Clostridioides difficile SinR' regulates toxin, sporulation and motility through protein-protein interaction with SinR

被引:12
|
作者
Ciftci, Yusuf [1 ]
Girinathan, Brintha Parasumanna [1 ,2 ]
Dhungel, Babita Adhikari [1 ]
Hasan, Kamrul [1 ]
Govind, Revathi [1 ]
机构
[1] Kansas State Univ, Div Biol, Ackert Hall, Manhattan, KS 66506 USA
[2] Harvard Med Sch, Dept Pathol, Boston, MA 02115 USA
关键词
Clostridium difficile; Clostridioides difficile sin locus; SinR; toxin production; sporulation; motility; Gene regulation; VIRULENCE FACTORS; BIOFILM FORMATION; EXPRESSION; GENE; TRANSCRIPTION; PARALLEL; OPERON;
D O I
10.1016/j.anaerobe.2019.05.002
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Clostridioides difficile is a Gram-positive, anaerobic bacterium. It is known that C. difficile is one of the major causes of antibiotic associated diarrhea. The enhanced antibiotic resistance observed in C. difficile is the result of highly resistant spores produced by the bacterium. In Bacillus subtilis, the sin operon is involved in sporulation inhibition. Two proteins coded within this operon, SinR and SinI, have an antagonistic relationship; SinR acts as an inhibitor to sporulation whereas SinI represses the activity of SinR, thus allowing the bacterium to sporulate. In a previous study, we examined the sin locus in C. difficile and named the two genes associated with this operon sinR and SinR', analogous to sinR and sinI in B. subtilis, respectively. We have shown that SinR and SinR' have pleiotropic roles in pathogenesis pathways and interact antagonistically with each other. Unlike B. subtilis SinI, SinR' in C. difficile carries two domains: the HTH domain and the Multimerization Domain (MD). In this study, we first performed a GST Pull-down experiment to determine the domain within SinR' that interacts with SinR. Second, the effect of these two domains on three phenotypes; sporulation, motility, and toxin production was examined. The findings of this study confirmed the prediction that the Multimerization Domain (MD) of SinR' is responsible for the interaction between SinR and SinR'. It was also discovered that SinR' regulates sporulation, toxin production and motility primarily by inhibiting SinR activity through the Multimerization Domain (MD). (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1 / 7
页数:7
相关论文
共 50 条
  • [21] Evolutionary origins of a heteromeric protein-protein interaction that regulates mammalian glucose homeostasis
    Santiago, Joshua I.
    Whittington, A. C.
    Miller, Brian G.
    BIOPHYSICAL JOURNAL, 2022, 121 (03) : 18 - 18
  • [22] The Immune Protein Calprotectin Impacts Clostridioides difficile Metabolism through Zinc Limitation
    Lopez, Christopher A.
    Beavers, William N.
    Weiss, Andy
    Knippel, Reece J.
    Zackular, Joseph P.
    Chazin, Walter
    Skaar, Eric P.
    MBIO, 2019, 10 (06):
  • [23] Efficient Inhibition of Bacterial Biofilm Through Interference of Protein–Protein Interaction of Master Regulator Proteins: a Proof of Concept Study with SinR- SinI Complex of Bacillus subtilis
    Usha Kantiwal
    Janmejay Pandey
    Applied Biochemistry and Biotechnology, 2023, 195 : 1947 - 1967
  • [24] PROTEIN-PROTEIN INTERACTION BETWEEN MURINE TOXIN OF PASTEURELLA PESTIS AND BOVINE HEART MITOCHONDRIAL STRUCTURAL PROTEIN
    KADIS, S
    TRENCHARD, AV
    AJL, SJ
    JOURNAL OF BIOLOGICAL CHEMISTRY, 1966, 241 (23) : 5605 - +
  • [25] The PXDLS linear motif regulates circadian rhythmicity through protein-protein interactions
    Shalev, Moran
    Aviram, Rona
    Adamovich, Yaarit
    Kraut-Cohen, Judith
    Shamia, Tal
    Ben-Dor, Shifra
    Golik, Marina
    Asher, Gad
    NUCLEIC ACIDS RESEARCH, 2014, 42 (19) : 11879 - 11890
  • [26] Evidence that pneumococcal WalK is regulated by StkP through protein-protein interaction
    Stamsas, Gro Anita
    Straume, Daniel
    Salehian, Zhian
    Havarstein, Leiv Sigve
    MICROBIOLOGY-SGM, 2017, 163 (03): : 383 - 399
  • [27] The proliferating cell nuclear antigen regulates retinoic acid receptor transcriptional activity through direct protein-protein interaction
    Martin, PJ
    Lardeux, V
    Lefebvre, P
    NUCLEIC ACIDS RESEARCH, 2005, 33 (13) : 4311 - 4321
  • [28] Evolving New Protein-Protein Interaction Specificity through Promiscuous Intermediates
    Aakre, Christopher D.
    Herrou, Julien
    Phung, Tuyen N.
    Perchuk, Barrett S.
    Crosson, Sean
    Laub, Michael T.
    CELL, 2015, 163 (03) : 594 - 606
  • [29] Drug Repurposing by Simulating Flow Through Protein-Protein Interaction Networks
    Manczinger, M.
    Bodnar, V. A.
    Papp, B. T.
    Bolla, S. B.
    Szabo, K.
    Balazs, B.
    Csanyi, E.
    Szel, E.
    Eros, G.
    Kemeny, L.
    CLINICAL PHARMACOLOGY & THERAPEUTICS, 2018, 103 (03) : 511 - 520
  • [30] Prediction of Butyrylcholinesterase Function Through Domain Analysis and Protein-Protein Interaction
    Rao, Allam Appa
    Srinivas, Kudipudi
    Rajender, R.
    Das, Undurti N.
    CURRENT NUTRITION & FOOD SCIENCE, 2008, 4 (03) : 176 - 184