Please use this identifier to cite or link to this item: https://hdl.handle.net/10356/154055
Title: Cyclic di-AMP oversight of counter-ion osmolyte pools impacts intrinsic cefuroxime resistance in Lactococcus lactis
Authors: Pham, Huong Thi
Shi, Wen
Xiang, Yuwei
Foo, Su Yi
Plan, Manuel R.
Courtin, Pascal
Chapot-Chartier, Marie-Pierre
Smid, Eddy J.
Liang, Zhao-Xun
Marcellin, Esteban
Turner, Mark S.
Keywords: Science::Biological sciences
Issue Date: 2021
Source: Pham, H. T., Shi, W., Xiang, Y., Foo, S. Y., Plan, M. R., Courtin, P., Chapot-Chartier, M., Smid, E. J., Liang, Z., Marcellin, E. & Turner, M. S. (2021). Cyclic di-AMP oversight of counter-ion osmolyte pools impacts intrinsic cefuroxime resistance in Lactococcus lactis. MBio, 12(2), e00324-21-. https://dx.doi.org/10.1128/mBio.00324-21
Journal: mBio
Abstract: The broadly conserved cyclic di-AMP (c-di-AMP) is a conditionally essential bacterial second messenger. The pool of c-di-AMP is fine-tuned through diadenylate cyclase and phosphodiesterase activities, and direct binding of c-di-AMP to proteins and riboswitches allows the regulation of a broad spectrum of cellular processes. c-di-AMP has a significant impact on intrinsic β-lactam antibiotic resistance in Gram-positive bacteria; however, the reason for this is currently unclear. In this work, genetic studies revealed that suppressor mutations that decrease the activity of the potassium (K+) importer KupB or the glutamine importer GlnPQ restore cefuroxime (CEF) resistance in diadenylate cyclase (cdaA) mutants of Lactococcus lactis Metabolite analyses showed that glutamine is imported by GlnPQ and then rapidly converted to glutamate, and GlnPQ mutations or c-di-AMP negatively affects the pools of the most abundant free amino acids (glutamate and aspartate) during growth. In a high-c-di-AMP mutant, GlnPQ activity could be increased by raising the internal K+ level through the overexpression of a c-di-AMP-insensitive KupB variant. These results demonstrate that c-di-AMP reduces GlnPQ activity and, therefore, the level of the major free anions in L. lactis through its inhibition of K+ import. Excessive ion accumulation in cdaA mutants results in greater spontaneous cell lysis under hypotonic conditions, while CEF-resistant suppressors exhibit reduced cell lysis and lower osmoresistance. This work demonstrates that the overaccumulation of major counter-ion osmolyte pools in c-di-AMP-defective mutants of L. lactis causes cefuroxime sensitivity.IMPORTANCE The bacterial second messenger cyclic di-AMP (c-di-AMP) is a global regulator of potassium homeostasis and compatible solute uptake in many Gram-positive bacteria, making it essential for osmoregulation. The role that c-di-AMP plays in β-lactam resistance, however, is unclear despite being first identified a decade ago. Here, we demonstrate that the overaccumulation of potassium or free amino acids leads to cefuroxime sensitivity in Lactococcus lactis mutants partially defective in c-di-AMP synthesis. It was shown that c-di-AMP negatively affects the levels of the most abundant free amino acids (glutamate and aspartate) in L. lactis Regulation of these major free anions was found to occur via the glutamine transporter GlnPQ, whose activity increased in response to intracellular potassium levels, which are under c-di-AMP control. Evidence is also presented showing that they are major osmolytes that enhance osmoresistance and cell lysis. The regulatory reach of c-di-AMP can be extended to include the main free anions in bacteria.
URI: https://hdl.handle.net/10356/154055
ISSN: 2150-7511
DOI: 10.1128/mBio.00324-21
Schools: School of Biological Sciences 
Rights: © 2021 Pham et al. This is an openaccess article distributed under the terms of the Creative Commons Attribution 4.0 International license
Fulltext Permission: open
Fulltext Availability: With Fulltext
Appears in Collections:SBS Journal Articles

Files in This Item:
File Description SizeFormat 
mBio.00324-21.pdf4.45 MBAdobe PDFThumbnail
View/Open

SCOPUSTM   
Citations 50

6
Updated on May 25, 2023

Web of ScienceTM
Citations 50

3
Updated on May 28, 2023

Page view(s)

64
Updated on Jun 1, 2023

Download(s) 50

62
Updated on Jun 1, 2023

Google ScholarTM

Check

Altmetric


Plumx

Items in DR-NTU are protected by copyright, with all rights reserved, unless otherwise indicated.