| Literature DB >> 32188788 |
Andreas Latoscha1, David Jan Drexler2,3, Mahmoud M Al-Bassam4, Adrian M Bandera2,3, Volkhard Kaever5, Kim C Findlay6, Gregor Witte7,3, Natalia Tschowri8.
Abstract
Antibiotic-producing Streptomyces use the diadenylate cyclase DisA to synthesize the nucleotide second messengerEntities:
Keywords: Streptomyces; c-di-AMP; development; osmostress; phosphodiesterase
Year: 2020 PMID: 32188788 PMCID: PMC7132281 DOI: 10.1073/pnas.1917080117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205
Fig. 1.DisA is an active diadenylate cyclase in vitro and in vivo. (A) TLC of DAC assay with purified 6xHis-DisASven and 6xHis-DisAD86A and [32P]-ATP as the substrate. Migration of [32P]-ATP in buffer is shown in lane 1. 6xHis-DisABsu served as a positive control for DAC activity. (B) Intracellular c-di-AMP levels in S. venezuelae wild type (wt) and ΔdisA during late vegetative growth (10 to 12 h), early sporulation (14 to 16 h), and sporulation (18 to 20 h). Data are presented as the mean of biological replicates ± SD (n = 3). (C) Expression profile of DisA-FLAG in a disA mutant complemented with disA-FLAG under the control of the disA promoter grown in liquid sporulation medium (MYM). DisA-FLAG was detected using a monoclonal anti-FLAG antibody. Wild type served as a negative control.
Fig. 2.AtaC is a c-di-AMP-specific PDE. TLC of the PDE assay of AtaC and Vnz_31010 from S. venezuelae (A) and S. pneumoniae (AtaCSpn) (C) with [32P]-c-di-AMP. Radioactively labeled c-di-AMP in buffer migrates as shown in lane 1. In samples used for competition, unlabeled c-di-AMP, c-di-GMP, or cAMP (indicated by +) were added in excess before starting the reaction with [32P]-c-di-AMP. (B) AtaC activity assay by ion exchange chromatography runs on a 1 mL Resource Q column of the reaction products after 1 h incubation from 100 µL reactions containing 100 nM AtaC + 250 µM c-di-AMP, 5′-pApA, c-di-GMP, 5′-pGpG, or 5′-pApG (n = 3).
Fig. 3.AtaC is a monomeric Mn2+-dependent PDE. (A) Model of AtaC obtained from HHpred/MODELER (green) superimposed with best-match 3SZY (beige). The close-up shows the predicted active site, annotated with all of the most conserved residues. (B) Modeled structure from A superimposed with the final averaged and filtered ab initio shape (16 ab initio models averaged) from SEC-SAXS with the front view (Left) and side view (Right). (C) nanoDSF thermal shift first-derivative curves of 10 µM apo AtaC (black), 10 µM AtaC + 0.2 mM MnCl2 (red), and 10 µM AtaC + 0.5 mM MnCl2 (blue). (D) nanoDSF thermal shift first-derivative curves of 10 µM AtaC + 1 mM EDTA (black) and 10 µM AtaCD269N (red). (E) nanoDSF thermal shift first-derivative curves of 10 µM AtaCD269N (black) and AtaCD269N + 0.5 mM MnCl2 (red). (F) nanoDSF thermal shift first-derivative curves of 10 µM AtaCD269N + c-di-AMP (25 to 3,200 µM). (G) ITC measurement raw data of 23 µM AtaCD269N mutant titrated with 231 µM c-di-AMP. (H) Binding curve and fit of ITC titration of the AtaCD269N mutant with c-di-AMP (KD = 949 ± 360 nM; n = 3).
Fig. 4.AtaC hydrolyzes c-di-AMP in vivo and is expressed during the life cycle of S. venezuelae. (A) Intracellular c-di-AMP levels in S. venezuelae wild type and ΔataC during late vegetative growth (10 to 12 h), early sporulation (14 to 16 h), and sporulation (18 to 20 h). Data are presented as the mean of biological replicates ± SD (n = 3). (B) Expression profile of AtaC in S. venezuelae wild type grown in a liquid sporulation medium (MYM). AtaC was detected using a polyclonal anti-AtaC antiserum. Protein samples harvested from ΔataC served as negative control. Purified 6xHis-AtaC served as the positive control.
