Radiation-induced senescent melanoma cells secrete soluble factors that trigger bystander senescence

Leonardo Salvarredi1,2,3,4, Héctor Agüero1,3, María Elisa Millan5

  • 1Nuclear Medicine School Foundation, Mendoza, Argentina.

Abstract

Insights

Radiation-induced senescence in melanoma cells triggers a bystander effect, promoting senescence in non-irradiated cells via secreted factors. These factors, part of the senescence-associated secretory phenotype (SASP), influence cellular aging and immune responses.

Area of Science:

  • Cell Biology
  • Radiation Oncology
  • Cancer Research

Background:

  • Cellular senescence is a critical response to DNA damage, notably from ionizing radiation.
  • Senescent cells exhibit irreversible growth arrest and secrete factors known as the senescence-associated secretory phenotype (SASP).
  • The SASP can induce bystander effects, influencing neighboring cells through secreted molecules.

Purpose of the Study:

  • To investigate and characterize the bystander effect in a melanoma cell model.
  • To understand how radiation-induced senescence influences non-irradiated cells.
  • To analyze the protein composition of the SASP in this context.

Main Methods:

  • Murine melanoma B16F0 cells were exposed to X-irradiation (10 Gy).
  • Conditioned media from senescent cells was used to treat non-irradiated B16F0 cells.
  • Assays included proliferation, viability, clonogenic capacity, DNA damage, apoptosis, and senescence markers. SASP composition was analyzed via mass spectrometry and bioinformatics.

Main Results:

  • Conditioned media from irradiated, senescent cells reduced proliferation and induced senescence in non-irradiated cells.
  • Mass spectrometry revealed increased protein diversity and abundance in the SASP of senescent cells.
  • The SASP contained higher concentrations of proteins involved in immune response, aging, and oxidative stress.

Conclusions:

  • Radiation-induced senescent cells promote bystander senescence through secreted soluble factors.
  • These factors are crucial for inducing and maintaining senescence in neighboring cells.
  • This highlights a paracrine signaling mechanism in response to radiation damage.

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