Literature DB >> 31611350

Regulation and Anaerobic Function of the Clostridioides difficile β-Lactamase.

Brindar K Sandhu1, Adrianne N Edwards1, Sarah E Anderson1, Emily C Woods1, Shonna M McBride2.   

Abstract

Clostridioides difficile causes severe antibiotic-associated diarrhea and colitis. C. difficile is an anaerobic, Gram-positive sporeformer that is highly resistant to β-lactams, the most commonly prescribed antibiotics. The resistance of C. difficile to β-lactam antibiotics allows the pathogen to replicate and cause disease in antibiotic-treated patients. However, the mechanisms of β-lactam resistance in C. difficile are not fully understood. Our data reinforce prior evidence that C. difficile produces a β-lactamase, which is a common β-lactam resistance mechanism found in other bacterial species. Here, we characterize the C. difficile bla operon that encodes a lipoprotein of unknown function and a β-lactamase that was greatly induced in response to several classes of β-lactam antibiotics. An in-frame deletion of the operon abolished β-lactamase activity in C. difficile strain 630Δerm and resulted in decreased resistance to the β-lactam ampicillin. We found that the activity of this β-lactamase, BlaCDD, is dependent upon the redox state of the enzyme. In addition, we observed that transport of BlaCDD out of the cytosol and to the cell surface is facilitated by an N-terminal signal sequence. Our data demonstrate that a cotranscribed lipoprotein, BlaX, aids in BlaCDD activity. Further, we identified a conserved BlaRI regulatory system and demonstrated via insertional disruption that BlaRI controls transcription of the blaXCDD genes in response to β-lactams. These results provide support for the function of a β-lactamase in C. difficile antibiotic resistance and reveal the unique roles of a coregulated lipoprotein and reducing environment in C. difficile β-lactamase activity.
Copyright © 2019 American Society for Microbiology.

Entities:  

Keywords:  Clostridioides difficilezzm321990; Clostridium difficilezzm321990; antibiotic resistance; blaRIzzm321990; β-lactam resistance; β-lactamase

Year:  2019        PMID: 31611350      PMCID: PMC7187622          DOI: 10.1128/AAC.01496-19

Source DB:  PubMed          Journal:  Antimicrob Agents Chemother        ISSN: 0066-4804            Impact factor:   5.191


  84 in total

1.  Identification of BlaR, the signal transducer for beta-lactamase production in Bacillus licheniformis, as a penicillin-binding protein with strong homology to the OXA-2 beta-lactamase (class D) of Salmonella typhimurium.

Authors:  Y F Zhu; I H Curran; B Joris; J M Ghuysen; J O Lampen
Journal:  J Bacteriol       Date:  1990-02       Impact factor: 3.490

2.  A novel regulator controls Clostridium difficile sporulation, motility and toxin production.

Authors:  Adrianne N Edwards; Rita Tamayo; Shonna M McBride
Journal:  Mol Microbiol       Date:  2016-03-22       Impact factor: 3.501

3.  Mechanism of action of penicillins: a proposal based on their structural similarity to acyl-D-alanyl-D-alanine.

Authors:  D J Tipper; J L Strominger
Journal:  Proc Natl Acad Sci U S A       Date:  1965-10       Impact factor: 11.205

4.  Transferable resistance to clindamycin, erythromycin, and tetracycline in Clostridium difficile.

Authors:  J Wüst; U Hardegger
Journal:  Antimicrob Agents Chemother       Date:  1983-05       Impact factor: 5.191

5.  SignalP 5.0 improves signal peptide predictions using deep neural networks.

Authors:  José Juan Almagro Armenteros; Konstantinos D Tsirigos; Casper Kaae Sønderby; Thomas Nordahl Petersen; Ole Winther; Søren Brunak; Gunnar von Heijne; Henrik Nielsen
Journal:  Nat Biotechnol       Date:  2019-02-18       Impact factor: 54.908

6.  Role of Clostridium difficile in antibiotic-associated pseudomembranous colitis.

Authors:  J G Bartlett; N Moon; T W Chang; N Taylor; A B Onderdonk
Journal:  Gastroenterology       Date:  1978-11       Impact factor: 22.682

7.  Culturing and maintaining Clostridium difficile in an anaerobic environment.

Authors:  Adrianne N Edwards; Jose M Suárez; Shonna M McBride
Journal:  J Vis Exp       Date:  2013-09-14       Impact factor: 1.355

