Hua, Zheng-Shuang


Publications
19

CitationNamesAbstract
Panguiarchaeum symbiosum, a potential hyperthermophilic symbiont in the TACK superphylum Qu et al. (2023). Cell Reports 42 (3) Panguiarchaeum symbiosum Ts Panguiarchaeum Panguiarchaeaceae Panguiarchaeales
Metagenomic discovery ofCandidatusParvarchaeales related lineages sheds light on the adaptation and diversification from neutral-thermal to acidic-mesothermal environments Rao et al. (2022). 11 Names
Text
An essential role for tungsten in the ecology and evolution of a previously uncultivated lineage of anaerobic, thermophilic Archaea Buessecker et al. (2022). Nature Communications 13 (1) 16 Names
Text
Deciphering Symbiotic Interactions of “ Candidatus Aenigmarchaeota” with Inferred Horizontal Gene Transfers and Co-occurrence Networks Li et al. (2021). mSystems 6 (4) Ca. Aenigmarchaeota
Text
Comparative Genomics Reveals Thermal Adaptation and a High Metabolic Diversity in “ Candidatus Bathyarchaeia” Qi et al. (2021). mSystems 6 (4) Bathyarchaeia
Text
Genomic Insights of “Candidatus Nitrosocaldaceae” Based on Nine New Metagenome-Assembled Genomes, Including “Candidatus Nitrosothermus” Gen Nov. and Two New Species of “Candidatus Nitrosocaldus” Luo et al. (2021). Frontiers in Microbiology 11 Ca. Nitrosocaldus “Nitrosocaldales” Ca. Nitrosocaldaceae Ca. Nitrosothermus
Text
Deciphering symbiotic interactions of ‘Candidatus Aenigmarchaeota’ with inferred horizontal gene transfers and co-occurrence networks Li et al. (2020). Ca. Aenigmarchaeota
Text
Insights into the ecological roles and evolution of methyl-coenzyme M reductase-containing hot spring Archaea Hua et al. (2019). Nature Communications 10 (1) Ca. Methanoproducendum senex
Text
Metabolic versatility of small archaea Micrarchaeota and Parvarchaeota Chen et al. (2018). The ISME Journal 12 (3) “Micrarchaeota”
Text