bioRxiv ScienceSearch

Biology subjects

Kim, S. C.

Publications and source records attributed to Kim, S. C..

3 recordsLinked to original sources

Conservation and Divergence in the Asexual Sporulation Gene Regulatory Network Across a Genus of Filamentous Fungi

Asexual sporulation is fundamental to the ecology and lifestyle of filamentous fungi and can facilitate both plant and human infection. In Aspergillus, the production of asexual spores is primarily governed by the BrlA[->]AbaA[->]WetA regulatory cascade. The final step in this cascade is controlled by the WetA protein and not only governs the morphological differentiation of spores but also the production and deposition of diverse metabolites into spores. While WetA is conserved across the genus Aspergillus, the structure and degree of conservation of the wetA gene regulatory network (GRN) remains largely unknown. We carried out comparative transcriptome analyses between wetA null mutant and wild type asexual spores in three representative species spanning the diversity of the genus Aspergillus: A. nidulans, A. flavus, and A. fumigatus. We discovered that WetA regulates asexual sporulation in all three species via a negative feedback loop that represses BrlA, the cascades first step. Furthermore, ChIP-seq experiments in A. nidulans asexual spores suggest that WetA is a DNA-binding protein that interacts with a novel regulatory motif. Several global regulators known to bridge spore production and the production of secondary metabolites show species-specific regulatory patterns in our data. These results suggest that the BrlA[->]AbaA[->]WetA cascades regulatory role in cellular and chemical asexual spore development is functionally conserved, but that the wetA-associated GRN has diverged during Aspergillus evolution.

microbiology

Particle-templated emulsification for microfluidics-free digital biology

The compartmentalization of reactions in monodispersed droplets is valuable for applications across biology. However, the requirement of microfluidics to partition the sample into monodispersed droplets is a significant barrier that impedes implementation. Here, we introduce particle-templated emulsification, a method to encapsulate samples in monodispersed emulsions without microfluidics. By vortexing a mixture of hydrogel particles and sample solution, we encapsulate the sample in monodispersed emulsions that are useful for most droplet applications. We illustrate the method with ddPCR and single cell culture. The ability to encapsulate samples in monodispersed droplets without microfluidics should facilitate the implementation of compartmentalized reactions in biology.

bioengineering

Robotic automation of droplet microfluidics

Droplet microfluidics enables new reactions, assays, and analytic capabilities, but often requires complex workflows involving numerous steps of macro- and micro-fluidic processing. We demonstrate robotically-automated droplet microfluidics, an approach to automate workflows with commercial fluid-handling robots. These workflows can be performed without human intervention, increasing reliability and convenience.

bioengineering