Mitochondrial pearling is controlled by the inner membrane and mediates segregation of the luminal content and membrane scission

W Wasi Iqbal (Department of Biomedical Engineering) B Ben Zucker (Department of Physiology and Pharmacology, Gray School of Medical Sciences, Tel Aviv University) X Xiaoying Liu (Department of Biomedical Engineering) R Ruiru Wang (Department of Biomedical Engineering, The Chinese University of Hong Kong) H Hongfei Zhu (Department of Biomedical Engineering, The Chinese University of Hong Kong) S Sijie Chen R Renjie Zhou (Department of Biomedical Engineering, The Chinese University of Hong Kong) X Xingguo Liu M Michael M. Kozlov (Department of Physiology and Pharmacology, Gray School of Medical Sciences, Tel Aviv University) L Liting Duan (Department of Biomedical Engineering)

Abstract

Membrane pearling, the transformation of a smooth tubule into a chain of bead-like swellings connected by narrow membrane tethers, is a widely observed shape change. While it has been well studied for synthetic lipid and unilamellar intracellular membranes, the mechanism underlying the pearling of the peculiar double-membrane architecture of tubular mitochondria remained elusive. Here, we addressed the role of the strongly convoluted inner mitochondrial membrane (IMM) in pearling driven by stretching. Using a light-gated, mitochondria-specific mechanostimulator to apply stretching forces to mitochondria in live cells, we demonstrated that stretching triggers pearling of whole tubular mitochondria. Moreover, we found that pearling requires the presence of the IMM, as unilamellar tubules derived solely from the mitochondrial outer membrane elongate uniformly under stretching and never undergo pearling. To understand the physical mechanism by which IMM controls pearling, we developed a theoretical model that considers the lumen, effectively spanned and volumetrically stiffened by cristae, as an elastic continuum. Our computations show that pearling requires the luminal volume to be sufficiently resistant to change, with its effective bulk rigidity modulus exceeding a critical value. Our experimental observations further revealed the functionally important consequences of stretching-induced pearling. mtDNA nucleoids partitioned into the bulges of pearled configurations, suggesting a role for pearling in the reorganization of luminal components. In addition, the membrane fission GTPase DRP1 accumulated at the constrictions of pearled shapes, leading to membrane scission and mitochondrial fragmentation. Our work uncovers the unique biophysical mechanism of mitochondrial pearling and its functional significance for organelle dynamics.

Article Details

Volume / Issue Vol. 123, Issue 31
Published August 04, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

W

Wasi Iqbal

Department of Biomedical Engineering

B

Ben Zucker

Department of Physiology and Pharmacology, Gray School of Medical Sciences, Tel Aviv University

X

Xiaoying Liu

Department of Biomedical Engineering

R

Ruiru Wang

Department of Biomedical Engineering, The Chinese University of Hong Kong

H

Hongfei Zhu

Department of Biomedical Engineering, The Chinese University of Hong Kong

S

Sijie Chen

R

Renjie Zhou

Department of Biomedical Engineering, The Chinese University of Hong Kong

X

Xingguo Liu

M

Michael M. Kozlov

Department of Physiology and Pharmacology, Gray School of Medical Sciences, Tel Aviv University

L

Liting Duan

Department of Biomedical Engineering