Translational Health Science and Technology Institute (THSTI), Haryana, India.
J Biomol Struct Dyn. 2023;41(24):15305-15319. doi: 10.1080/07391102.2023.2188430. Epub 2023 Mar 12.
Interface mimicry, achieved by recognition of host-pathogen interactions, is the basis by which pathogen proteins can hijack the host machinery. The envelope (E) protein of SARS-CoV-2 is reported to mimic the histones at the BRD4 surface via establishing the structural mimicry; however, the underlying mechanism of E protein mimicking the histones is still elusive. To explore the mimics at dynamic and structural residual network level an extensive docking, and MD simulations were carried out in a comparative manner between complexes of H3-, H4-, E-, and apo-BRD4. We identified that E peptide is able to attain an 'interaction network mimicry', as its acetylated lysine (Kac) achieves orientation and residual fingerprint similar to histones, including water-mediated interactions for both the Kac positions. We identified Y59 of E, playing an anchor role to escort lysine positioning inside the binding site. Furthermore, the binding site analysis confirms that E peptide needs a higher volume, similar to the H4-BRD4 where both the lysine's (Kac5 and Kac8) can accommodate nicely, however, the position of Kac8 is mimicked by two additional water molecules other than four water-mediated bridging's, strengthening the possibility that E peptide could hijack host BRD4 surface. These molecular insights seem pivotal for mechanistic understanding and BRD4-specific therapeutic intervention. KEY POINTSMolecular mimicry is reported in hijacking and then outcompeting the host counterparts so that pathogens can rewire their cellular function by overcoming the host defense mechanism.The molecular recognition process is the basis of molecular mimicry. The E peptide of SARS-CoV-2 is reported to mimic host histone at the BRD4 surface by utilizing its C-terminally placed acetylated lysine (K63) to mimic the N-terminally placed acetylated lysine K5GGK8 histone (H4) by identified through microsecond molecular dynamics (MD) simulations and post-processing extensive analysis.There are two steps to mimic: firstly, tyrosine residues help E to anchor at the BRD4 surface to position K and increase the volume of the pocket. Secondary, after positioning of K a common durable N140:K5; K5:W1; W1:Y97; W1:W2; W2:W3; W3:W4; W4:P82 is established between K5, with key residues P82, Y97, N140, and four water molecules through water mediate bridge. Furthermore, the second acetylated lysine K8 position and its interaction as polar contact with K5 were also mimicked by E peptide through interaction P82:W5; W5:K63; W5:W6; W6:K63.The binding event at BRD4/BD1 seems an induced-fit mechanism as a bigger binding site volume was identified at H4-BRD4 on which E peptide attains its better stability than H3-BRD4.We identified the tyrosine residue Y59 of E that acts like an anchor on the BRD4 surface to position K inside the pocket and attain the interaction network by using aromatic residues of the BRD4 surface.Communicated by Ramaswamy H. Sarma.
界面模拟,通过识别宿主-病原体相互作用来实现,是病原体蛋白可以劫持宿主机制的基础。据报道,SARS-CoV-2 的包膜 (E) 蛋白通过建立结构模拟来模拟 BRD4 表面的组蛋白;然而,E 蛋白模拟组蛋白的潜在机制仍不清楚。为了在动态和结构残差网络水平上探索模拟物,我们以 H3-、H4-、E-和 apo-BRD4 复合物之间的比较方式进行了广泛的对接和 MD 模拟。我们发现 E 肽能够实现“相互作用网络模拟”,因为其乙酰化赖氨酸 (Kac) 的取向和残基指纹与组蛋白相似,包括 Kac 位置的水介导相互作用。我们确定 E 中的 Y59 发挥着锚定作用,将赖氨酸定位在结合位点内。此外,结合位点分析证实 E 肽需要更大的体积,类似于 H4-BRD4,其中赖氨酸(Kac5 和 Kac8)可以很好地容纳,但 Kac8 的位置由两个额外的水分子模拟,而不是四个水介导桥接,从而增强了 E 肽可能劫持宿主 BRD4 表面的可能性。这些分子见解似乎对于机制理解和 BRD4 特异性治疗干预至关重要。
分子模拟在劫持和随后竞争宿主对应物方面已有报道,因此病原体可以通过克服宿主防御机制来重新布线其细胞功能。
分子识别过程是分子模拟的基础。据报道,SARS-CoV-2 的 E 肽利用其 C 末端的乙酰化赖氨酸 (K63) 模拟 N 末端的乙酰化赖氨酸 K5GGK8 组蛋白 (H4),通过微秒分子动力学 (MD) 模拟和广泛的后处理分析确定。
首先,酪氨酸残基帮助 E 锚定在 BRD4 表面以定位 K 并增加口袋的体积。其次,在 K 定位后,K5 与关键残基 P82、Y97、N140 和四个水分子之间建立了常见的持久 N140:K5;K5:W1;W1:Y97;W1:W2;W2:W3;W3:W4;W4:P82 之间的联系。此外,E 肽还通过与 K5 的极性接触模拟了第二个乙酰化赖氨酸 K8 位置及其相互作用。
BRD4/BD1 上的结合事件似乎是一种诱导契合机制,因为在 E 肽获得比 H3-BRD4 更好的稳定性的情况下,确定了 H4-BRD4 上更大的结合位点体积。
我们确定了 E 中的酪氨酸残基 Y59,它在 BRD4 表面充当锚定,将 K 定位在口袋内,并利用 BRD4 表面的芳香族残基获得相互作用网络。
由 Ramaswamy H. Sarma 传达。