bioRxiv Science⌕ Search

Biology subjects

Rogulina, S.

Publications and source records attributed to Rogulina, S..

2 recordsLinked to original sources

Cell type-independent profiling of interactions between intracellular pathogens and the human phosphoproteome

Interactions between proteins from intracellular pathogens and host proteins in an infected cell are often mediated by post-translational modifications encoded in the host proteome. Identifying protein modifications, such as phosphorylation, that dictate these interactions remains a defining challenge in unraveling the molecular mechanisms of pathogenesis. We have developed a platform in engineered bacteria that displays over 110,000 phosphorylated human proteins coupled to a fluorescent reporter system capable of identifying the host-pathogen interactome of phosphoproteins (H-PIP). This resource broadly enables cell-type independent interrogation and discovery of proteins from intracellular pathogens capable of binding phosphorylated human proteins. As an example of the H-PIP platform, we generated a unique, high-resolution SARS-CoV-2 interaction network which expanded our knowledge of viral protein function and identified understudied areas of host pathology.

synthetic biology↗

Principles for Systematic Optimization of an Orthogonal Translation System with Enhanced Biological Tolerance

Over the past twenty years, the development of orthogonal biological systems has sparked a revolution in our ability to study cellular physiology. Orthogonal translation systems (OTSs) enable site-specific incorporation of hundreds of non-standard amino acids, offering unprecedented access to the study of cellular mechanisms modulated by post-translational modifications (e.g. protein phosphorylation). Although development of phosphoserine-OTSs (pSerOTS) has been significant, little work has focused on the biology of OTS development and utilization. To better understand the impact of OTSs on host physiology, we utilize pSerOTS as a model to systematically explore the extent to which OTS components interact with Escherichia coli. Using this information, we constructed pSerOTS variants designed to enhance OTS orthogonality by minimizing interactions with host processes and decreasing stress response activation. Our expanded understanding of OTS:host interactions enables informed OTS design practices which minimize the negative impact of OTSs while improving OTS performance across a range of experimental settings.

synthetic biology↗