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Updated: Jan 19, 2026

A Model Membrane Platform for Reconstituting Mitochondrial Membrane Dynamics
Published on: September 2, 2020
Mycobacterial Membrane Domain, or a Primordial Organelle?
Jennifer M Hayashi1, Yasu S Morita2
1Gladstone Institute of Virology and Immunology, University of California San Francisco, CA.
Abstract:
Mycobacteria, like many other prokaryotic organisms, do not appear to have membrane-bound organelles to organize the subcellular space. Nevertheless, mycobacteria and related bacteria grow their cell envelope in a spatially controlled manner, restricting cell elongation to the polar regions of the rod-shaped cell. This spatial organization demands that de novo synthesized cell envelope components must be supplied to the polar ends of the cell. Because many cell envelope components are either lipids or built as lipid-anchored precursors, the plasma membrane is the major site of the biosynthesis. Thus, there are logistical questions of where in the plasma membrane these lipids and lipid precursors are made and how they are subsequently delivered to the growing poles of the cell. Our discovery of an intracellular membrane domain (IMD) fills in this gap. Currently available data suggest that the IMD is a membrane domain within the plasma membrane of mycobacteria, which mediates key biosynthetic reactions for cell envelope and other lipid biosynthetic reactions. Consistent with its role in polar growth, the IMD is enriched in the polar regions of actively growing cells and becomes less polarized when the cells experience non-growing conditions. We discuss how such membrane compartmentalization may be generated and maintained in a mycobacterial cell and why it has not evolved into a bona fide organelle. In a broader perspective, we suggest that segregation of biosynthetic pathways into different domains of a planar membrane could be more widespread than we currently think.
Insights
Mycobacteria utilize an intracellular membrane domain (IMD) within their plasma membrane for cell envelope biosynthesis and polar growth. This specialized membrane domain is crucial for delivering essential components to the growing cell poles.
Area of Science:
- Cell Biology
- Microbiology
- Biochemistry
Background:
- Prokaryotic organisms like mycobacteria lack membrane-bound organelles.
- Mycobacteria exhibit spatially controlled cell envelope growth, with elongation restricted to polar regions.
- Efficient delivery of cell envelope components, primarily lipids and lipid-anchored precursors, to the poles is essential.
Purpose of the Study:
- To investigate the logistical mechanisms of lipid and precursor delivery to the growing poles in mycobacteria.
- To identify the specific site of cell envelope component biosynthesis within the plasma membrane.
Main Methods:
- The study focuses on the discovery and characterization of a novel membrane domain.
- Analysis of the localization and function of this domain in actively growing and non-growing cells.
Main Results:
- Discovery of an intracellular membrane domain (IMD) within the mycobacterial plasma membrane.
- The IMD mediates key biosynthetic reactions for cell envelope and lipid synthesis.
- IMD is enriched at the polar regions of actively growing cells and less polarized under non-growing conditions.
Conclusions:
- The IMD plays a critical role in the polar growth of mycobacteria by organizing essential biosynthetic pathways.
- Membrane compartmentalization within the plasma membrane facilitates spatial organization in prokaryotes.
- Such domain segregation in planar membranes may be a widespread phenomenon in bacteria.
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