8.  Genome-wide regulon and crystal structure of BlaI (Rv1846c) from Mycobacterium tuberculosis.

Authors:  Claudia Sala; Ahmed Haouz; Frederick A Saul; Isabelle Miras; Ida Rosenkrands; Pedro M Alzari; Stewart T Cole
Journal:  Mol Microbiol       Date:  2009-01-16       Impact factor: 3.501

9.  Carriage of Clostridium difficile in outpatients with irritable bowel syndrome.

Authors:  Evelyn M Clayton; Mary C Rea; Fergus Shanahan; Eamonn M M Quigley; Barry Kiely; R Paul Ross; Colin Hill
Journal:  J Med Microbiol       Date:  2012-05-11       Impact factor: 2.472

10.  Outer membrane vesicles from β-lactam-resistant Escherichia coli enable the survival of β-lactam-susceptible E. coli in the presence of β-lactam antibiotics.

Authors:  Si Won Kim; Seong Bin Park; Se Pyeong Im; Jung Seok Lee; Jae Wook Jung; Tae Won Gong; Jassy Mary S Lazarte; Jaesung Kim; Jong-Su Seo; Jong-Hwan Kim; Jong-Wook Song; Hyun Suk Jung; Gwang Joong Kim; Young Ju Lee; Suk-Kyung Lim; Tae Sung Jung
Journal:  Sci Rep       Date:  2018-03-29       Impact factor: 4.379

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  8 in total

1.  The WalRK Two-Component System Is Essential for Proper Cell Envelope Biogenesis in Clostridioides difficile.

Authors:  Ute Müh; Craig D Ellermeier; David S Weiss
Journal:  J Bacteriol       Date:  2022-05-16       Impact factor: 3.476

Review 2.  Mechanisms and impact of antimicrobial resistance in Clostridioides difficile.

Authors:  Chetna Dureja; Abiola O Olaitan; Julian G Hurdle
Journal:  Curr Opin Microbiol       Date:  2022-01-22       Impact factor: 7.584

3.  Cationic Homopolymers Inhibit Spore and Vegetative Cell Growth of Clostridioides difficile.

Authors:  Joshua B Jones; Lei Liu; Leslie A Rank; Daniela Wetzel; Emily C Woods; Naomi Biok; Sarah E Anderson; Myung-Ryul Lee; Runhui Liu; Sean Huth; Brindar K Sandhu; Samuel H Gellman; Shonna M McBride
Journal:  ACS Infect Dis       Date:  2021-03-19       Impact factor: 5.084

Review 4.  Antimicrobial resistance in Clostridioides difficile.

Authors:  Keeley O'Grady; Daniel R Knight; Thomas V Riley
Journal:  Eur J Clin Microbiol Infect Dis       Date:  2021-08-24       Impact factor: 3.267

5.  In Crystallo Time-Resolved Interaction of the Clostridioides difficile CDD-1 enzyme with Avibactam Provides New Insights into the Catalytic Mechanism of Class D β-lactamases.

Authors:  Nichole K Stewart; Marta Toth; Anastasiya Stasyuk; Sergei B Vakulenko; Clyde A Smith
Journal:  ACS Infect Dis       Date:  2021-04-28       Impact factor: 5.578

6.  Inhibition of the Clostridioides difficile Class D β-Lactamase CDD-1 by Avibactam.

Authors:  Nichole K Stewart; Marta Toth; Anastasiya Stasyuk; Mijoon Lee; Clyde A Smith; Sergei B Vakulenko
Journal:  ACS Infect Dis       Date:  2021-01-03       Impact factor: 5.084

Review 7.  Clostridioides difficile as a Dynamic Vehicle for the Dissemination of Antimicrobial-Resistance Determinants: Review and In Silico Analysis.

Authors:  Philip Kartalidis; Anargyros Skoulakis; Katerina Tsilipounidaki; Zoi Florou; Efthymia Petinaki; George C Fthenakis
Journal:  Microorganisms       Date:  2021-06-25

Review 8.  Mechanisms of antibiotic resistance of Clostridioides difficile.

Authors:  Ishani Wickramage; Patrizia Spigaglia; Xingmin Sun
Journal:  J Antimicrob Chemother       Date:  2021-11-12       Impact factor: 5.758

  8 in total

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