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Biology subjects

Hwang, S. Y.

Publications and source records attributed to Hwang, S. Y..

3 recordsLinked to original sources

PAXIP1-PAGR1 directs cohesin recruitment during break-induced telomere repair

Cohesin is a conserved multiprotein complex (SMC1, SMC3, RAD21, and either STAG1 or STAG2) that organizes three-dimensional genome architecture and regulates chromosome segregation, gene expression, and DNA damage repair (1-4). Following double-strand breaks (DSBs), cohesin is recruited to sites of DNA damage - a process considered essential for efficient homologous recombination (5-15). Yet how DSB signaling elicits cohesin recruitment and subsequent cohesion establishment remains poorly understood. Here we show that telomere replication stress activates de novo STAG2-cohesin loading, thereby promoting break-induced telomeric DNA repair. We demonstrate that this DNA break-elicited cohesin recruitment is strictly controlled by the BRCT domain-containing DNA damage recognition factor PAXIP1 and its functional partner PAGR1. Cryo-electron microscopy structure reveals that PAGR1, together with PAXIP1, physically binds to a composite interface formed by the STAG2-RAD21 cohesin subcomplex. Complementary mutational and biochemical analyses define the molecular basis of this interaction and establish its essential role in break-induced cohesion establishment. Furthermore, we show that PAXIP1-PAGR1-enacted STAG2-cohesin recruitment complements with the PML body-associated pathway in orchestrating break-induced alternative lengthening of telomeres (ALT). Concurrent depletion of PML together with PAXIP1, PAGR1 or STAG2 disrupts ALT-mediated telomere maintenance, leading to end-to-end chromosomal fusion and mitotic cell death. Collectively, these findings uncover a distinctive molecular mechanism through which DSB signaling directs de novo cohesion establishment, and highlight its critical importance in break-induced telomere repair.

molecular biology↗

Astrocytic MAOB-GABA axis as a molecular brake on repair following spinal cord injury

Neuroregeneration and remyelination rarely occur in the adult mammalian brain and spinal cord following central nervous system (CNS) injury. The glial scar has been proposed as a major contributor to this failure in the regenerative process. However, its underlying molecular and cellular mechanisms remain unclear. Here, we report that monoamine oxidase B (MAOB)-dependent excessive GABA release from reactive astrocytes suppresses CNS repair system by reducing BDNF and TrkB expression in severe spinal cord injury (SCI) animal models. Genetic deletion of MAOB in a mouse SCI model promotes both functional and tissue recovery. Notably, the selective MAOB inhibitor, KDS2010, facilitates recovery and regeneration by disinhibiting the BDNF-TrkB axis in a rat SCI model. Its dose-dependent effects were further validated in a monkey SCI model. Moreover, KDS2010 demonstrates a tolerable safety profile and dose-proportional pharmacokinetics in healthy humans during a phase 1 clinical trial. Our findings identify the astrocytic MAOB-GABA axis as a crucial molecular and cellular brake on CNS repair system following SCI and highlight translational potential of KDS2010 as a promising therapeutic candidate for SCI treatment.

neuroscience↗

Teicoplanin attenuates RNA virus infection in vitro

Teicoplanin (TP) is a glycopeptide antibiotic used for Gram-positive bacterial infections, and it has been reported to inhibit SARS-CoV-2 and Ebola virus entry through cathepsin inhibition. Given that TP can inhibit viruses belonging to different virus families, we aimed to expand the potential targets of TP to determine whether TP can be developed as a broad-spectrum antiviral agent. Considering the original indication of TP, we first determined the effects of TP against viruses that cause respiratory tract infections and found that TP inhibits enveloped and non-enveloped RNA viruses, namely: human and avian influenza viruses; representative coronaviruses including porcine epidemic diarrhea virus (PEDV), human coronavirus OC43 (HCoV-OC43), and SARS-CoV-2; measles virus; human respiratory syncytial virus A2; and enterovirus 71 (EV-71). Representative flaviviruses, Zika virus (ZIKV) and dengue virus serotype 2 (DENV2), were also susceptible to inhibition by TP. In contrast, TP did not attenuate infection of human adenovirus 5, a non-enveloped DNA virus. Addition of TP at the endocytosis stage but not at the attachment/binding stage of PEDV infection reduced PEDV production in vitro, indicating cathepsin inhibition. Meanwhile, addition of TP during either the attachment/binding or the endocytosis stage of ZIKV infection reduced ZIKV particle production in host cells, and in silico modeling suggested that TP has potential binding pockets in the envelope proteins of ZIKV and DENV2. These results show that TP can be developed as a broad-spectrum antiviral especially against RNA viruses, with potentially different targets in the replication cycle of various viruses.

microbiology↗