Affiliation:
1. School of Agriculture, Meiji University
Abstract
The
hox
operon in
Synechocystis
sp. PCC 6803, encoding bidirectional hydrogenase responsible for H
2
production, is transcriptionally upregulated under microoxic conditions. Although several regulators for
hox
transcription have been identified, their dynamics and higher-order DNA structure of
hox
region in microoxic conditions remain elusive. We focused on key regulators for the
hox
operon: cyAbrB2, a conserved regulator in cyanobacteria, and SigE, an alternative sigma factor. Chromatin immunoprecipitation-sequencing revealed that cyAbrB2 binds to the
hox
promoter region under aerobic conditions, with its binding being flattened in microoxic conditions. Concurrently, SigE exhibited increased localization to the
hox
promoter under microoxic conditions. Genome-wide analysis revealed that cyAbrB2 binds broadly to AT-rich genome regions and represses gene expression. Moreover, we demonstrated the physical interactions of the
hox
promoter region with its distal genomic loci. Both the transition to microoxic conditions and the absence of cyAbrB2 influenced the chromosomal interaction. From these results, we propose that cyAbrB2 is a cyanobacterial nucleoid-associated protein (NAP), modulating chromosomal conformation, which blocks RNA polymerase from the
hox
promoter in aerobic conditions. We further infer that cyAbrB2, with altered localization pattern upon microoxic conditions, modifies chromosomal conformation in microoxic conditions, which allows SigE-containing RNA polymerase to access the
hox
promoter. The coordinated actions of this NAP and the alternative sigma factor are crucial for the proper
hox
expression in microoxic conditions. Our results highlight the impact of cyanobacterial chromosome conformation and NAPs on transcription, which have been insufficiently investigated.
Publisher
eLife Sciences Publications, Ltd
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