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双苄基异喹啉生物碱通过损害晚期内体/溶酶体功能来抑制非洲猪瘟病毒的内化和复制。

Bis-benzylisoquinoline alkaloids inhibit African swine fever virus internalization and replication by impairing late endosomal/lysosomal function.

作者信息

Zhu Junhai, Chen Huahan, Gao Fei, Jian Weijun, Huang Guangyu, Sunkang Yongjie, Chen Xiaona, Liao Ming, Zhang Kehui, Qi Wenbao, Huang Lihong

机构信息

State Key Laboratory for Animal Disease Control and Prevention, South China Agricultural University, Guangzhou, China.

African Swine Fever Regional Laboratory of China (Guangzhou), Guangzhou, China.

出版信息

J Virol. 2024 Aug 20;98(8):e0032724. doi: 10.1128/jvi.00327-24. Epub 2024 Jul 31.

Abstract

African swine fever (ASF), caused by the African swine fever virus (ASFV), is a highly infectious disease afflicting domestic pigs and wild boars. It exhibits an alarming acute infection fatality rate of up to 100%. Regrettably, no commercial vaccines or specific drugs for combating this disease are currently available. This study evaluated the anti-ASFV activities in porcine alveolar macrophages, 3D4/21 cells, and PK-15 cells of four bis-benzylisoquinoline alkaloids (BBAs): cepharanthine (CEP), tetrandrine, fangchinoline, and iso-tetrandrine. Furthermore, we demonstrated that CEP, which exhibited the highest selectivity index (SI = 81.31), alkalized late endosomes/lysosomes, hindered ASFV endosomal transport, disrupted virus uncoating signals, and thereby inhibited ASFV internalization. Additionally, CEP disrupted ASFV DNA synthesis, leading to the inhibition of viral replication. Moreover, berbamine was labeled with NBD to synthesize a fluorescent probe to study the cellular location of these BBAs. By co-staining with Lyso-Tracker and lysosome-associated membrane protein 1, we demonstrated that BBAs target the endolysosomal compartments for the first time. Our data together indicated that BBAs are a class of natural products with significant inhibitory effects against ASFV infection. These findings suggest their potential efficacy as agents for the prevention and control of ASF, offering valuable references for the identification of potential drug targets.IMPORTANCEThe urgency and severity of African swine fever (ASF) underscore the critical need for effective interventions against this highly infectious disease, which poses a grave threat to domestic pigs and wild boars. Our study reveals the potent anti-African swine fever virus (ASFV) efficacy of bis-benzylisoquinoline alkaloids (BBAs), particularly evident in the absence of progeny virus production under a 5 µM concentration treatment. The structural similarity among cepharanthine, tetrandrine, fangchinoline, and iso-tetrandrine, coupled with their analogous inhibitory stages and comparable selectivity indexes, strongly suggests a shared antiviral mechanism within this drug category. Further investigation revealed that BBAs localize to lysosomes and inhibit the internalization and replication of ASFV by disrupting the endosomal/lysosomal function. These collective results have profound implications for ASF prevention and control, suggesting the potential of the investigated agents as prophylactic and therapeutic measures. Furthermore, our study offers crucial insights into identifying drug targets and laying the groundwork for innovative interventions.

摘要

非洲猪瘟(ASF)由非洲猪瘟病毒(ASFV)引起,是一种困扰家猪和野猪的高度传染性疾病。其急性感染致死率高达100%,令人震惊。遗憾的是,目前尚无用于对抗该疾病的商业疫苗或特效药物。本研究评估了四种双苄基异喹啉生物碱(BBAs),即粉防己碱(CEP)、汉防己甲素、防己诺林碱和异汉防己甲素,在猪肺泡巨噬细胞、3D4/21细胞和PK - 15细胞中的抗ASFV活性。此外,我们证明了具有最高选择性指数(SI = 81.31)的CEP可碱化晚期内体/溶酶体,阻碍ASFV的内体转运,破坏病毒脱壳信号,从而抑制ASFV的内化。此外,CEP破坏ASFV的DNA合成,导致病毒复制受到抑制。此外,将小檗胺用NBD标记以合成荧光探针,用于研究这些BBAs的细胞定位。通过与溶酶体追踪染料和溶酶体相关膜蛋白1共染色,我们首次证明了BBAs靶向内溶酶体区室。我们的数据共同表明,BBAs是一类对ASFV感染具有显著抑制作用的天然产物。这些发现表明它们作为预防和控制ASF的药物具有潜在功效,为潜在药物靶点的鉴定提供了有价值的参考。

重要性

非洲猪瘟(ASF)的紧迫性和严重性凸显了针对这种对家猪和野猪构成严重威胁的高度传染性疾病采取有效干预措施的迫切需求。我们的研究揭示了双苄基异喹啉生物碱(BBAs)对非洲猪瘟病毒(ASFV)具有强大的抗病毒功效,在5 μM浓度处理下无子代病毒产生的情况尤为明显。粉防己碱、汉防己甲素、防己诺林碱和异汉防己甲素之间的结构相似性,以及它们类似的抑制阶段和可比的选择性指数,强烈表明该类药物具有共同的抗病毒机制。进一步研究表明,BBAs定位于溶酶体,并通过破坏内体/溶酶体功能来抑制ASFV的内化和复制。这些综合结果对ASF的预防和控制具有深远意义,表明所研究的药物具有作为预防和治疗措施的潜力。此外,我们的研究为识别药物靶点和为创新干预措施奠定基础提供了关键见解。

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