Coordination of N<sub>2</sub>-fixing cell specialization and patterning in filamentous cyanobacteria by a uniquely structured σ factor.

Hu, Xi; Liu, Xujiao; Wang, Yali; Liu, Ke; Gao, Hong; Zhu, Geqian; Wang, Shuai; Fang, Xiantao et al. · Proc Natl Acad Sci U S A · 2026

basic_science · Level V

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Abstract

Cell differentiation and Turing-like patterning are tightly associated in a group of filamentous cyanobacteria that differentiate specialized N<sub>2</sub>-fixing cells, called heterocysts. Based on systematic genetic analyses, in particular genome-wide identification of recognized promoters and assays with a reconstituted <i>Anabaena</i> transcription system in <i>Escherichia coli</i>, we established HetZ as the central activator of the gene regulatory network of heterocyst differentiation. Biochemical and cryo-EM analyses further established HetZ as a σ factor (σ<sup>HetZ</sup>). Unique domain insertions in σ<sup>HetZ</sup> are involved in promoter DNA recognition-unwinding and interaction with the inhibitor PatU3. σ<sup>HetZ</sup>-PatU3 and the master regulator-diffusible inhibitor constitute the minimal core regulatory circuit (CRC) for cell fate determination and patterning. σ<sup>HetZ</sup> activates not only genes of the CRC but also downstream regulator/effector genes involved in morphological and functional development. The gene regulatory network and the structure-function relationship of σ<sup>HetZ</sup> depict how cell differentiation and patterning are coordinated in this group of multicellular cyanobacteria.

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