Objectives <p>Thermophilic bacteria are valuable biotechnological resources. A thermophilic bacterium isolated from the Thai hot spring sediments was subjected to complete genome sequencing. Genome data will facilitate bacterial identification and comparative genomics within the <i>Hydrogenophilus</i> genus and provide insights into polyhydroxybutyrate biosynthesis pathways for industrial applications.</p> Data description <p>The <i>H. thermoluteolus</i> KS0102 genome comprises a single circular chromosome containing 2,136,028&#xa0;bp and 61.70% GC. The genome was sequenced using Illumina and Oxford Nanopore technologies and assembled using Unicycler. It contained 1,848 CDS, 9 rRNAs, 49 tRNAs, and 1 CRISPR region. This dataset enables the investigation of polyhydroxybutyrate biosynthesis pathways and comparative genomic studies of thermophilic adaptation mechanisms in <i>Hydrogenophilus</i> species.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Complete genome sequence of thermophilic PHA-producing Hydrogenophilus thermoluteolus strain KS0102 isolated from hot spring sediments in Thailand

  • Pattarawan Ruangsuj,
  • Wariya Yamprayoonswat,
  • Manassanan Phatcharaharikarn,
  • Thunwarat Songngamsuk,
  • Parweenuch Santaweesuk,
  • Marut Tangwattanachuleeporn,
  • Kanokporn Srisucharitpanit,
  • Montri Yasawong

摘要

Objectives

Thermophilic bacteria are valuable biotechnological resources. A thermophilic bacterium isolated from the Thai hot spring sediments was subjected to complete genome sequencing. Genome data will facilitate bacterial identification and comparative genomics within the Hydrogenophilus genus and provide insights into polyhydroxybutyrate biosynthesis pathways for industrial applications.

Data description

The H. thermoluteolus KS0102 genome comprises a single circular chromosome containing 2,136,028 bp and 61.70% GC. The genome was sequenced using Illumina and Oxford Nanopore technologies and assembled using Unicycler. It contained 1,848 CDS, 9 rRNAs, 49 tRNAs, and 1 CRISPR region. This dataset enables the investigation of polyhydroxybutyrate biosynthesis pathways and comparative genomic studies of thermophilic adaptation mechanisms in Hydrogenophilus species.