| Literature DB >> 31527081 |
Munkhtsetseg Tsednee1, Madeli Castruita1, Patrice A Salomé1,2, Ajay Sharma3, Brianne E Lewis4, Stefan R Schmollinger1,2, Daniela Strenkert1,2, Kristen Holbrook1, Marisa S Otegui5, Kaustav Khatua6, Sayani Das6, Ankona Datta6, Si Chen7, Christina Ramon8, Martina Ralle9, Peter K Weber8, Timothy L Stemmler4, Jennifer Pett-Ridge8, Brian M Hoffman3, Sabeeha S Merchant10,2.
Abstract
Exposing cells to excess metal concentrations well beyond the cellular quota is a powerful tool for understanding the molecular mechanisms of metal homeostasis. Such improved understanding may enable bioengineering of organisms with improved nutrition and bioremediation capacity. We report here that Chlamydomonas reinhardtii can accumulate manganese (Mn) in proportion to extracellular supply, up to 30-fold greater than its typical quota and with remarkable tolerance. As visualized by X-ray fluorescence microscopy and nanoscale secondary ion MS (nanoSIMS), Mn largely co-localizes with phosphorus (P) and calcium (Ca), consistent with the Mn-accumulating site being an acidic vacuole, known as the acidocalcisome. Vacuolar Mn stores are accessible reserves that can be mobilized in Mn-deficient conditions to support algal growth. We noted that Mn accumulation depends on cellular polyphosphate (polyP) content, indicated by 1) a consistent failure of C. reinhardtii vtc1 mutant strains, which are deficient in polyphosphate synthesis, to accumulate Mn and 2) a drastic reduction of the Mn storage capacity in P-deficient cells. Rather surprisingly, X-ray absorption spectroscopy, EPR, and electron nuclear double resonance revealed that only little Mn2+ is stably complexed with polyP, indicating that polyP is not the final Mn ligand. We propose that polyPs are a critical component of Mn accumulation in Chlamydomonas by driving Mn relocation from the cytosol to acidocalcisomes. Within these structures, polyP may, in turn, escort vacuolar Mn to a number of storage ligands, including phosphate and phytate, and other, yet unidentified, compounds.Entities:
Keywords: Chlamydomonas; H+-PPase; NRAMP; algae; antioxidant; calcium; histidine; imaging; lysosomal acidification; lysosome; manganese; metal homeostasis; organelle; photosynthesis; polyphosphate
Mesh:
Substances:
Year: 2019 PMID: 31527081 PMCID: PMC6873200 DOI: 10.1074/jbc.RA119.009130
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157