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Updated: Sep 12, 2026

The ChroP Approach Combines ChIP and Mass Spectrometry to Dissect Locus-specific Proteomic Landscapes of Chromatin
Published on: April 11, 2014
SCULPT-MCP: Systematic Chromosomal Upgrades for Locus-Driven Protein Topologies in Microcompartments
Dimple Goel1, Preeti Negi1, Aarcha Radhakrishnan1
1Chemical Biology Unit, Institute of Nanoscience and Technology, SAS Nagar, Punjab140306, India.
Abstract:
Gene order is a powerful design principle for protein nanomachines. In nature, gene organization ensures the precise assembly of functional protein nanostructures. We demonstrate how the genetic repositioning of the key structural gene pduN within the operon encoding a self-assembling protein nanocompartment sculpts the morphology and function of bacterial microcompartments (BMCs). Relocating pduN to new operonic positions dramatically altered the size, shape, and catalytic output of BMCs, despite identical protein sequences. These shifts reveal how gene order may control nanoscale assembly and compartmentalized function. Our findings establish operon architecture as a programmable genetic framework for nanostructure morphogenesis and provide a synthetic biology strategy to engineer self-assembling nanodevices with customized geometries and activities.
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