Telomeric DNA induces p53-dependent reactive oxygen species and protects against oxidative damage

Margaret S Lee1, Mina Yaar, Mark S Eller

  • 1Department of Dermatology, Boston University School of Medicine, Boston, MA 02118, USA.

Abstract

Insights

Telomere homolog oligonucleotides (T-oligos) enhance antioxidant defenses and protect cells from oxidative damage through a p53-dependent pathway. This study reveals innate telomere-based protective responses against cellular damage.

Area of Science:

  • Cellular Biology
  • Oxidative Stress Research
  • DNA Damage Response

Background:

  • Reactive oxygen species (ROS) are byproducts of cellular metabolism and external factors, influencing senescence and signaling.
  • Telomere homolog oligonucleotides (T-oligos) activate adaptive DNA damage responses, including enhanced DNA repair, mediated by p53.

Purpose of the Study:

  • To investigate if p53-mediated protective responses involve augmented antioxidant defenses.
  • To explore the role of T-oligos in cellular antioxidant capacity and ROS signaling.

Main Methods:

  • Human fibroblasts (normal and R2F with varying p53) were treated with T-oligos or control oligos.
  • Analysis included western blots, immunofluorescence microscopy, and biochemical assays to assess cellular responses.

Main Results:

  • T-oligos elevated antioxidant enzymes (superoxide dismutase 1 and 2), conferring protection against oxidative damage.
  • T-oligo-induced DNA damage foci contained ATM and Chk2, implicating them in p53 activation and cell cycle arrest.
  • Cellular ROS levels increased via a p53-dependent pathway, inhibited by diphenyliodonium chloride.

Conclusions:

  • Findings suggest inherent telomere-based mechanisms that mitigate oxidative damage.
  • T-oligo treatment mimics these responses, providing a model to study ROS signaling and the interplay of DNA damage, ROS, and cellular defenses.

Related Concept Videos

DNA Damage can Stall the Cell Cycle02:36

DNA Damage can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
DNA Damage Can Stall the Cell Cycle02:36

DNA Damage Can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
Abnormal Proliferation02:23

Abnormal Proliferation

Under normal conditions, most adult cells remain in a non-proliferative state unless stimulated by internal or external factors to replace lost cells. Abnormal cell proliferation is a condition in which the cell's growth exceeds and is uncoordinated with normal cells. In such situations, cell division persists in the same excessive manner even after cessation of the stimuli, leading to persistent tumors. The tumor arises from the damaged cells that replicate to pass the damage to the daughter...
Replication in Eukaryotes01:29

Replication in Eukaryotes

In eukaryotic cells, DNA replication is highly conserved and tightly regulated. Multiple linear chromosomes must be duplicated with high fidelity before cell division, so there are many proteins that fulfill specialized roles in the replication process. Replication occurs in three phases: initiation, elongation, and termination, and ends with two complete sets of chromosomes in the nucleus.
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
Replication in Eukaryotes02:31

Replication in Eukaryotes

Overview
Telomeres and Telomerase02:41

Telomeres and Telomerase

In eukaryotic DNA replication, a single-stranded DNA fragment remains at the end of a chromosome after the removal of the final primer. This section of DNA cannot be replicated in the same manner as the rest of the strand because there is no 3’ end to which the newly synthesized DNA can attach. This non-replicated fragment results in gradual loss of the chromosomal DNA during each cell duplication. Additionally, it can induce a DNA damage response by enzymes that recognize single-stranded DNA.