Wireless electrical–molecular quantum signalling for cancer cell apoptosis

Abstract: Quantum biological tunnelling for electron transfer is involved in controlling essential functions for life such as cellular respiration and homoeostasis. Understanding and controlling the quantum effects in biology has the potential to modulate biological functions. Here we merge wireless nano-electrochemical tools with cancer cells for control over electron transfer to trigger cancer cell death. Gold bipolar nanoelectrodes functionalized with redox-active cytochrome c and a redox mediator zinc porphyrin are developed as electric-field-stimulating bio-actuators, termed bio-nanoantennae. We show that a remote electrical input regulates electron transport between these redox molecules, which results in quantum biological tunnelling for electron transfer to trigger apoptosis in patient-derived cancer cells in a selective manner. Transcriptomics data show that the electric-field-induced bio-nanoantenna targets the cancer cells in a unique manner, representing electrically induced control of molecular signalling. The work shows the potential of quantum-based medical diagnostics and treatments

Standort
Deutsche Nationalbibliothek Frankfurt am Main
Umfang
Online-Ressource
Sprache
Englisch
Anmerkungen
Nature nanotechnology. - 19, 1 (2024) , 106-114, ISSN: 1748-3395

Ereignis
Veröffentlichung
(wo)
Freiburg
(wer)
Universität
(wann)
2023
Urheber
Jain, Akhil
Gosling, Jonathan
Liu, Shaochuang
Wang, Hao-Wei
Stone, Eloise M.
Chakraborty, Sajib
Jayaraman, Padma-Sheela
Smith, Stuart J.
Amabilino, David B.
Fromhold, Mark
Long, Yi-Tao
Pérez-García, Lluïsa
Turyanska, Lyudmila
Rahman, Ruman
Rawson, Frankie J.

DOI
10.1038/s41565-023-01496-y
URN
urn:nbn:de:bsz:25-freidok-2393590
Rechteinformation
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Letzte Aktualisierung
25.03.2025, 13:42 MEZ

Datenpartner

Dieses Objekt wird bereitgestellt von:
Deutsche Nationalbibliothek. Bei Fragen zum Objekt wenden Sie sich bitte an den Datenpartner.

Beteiligte

  • Jain, Akhil
  • Gosling, Jonathan
  • Liu, Shaochuang
  • Wang, Hao-Wei
  • Stone, Eloise M.
  • Chakraborty, Sajib
  • Jayaraman, Padma-Sheela
  • Smith, Stuart J.
  • Amabilino, David B.
  • Fromhold, Mark
  • Long, Yi-Tao
  • Pérez-García, Lluïsa
  • Turyanska, Lyudmila
  • Rahman, Ruman
  • Rawson, Frankie J.
  • Universität

Entstanden

  • 2023

Ähnliche Objekte (12)