A self-assembled protein β-helix as a self-contained biofunctional motif

C Camilla Dondi J Javier Garcia-Ruiz (Biometrology, Chemical and Biological Sciences Department) E Erol Hasan S Stephanie Rey J James E. Noble A Alex Hoose A Andrea Briones I Ibolya E. Kepiro N Nilofar Faruqui P Purnank Aggarwal P Poonam Ghai M Michael Shaw A Antony T. Fry A Antony Maxwell B Bart W. Hoogenboom C Christian D. Lorenz (Department of Engineering, King’s College London) M Maxim G. Ryadnov

Abstract

Abstract Nature constructs matter by employing protein folding motifs, many of which have been synthetically reconstituted to exploit function. A less understood motif whose structure-function relationships remain unexploited is formed by parallel β-strands arranged in a helical repetitive pattern, termed a β-helix. Herein we reconstitute a protein β-helix by design and endow it with biological function. Unlike β-helical proteins, which are contiguous covalent structures, this β-helix self-assembles from an elementary sequence of 18 amino acids. Using a combination of experimental and computational methods, we demonstrate that the resulting assemblies are discrete cylindrical structures exhibiting conserved dimensions at the nanoscale. We provide evidence for the structures to form a carpet-like three-dimensional scaffold promoting and inhibiting the growth of human and bacterial cells, respectively, while being able to mediate intracellular gene delivery. The study introduces a self-assembled β-helix as a self-contained bio- and multi-functional motif for exploring and exploiting mechanistic biology.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 15, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

C

Camilla Dondi

J

Javier Garcia-Ruiz

Biometrology, Chemical and Biological Sciences Department

E

Erol Hasan

S

Stephanie Rey

J

James E. Noble

A

Alex Hoose

A

Andrea Briones

I

Ibolya E. Kepiro

N

Nilofar Faruqui

P

Purnank Aggarwal

P

Poonam Ghai

M

Michael Shaw

A

Antony T. Fry

A

Antony Maxwell

B

Bart W. Hoogenboom

C

Christian D. Lorenz

Department of Engineering, King’s College London

M

Maxim G. Ryadnov