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.
Purpose:
Senescence is a key cellular response to ionizing radiation. Senescent cells experience irreversible growth arrest while remaining metabolically active and secrete a distinct set of proteins, collectively referred to as the senescence-associated secretory phenotype (SASP). These secreted factors influence neighboring non-irradiated cells through a mechanism known as the bystander effect. This study aimed to investigate and characterize the bystander effect in a melanoma cell model.
Material And Methods:
Murine melanoma B16F0 cells were exposed to X-irradiation (10 Gy), and senescence was induced 3 days later. Conditioned media from the senescent cells was collected and used to culture non-irradiated B16F0 cells. Proliferation, viability, clonogenic capacity, DNA damage foci formation, apoptosis, and senescence were assessed. The composition of the senescence-associated secretory phenotype was analyzed using mass spectrometry and bioinformatics tools.
Results:
Conditioned media from senescent cells induced by radiation reduced growth and promoted senescence in tumor cell cultures not exposed to ionizing radiation. Mass spectrometry analysis revealed greater protein diversity and abundance in conditioned media from senescent cells compared to that from non-irradiated cells. Additionally, conditioned media from senescent cells contained higher concentrations of proteins related to immune response, cellular aging, and responses to oxidative stress.
Conclusions:
Cells undergoing radiation-induced senescence promote bystander senescence by secreting soluble factors involved in the induction and maintenance of senescence.
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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