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Control of a biomolecular motor-powered nanodevice with an engineered chemical switch

  • Haiqing Liu
  • , Jacob J. Schmidt
  • , George D. Bachand
  • , Shahir S. Rizk
  • , Loren L. Looger
  • , Homme W. Hellinga
  • , Carlo D. Montemagno

Research output: Contribution to journalArticlepeer-review

136 Scopus citations

Abstract

The biophysical and biochemical properties of motor proteins have been well-studied, but these motors also show promise as mechanical components in hybrid nano-engineered systems1-4. The cytoplasmic F1, fragment of the adenosine triphosphate synthase (F1-ATPase) can function as an ATP-fuelled rotary motor4-7 and has been integrated into self-assembled nanomechanical systems as a mechanical actuator 4,8. Here we present the rational design, construction and analysis of a mutant F1-ATPase motor containing a metal-binding site that functions as a zinc-dependent, reversible on/off switch. Repeated cycles of zinc addition and removal by chelation result in inhibition and restoration, respectively, of both ATP hydrolysis and motor rotation of the mutant, but not of the wild-type F1 fragment. These results demonstrate the ability to engineer chemical regulation into a biomolecular motor and represent a critical step towards controlling integrated nanomechanical devices at the single-molecule level.
Original languageEnglish
Pages (from-to)173-178
Number of pages6
JournalNature Materials
Volume1
Issue number3
DOIs
StatePublished - Jan 1 2002
Externally publishedYes

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