DOI: 10.1128/spectrum.00854-26 ISSN: 2165-0497
The halophilic archaeon
Halogranum roseipondis
sp. nov. is susceptible to a virus carrying an exceptionally high number of viral tRNA genes
Mirka Lampi, Erika Nordman, Pavlina Gregorova, Janne J. Ravantti, L. Peter Sarin ABSTRACT
Archaea constitute a diverse group of organisms, many of which inhabit extreme environments, such as haloarchaea that dominate hypersaline ecosystems, like solar salterns. Sampling of solar salterns and other hypersaline environments has resulted in numerous haloarchaeal isolates, including 3 classified and 27 uncharacterized
Halogranum
species. However, no complete genome has so far been reported for any member of this genus. Here, we present the first comprehensive study of
Halogranum
sp. SS5-1 isolated from a solar saltern in Samut Sakhon, Thailand.
Hgn
. SS5-1 is a pleomorphic, aerobic heterotroph that thrives in high salinity and moderate temperature and is capable of hydrolyzing starch. Its genome consists of a 3.6 Mbp chromosome and seven additional plasmids. Based on our phylogenetic analyses, which establish
Hgn
. SS5-1 as a distinct species, we propose that it will be classified as the novel species
Halogranum roseipondis
sp. nov. SS5-1
T
. Additionally, we report that
Hgn. roseipondis
sp. nov. SS5-1
T
is infected by
Hagravirus capitaneum
(HGTV-1), the only virus known to infect a
Halogranum
host. HGTV-1 exhibits a unique head-tailed morphology and encodes the largest archaeal virus double-stranded DNA genome known to date, including 34 tRNA-encoding genes. Codon usage analysis of the viral genome suggests partial alignment with host preferences, yet the abundance of viral tRNA genes hints at broader roles, potentially including roles in translation and host regulation. This study establishes
Hgn. roseipondis
and HGTV-1 as a novel virus–host system, opening avenues to explore infection dynamics and the roles of virus-encoded tRNA in archaea.
IMPORTANCE
Archaea that thrive in high-salinity environments are key players in geochemical cycles and important contributors to ecosystem productivity. Despite their ecological significance and importance for the development of novel methodologies in synthetic biology, haloarchaea remain poorly studied. Further exploration of haloarchaea is required to obtain valuable information on the evolution of cellular complexity and the molecular mechanisms that allow cells to thrive in harsh environmental conditions. Here, we present the characterization of a novel archaeon,
Halogranum roseipondis
sp. SS5-1
T
, alongside the infection cycle of its associated virus,
Hagravirus capitaneum
. This tailed myovirus carries an extraordinary set of 34 viral tRNA genes, a feature that opens intriguing questions about virus–host interactions and translational control. Our findings lay the groundwork for future investigations into the expression and function of viral tRNAs in an archaeal model system, thereby opening a new frontier for studying archaeal translation and virus-driven modulation of host cellular processes.