Cell jamming transition is regulated by mitochondrial pyruvate transport and endocytosis

Epithelial tissues undergo dynamic transitions between fluid-like collective motion and mechanically jammed states during development, injury repair, and disease progression. However, the cellular programs that drive these transitions and regulate collective behavior remain unclear. Using a controlled crowding model integrated with live-cell imaging and time-resolved multiomics, we demonstrate that epithelial crowding triggers early metabolic changes characterized by increased mitochondrial pyruvate anaplerosis that precedes the jamming transition. Restricting mitochondrial pyruvate import increased collective cell motility and delayed jamming in crowded monolayers. This unjammed state is driven by enhanced cytoskeletal remodeling and requires RhoA-myosin II activity. Mechanistically, we show that elevated cytoskeletal signaling promotes macropinocytic uptake, which serves as a required feedback loop to maintain motility. These findings identify mitochondrial pyruvate utilization as an important regulatory input linking metabolic remodeling to the endocytic control of epithelial fluidity.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-10-07
DOI
https://doi.org/10.1073/pnas.2617216123
Primary Topic
Cellular Mechanics and Interactions
Type
article
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article

Cell jamming transition is regulated by mitochondrial pyruvate transport and endocytosis

Jimmy Kuang‐Hsien Hu, Dapeng Bi, Neil Y. C. Lin, Andrew S. Goldstein et al.
Proceedings of the National Academy of Sciences
Cellular Mechanics and Interactions
article

Cell jamming transition is regulated by mitochondrial pyruvate transport and endocytosis

Jimmy Kuang‐Hsien Hu, Dapeng Bi, Neil Y. C. Lin, Andrew S. Goldstein, Zoe D. Latham, Alexandra Bermúdez, Johnny Diaz, Weihong Yan, Jerry Chen
article en

Abstract

Epithelial tissues undergo dynamic transitions between fluid-like collective motion and mechanically jammed states during development, injury repair, and disease progression. However, the cellular programs that drive these transitions and regulate collective behavior remain unclear. Using a controlled crowding model integrated with live-cell imaging and time-resolved multiomics, we demonstrate that epithelial crowding triggers early metabolic changes characterized by increased mitochondrial pyruvate anaplerosis that precedes the jamming transition. Restricting mitochondrial pyruvate import increased collective cell motility and delayed jamming in crowded monolayers. This unjammed state is driven by enhanced cytoskeletal remodeling and requires RhoA-myosin II activity. Mechanistically, we show that elevated cytoskeletal signaling promotes macropinocytic uptake, which serves as a required feedback loop to maintain motility. These findings identify mitochondrial pyruvate utilization as an important regulatory input linking metabolic remodeling to the endocytic control of epithelial fluidity.

Proceedings of the National Academy of SciencesVol. 123(41)
Northeastern University (US), University of California System (US), Bioengineering Center (RU), Broad Center (US)
Openalex Percentile: Top 16%
Cellular Mechanics and Interactions
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Cell jamming transition is regulated by mitochondrial pyruvate transport and endocytosis — Jimmy Kuang‐Hsien Hu, Dapeng Bi, et al. · Proceedings of the National Academy of Sciences (2026) | TGRS Research Map | TGRS