DNA Checkpoint and Repair Factors Are Nuclear Sensors for Intracellular Organelle Stresses-Inflammations and Cancers

Huihong Zeng1, Gayani K Nanayakkara2,3, Ying Shao2,3

  • 1Department of Histology and Embryology, Basic Medical School, Nanchang University, Nanchang, China.

Insights

Genomic instability arises from unrepaired DNA damage, impacting gene mutations. This study reveals how DNA damage checkpoint and repair factors are modulated in various diseases, identifying new diagnostic and therapeutic targets.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cell Biology

Background:

  • Inflammatory conditions generate reactive oxygen and nitrogen species, causing DNA damage.
  • Unrepaired DNA damage can lead to mutations and genomic instability.
  • DNA damage checkpoint factors (DDCF) and DNA damage repair factors (DDRF) are crucial for maintaining genomic integrity, but their regulation is not fully understood.

Purpose of the Study:

  • To investigate the expression patterns of DDCFs and DDRFs across various human and mouse tissues under physiological and pathological conditions.
  • To identify factors that modulate DDCF and DDRF expression.
  • To propose a new role for DDCFs and DDRFs in sensing intracellular organelle stress.

Main Methods:

  • Experimental database analysis of 26 DDCFs and 42 DDRFs in 21 human and 20 mouse tissues.
  • Assessment of expression under physiological and pathological conditions, including cancers, sterile inflammatory disorders, and metabolic diseases.

Main Results:

  • Many DDCFs and DDRFs are differentially regulated, not ubiquitously expressed.
  • Their expression is modulated in cancers, sterile inflammatory disorders, and metabolic diseases.
  • Tissue methylation, pro-inflammatory cytokines, hypoxia, and angiogenic potential influence DDCF/DDRF expression.
  • Intracellular organelle stress signals can modulate DDCF/DDRF expression, impacting cell death.

Conclusions:

  • Sterile inflammatory disorders and cancers significantly increase genomic instability, classifying them as high genomic risk pathologies.
  • DDCFs and DDRFs act as nuclear sensors for intracellular organelle stresses within a cellular sensor cross-talking network.
  • This research may lead to novel therapeutic targets and biomarkers for diseases like metabolic disorders, inflammation, tissue damage, and cancers.

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