Fig. 5.Mutagenesis of c-di-AMP-metabolizing enzymes impacts development and ionic stress resistance in S. venezuelae. (A) Green morphologies of S. venezuelae wild type and ∆disA indicate the formation of mature spores after 4 d of growth at 30 °C on a solid sporulation medium (MYM agar). S. venezuelae ∆ataC failed to accumulate the spore pigment and remained white after the same incubation time. The wild-type ataC allele complements the phenotype of ∆ataC, while the enzymatically inactive variant ataC does not. (B) Scanning electron micrographs showing that after 4 d of incubation on MYM, S. venezuelae wild type and ∆disA formed spores, but ∆ataC consisted predominantly of nonsporulating aerial hyphae (white arrows) and formed flat, likely lysed hyphae (red arrows). After 7 d of growth, ∆ataC produced wild-type–like spore chains, but occasional nondifferentiated and lysed hyphae were still detectable. (C) Deletion of ataC leads to a growth defect in S. venezuelae. c-di-AMP mutants were grown in a liquid sporulation medium (MYM) at 30 °C, and optical density was measured at 578 nm. ΔataC growth is delayed by 3 h and can be restored by expression of the wild-type allele under the control of its native promoter from the attB site. (D) Osmotic stress resistance of c-di-AMP mutants. Serial dilutions of spores were spotted on NA without additional salt or supplemented with 0.5 M NaCl and grown at 30 °C for ∼2 d. ΔdisA and disA (expressing inactive DisA) are hypersensitive to salt stress.
Fig. 6.CpeA (Vnz_28055) binds c-di-AMP and interacts with CpeB (Vnz_28050) in a c-di-AMP-stimulating manner. (A) Alignment of the c-di-AMP binding regions in RCK_C domains was generated using Clustal Omega (49). C-di-AMP binding residues in KtrA (S. aureus; ref. 50), KtrC (B. subtilis; ref. 51), and conserved amino acids in CpeA are highlighted. Amino acids that form the hydrophobic patch are shown in yellow; residues involved in hydrophilic coordination are highlighted in cyan. (B) CpeA binds [32P]-c-di-AMP in DRaCALAs. Binding of the radiolabeled ligand is indicated by dark spots centered on the nitrocellulose. In competition assays, excess (100 µM) of unlabeled c-di-AMP, c-di-GMP, cAMP, 5′-pApA, or ATP was added to the binding reaction containing [32P]-c-di-AMP and 6xHis-CpeA. (C) Inflection points from nanoDSF thermal shift assays of 20 µM CpeA with different concentrations of c-di-AMP, ATP, AMP, cAMP, 5′-pApA, and c-di-GMP (0 to 10 mM) at a heating rate of 1.5 K/min. Shown are mean values of n = 3 independent experiments with SD. (D) cpeA (vnz_28055), cpeB (vnz_28050) and cpeC (vnz_28045) form an operon in S. venezuelae. CpeA has an N-terminal domain (NTD) of unknown function and a C-terminal RCK_C domain. CpeB is a predicted structural homolog of the Na+/H+ antiporter NapA (36). It consists of 13 transmembrane (TM) domains and a cytosolic fraction at the C terminus (CTD). CpeC is a predicted membrane protein with 3 TM domains. (E) Adenylate cyclase–based two-hybrid assays revealing that CpeA and CpeB interact in vivo and that c-di-AMP production by coexpressed DisA-FLAG stimulates protein–protein interaction. Using pKNT25 and pUT18, the T25 and T18 fragments of adenylate cyclase were attached to the C termini of CpeB and CpeA, respectively. disA-FLAG and disA-FLAG were expressed from pUT18-cpeA. The leucin zipper part of the yeast GCN4 protein was used as a positive control. Spotted cotransformants were grown for 24 h at 26 °C.