bioRxiv · 10.64898/2026.02.10.704675
Organelle communication networks rewire to support lipid metabolism during neuronal differentiation
Abstract
Cell fate transitions require coordinated remodeling of intracellular organelles, but how organelle morphology and interactions rewire during neurogenesis remains unclear. Here we combine multispectral imaging with quantitative organelle signature analysis to simultaneously map eight organelles as human induced pluripotent stem cells differentiate into forebrain-like neurons. We find compartment and time-specific rescaling of organelles and a progressive increase in higher-order membrane contacts, with mitochondria emerging as an early interaction hub. Later, endoplasmic reticulum (ER)-organelle contacts dominate with ER-peroxisome contacts promoting ether lipid biosynthesis, membrane homeostasis and synapse formation. Disrupting this contact impairs plasmalogen production, synaptic organization, and neuronal activity, identifying the ER-peroxisome axis as a key regulator of neuronal maturation.
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Zanellati, M. C., Coman, Z., Bhowmik, D., Hsu, C.-H., Basundra, R., Rhoads, S. N., Mfulama, N. R., Ehrmann, B. M., Deshmukh, M., Cohen, S.. 2026-02-11. Organelle communication networks rewire to support lipid metabolism during neuronal differentiation. https://doi.org/10.64898/2026.02.10.704675
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