Kumavath Ranjith, Gupta Puja, Tatta Eswar Rao, Mohan Mahima S, Salim Simi Asma, Busi Siddhardha
Department of Biotechnology, School of Life Sciences, Pondicherry University, Puducherry, India.
Department of Biotechnology, School of Biosciences, RIMT University, Sirhind, Punjab, India.
Front Syst Biol. 2025 Aug 8;5:1557413. doi: 10.3389/fsysb.2025.1557413. eCollection 2025.
Irrational antibiotic use contributes to the development of antibiotic resistance in bacteria, which is a major cause of healthcare-associated infections globally. Molecular research has shown that multiple resistance frequently develops from the uptake of pre-existing resistance genes, which are subsequently intensified under selective pressures. Resistant genes spread and are acquired through mobile genetic elements which are essential for facilitating horizontal gene transfer. MGEs have been identified as carriers of genetic material and are a significant player in evolutionary processes. These include insertion sequences, transposons, integrative and conjugative elements, plasmids, and genomic islands, all of which can transfer between and within DNA molecules. With an emphasis on pathogenic bacteria, this review highlights the salient features of the MGEs that contribute to the development and spread of antibiotic resistance. MGEs carry non-essential genes, including AMR and virulence genes, which can enhance the adaptability and fitness of their bacterial hosts. These elements employ evolutionary strategies to facilitate their replication and dissemination, thus enabling survival without positive selection for the harboring of beneficial genes.
不合理使用抗生素会导致细菌产生抗生素耐药性,这是全球医疗保健相关感染的主要原因。分子研究表明,多重耐药性通常源于对预先存在的耐药基因的摄取,这些基因随后在选择性压力下增强。耐药基因通过移动遗传元件传播和获得,而移动遗传元件对于促进水平基因转移至关重要。移动遗传元件已被确定为遗传物质的载体,并且在进化过程中起着重要作用。这些包括插入序列、转座子、整合和接合元件、质粒和基因组岛,所有这些都可以在DNA分子之间和内部转移。本综述重点关注病原菌,突出了移动遗传元件在抗生素耐药性发展和传播中所起的显著作用。移动遗传元件携带非必需基因,包括抗生素耐药性和毒力基因,这些基因可以增强其细菌宿主的适应性和适合度。这些元件采用进化策略来促进自身的复制和传播,从而在没有对携带有益基因进行正向选择的情况下实现生存。
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