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Ben Nejma, S.

Publications and source records attributed to Ben Nejma, S..

2 recordsLinked to original sources

Asymmetric mitochondrial trafficking maintains network morphology by balancing perinuclear biogenesis

In functionally polarized cells, mitochondria can form distinct subpopulations, positioned at sites of varying metabolic and energetic demands. Thus far, the potential presence of such subpopulations and implications of their intracellular trafficking in immobile and proliferative cells remains largely undescribed, despite such cells serving as key models. Here, we use substrate micropatterning to create reproducible morphologies of cultured immortalized cells, enabling us to define mitochondrial subpopulations and follow their trafficking by photoactivation. We discovered that mitochondrial material is dispersed asymmetrically throughout the cell via biased anterograde transport from the perinuclear area. Combining quantitative analysis and in silico modeling, we characterize the causes and consequences of unbalanced mitochondrial trafficking. Our findings indicate that this bias is required to distribute new material resulting from perinuclear mitochondrial biosynthesis to sustain mitochondrial mass distribution across the cell, and to maintain normal network connectivity.

cell biology↗

Pearling Drives Mitochondrial DNA Nucleoid Distribution

The mitochondria of most eukaryotes carry an indispensable second genome (mtDNA), encoding genes engaged in oxidative phosphorylation1. The regular positioning and segregation of mtDNA-containing nucleoids is essential for mitochondrial function and inheritance, as well as cellular health2-5. However, the underlying mechanism driving nucleoid distribution and disaggregation remains unknown6,7. Our data reveal that mitochondria frequently undergo reversible pearling, a biophysical instability that undulates tubules into regularly spaced beads 8, typically triggered by calcium influx. We discovered that physiological pearling imposes a characteristic length scale, simultaneously mediating nucleoid disaggregation and establishing inter-nucleoid distancing with near-maximally achievable precision. We found that lamellar cristae invaginations of the inner mitochondrial membrane play a dual role, determining pearling frequency and duration, and preserving the resulting nucleoid spacing after organelle recovery to a tubular form. Thus, disrupting cristae ultrastructure resulted in more frequent pearling, but also aberrant nucleoid clustering. Our results demonstrate that the distribution of mitochondrial genomes is governed by the interplay between rapid and reversible pearling and cristae ultrastructure, establishing a mechanism for this long-puzzling yet fundamental feature of eukaryotic life, and offering insights into its potential modulation.

cell biology↗