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Desai, M.

Publications and source records attributed to Desai, M..

2 recordsLinked to original sources

A role for GrgA in regulation of σ28-dependent transcription in the obligate intracellular bacterial pathogen Chlamydia trachomatis

The sexually transmitted obligate intracellular bacterial pathogen Chlamydia trachomatis has a unique developmental cycle consisting of two contrasting cellular forms. Whereas the primary Chlamydia sigma factor, {sigma}66, is involved in the expression of the majority of chlamydial genes throughout the developmental cycle, expression of several late genes requires the alternative sigma factor {sigma}28. In prior work we identified GrgA as a Chlamydia-specific transcription factor that activates {sigma}66-dependent transcription by binding DNA and interacting with a non-conserved region (NCR) of {sigma}66. Here, we extend these findings by showing GrgA can also activate {sigma}28-dependent transcription through direct interaction with {sigma}28. We measure the binding affinity of GrgA for both {sigma}66and {sigma}28, and we identify regions of GrgA important for {sigma}28-dependent transcription. Similar to results obtained with {sigma}66, we find that GrgAs interaction with {sigma}28 involves a NCR located upstream of conserved region 2 of {sigma}28. Our findings suggest GrgA is an important regulator of both {sigma}66- and {sigma}28-dependent transcription in C. trachomatis and further highlight NCRs of bacterial RNA polymerase as targets for regulatory factors unique to particular organisms.

microbiology

Eukaryotically expressed encapsulins as orthogonal compartments for multiscale molecular imaging

We have genetically controlled compartmentalization in eukaryotic cells by heterologous expression of bacterial encapsulin shell and cargo proteins to engineer enclosed enzymatic reactions and size-controlled metal biomineralization. The orthogonal shell protein (EncA) from M. xanthus efficiently auto-assembled inside mammalian cells into nanocompartments to which sets of native (EncB,C,D) and engineered cargo proteins self-targeted. This enabled localized bimolecular fluorescence and enzyme complementation with selective access to substrates via the pores in the nanoshell. Encapsulation of the enzyme tyrosinase lead to the confinement of toxic melanin production for robust detection via multispectral optoacoustic tomography (MSOT). Co-expression of ferritin-like native cargo (EncB or EncC) resulted in efficient iron sequestration that produced substantial contrast by magnetic resonance imaging (MRI) and enabled magnetic cell sorting. The monodisperse, spherical, and iron-loading nanoshells also proved to be excellent genetically encoded markers for cryo-electron tomography (cryo-ET). In general, eukaryotically expressed encapsulins enable cellular engineering of spatially confined multicomponent processes with versatile applications in multiscale molecular imaging, as well as intriguing implications for metabolic engineering and cellular therapy.

synthetic biology