tethering of urease to nanostructures made using DNA origami with high site-specificity. Decorating nanostructures with enzymatically-active urease may prove to be useful in studying, or even utilizing, the functionality of urease in disciplines ranging from biotechnology to soft-matter physics. The techniques we present in this paper will enable researchers across these fields to modify enzymes without disrupting their functionality, thus allowing for more insightful studies into their behavior and utility.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 4
Published April 21, 2025
Pages e0319790
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (9)

I

Ian Murphy

K

Keren Bobilev

D

Daichi Hayakawa

Martin A. Fisher School of Physics

E

Eden Ikonen

T

Thomas E. Videbæk

Martin A. Fisher School of Physics

S

Shibani Dalal

W

Wylie W. Ahmed

J

Jennifer L. Ross

W

W. Benjamin Rogers

Martin A. Fisher School of Physics