Polyphosphate synthesis is essential for phosphate and ATP homeostasis during nutrient upshift

M Maria L. White (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University) J Julien Mortier (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University) L Lova Granqvist (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University) D Deike J. Omnus (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University) M Max Louski (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University) N Nick Crang (School of Engineering Sciences in Chemistry, Biotechnology and Health, Science for Life Laboratory, KTH—Royal Institute of Technology) B Berent Aldikacti (Biochemistry and Molecular Biology Department, University of Massachusetts Amherst) V Valérie Migeot (Molecular Physiology Research Unit, Namur Research Institute for Life Science, University of Namur) P Peter Chien M Marc Hennequart (Molecular Physiology Research Unit, Namur Research Institute for Life Science, University of Namur) R Régis Hallez (Bacterial Cell cycle and Development, Biology of Microorganisms Research Unit, Namur Research Institute for Life Science, University of Namur) K Kristina Jonas (Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University)

Abstract

Inorganic polyphosphate (polyP) is a ubiquitous molecule found across all domains of life. Although implicated in diverse cellular processes, including phosphate storage, stress responses, and pathogenicity, loss of polyP synthesis typically causes only mild growth defects. Here, we demonstrate an essential physiological role for polyP synthesis during recovery from phosphate starvation, when cells transition from phosphate-limited to phosphate-replete conditions. Using a comprehensive transposon sequencing approach in Caulobacter crescentus , we identify genes conferring a fitness advantage during starvation for carbon, nitrogen, or phosphate and during subsequent recovery. We find that ppk1 , encoding the polyphosphate kinase responsible for polyP synthesis, is specifically required for recovery from phosphate starvation but dispensable for entry into starvation, a result confirmed with a ppk1 deletion mutant. Mutations that reduce phosphate uptake via the phosphate-specific transport system suppress the requirement for ppk1 , indicating that polyP synthesis prevents toxic accumulation of intracellular inorganic phosphate (P i ) upon refeeding. Our findings further show that buffering intracellular P i through polyP synthesis is critical for maintaining ATP homeostasis. Together, these results define a central role for polyP synthesis in regulating intracellular phosphate balance and ATP homeostasis, thereby facilitating adaptation to fluctuating nutrient conditions.

Article Details

Volume / Issue Vol. 123, Issue 23
Published June 09, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

M

Maria L. White

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University

J

Julien Mortier

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University

L

Lova Granqvist

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University

D

Deike J. Omnus

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University

M

Max Louski

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University

N

Nick Crang

School of Engineering Sciences in Chemistry, Biotechnology and Health, Science for Life Laboratory, KTH—Royal Institute of Technology

B

Berent Aldikacti

Biochemistry and Molecular Biology Department, University of Massachusetts Amherst

V

Valérie Migeot

Molecular Physiology Research Unit, Namur Research Institute for Life Science, University of Namur

P

Peter Chien

M

Marc Hennequart

Molecular Physiology Research Unit, Namur Research Institute for Life Science, University of Namur

R

Régis Hallez

Bacterial Cell cycle and Development, Biology of Microorganisms Research Unit, Namur Research Institute for Life Science, University of Namur

K

Kristina Jonas

Department of Molecular Biosciences, The Wenner-Gren Institute, Science for Life Laboratory, Stockholm University