Guanidine fuels rapid resurrection of desert cyanobacteria

J Jin-Long Shang (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) G Guo-Wei Qiu (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) L Lei Zhao (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) H Hai-Feng Xu (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) Y Yao Cheng (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) Y Yong Li Z Zhong-Chun Zhang (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) G Guo-Zheng Dai (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University) S Shengwei Hou (Department of Ocean Science and Engineering, Southern University of Science and Technology) C Chen Yang (Hangzhou Institute of Advanced Studies) W Wolfgang R. Hess (Division of Genetics and Experimental Bioinformatics, Faculty of Biology, Institute of Biology III, University of Freiburg) B Bao-Sheng Qiu (School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University)

Abstract

In desert ecosystems, microbial activity is driven by brief hydration pulses but is severely limited by persistent nutrient scarcity. Cyanobacteria serve as essential pioneer photoautotrophs, maintaining biogeochemical cycles and ecosystem stability in these arid landscapes. However, their ability to quickly reactivate after rehydration is critically restricted by nitrogen availability. Although the nitrogen demand can be met later by biological nitrogen fixation, it is ineffective and irrelevant during early rehydration due to the high energy costs and delayed activation of nitrogenase, creating a critical metabolic bottleneck. Here we demonstrate that the desert cyanobacterium Nostoc flagelliforme overcomes this limitation by activating a previously overlooked guanidine carboxylase pathway, which sustains the rapid remobilization of internal nitrogen reserves upon rehydration. Transcriptional analysis using a luciferase reporter system reveals that pathway activity is tightly coupled to both hydration and nitrogen status. Disruption of the guanidine-specific riboswitch abolishes induction of the guanidine carboxylase pathway, underscoring its essential role in recovery from desiccation. Furthermore, comparative genomics reveals that the genes encoding this pathway, along with its cognate riboswitch, are widespread among terrestrial cyanobacteria. Phylogenetic analysis indicates they were acquired via horizontal gene transfer from nonphotosynthetic bacteria. Our findings establish an ecological role for guanidine in desert ecosystems and uncover a conserved mechanism that aids cyanobacterial resilience in xeric environments.

Article Details

Volume / Issue Vol. 123, Issue 30
Published July 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

J

Jin-Long Shang

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

G

Guo-Wei Qiu

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

L

Lei Zhao

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

H

Hai-Feng Xu

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

Y

Yao Cheng

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

Y

Yong Li

Z

Zhong-Chun Zhang

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

G

Guo-Zheng Dai

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University

S

Shengwei Hou

Department of Ocean Science and Engineering, Southern University of Science and Technology

C

Chen Yang

Hangzhou Institute of Advanced Studies

W

Wolfgang R. Hess

Division of Genetics and Experimental Bioinformatics, Faculty of Biology, Institute of Biology III, University of Freiburg

B

Bao-Sheng Qiu

School of Life Sciences, Key Laboratory of Pesticide and Chemical Biology of Ministry of Education, and Hubei Key Laboratory of Genetic Regulation and Integrative Biology, Central China Normal University