Kang Nayeon, Hwang Jangsun, Jeong Daun, Choi Ji Hye, Thangam Ramar, Min Sunhong, Hong Hyunsik, Kim Dahee, Rha Hyunji, Lee Sungkyu, Jung Hwapyung, Kim Taeeon, Zare Iman, Jung Hee Joon, Najafabadi Alireza Hassani, Jung Hyun-Do, Zhang Kunyu, Zhao Pengchao, Bian Liming, Kim Hong-Kyu, Kim Jong Seung, Song Guosheng, Yoon Juyoung, Park Sung-Gyu, Jang Woo Young, Kang Heemin
Department of Materials Science and Engineering, Korea University, Seoul, 02841, Republic of Korea.
Department of Orthopedic Surgery, Korea University Anam Hospital, Seoul, 02841, Republic of Korea.
Adv Mater. 2025 Mar;37(10):e2414356. doi: 10.1002/adma.202414356. Epub 2024 Dec 24.
Graph theory has been widely used to quantitatively analyze complex networks of molecules, materials, and cells. Analyzing the dynamic complex structure of extracellular matrix can predict cell-material interactions but has not yet been demonstrated. In this study, graph theory-based mathematical modeling of RGD ligand graph inter-relation is demonstrated by differentially cutting off RGD-to-RGD interlinkages with flexibly conjugated magnetic nanobars (MNBs) with tunable aspect ratio. The RGD-to-RGD interlinkages are less effectively cut off by MNBs with a lower aspect ratio, which decreases the shortest path while increasing the number of instances thereof, thereby augmenting RGD nano inter-relation. This facilitates integrin recruitment of macrophages and thus actin fiber assembly and vinculin expression, which mediates pro-regenerative polarization, involving myosin II, actin polymerization, and rho-associated protein kinase. Unidirectional pre-aligning or reversibly lifting highly elongated MNBs both increase RGD nano inter-relation, which promotes host macrophage adhesion and switches their polarization from pro-inflammatory to pro-regenerative phenotype. The latter approach produces nano-spaces through which macrophages can penetrate and establish RGD links thereunder. Using graph theory, this study presents the example of mathematically modeling the functionality of extracellular-matrix-mimetic materials, which can help elucidate complex dynamics of the interactions occurring between host cells and materials via versatile geometrical nano-engineering.
图论已被广泛用于定量分析分子、材料和细胞的复杂网络。分析细胞外基质的动态复杂结构可以预测细胞与材料的相互作用,但尚未得到证实。在本研究中,通过用具有可调纵横比的柔性共轭磁性纳米棒(MNB)差异性切断RGD配体图的相互联系,证明了基于图论的RGD配体图相互关系的数学建模。纵横比低的MNB对RGD与RGD之间的相互联系切断效果较差,这会减少最短路径,同时增加其出现的次数,从而增强RGD纳米相互关系。这有利于巨噬细胞整合素的募集,进而促进肌动蛋白纤维组装和纽蛋白表达,介导涉及肌球蛋白II、肌动蛋白聚合和rho相关蛋白激酶的促再生极化。单向预排列或可逆提升高度细长的MNB均会增加RGD纳米相互关系,这会促进宿主巨噬细胞粘附,并将其极化从促炎表型转变为促再生表型。后一种方法会产生纳米空间,巨噬细胞可以穿透该空间并在其下方建立RGD连接。本研究通过图论给出了对细胞外基质模拟材料功能进行数学建模的示例,这有助于通过通用的几何纳米工程阐明宿主细胞与材料之间相互作用的复杂动态。