Role of CRISPR-Cas systems and anti-CRISPR proteins in bacterial antibiotic resistance

被引:7
作者
Kadkhoda, Hiva [1 ,2 ]
Gholizadeh, Pourya [3 ,4 ]
Kafil, Hossein Samadi [1 ,5 ]
Ghotaslou, Reza [1 ,6 ]
Pirzadeh, Tahereh [1 ,6 ]
Rezaee, Mohammad Ahangarzadeh [1 ,6 ]
Nabizadeh, Edris [1 ,2 ]
Feizi, Hadi [1 ,7 ]
Aghazadeh, Mohammad [1 ,6 ]
机构
[1] Tabriz Univ Med Sci, Fac Med, Dept Med Microbiol, Tabriz, Iran
[2] Tabriz Univ Med Sci, Student Res Comm, Tabriz, Iran
[3] Ardabil Univ Med Sci, Digest Dis Res Ctr, Ardebil, Iran
[4] Ardabil Univ Med Sci, Zoonoses Res Ctr, Ardebil, Iran
[5] Tabriz Univ Med Sci, Drug Appl Res Ctr, Tabriz, Iran
[6] Tabriz Univ Med Sci, Immunol Res Ctr, Tabriz, Iran
[7] Aalinasab Hosp, Dept Med Microbiol, Social Secur Org, Tabriz, Iran
关键词
Horizontal gene transfer; Mobile genetic elements; CRISPR-Cas system; Anti -CRISPR proteins; Antibiotic resistance genes; HORIZONTAL GENE-TRANSFER; ESCHERICHIA-COLI; IMMUNITY; DELIVERY; BACTERIOPHAGES; ASSOCIATION; INHIBITION; PATHOGENS; EVOLUTION; PLASMIDS;
D O I
10.1016/j.heliyon.2024.e34692
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The emergence and development of antibiotic resistance in bacteria is a serious threat to global public health. Antibiotic resistance genes (ARGs) are often located on mobile genetic elements (MGEs). They can be transferred among bacteria by horizontal gene transfer (HGT), leading to the spread of drug-resistant strains and antibiotic treatment failure. CRISPR (clustered regularly interspaced short palindromic repeats)-Cas (CRISPR-associated genes) is one of the many strategies bacteria have developed under long-term selection pressure to restrict the HGT. CRISPRCas systems exist in about half of bacterial genomes and play a significant role in limiting the spread of antibiotic resistance. On the other hand, bacteriophages and other MGEs encode a wide range of anti-CRISPR proteins (Acrs) to counteract the immunity of the CRISPR-Cas system. The Acrs could decrease the CRISPR-Cas system's activity against phages and facilitate the acquisition of ARGs and virulence traits for bacteria. This review aimed to assess the relationship between the CRISPR-Cas systems and Acrs with bacterial antibiotic resistance. We also highlighted the CRISPR technology and Acrs to control and prevent antibacterial resistance. The CRISPR-Cas system can target nucleic acid sequences with high accuracy and reliability; therefore, it has become a novel gene editing and gene therapy tool to prevent the spread of antibiotic resistance. CRISPR-based approaches may pave the way for developing smart antibiotics, which could eliminate multidrug-resistant (MDR) bacteria and distinguish between pathogenic and beneficial microorganisms. Additionally, the engineered anti-CRISPR gene-containing phages in combination with antibiotics could be used as a cutting-edge treatment approach to reduce antibiotic resistance.
引用
收藏
页数:16
相关论文
共 167 条
  • [1] The CRISPR tool kit for genome editing and beyond
    Adli, Mazhar
    [J]. NATURE COMMUNICATIONS, 2018, 9
  • [2] Nanoparticles-mediated CRISPR/Cas9 delivery: Recent advances in cancer treatment
    Aghamiri, Shahin
    Talaei, Sam
    Ghavidel, Afshin Abdi
    Zandsalimi, Farshid
    Masoumi, Saeid
    Hafshejani, Nahid Heidari
    Jajarmi, Vahid
    [J]. JOURNAL OF DRUG DELIVERY SCIENCE AND TECHNOLOGY, 2020, 56
  • [3] Recent Advances in Understanding the Molecular Mechanisms of Multidrug Resistance and Novel Approaches of CRISPR/Cas9-Based Genome-Editing to Combat This Health Emergency
    Allemailem, Khaled S.
    [J]. INTERNATIONAL JOURNAL OF NANOMEDICINE, 2024, 19 : 1125 - 1143
  • [4] Allos BM, 2001, CLIN INFECT DIS, V32, P1201, DOI 10.1086/319760
  • [5] Evolution of CRISPR-associated endonucleases as inferred from resurrected proteins
    Alonso-Lerma, Borja
    Jabalera, Ylenia
    Samperio, Sara
    Morin, Matias
    Fernandez, Almudena
    Hille, Logan T.
    Silverstein, Rachel A.
    Quesada-Ganuza, Ane
    Reifs, Antonio
    Fernandez-Penalver, Sergio
    Benitez, Yolanda
    Soletto, Lucia
    Gavira, Jose A.
    Diaz, Adrian
    Vranken, Wim
    Sanchez-Mejias, Avencia
    Guell, Marc
    Mojica, Francisco J. M.
    Kleinstiver, Benjamin P.
    Moreno-Pelayo, Miguel A.
    Montoliu, Lluis
    Perez-Jimenez, Raul
    [J]. NATURE MICROBIOLOGY, 2023, 8 (01) : 77 - +
  • [6] CRISPR-Cas system: a potential alternative tool to cope antibiotic resistance
    Aslam, Bilal
    Rasool, Maria
    Idris, Adi
    Muzammil, Saima
    Alvi, Roman Farooq
    Khurshid, Mohsin
    Rasool, Muhammad Hidayat
    Zhang, Derong
    Ma, Zhongren
    Baloch, Zulqarnain
    [J]. ANTIMICROBIAL RESISTANCE AND INFECTION CONTROL, 2020, 9 (01)
  • [7] Ates A., 2024, bioRxiv
  • [8] Presence of Type I-F CRISPR/Cas systems is associated with antimicrobial susceptibility in Escherichia coli
    Aydin, Seyid
    Personne, Yoann
    Newire, Enas
    Laverick, Rebecca
    Russell, Oliver
    Roberts, Adam P.
    Enne, Virve I.
    [J]. JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2017, 72 (08) : 2213 - 2218
  • [9] Antisense inhibition of gene expression and growth in gram-negative bacteria by cell-penetrating peptide conjugates of peptide nucleic acids targeted to rpoD gene
    Bai, Hui
    You, Yu
    Yan, Hua
    Meng, Jingru
    Xue, Xiaoyan
    Hou, Zheng
    Zhou, Ying
    Ma, Xue
    Sang, Guojun
    Luo, Xiaoxing
    [J]. BIOMATERIALS, 2012, 33 (02) : 659 - 667
  • [10] Exploring the costs of horizontal gene transfer
    Baltrus, David A.
    [J]. TRENDS IN ECOLOGY & EVOLUTION, 2013, 28 (08) : 489 - 495