Accelerated cerebromicrovascular senescence contributes to cognitive decline in a mouse model of paclitaxel (Taxol)‐induced chemobrain

Author:

Ahire Chetan12,Nyul‐Toth Adam1234,DelFavero Jordan12,Gulej Rafal12,Faakye Janet A.12,Tarantini Stefano12356,Kiss Tamas27,Kuan‐Celarier Anna26,Balasubramanian Priya126,Ungvari Anna123,Tarantini Amber1236,Nagaraja Raghavendra2,Yan Feng8,Tang Qinggong8,Mukli Peter123,Csipo Tamas23,Yabluchanskiy Andriy1256,Campisi Judith9ORCID,Ungvari Zoltan12356ORCID,Csiszar Anna1236

Affiliation:

1. Vascular Cognitive Impairment, Neurodegeneration and Healthy Brain Aging Program, Department of Neurosurgery University of Oklahoma Health Sciences Center Oklahoma City Oklahoma USA

2. Oklahoma Center for Geroscience and Healthy Brain Aging University of Oklahoma Health Sciences Center Oklahoma City Oklahoma USA

3. International Training Program in Geroscience, Doctoral School of Basic and Translational Medicine/Departments of Public Health and Translational Medicine Semmelweis University Budapest Hungary

4. International Training Program in Geroscience, Institute of Biophysics, Biological Research Centre ELKH Szeged Hungary

5. Department of Health Promotion Sciences, College of Public Health University of Oklahoma Health Sciences Center Oklahoma City Oklahoma USA

6. The Peggy and Charles Stephenson Cancer Center University of Oklahoma Health Sciences Center Oklahoma City Oklahoma USA

7. International Training Program in Geroscience, First Department of Pediatrics Semmelweis University Budapest Hungary

8. Stephenson School of Biomedical Engineering, Gallogly College of Engineering The University of Oklahoma Norman Oklahoma USA

9. Buck Institute for Research on Aging Novato California USA

Abstract

AbstractChemotherapy‐induced cognitive impairment (“chemobrain”) is a frequent side‐effect in cancer survivors treated with paclitaxel (PTX). The mechanisms responsible for PTX‐induced cognitive impairment remain obscure, and there are no effective treatments or prevention strategies. Here, we test the hypothesis that PTX induces endothelial senescence, which impairs microvascular function and contributes to the genesis of cognitive decline. We treated transgenic p16‐3MR mice, which allows the detection and selective elimination of senescent cells, with PTX (5 mg/kg/day, 2 cycles; 5 days/cycle). PTX‐treated and control mice were tested for spatial memory performance, neurovascular coupling (NVC) responses (whisker‐stimulation‐induced increases in cerebral blood flow), microvascular density, blood–brain barrier (BBB) permeability and the presence of senescent endothelial cells (by flow cytometry and single‐cell transcriptomics) at 6 months post‐treatment. PTX induced senescence in endothelial cells, which associated with microvascular rarefaction, NVC dysfunction, BBB disruption, neuroinflammation, and impaired performance on cognitive tasks. To establish a causal relationship between PTX‐induced senescence and impaired microvascular functions, senescent cells were depleted from PTX‐treated animals (at 3 months post‐treatment) by genetic (ganciclovir) or pharmacological (treatment with the senolytic drug ABT263/Navitoclax) means. In PTX treated mice, both treatments effectively eliminated senescent endothelial cells, rescued endothelium‐mediated NVC responses and BBB integrity, increased capillarization and improved cognitive performance. Our findings suggest that senolytic treatments can be a promising strategy for preventing chemotherapy‐induced cognitive impairment.

Funder

American Heart Association

Center for Strategic Scientific Initiatives, National Cancer Institute

National Institute of General Medical Sciences

National Institute of Neurological Disorders and Stroke

National Institute on Aging

Publisher

Wiley

Subject

Cell Biology,Aging

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