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Poon, M.

Publications and source records attributed to Poon, M..

2 recordsLinked to original sources

First detected incursions of avian influenza H5N1 clade 2.3.4.4b into mainland Australia from the Southern Ocean

High pathogenicity avian influenza H5N1 clade 2.3.4.4b has caused a panzootic of devastating impact to poultry and wildlife globally. The Australian continent and broader Oceania until recently remained the last major region without confirmed detections. Here we report the first H5N1 clade 2.3.4.4b detections from two live seabirds - a brown skua and a southern giant petrel - found on the south coast of Western Australia in June 2026. Virus genome sequencing showed that both viruses were most closely related to H5N1 viruses detected recently on sub-Antarctic islands in the Southern Indian Ocean. In time-calibrated phylogeographic analyses, both viruses sampled in Western Australia clustered with viruses from Heard Island, a sub-Antarctic external territory of Australia. Ancestral location reconstruction also identified Heard Island as the most probable source location, although unsampled intermediate locations cannot be excluded. The two Western Australian detections were estimated to be independent incursions from Heard Island, rather than local transmission on mainland Australia. There was no evidence of reassortment with endemic avian influenza viruses in Australia, and both virus sequences retained key avian-like genetic markers and lacked known substitutions for reduced antiviral susceptibility. These detections revealed a Southern Ocean pathway of recurrent H5N1 incursions into Australia, highlighting the risk of potential establishment on the mainland and the need for heightened surveillance and rapid, nationally-coordinated, virus genomic characterisation.

microbiology↗

Finite afterload during asymmetrically cycled preload promotes fetal ventricular growth, maturation, and contractile function while suppressing fibrotic remodeling

Myocardial development requires precise modulation of its growth and maturation by the mechanical loads within cardiac cycle, including preload and afterload. However, the mechanisms by which these natural cardiac loads interact to simultaneously govern growth and maturation of the developing myocardium in both cellular and mesoscale levels remain poorly understood. Here, we developed a naturally engineered fetal ventricular tissue (NFVT) platform that enables the application of afterload under dynamic preload using cyclic stretching with an asymmetrical duty cycle (asymmetrically cycled preload) to better replicate the natural cardiac loading in chick NFVT. Our results showed that low afterload (LA) enhanced NFVT contractile function with sustained tissue growth and improved cardiomyocyte maturation while suppressing fibrosis phenotypes. These effects were associated with reduced YAP1 and NOTCH activation in cardiomyocytes and enhanced tissue architecture. In contrast, high afterload (HA) induced contractile impairment with fibrotic remodeling through activation of cardiomyocyte PIEZO1/YAP1 signaling and sustained fibroblast entanglement. TeaserLow afterload under asymmetrically cycled preload promotes NFVTs contractile function with sustained tissue growth and cardiomyocyte maturation while suppressing fibrosis phenotypes through regulation of cellular mechanotransduction, including minimal PIEZO1 expression and inhibited YAP1 and NOTCH activation in cardiomyocytes, and improvement of collective cellular organization.

Cell Biology↗