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Sakai, H. D.

Publications and source records attributed to Sakai, H. D..

2 recordsLinked to original sources

A Tripartite Co-culture System Reveals Defensive Mutualism Between a Nanobdellati Symbiont and Its Host

Archaeal symbioses remain among the least understood cellular interactions. Ultra-small Nanobdellati (initially called DPANN) archaea rely on larger hosts for survival, yet their effects on host eco-physiology and their interactions with infecting viruses have not yet been examined experimentally. Here, we established the first stable tripartite co-culture comprising a Nanobdellales symbiont (YN4), its archaeal host (YN4HA), and a virus (MTIV4). We analyzed this system using physiological, genomic, transcriptomic, glycoproteomic, and cryo-electron tomography (cryoET) approaches. CryoET analysis revealed that the Nanobdellales archaeon formed cone-like structures to contact the host, as has been observed in other Nanobdellati-host systems. In this system, the host is infected by the virus. The Nanobdellales archaeon mitigated virus-induced growth inhibition of the host without any detectable fitness cost, indicating a defensive mutualism rather than a strictly parasitic relationship. This protective effect may involve Nanobdellati-driven remodeling of host cell surface glycans, suggesting a previously unrecognized glycan-mediated defense strategy. Overall, our tripartite system provides new insight into complex archaeal interactions in extreme environments that cannot be captured through conventional binary co-culture systems.

microbiology↗

Novel cell-to-cell interactions revealed by cryotomography of a DPANN coculture system

DPANN is a widespread and highly diverse group of archaea characterised by their small size, reduced genome, limited metabolic pathways, and symbiotic existence. Known DPANN species are predominantly obligate ectosymbionts that depend on their host for their survival and proliferation. Despite the recent expansion in this clade, the structural and molecular details of host recognition, host-DPANN intercellular communication, and host adaptation in response to DPANN attachment remain unknown. Here, we used electron cryotomography (cryo-ET) to reveal that the Candidatus Micrarchaeota (ARM-1) interacts with its host, Metallosphaera javensis through intercellular proteinaceous nanotubes. These tubes ([~]4.5 nm wide) originate in the host, extend all the way to the DPANN cytoplasm and act like tunnels for intercellular exchange. Combining cryo-ET and sub-tomogram averaging, we revealed the in situ architectures of host and DPANN S-layers and the structures of the nanotubes in their primed and extended states, providing mechanistic insights into substrate exchange. Additionally, we performed comparative proteomics and genomic analyses to identify host proteomic changes in response to the DPANN attachment. Our results showed striking alterations in host-proteome during symbiosis and upregulation/downregulation of key cellular pathways. Collectively, these results provided unprecedented insights into the structural basis of host-DPANN communication and deepen our understanding of the host ectosymbiotic relationships.

microbiology↗