Prospects and challenges for graphene drums as sensors of individual bacteria

Author:

Rosłoń I. E.12ORCID,Japaridze A.2ORCID,Naarden L.2,Smeets L.3,Dekker C.1ORCID,van Belkum A.4ORCID,Steeneken P. G.1ORCID,Alijani F.1ORCID

Affiliation:

1. Delft University of Technology 1 , Mekelweg 2, 2628 CD Delft, The Netherlands

2. SoundCell B.V. 2 , Molengraaffsingel 12, 2629 JD Delft, The Netherlands

3. Reinier Haga MDC 3 , Reinier de Graafweg 7, 2625 AD Delft, The Netherlands

4. Jan van Goyenplein 31 4 , 2231 MM Rijnsburg, The Netherlands

Abstract

Graphene-drum-enabled nanomotion detection can play an important role in probing life at the nanoscale. By combining micro- and nanomechanical systems with optics, nanomotion sensors bridge the gap between mechanics and cellular biophysics. They have allowed investigation of processes involved in metabolism, growth, and structural organization of a large variety of microorganisms, ranging from yeasts to bacterial cells. Using graphene drums, these processes can now be resolved at the single-cell level. In this Perspective, we discuss the key achievements of nanomotion spectroscopy and peek forward into the prospects for application of this single-cell technology in clinical settings. Furthermore, we discuss the steps required for implementation and look into applications beyond microbial sensing.

Funder

European Research Council

European Innovation Council and Small and Medium-sized Enterprises Executive Agency

Publisher

AIP Publishing

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