News Express: UM research team reveals cryogenic electron microscopy structure of supramolecular nanofibril assembled from TCM natural compound

新聞快訊:澳大研究團隊首次解析中藥天然產物超分子冷凍電鏡結構

 

薑狀三七皂苷 R1超分子納米纖維的冷凍電鏡結構
High-resolution cryo-EM structure of ZR1 nanofibrils

 


澳大研究團隊首次解析中藥天然產物超分子冷凍電鏡結構

澳門大學中華醫藥研究院助理教授宋賀的研究團隊首次解析了中藥天然產物超分子納米纖維的高解析度冷凍電鏡結構。研究成果不僅揭示了該結構在單分子態下不具備的獨特抗真菌活性,亦證實其能精準破壞陰道炎致病菌白色念珠菌,為真菌性陰道炎感染治療提供了全新策略。該研究成果已刊登於國際權威期刊《Advanced Materials》。

超分子結構在自然界中廣泛存在。自20世紀50年代沃森與克里克以X射線繞射揭示DNA雙螺旋以來,科學家陸續發現Aβ等多肽或蛋白可自發組裝為螺旋狀超分子,並在阿茲海默症等疾病中扮演關鍵角色。然而,在中醫藥與天然產物領域,小分子活性成分能否自發組裝為具有治療功能的超分子結構,其分子自組裝機理及功能機制長期缺乏高解析度證據。傳統AFM、SEM或低解析度TEM雖可觀測膠體形態,卻難以提供原子級結構;即便應用冷凍電鏡,也因螺旋結構解析困難而多依賴動力學模擬,成為中藥劑學研究的關鍵瓶頸。

為突破此一局限,宋賀團隊以薑狀三七皂苷 R1 為研究對象,發現其在無需任何輔助劑的情況下,僅經簡單的熱—冷循環即可自發組裝為超分子水凝膠。研究團隊進而運用冷凍電鏡技術,成功在2.5 Å分辨率下重建出R1納米纖維的三維結構圖譜,解析出左手四起螺旋結構。高解析度數據不僅揭示了R1分子間精密的氫鍵與疏水相互作用,亦證實其超分子結構是抗真菌活性的分子基礎:R1水凝膠能特異性破壞白色念珠菌的細胞壁,導致細胞破裂與內容物外洩。

該研究由宋賀團隊(結構解析)與湖南大學生命醫學交叉研究院教授史俊鋒團隊(功能驗證)聯合完成,湖南大學博士生彭夢雲與澳大研究生彭綺薇為共同第一作者。該研究獲澳門大學(檔案編號:MYRG-GRG2024-00283-ICMS-UMDF、SRG2023-00054-ICMS)及澳門特別行政區科學技術發展基金(檔案編號:0068/2023/ITP2、0007/2022/AKP、005/2023/SKL)資助。全文可瀏覽:https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adma.202503283

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https://www.um.edu.mo/zh-hant/news-and-press-releases/press-release/detail/61171/


UM research team reveals cryogenic electron microscopy structure of supramolecular nanofibril assembled from TCM natural compound

A research team led by Song He, assistant professor in the Institute of Chinese Medical Sciences (ICMS) at the University of Macau (UM), has revealed the high-resolution cryogenic electron microscopy (cryo-EM) structure of a supramolecular nanofibril assembled from a natural compound found in traditional Chinese medicine (TCM). The study revealed not only the structure’s unique antifungal activity, which is absent in its single-molecule state, but also its precision in disrupting Candida albicans (C. albicans), the pathogen responsible for vulvovaginal candidiasis (VVC). This offers a novel therapeutic strategy. The research has been published in the international journal Advanced Materials.

Supramolecular structures are ubiquitous in nature. Since Winston and Crick discovered the double helix structure of DNA using X-ray diffraction in the 1950s, scientists have found that peptides and proteins (e.g. Aβ fibrils) can self-assemble into helical supramolecular structures that play a key role in diseases such as Alzheimer’s disease. However, TCM and natural product research has long lacked of high-resolution evidence of whether small-molecule active ingredients form functional supramolecular assemblies, and their self-assembly mechanisms. Conventional techniques such as atomic force microscopy (AFM), scanning electron microscopy (SEM), and low-resolution transmission electron microscopy (TEM) lack the spatial resolution required to visualise atomic structures. Previous cryo-EM studies, which rely on molecular dynamics simulation, have also had difficulties in resolving the helical structure.

To overcome these limitations, Prof Song’s research team conducted research on Zingibroside R1 (ZR1), a saponin derived from Panax notoginseng. They discovered that, without exogenous additives, the TCM compound undergoes spontaneous self-assemble into a hydrogel through heating-cooling method. Using high-resolution cryo-EM, the team reconstructed a 3D map of the ZR1 nanofibrils at 2.5 Å resolution, revealing a left-handed, four-stranded helical structure. The high-resolution data revealed the precise hydrophobic and hydrophilic interactions, as well as role of the supramolecular structure in antifungal activity: The ZR1 hydrogel disrupts the cell membrane integrity in C. albicans, leading to the leakage of intracellular contents.

This research was a collaborative project conducted by Prof Song’s research team and a research team led by Shi Junfeng, professor in the School of Biomedical Sciences at Hunan University. Prof Song’s team was responsible for structural analysis, and Prof Shi’s team was responsible for functional verification. Peng Mengyun, a PhD student at Hunan University, and Peng Qiwei, a postgraduate student at UM, are the co-first authors of this study. The research was funded by UM (File No: MYRG-GRG2024-00283-ICMS-UMDF and SRG2023-00054-ICMS), and the Science and Technology Development Fund of the Macao SAR (File No: 0068/2023/ITP2, 0007/2022/AKP, and 005/2023/SKL). The full text of the research article is available at: https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/adma.202503283.

To read the news on UM’s official website, please visit the following link:
https://www.um.edu.mo/news-and-press-releases/press-release/detail/61171/