Mechanical compression induces neuronal apoptosis, reduces synaptic activity, and promotes glial neuroinflammation in mice and humans

M Maksym Zarodniuk (Department of Aerospace and Mechanical Engineering, University of Notre Dame) A Anna Wenninger (Department of Biological Sciences, University of Notre Dame) J Julian Najera (Department of Aerospace and Mechanical Engineering, University of Notre Dame) J Jihaeng Lee (Department of Biological Sciences, University of Notre Dame) J Jack Markillie (Department of Chemistry and Biochemistry, University of Notre Dame) C Cameron MacKenzie (Department of Biological Sciences, University of Notre Dame) J Jenny Bergqvist-Patzke (Department of Biological Sciences, University of Notre Dame) B Bianca Batista (Department of Chemical and Biomolecular Engineering, University of Notre Dame) M Megna Panchbhavi (Department of Applied and Computational Mathematics and Statistics, University of Notre Dame) R R’nld Rumbach (Department of Aerospace and Mechanical Engineering, University of Notre Dame) A Alice Burchett (Department of Aerospace and Mechanical Engineering, University of Notre Dame) C Charles Sander (Department of Biological Sciences, University of Notre Dame) M Meenal Datta (Department of Radiation Oncology, Edwin L. Steele Laboratories, Massachusetts General Hospital and Harvard Medical School) C Christopher Patzke

Abstract

Mass effect, characterized by the compression and deformation of neural tissue from space-occupying lesions, can lead to debilitating neurological symptoms and poses a significant clinical challenge. In the primary brain tumor glioblastoma (GBM), we have shown previously that compressive solid stress originating from the growing tumor reduces cerebral blood flow, leading to neuronal loss, increased functional impairment, and poor clinical outcomes. However, the direct effects of compression on neurons and the underlying biophysical mechanisms are poorly understood. Here, using multiscale compression systems and physiologically relevant in vitro and in vivo models, we find that chronic mechanical compression induces neuronal apoptosis and loss of synaptic puncta, leading to disrupted neural network activity, as assessed by calcium imaging. This is accompanied by increased HIF-1 signaling and upregulation of downstream stress-adaptive genes in neurons. We further show that chronic compression triggers AP-1–driven gene expression in glial cells, promoting a neuroinflammatory response. Together, these findings reveal that solid stress directly contributes to neuronal dysfunction and inflammation caused by GBM by activating distinct pathways that can be targeted in future studies for neuroprotection.

Article Details

Volume / Issue Vol. 123, Issue 1
Published January 06, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (14)

M

Maksym Zarodniuk

Department of Aerospace and Mechanical Engineering, University of Notre Dame

A

Anna Wenninger

Department of Biological Sciences, University of Notre Dame

J

Julian Najera

Department of Aerospace and Mechanical Engineering, University of Notre Dame

J

Jihaeng Lee

Department of Biological Sciences, University of Notre Dame

J

Jack Markillie

Department of Chemistry and Biochemistry, University of Notre Dame

C

Cameron MacKenzie

Department of Biological Sciences, University of Notre Dame

J

Jenny Bergqvist-Patzke

Department of Biological Sciences, University of Notre Dame

B

Bianca Batista

Department of Chemical and Biomolecular Engineering, University of Notre Dame

M

Megna Panchbhavi

Department of Applied and Computational Mathematics and Statistics, University of Notre Dame

R

R’nld Rumbach

Department of Aerospace and Mechanical Engineering, University of Notre Dame

A

Alice Burchett

Department of Aerospace and Mechanical Engineering, University of Notre Dame

C

Charles Sander

Department of Biological Sciences, University of Notre Dame

M

Meenal Datta

Department of Radiation Oncology, Edwin L. Steele Laboratories, Massachusetts General Hospital and Harvard Medical School

C

Christopher Patzke