<i>Pyrodictium abyssi</i> AbpX reveals a calcium-responsive family of microbial biomatrix proteins that form thermostable hydrogels

AbpX из Pyrodictium abyssi выявляет кальций-реагирующую семью микробных белков биоматрицы, формирующих термостойкие гидрогели
Xiaobing Zuo, Han Remaut, Vincent P. Conticello, Mike Sleutel, Adrià Sogues, Andres Gonzalez Socorro, Vita Cooman, Marcus Fislage, Adam K. Nijhawan, Vikram Alva
2026-06-17

AbpXPyrodictium abyssicalcium-responsive biomatrix proteinsdonor strand complementationthermostable hydrogels
Evolutionary pressure on microbial communities propagating under extreme environmental conditions often results in unique structural adaptations to promote cell survival. Here, we report an investigation of AbpX, a biomatrix protein identified in cultures of the hyperthermophilic archaeon Pyrodictium abyssi . Under ex vivo and in vitro conditions, AbpX assembles into a paracrystalline lattice composed of semiflexible fibrils. CryoEM analysis of recombinant AbpX fibrils reveals that the precursor protein polymerizes through donor strand complementation (DSC), a process previously reported for chaperone-usher fimbriae in Gram-negative bacteria. Unlike the latter DSC protein polymers, AbpX undergoes chaperone-free polymerization in the presence of calcium ions, which are sequestered at the donor strand-acceptor groove interface between protomers in the fibril. Using a combination of cryoEM and crystallographic information, a structural model is proposed for the AbpX lattice that provides insight into its potential role in biofilm formation. These findings suggest that calcium ion coordination may contribute to fibril assembly and preorganize fibrils for incorporation into the protein lattice. Bioinformatic analysis indicates that AbpX exemplifies a distinct and broadly distributed clade of calcium ion responsive biomatrix proteins within the TasA superfamily that can be fabricated into hydrogel biomaterials in vitro under environmentally benign conditions.
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A structural model combining cryoEM and crystallography explains how AbpX fibrils are preorganized for incorporation into a protein lattice, implicating a role in biofilm formation.
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AbpX from Pyrodictium abyssi assembles into a paracrystalline lattice composed of semiflexible fibrils under ex vivo and in vitro conditions.
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AbpX polymerization is chaperone-free and requires calcium ions, which are sequestered at the donor strand–acceptor groove interface between protomers.
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Bioinformatic analysis identifies AbpX as part of a distinct, broadly distributed calcium-responsive clade within the TasA superfamily that can be fabricated into thermostable hydrogels in vitro under benign conditions.
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CryoEM shows recombinant AbpX polymerizes via donor strand complementation (DSC), a mechanism previously seen in chaperone-usher bacterial fimbriae.

AbpX biomatrix protein from the hyperthermophilic archaeon Pyrodictium abyssi

Calcium-responsive assembly, structural organization (donor strand complementation-mediated polymerization, calcium coordination at protomer interfaces, paracrystalline fibril lattice) and thermostable hydrogel-forming potential of AbpX

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2026-06-17
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Xiaobing Zuo
Han Remaut
Vincent P. Conticello
Mike Sleutel
Adrià Sogues
Andres Gonzalez Socorro
Vita Cooman
Marcus Fislage
Adam K. Nijhawan
Vikram Alva
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