Causes and consequences of RNA:protein cross-links - lessons from chemotherapy

Zornitsa Vasileva Kotopanova1, Eloise Wilkinson1, Zijian Zhang1

  • 1Division of Cancer Sciences, Faculty of Biology, Medicine and Health, The University of Manchester, Manchester, M13 9NT, U.K.

PubMed

Insights

RNA:protein cross-links (RPCs) are formed by proximity or enzyme trapping, often induced by clinical compounds like oxaliplatin and 5-fluorouracil, impacting cellular function.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Cell Biology

Background:

  • Cells utilize specific RNA and protein interactions for diverse functions, exemplified by the epitranscriptome.
  • The epitranscriptome involves RNA modifications by protein enzymes, necessitating close RNA:protein proximity.
  • RNA:protein proximity can lead to unwanted RNA:protein cross-links (RPCs).

Purpose of the Study:

  • To describe the mechanisms of RNA:protein cross-link (RPC) formation.
  • To provide examples of clinical compounds that induce RPCs.
  • To summarize cellular mechanisms for detecting and resolving RPCs.

Main Methods:

  • Review of existing literature on RNA:protein cross-link formation.
  • Analysis of mechanisms involving proximity-defined cross-linking and enzyme trapping.
  • Examination of clinical agents like oxaliplatin and 5-fluorouracil in RPC induction.

Main Results:

  • RPCs form via two primary mechanisms: proximity-defined and enzyme trapping.
  • Proximity-defined RPCs result from reactive agents (endogenous/exogenous) binding adjacent biomolecules, exemplified by oxaliplatin.
  • Enzyme trapping RPCs occur when RNA-modifying enzymes form persistent covalent intermediates, as seen with 5-fluorouracil incorporation into RNA.

Conclusions:

  • RPCs are an inherent consequence of RNA:protein interactions.
  • Clinical compounds can induce RPCs through distinct mechanisms, affecting cellular processes.
  • Cells possess molecular machinery to manage RPCs, relevant to clinical contexts.

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