Assessing the threat of Yersinia pestis harboring a multi-resistant IncC plasmid and the efficacy of an antibiotic targeting LpxC.

IF 4.1 2区 医学 Q2 MICROBIOLOGY
Antimicrobial Agents and Chemotherapy Pub Date : 2025-03-05 Epub Date: 2025-01-30 DOI:10.1128/aac.01497-24
Nadine Lemaitre, Amélie Dewitte, Faniry Rakotomanimana, David Gooden, Eric Toone, Minoarisoa Rajerison, Pei Zhou, Florent Sebbane
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引用次数: 0

Abstract

Self-transmissible IncC plasmids rapidly spread multidrug resistance in many medically important pathogens worldwide. A large plasmid of this type (pIP1202, ~80 Kb) has been isolated in a clinical isolate of Yersinia pestis, the agent of plague. Here, we report that pIP1202 was highly stable in Y. pestis-infected mice and fleas and did not reduce Y. pestis virulence in these animals. Although pIP1202 inflicted a fitness cost in fleas (but not in mice) when the insects fed on blood containing a mixture of plasmid-free and plasmid-bearing strains, such a co-infection scenario has never been reported in nature, indicating that pIP1202 could persist in Y. pestis strains. Despite being resistant to commonly used antibiotic treatments, we show that plague caused by Y. pestis harboring the pIP1202 plasmid is effectively cured by LPC-233-a potent inhibitor of the essential LpxC enzyme in the lipid A biosynthetic pathway. Taken as a whole, our data highlight the alarming threat posed by Y. pestis harboring multidrug-resistant IncC plasmids that may persist in wild animals as a reservoir for long periods without antibiotic pressure and illuminate the impact of antibiotics with a novel mode of action against such a biothreat.

评估含有多重耐药IncC质粒的鼠疫耶尔森菌的威胁以及针对LpxC的抗生素的疗效。
自传播的IncC质粒在世界范围内许多医学上重要的病原体中迅速传播多药耐药性。该类型的大质粒(pIP1202,约80kb)已从鼠疫病原体鼠疫耶尔森菌的临床分离株中分离得到。在这里,我们报告了pIP1202在鼠疫杆菌感染的小鼠和跳蚤中高度稳定,并没有降低这些动物的鼠疫杆菌毒力。虽然pIP1202在跳蚤(而不是小鼠)身上造成了适合度成本,但这种共同感染的情况从未在自然界中报道过,这表明pIP1202可能在鼠疫杆菌菌株中持续存在。尽管对常用的抗生素治疗具有耐药性,但我们发现携带pIP1202质粒的鼠疫杆菌引起的鼠疫可以被lpc -233有效治愈,lpc -233是脂质A生物合成途径中必需的LpxC酶的有效抑制剂。从整体上看,我们的数据突出了鼠疫杆菌所构成的令人震惊的威胁,它含有多重耐药的IncC质粒,可能在没有抗生素压力的情况下长期存在于野生动物体内,并阐明了抗生素对这种生物威胁的新作用模式的影响。
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来源期刊
CiteScore
10.00
自引率
8.20%
发文量
762
审稿时长
3 months
期刊介绍: Antimicrobial Agents and Chemotherapy (AAC) features interdisciplinary studies that build our understanding of the underlying mechanisms and therapeutic applications of antimicrobial and antiparasitic agents and chemotherapy.
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