<HashMap><database>ENA</database><file_versions><headers><Content-Type>application/xml</Content-Type></headers><body><files><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/005/ERR6156945/ERR6156945_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/007/ERR6156947/ERR6156947_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/004/ERR6156944/ERR6156944_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/008/ERR6156948/ERR6156948_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/006/ERR6156946/ERR6156946_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/007/ERR6156947/ERR6156947_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/009/ERR6156949/ERR6156949_2.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/004/ERR6156944/ERR6156944_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/008/ERR6156948/ERR6156948_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/005/ERR6156945/ERR6156945_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/009/ERR6156949/ERR6156949_1.fastq.gz</Fastqsanger.gz><Fastqsanger.gz>ftp://ftp.sra.ebi.ac.uk/vol1/fastq/ERR615/006/ERR6156946/ERR6156946_2.fastq.gz</Fastqsanger.gz></files><type>primary</type></body><statusCode>OK</statusCode><statusCodeValue>200</statusCodeValue></file_versions><scores/><additional><omics_type>Genomics</omics_type><center_name>European Bioinformatics Institute</center_name><center_name>Center for Biotechnology (CeBiTec), Bielefeld University, Bielefeld, Germany</center_name><full_dataset_link>https://www.ebi.ac.uk/ena/browser/view/PRJEB46023</full_dataset_link><broker_name>ArrayExpress</broker_name><long_description>RNAseq of coding RNA in Bacillus subtilis wildtype and deletion strain GP1971 genotype trpC2 ΔcspB::cat ΔcspD::aphA3 using rRNA depleted mRNA and Illumina TruSeq stranded mRNA libraries, sequenced on Illumina MiSeq system with 2 x 75nt in paired end mode shows that the lack of the cold shock proteins CspB and CspD affects the expression of about 20% of all genes and an increased read-through at transcription terminators suggesting that CspB and CspD might be involved in the control of transcription termination.</long_description><repository>ENA</repository></additional><is_claimable>false</is_claimable><name>RNAseq of Bacillus subtilis wildtype and cspB-cspD deletion mutant reveals that the lack of the cold shock proteins CspB and CspD affects the expression of about 20% of all genes</name><description>RNAseq of Bacillus subtilis wildtype and cspB-cspD deletion mutant reveals that the lack of the cold shock proteins CspB and CspD affects the expression of about 20% of all genes</description><dates><last_updated>2021-07-01</last_updated><first_public>2021-07-01</first_public></dates><accession>PRJEB46023</accession><cross_references/></HashMap>