The function and activity of many proteins is finely controlled by the modulation of the entropic contribution of intrinsically disordered domains that are not directly involved in any recognition event. Inspired by this mechanism, we demonstrate here that we could finely regulate the catalytic activity of a model DNAzyme (i.e., a synthetic DNA sequence with enzyme-like properties) by rationally introducing intrinsically disordered nucleic acid portions in its original sequence. More specifically, we have re-engineered here the well-characterized Cu2+-dependent DNAzyme that catalyzes a self-cleavage reaction by introducing a poly(T) linker domain in its sequence. The linker is not directly involved in the recognition event and connects the two domains that fold to form the catalytic core. We demonstrate that the enzyme-like activity of this re-engineered DNAzyme can be modulated in a predictable and fine way by changing the length, and thus entropy, of such a linker domain. Given these attributes, the rational design of intrinsically disordered domains could expand the available toolbox to achieve a control of the activity of DNAzymes and, in analogy, ribozymes through a purely entropic contribution.

Sorrentino, D., Ranallo, S., Ricci, F. (2021). Rational control of the activity of a Cu2+-dependent DNAzyme by re-engineering purely entropic intrinsically disordered domains. ACS APPLIED MATERIALS & INTERFACES, 13(8), 9300-9305 [10.1021/acsami.0c09472].

Rational control of the activity of a Cu2+-dependent DNAzyme by re-engineering purely entropic intrinsically disordered domains

Sorrentino D.;Ranallo S.;Ricci F.
2021-09-11

Abstract

The function and activity of many proteins is finely controlled by the modulation of the entropic contribution of intrinsically disordered domains that are not directly involved in any recognition event. Inspired by this mechanism, we demonstrate here that we could finely regulate the catalytic activity of a model DNAzyme (i.e., a synthetic DNA sequence with enzyme-like properties) by rationally introducing intrinsically disordered nucleic acid portions in its original sequence. More specifically, we have re-engineered here the well-characterized Cu2+-dependent DNAzyme that catalyzes a self-cleavage reaction by introducing a poly(T) linker domain in its sequence. The linker is not directly involved in the recognition event and connects the two domains that fold to form the catalytic core. We demonstrate that the enzyme-like activity of this re-engineered DNAzyme can be modulated in a predictable and fine way by changing the length, and thus entropy, of such a linker domain. Given these attributes, the rational design of intrinsically disordered domains could expand the available toolbox to achieve a control of the activity of DNAzymes and, in analogy, ribozymes through a purely entropic contribution.
11-set-2021
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/01 - CHIMICA ANALITICA
English
DNA nanotechnology; DNAzyme; intrinsic disorder; entropy; ribozymes
Sorrentino, D., Ranallo, S., Ricci, F. (2021). Rational control of the activity of a Cu2+-dependent DNAzyme by re-engineering purely entropic intrinsically disordered domains. ACS APPLIED MATERIALS & INTERFACES, 13(8), 9300-9305 [10.1021/acsami.0c09472].
Sorrentino, D; Ranallo, S; Ricci, F
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/275533
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