Chemotherapy-Induced Cognitive Impairment Is Associated with Increased Inflammation and Oxidative Damage in the Hippocampus.
Ciara Bagnall-MoreauSovira ChaudhryKaliris Salas-RamirezTim AhlesKaren HubbardPublished in: Molecular neurobiology (2019)
Increasing evidence indicates that chemotherapy results in long-term effects on cognitive dysfunction in some cancer survivors. While many studies have established the domains of cognition and corresponding regions in the brain most affected, little is revealed about the potential molecular mechanisms that mediate these adverse changes after treatment. The effects of chemotherapy on the brain are likely attributed to various mechanisms, including oxidative stress and immune dysregulation, features that are also reminiscent of cognitive aging. We have investigated the cognitive effects of a cocktail composed of doxorubicin and cyclophosphamide (AC-chemo) in a surgical ovariectomized rodent model. In this study, we address whether the levels of pro-inflammatory cytokines and oxidative stress-responsive gene markers are altered in the CNS of rats treated with systemic AC-chemo. We further evaluated the levels of nucleic acids modified by oxidative stress in the hippocampus using both immunohistochemical and Northern blotting techniques with a monoclonal antibody against 8-hydroxyguanosine (8-OHG) and 8-OHdG base lesions. We demonstrate that ERK 1/2 and JNK/SAPK signaling activities are elevated in the hippocampus of AC-chemo rats. The levels of pro-inflammatory, oxidative stress-responsive, and RNA/DNA damage markers were also higher in drug-injected animals relative to saline controls. The results indicate that the effects of AC chemotherapy are associated with oxidative damage and a global stress response in the hippocampus. These alterations in the molecular signature of the brain may underlie the processes that contribute to cognitive impairment after treatment.
Keyphrases
- oxidative stress
- cognitive impairment
- dna damage
- locally advanced
- cancer therapy
- cerebral ischemia
- chemotherapy induced
- induced apoptosis
- white matter
- monoclonal antibody
- diabetic rats
- ischemia reperfusion injury
- resting state
- photodynamic therapy
- signaling pathway
- prefrontal cortex
- subarachnoid hemorrhage
- drug delivery
- dna repair
- functional connectivity
- blood brain barrier
- low dose
- copy number
- squamous cell carcinoma
- high dose
- emergency department
- young adults
- cell proliferation
- genome wide
- dna methylation