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Semaan, M.

Publications and source records attributed to Semaan, M..

3 recordsLinked to original sources

The enteroviral protease target LSM14A operates outside of P-bodies to augment antiviral innate immunity

Antiviral innate immune networks in human cells comprise core components that serve as central signaling hubs and several context-dependent modulators whose role may be virus- or tissue-specific. One such modulator is LSM14A, which potentiates innate immune response but is not essential. We recently showed that enteroviruses deploy their protease activity to cleave LSM14A, thereby disabling its antiviral function. In this study, we probe the molecular mechanism by which LSM14A contributes to innate immunity. We show that although LSM14A predominantly localizes to processing bodies (P-bodies; PBs), this localization is not essential for its innate immune function. Likewise, association with peroxisomes does not contribute to its immune activity. Instead, an unbiased systems-level interactomic analysis reveals a distinct cohort of LSM14A-associated proteins that assemble outside canonical PBs and peroxisomes following infection with Sendai virus, a robust inducer of innate immunity. Functional interrogation of these interactors demonstrate that several are essential for LSM14A-dependent amplification of antiviral signaling. Together, these findings uncover a functional axis of LSM14A that operates independently of its canonical subcellular localizations and is mediated through a specialized interaction network, improving our understanding of how this protein reinforces the antiviral innate immune system.

microbiology↗

A scalable proteogenomic framework for dissecting phospho-signaling pathways in primary immune cells

Signaling networks modulated by post-translational modifications orchestrate cellular responses to external cues. Traditional approaches to study these pathways lack the throughput to systematically capture the causal architecture of these signaling pathways at scale. Here, we present an integrated proteogenomic framework that combines saturating genetic perturbations with high-throughput proteomics to systematically map cytokine-induced signaling in primary human T cells. Supporting this framework is simplePhos, a streamlined, low-input phosphoproteomics workflow that enables scalable, time-resolved analysis without the requirement for specialized equipment or robotics. We extensively validate the simplePhos pipeline by applying inflammatory stimuli, including type I and II interferons, lipopolysaccharide, and Sendai virus to primary T cells and myeloid cells, establishing foundational datasets in these treatment contexts. Ultimately, using type I interferon signaling in genetically modified T cells as a model, we demonstrate that combined application of genetic alterations and proteomic analyses can map key signaling nodes in primary immune cells. This represents a powerful strategy to mechanistically interrogate phospho-signaling networks in human immune cells, with broad applications in translational immunology and therapeutic development.

systems biology↗

An unusual genetic switch controls Mycobacterium avium pathogenesis, antibiotic resistance and colony morphology

Mycobacterium avium subspecies hominissuis (Mah) is an emerging environmental pathogen highly adapted to a wide range of niches, from treated water systems to mammalian tissues. On solid media, Mah forms two distinct colony morphologies, smooth transparent (SmT) and smooth opaque (SmO). These colony morphologies are representative of broader differential phenotypic states in which SmT cells are virulent and have high resistance to antibiotics while SmO cells are avirulent, antibiotic-sensitive and grow faster than SmT cells in culture. Importantly, Mah interconverts between these two morphotypes but the mechanism of SmT-SmO switching is unknown. Here we show that SmT-SmO switching is governed by a reversible transposition event that regulates expression of a periplasmic lipoprotein, Erp (extracellular repetitive protein). We found that transposition of IS1245, an endogenous insertion sequence, into the erp gene correlated with the SmT-SmO transition, and its precise removal coincided with the switch back to SmT. Genetic analyses showed that erp is required for maintenance of the SmT state and sufficient to drive the switch from SmO to SmT. We also identified a mutation in a periplasmic protease, MarP, that locks Mah in the SmO state and blocks erp-mediated switching to SmT. Our results indicate that Erp and MarP function in a signal transduction pathway that regulates a broad transcriptional response to periplasmic stress. Moreover, identification of components that control Mah colony morphology switching has revealed a potential new strategy for combating the inherent antibiotic resistance of Mycobacterium avium infections.

microbiology↗