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Surface shaving proteomics reveals a parasite-encoded protein embedded in the spore filaments of Ameson portunus.

Abstract

The surfaces of microsporidian spores are frequently adorned with filamentous appendages of unknown origin and function. Although some studies suggest that these structures may be host-acquired, the absence of identified parasite-encoded components has hindered our understanding of their biogenesis and role in infection. Here, we applied surface shaving proteomics to profile the surface-exposed proteins of Ameson portunus -a microsporidian pathogen causing severe myopathy in portunid crabs. Our analysis identified 120 candidate surface proteins. Nineteen of these were highly enriched by both direct shaving and SDS-assisted methods, representing a high-confidence surfome. Among these, a previously uncharacterized protein, designated 8-2.11, was confirmed via immunofluorescence assay and immunoelectron microscopy. It was expressed early in development stage and specifically localized to the spore wall and hair-like projections (HLPs) of microsporidia. Notably, polyclonal antibodies against recombinant 8-2.11 recognized a native protein in spores, specifically labeled the HLP structures, and showed no cross-reactivity with host cells. Our results provide the first evidence of a parasite-encoded protein that is integral to HLP formation, challenging the prevailing hypothesis that these surface filaments are solely host-derived. This study establishes surface shaving as a powerful tool for microsporidian research and highlights 8-2.11 as a promising candidate for future functional studies on spore surface biology and host-parasite interactions.

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Ming Fu, Huimin Zhu, Liyan Wang, Yongliang Wang, Haoran Sun, Musa Makongoro Sabi, Xiaoxiao Huang, Yuanguang Liu, Bing Han, Hongnan Qu. 2026-08-05. Surface shaving proteomics reveals a parasite-encoded protein embedded in the spore filaments of Ameson portunus.. https://doi.org/10.1016/j.jip.2026.108714

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