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Hazu, M.

Publications and source records attributed to Hazu, M..

2 recordsLinked to original sources

Cell Chromatography: Biocompatible chromatographic separation and interrogation of microbial cells

The isolation of pure, single colonies lies at the heart of experimental microbiology. However, a microbial colony typically contains around one million cells at all stages of the life cycle. Here we describe a novel, cell chromatography method that facilitates the capture, purification and interrogation of microbial cells from both single and mixed cultures. The method described relies on, but is not limited to, differences in surface charge to separate bacterial strains. The method is fully biocompatible, leading to no significant loss of cell viability. The chromatographic capture of cells, combined with selective elution methods facilitates a greater level of experimental control over the sample inputs required for downstream high throughput and high sensitivity, analytical methods. The application of the method for interrogating the antibiotic resistance of bacterial strains and for the separation of bacteria from environmental samples is illustrated.

microbiology↗

Regulated assembly of the ER membrane protein complex

The assembly of nascent proteins into multi-subunit complexes is tightly regulated to maintain cellular homeostasis. The ER membrane protein complex (EMC) is an essential insertase that requires seven membrane-spanning and two soluble subunits for function. Here we show that the kinase With no lysine 1 (WNK1), known for its role in hypertension and neuropathy, is required for assembly of the human EMC. WNK1 uses a conserved amphipathic helix to stabilize the soluble subunit, EMC2, by binding to the EMC2-8 interface. Shielding this hydrophobic surface prevents promiscuous interactions of unassembled EMC2 and precludes binding of ubiquitin ligases, permitting assembly. Using biochemical reconstitution, we show that after EMC2 reaches the membrane, its interaction partners within the EMC displace WNK1, and similarly shield its exposed hydrophobic surfaces. This work describes an unexpected role for WNK1 in protein biogenesis, and defines the general requirements of an assembly factor that will apply across the proteome.

molecular biology↗