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Liao, L.-Y.

Publications and source records attributed to Liao, L.-Y..

2 recordsLinked to original sources

Elevated procoagulant platelets driven by necroptosis and pyroptosis aggravate pulmonary thrombosis via suppressing monocyte efferocytosis in severe pneumonia

BACKGROUND: Severe influenza pneumonia with secondary bacterial infection is complicated by progressive pulmonary thrombus exacerbation, a key contributor to respiratory failure, yet anticoagulant therapies show limited efficacy and bleeding risks. Although platelet-monocyte crosstalk initiates thrombosis, whether and how it drives thrombus exacerbation via procoagulant platelets and monocyte efferocytosis remains unclear. METHODS: Clinical samples, mouse models, and isolated platelets challenged with influenza A virus followed by methicillin-resistant Staphylococcus aureus (MRSA) were analyzed. Procoagulant platelet, platelet programmed cell death and monocyte efferocytosis were assessed, and pharmacological inhibition, platelet depletion and systemic/platelet-specific Gsdmd knockout were used. Platelet proteomics and exogenous C1qa supplementation identified C1qa as a key mediator. RESULTS: We showed that elevated procoagulant platelet-driven thrombus exacerbation, rather than initial thrombus formation, was a critical driver of disease progression in influenza pneumonia with secondary bacterial infection, whereas influenza alone caused milder illness. Procoagulant platelet formation was induced via MLKL-mediated necroptosis and GSDMD-mediated pyroptosis. These platelets exacerbated pulmonary thrombosis and lung injury by inhibiting monocyte efferocytosis via complement C1qa. Platelet depletion reduced monocyte efferocytosis and worsened pneumonia, while pharmacological inhibition or platelet-specific Gsdmd knockout decreased procoagulant platelet levels, restored monocyte efferocytosis, and alleviated thrombotic and pulmonary injury. Mechanistically, C1qa impaired efferocytosis both by directly suppressing monocyte function and by reducing the proportion of reparative (M2-like) monocytes. Clinical relevance was confirmed by detection of MLKL/GSDMD-dependent procoagulant platelets and reduced efferocytosis receptor levels on monocytes in bronchoalveolar lavage fluid from severe pneumonia patients. CONCLUSIONS: Necroptosis/pyroptosis-driven procoagulant platelets exacerbate pulmonary thrombosis by suppressing monocyte efferocytosis in a C1qa-dependent manner. These findings extend platelet-monocyte crosstalk from thrombus initiation to thrombus exacerbation, identifying modulation of the interaction between procoagulant platelets and monocyte efferocytosis as a potential therapeutic strategy for thrombus-exacerbating diseases, especially in subpopulations of patients with severe pneumonia and progressive pulmonary thrombosis.

cell biology↗

Eco-genomic analysis uncovers precision-conservation targets for the western Pacific's southernmost salmonid

Understanding how isolated small populations persist and adapt in adverse environments is instrumental to evolutionary and conservation biology. We combine a chromosome-level genome assembly, population resequencing and forward-time simulations to reconstruct the history and viability of the Formosan landlocked salmon (Oncorhynchus formosanus), now restricted to a handful of high-mountain headwaters in Taiwan. We estimate that this lineage has diverged from Japanese masu salmon over one million years ago and has no detectable gene flow for [~]50,000 years. It has accumulated extensive chromosome fusions and expansions of cold-adaptation gene families, qualifying it as a new species rather than a subspecies of Japanese masu salmon. Whole-stream sampling reveals an overlooked Hehuan-Creek population that retains high heterozygosity and has gained unique alleles. Life-table simulations show that the Hehuan population has a notably lower extinction risk and can persist or even grow under low-to-moderate typhoon frequency, whereas Qijiawan-Creek population would decline precipitously under the same or higher frequency . These findings contradict the notion that peripheral populations are likely genetically depleted and support stream-specific "precision conservation" in place of broad, untargeted translocations that could erode local adaptation potential. Thus, our genomic-ecological analysis has uncovered hidden strong resilience in a critically endangered, climate-threatened salmonid lineage.

genomics↗