Related Experiment Video
Updated: May 26, 2026

Real-time Imaging of Myeloid Cells Dynamics in ApcMin/+ Intestinal Tumors by Spinning Disk Confocal Microscopy
Published on: October 6, 2014
Instant fluorescence lifetime imaging microscopy reveals mechano-metabolic reprogramming of stromal cells in breast
Julian Najera1,2, Hao Chen3, Bianca Batista1,2
1Department of Aerospace and Mechanical Engineering, University of Notre Dame, Notre Dame, IN 46556, USA.
Abstract:
The breast peritumor microenvironment (pTME) is increasingly recognized as a mediator of breast cancer progression and treatment resistance. However, how tumor compressive forces (i.e., solid stresses) influence it remains unclear. Using instant fluorescence lifetime imaging microscopy (FLIM), we show that in vitro compression metabolically reprograms stromal cells found in the breast pTME. Namely, compression shifts fibroblasts and differentiated adipocytes toward a more glycolytic state, but promotes increased oxidative phosphorylation in undifferentiated adipocytes. Through RNA-sequencing, we confirmed that compression downregulates oxidative phosphorylation and upregulates glycolysis in fibroblasts. Furthermore, we demonstrate that compression induces mitochondrial dysregulation in undifferentiated adipocytes, driven partly by upregulated mitophagy and disrupted fission/fusion dynamics. The analysis of human breast cancer samples confirms these stromal cell types recapitulate these distinct metabolic states, consistent with in vitro findings. By elucidating tumor-host mechano-metabolic interactions, these results will inform the development of innovative treatment strategies to improve survival.
