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Bartholomai, B. M.

Publications and source records attributed to Bartholomai, B. M..

2 recordsLinked to original sources

Core Clock Protein Subcellular Dynamics Coordinate Local and Global Circadian Control in Syncytia.

Circadian rhythms are pervasive among eukaryotes, and the underlying clocks share a common regulatory architecture - a negative feedback loop. A wealth of genetic and biochemical data underpin current perceptions of circadian oscillators but aspects of their cell biology remain cryptic, especially in syncytial systems. We employed novel microfluidic systems and a blind mutant that retains circadian function to simultaneously track multiple clock components in vivo across circadian cycles, revealing remarkable subcellular and subnuclear dynamics of clock proteins and providing insights into spatiotemporal regulation in a multinucleated system. Despite heterogeneity of clock gene (frq) expression, we find robust cycles in FRQ nuclear localization among all nuclei and document free diffusion of multiple clock components among nuclei. Within nuclei, clock components form distinct, small, highly dynamic nuclear bodies that persist throughout the cycle, occasionally co-localizing for circadian regulatory functions. This rich context of in vivo spatiotemporal information illustrates how separate nuclear clocks ensure synchronous regulation of cellular activities across a macroscopic syncytium.

cell biology↗

Optimized fluorescent proteins for 4-color and photoconvertible live-cell imaging in Neurospora crassa

Fungal cells are quite unique among life in their organization and structure, and yet implementation of many tools recently developed for fluorescence imaging in animal systems and yeast has been slow in filamentous fungi. Here we present analysis of properties of fluorescent proteins in Neurospora crassa as well as describing genetic tools for the expression of these proteins that may be useful beyond cell biology applications. The efficacy of ten different fluorescent protein tags were compared in a constant context of genomic and intracellular location; six different promoters are described for the assessment of the fluorescent proteins and varying levels of expression, as well as a customizable bidirectional promoter system. We present an array of fluorescent proteins suitable for use across the visible light spectrum to allow for 4-color imaging, in addition to a photoconvertible fluorescent protein that enables a change in the color of a small subset of proteins in the cell. These tools build on the rich history of cell biology research in filamentous fungi and provide new tools to help expand research capabilities.

cell biology↗